2025-11-30 , Volume 54 Issue 11

Cover illustration

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    Satellite mega-constellations form the backbone of global connectivity in the vast expanse of space. However, the hostile space environment poses continuous challenges to these networks. High-energy particles from the Sun, cosmic rays, and trapped particles in the Van Allen belts can induce single event upsets, flipping bits, and disrupting satellite internal operations. Space debris also presents a serious threat, capable of destroying satellites in an instant. At the same time, intense sunlight can overwhelm satellite sensors or blind inter-satellite connections, leading to communication failures across the constellation. This new frontier of satellite networking "in the hostile space environment" is thus defined by the challenges of the space environment. Addressing these challenges requires satellites to operate as a coordinated and resilient constellation, ensuring that the global network continues to deliver reliable communication despite frequent disruptions.


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    Editorial
  • Theory and Key Technologies in Space Internet Networking
    [Author(id=1198762795564143150, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762789864083740, orderNo=0, firstName=null, middleName=null, lastName=null, nameCn=null, orcid=null, stid=null, country=null, authorPic=null, dead=0, email=null, emailSecond=null, emailThird=null, correspondingAuthor=0, authorType=1, ext={EN=AuthorExt(id=1198762795861938744, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762789864083740, authorId=1198762795564143150, language=EN, stringName=Jiangzhou Wang, firstName=Jiangzhou, middleName=null, lastName=Wang, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, address=aSchool of Engineering, University of Kent, Canterbury CT2 7NT, UK, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1198762796033905218, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762789864083740, orderNo=1, firstName=null, middleName=null, lastName=null, nameCn=null, orcid=null, stid=null, country=null, authorPic=null, dead=0, email=null, emailSecond=null, emailThird=null, correspondingAuthor=0, authorType=1, ext={EN=AuthorExt(id=1198762796323312207, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762789864083740, authorId=1198762796033905218, language=EN, stringName=Jiandong Li, firstName=Jiandong, middleName=null, lastName=Li, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=b, address=bState Key Laboratory of Integrated Services Networks, Xidian University, Xi’an 710071, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1198762796545610333, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762789864083740, orderNo=2, firstName=null, middleName=null, lastName=null, nameCn=null, orcid=null, stid=null, country=null, authorPic=null, dead=0, email=null, emailSecond=null, emailThird=null, correspondingAuthor=0, authorType=1, ext={EN=AuthorExt(id=1198762796860183141, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762789864083740, authorId=1198762796545610333, language=EN, stringName=Di Zhou, firstName=Di, middleName=null, lastName=Zhou, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=b, address=bState Key Laboratory of Integrated Services Networks, Xidian University, Xi’an 710071, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null)] Jiangzhou Wang , Jiandong Li , Di Zhou

    Nowadays, there has been a growing trend in the field of high-energy physics (HEP), in both its experimental and phenomenological studies, to incorporate machine learning (ML) and its specialized branch, deep learning (DL). This review paper provides a thorough illustration of these applications using different ML and DL approaches. The first part of the paper examines the basics of various particle physics types and establishes guidelines for assessing particle physics alongside the available learning models. Next, a detailed classification is provided for representing Jets that are reconstructed in high-energy collisions, mainly in proton-proton collisions at well-defined beam energies. This section covers various datasets, preprocessing techniques, and feature extraction and selection methods. The presented techniques can be applied to future hadron−hadron colliders (HHC), such as the high-luminosity LHC (HL-LHC) and the future circular collider−hadron−hadron (FCC-hh). The authors then explore several AI techniques analyses designed specifically for both image and point-cloud (PC) data in HEP. Additionally, a closer look is taken at the classification associated with Jet tagging in hadron collisions. In this review, various state-of-the-art (SOTA) techniques in ML and DL are examined, with a focus on their implications for HEP demands. More precisely, this discussion addresses various applications in extensive detail, such as Jet tagging, Jet tracking, and particle classification. The review concludes with an analysis of the current state of HEP using DL methodologies. It highlights the challenges and potential areas for future research, which are illustrated for each application.

  • News & Highlights
  • Funding Cuts Create Chaos in Global Health Programs
    [Author(id=1199770203807457587, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1199770202758881573, orderNo=0, firstName=null, middleName=null, lastName=null, nameCn=null, orcid=null, stid=null, country=null, authorPic=null, dead=0, email=null, emailSecond=null, emailThird=null, correspondingAuthor=0, authorType=1, ext={EN=AuthorExt(id=1199770203979424056, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1199770202758881573, authorId=1199770203807457587, language=EN, stringName=Mitch Leslie, firstName=Mitch, middleName=null, lastName=Leslie, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=null, address=null, bio={"content":"

    Senior Technology Writer

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    Mitch Leslie

    Nowadays, there has been a growing trend in the field of high-energy physics (HEP), in both its experimental and phenomenological studies, to incorporate machine learning (ML) and its specialized branch, deep learning (DL). This review paper provides a thorough illustration of these applications using different ML and DL approaches. The first part of the paper examines the basics of various particle physics types and establishes guidelines for assessing particle physics alongside the available learning models. Next, a detailed classification is provided for representing Jets that are reconstructed in high-energy collisions, mainly in proton-proton collisions at well-defined beam energies. This section covers various datasets, preprocessing techniques, and feature extraction and selection methods. The presented techniques can be applied to future hadron−hadron colliders (HHC), such as the high-luminosity LHC (HL-LHC) and the future circular collider−hadron−hadron (FCC-hh). The authors then explore several AI techniques analyses designed specifically for both image and point-cloud (PC) data in HEP. Additionally, a closer look is taken at the classification associated with Jet tagging in hadron collisions. In this review, various state-of-the-art (SOTA) techniques in ML and DL are examined, with a focus on their implications for HEP demands. More precisely, this discussion addresses various applications in extensive detail, such as Jet tagging, Jet tracking, and particle classification. The review concludes with an analysis of the current state of HEP using DL methodologies. It highlights the challenges and potential areas for future research, which are illustrated for each application.

  • Chinese Robotics Take a Big (Dance) Step Forward
    [Author(id=1199770204524683604, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1199770203635491116, orderNo=0, firstName=null, middleName=null, lastName=null, nameCn=null, orcid=null, stid=null, country=null, authorPic=null, dead=0, email=null, emailSecond=null, emailThird=null, correspondingAuthor=0, authorType=1, ext={EN=AuthorExt(id=1199770204591792472, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1199770203635491116, authorId=1199770204524683604, language=EN, stringName=Chris Palmer, firstName=Chris, middleName=null, lastName=Palmer, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=null, address=null, bio={"content":"

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    Chris Palmer

    Nowadays, there has been a growing trend in the field of high-energy physics (HEP), in both its experimental and phenomenological studies, to incorporate machine learning (ML) and its specialized branch, deep learning (DL). This review paper provides a thorough illustration of these applications using different ML and DL approaches. The first part of the paper examines the basics of various particle physics types and establishes guidelines for assessing particle physics alongside the available learning models. Next, a detailed classification is provided for representing Jets that are reconstructed in high-energy collisions, mainly in proton-proton collisions at well-defined beam energies. This section covers various datasets, preprocessing techniques, and feature extraction and selection methods. The presented techniques can be applied to future hadron−hadron colliders (HHC), such as the high-luminosity LHC (HL-LHC) and the future circular collider−hadron−hadron (FCC-hh). The authors then explore several AI techniques analyses designed specifically for both image and point-cloud (PC) data in HEP. Additionally, a closer look is taken at the classification associated with Jet tagging in hadron collisions. In this review, various state-of-the-art (SOTA) techniques in ML and DL are examined, with a focus on their implications for HEP demands. More precisely, this discussion addresses various applications in extensive detail, such as Jet tagging, Jet tracking, and particle classification. The review concludes with an analysis of the current state of HEP using DL methodologies. It highlights the challenges and potential areas for future research, which are illustrated for each application.

  • Gas Versus Biomass Cooking—Landmark Trial Yields Unexpected Results
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    Sean Cummings

    Nowadays, there has been a growing trend in the field of high-energy physics (HEP), in both its experimental and phenomenological studies, to incorporate machine learning (ML) and its specialized branch, deep learning (DL). This review paper provides a thorough illustration of these applications using different ML and DL approaches. The first part of the paper examines the basics of various particle physics types and establishes guidelines for assessing particle physics alongside the available learning models. Next, a detailed classification is provided for representing Jets that are reconstructed in high-energy collisions, mainly in proton-proton collisions at well-defined beam energies. This section covers various datasets, preprocessing techniques, and feature extraction and selection methods. The presented techniques can be applied to future hadron−hadron colliders (HHC), such as the high-luminosity LHC (HL-LHC) and the future circular collider−hadron−hadron (FCC-hh). The authors then explore several AI techniques analyses designed specifically for both image and point-cloud (PC) data in HEP. Additionally, a closer look is taken at the classification associated with Jet tagging in hadron collisions. In this review, various state-of-the-art (SOTA) techniques in ML and DL are examined, with a focus on their implications for HEP demands. More precisely, this discussion addresses various applications in extensive detail, such as Jet tagging, Jet tracking, and particle classification. The review concludes with an analysis of the current state of HEP using DL methodologies. It highlights the challenges and potential areas for future research, which are illustrated for each application.

  • Views & Comments
  • Space–Ground Fluid AI for 6G Edge Intelligence
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nameCn=null, orcid=null, stid=null, country=null, authorPic=null, dead=0, email=null, emailSecond=null, emailThird=null, correspondingAuthor=0, authorType=1, ext={EN=AuthorExt(id=1198762804019859467, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1160004690224145256, authorId=1198762803877254141, language=EN, stringName=Xianhao Chen, firstName=Xianhao, middleName=null, lastName=Chen, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, address=aDepartment of Electrical and Electronic Engineering, The University of Hong Kong, Hong Kong 999077, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1198762804258934806, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1160004690224145256, orderNo=3, firstName=null, middleName=null, lastName=null, nameCn=null, orcid=null, stid=null, country=null, authorPic=null, dead=0, email=null, 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language=EN, stringName=Sijing Ji, firstName=Sijing, middleName=null, lastName=Ji, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=b, address=bState Key Laboratory of Integrated Service Networks, Xidian University, Xi’an 710071, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1198762805559169134, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1160004690224145256, orderNo=6, firstName=null, middleName=null, lastName=null, nameCn=null, orcid=null, stid=null, country=null, authorPic=null, dead=0, email=null, emailSecond=null, emailThird=null, correspondingAuthor=0, authorType=1, ext={EN=AuthorExt(id=1198762805785661564, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1160004690224145256, authorId=1198762805559169134, language=EN, stringName=Min Sheng, firstName=Min, middleName=null, lastName=Sheng, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=b, address=bState Key Laboratory of Integrated Service Networks, Xidian University, Xi’an 710071, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1198762806117011597, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1160004690224145256, orderNo=7, firstName=null, middleName=null, lastName=null, nameCn=null, orcid=null, stid=null, country=null, authorPic=null, dead=0, email=huangkb@eee.hku.hk, emailSecond=null, emailThird=null, correspondingAuthor=1, authorType=1, ext={EN=AuthorExt(id=1198762806288978078, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1160004690224145256, authorId=1198762806117011597, language=EN, stringName=Kaibin Huang, firstName=Kaibin, middleName=null, lastName=Huang, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, *, address=aDepartment of Electrical and Electronic Engineering, The University of Hong Kong, Hong Kong 999077, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null)] Qian Chen , Zhanwei Wang , Xianhao Chen , Juan Wen , Di Zhou , Sijing Ji , Min Sheng , Kaibin Huang

    Nowadays, there has been a growing trend in the field of high-energy physics (HEP), in both its experimental and phenomenological studies, to incorporate machine learning (ML) and its specialized branch, deep learning (DL). This review paper provides a thorough illustration of these applications using different ML and DL approaches. The first part of the paper examines the basics of various particle physics types and establishes guidelines for assessing particle physics alongside the available learning models. Next, a detailed classification is provided for representing Jets that are reconstructed in high-energy collisions, mainly in proton-proton collisions at well-defined beam energies. This section covers various datasets, preprocessing techniques, and feature extraction and selection methods. The presented techniques can be applied to future hadron−hadron colliders (HHC), such as the high-luminosity LHC (HL-LHC) and the future circular collider−hadron−hadron (FCC-hh). The authors then explore several AI techniques analyses designed specifically for both image and point-cloud (PC) data in HEP. Additionally, a closer look is taken at the classification associated with Jet tagging in hadron collisions. In this review, various state-of-the-art (SOTA) techniques in ML and DL are examined, with a focus on their implications for HEP demands. More precisely, this discussion addresses various applications in extensive detail, such as Jet tagging, Jet tracking, and particle classification. The review concludes with an analysis of the current state of HEP using DL methodologies. It highlights the challenges and potential areas for future research, which are illustrated for each application.

  • Computing over Space: Status, Challenges, and Opportunities
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    cUniversity of Chinese Academy of Sciences, Beijing 100049, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1162124979854697175, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1160004705327833964, orderNo=3, firstName=null, middleName=null, lastName=null, nameCn=null, orcid=null, stid=null, country=null, authorPic=null, dead=0, email=null, emailSecond=null, emailThird=null, correspondingAuthor=0, authorType=1, ext={EN=AuthorExt(id=1162124980022469337, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1160004705327833964, authorId=1162124979854697175, language=EN, stringName=Shuhao Gu, firstName=Shuhao, middleName=null, lastName=Gu, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=d, address=dBeijing Academy of Artificial Intelligence, Beijing 100084, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1162124980148298461, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1160004705327833964, orderNo=4, firstName=null, middleName=null, lastName=null, nameCn=null, orcid=null, stid=null, country=null, authorPic=null, dead=0, email=null, emailSecond=null, emailThird=null, correspondingAuthor=0, authorType=1, ext={EN=AuthorExt(id=1162124980358013667, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1160004705327833964, authorId=1162124980148298461, language=EN, stringName=Jibing Qiu, firstName=Jibing, middleName=null, lastName=Qiu, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, b, address=aState Key Lab of Processors, Institute of Computing Technology, Chinese Academy of Sciences, Beijing 100089, China
    bInstitute of Computing Technology, Chinese Academy of Sciences, Beijing 100089, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1162124980483842790, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1160004705327833964, orderNo=5, firstName=null, middleName=null, lastName=null, nameCn=null, orcid=null, stid=null, country=null, authorPic=null, dead=0, email=null, emailSecond=null, emailThird=null, correspondingAuthor=0, authorType=1, ext={EN=AuthorExt(id=1162124980693557997, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1160004705327833964, authorId=1162124980483842790, language=EN, stringName=Ting Li, firstName=Ting, middleName=null, lastName=Li, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, b, address=aState Key Lab of Processors, Institute of Computing Technology, Chinese Academy of Sciences, Beijing 100089, China
    bInstitute of Computing Technology, Chinese Academy of Sciences, Beijing 100089, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null)]
    Yaoqi Liu , Yinhe Han , Hongxin Li , Shuhao Gu , Jibing Qiu , Ting Li

    Nowadays, there has been a growing trend in the field of high-energy physics (HEP), in both its experimental and phenomenological studies, to incorporate machine learning (ML) and its specialized branch, deep learning (DL). This review paper provides a thorough illustration of these applications using different ML and DL approaches. The first part of the paper examines the basics of various particle physics types and establishes guidelines for assessing particle physics alongside the available learning models. Next, a detailed classification is provided for representing Jets that are reconstructed in high-energy collisions, mainly in proton-proton collisions at well-defined beam energies. This section covers various datasets, preprocessing techniques, and feature extraction and selection methods. The presented techniques can be applied to future hadron−hadron colliders (HHC), such as the high-luminosity LHC (HL-LHC) and the future circular collider−hadron−hadron (FCC-hh). The authors then explore several AI techniques analyses designed specifically for both image and point-cloud (PC) data in HEP. Additionally, a closer look is taken at the classification associated with Jet tagging in hadron collisions. In this review, various state-of-the-art (SOTA) techniques in ML and DL are examined, with a focus on their implications for HEP demands. More precisely, this discussion addresses various applications in extensive detail, such as Jet tagging, Jet tracking, and particle classification. The review concludes with an analysis of the current state of HEP using DL methodologies. It highlights the challenges and potential areas for future research, which are illustrated for each application.

  • Space Computing Power Networks: Fundamentals and Techniques
    [Author(id=1198762787469136053, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762784612814883, orderNo=0, firstName=null, middleName=null, lastName=null, nameCn=null, orcid=null, stid=null, country=null, authorPic=null, dead=0, email=null, emailSecond=null, emailThird=null, correspondingAuthor=0, authorType=1, ext={EN=AuthorExt(id=1198762787787903167, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762784612814883, authorId=1198762787469136053, language=EN, stringName=Linling Kuang, firstName=Linling, middleName=null, lastName=Kuang, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, address=aBeijing National Research Center for Information Science and Technology, Tsinghua University, Beijing 100084, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1198762787955675335, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762784612814883, orderNo=1, firstName=null, middleName=null, lastName=null, nameCn=null, orcid=null, stid=null, country=null, authorPic=null, dead=0, email=shiym@shanghaitech.edu.cn, emailSecond=null, emailThird=null, correspondingAuthor=1, authorType=1, ext={EN=AuthorExt(id=1198762788387688660, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762784612814883, authorId=1198762787955675335, language=EN, stringName=Yuanming Shi, firstName=Yuanming, middleName=null, lastName=Shi, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=b, *, address=bSchool of Information Science and Technology, ShanghaiTech University, Shanghai 201210, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1198762788509323486, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762784612814883, orderNo=2, firstName=null, middleName=null, lastName=null, nameCn=null, orcid=null, stid=null, country=null, authorPic=null, dead=0, email=null, emailSecond=null, emailThird=null, correspondingAuthor=0, authorType=1, ext={EN=AuthorExt(id=1198762788681289959, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762784612814883, authorId=1198762788509323486, language=EN, stringName=Kai Liu, firstName=Kai, middleName=null, lastName=Liu, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, address=aBeijing National Research Center for Information Science and Technology, Tsinghua University, Beijing 100084, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1198762788953919727, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762784612814883, orderNo=3, firstName=null, middleName=null, lastName=null, nameCn=null, orcid=null, stid=null, country=null, authorPic=null, dead=0, email=null, emailSecond=null, emailThird=null, correspondingAuthor=0, authorType=1, ext={EN=AuthorExt(id=1198762789113303288, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762784612814883, authorId=1198762788953919727, language=EN, stringName=Chunxiao Jiang, firstName=Chunxiao, middleName=null, lastName=Jiang, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, address=aBeijing National Research Center for Information Science and Technology, Tsinghua University, Beijing 100084, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null)] Linling Kuang , Yuanming Shi , Kai Liu , Chunxiao Jiang

    Nowadays, there has been a growing trend in the field of high-energy physics (HEP), in both its experimental and phenomenological studies, to incorporate machine learning (ML) and its specialized branch, deep learning (DL). This review paper provides a thorough illustration of these applications using different ML and DL approaches. The first part of the paper examines the basics of various particle physics types and establishes guidelines for assessing particle physics alongside the available learning models. Next, a detailed classification is provided for representing Jets that are reconstructed in high-energy collisions, mainly in proton-proton collisions at well-defined beam energies. This section covers various datasets, preprocessing techniques, and feature extraction and selection methods. The presented techniques can be applied to future hadron−hadron colliders (HHC), such as the high-luminosity LHC (HL-LHC) and the future circular collider−hadron−hadron (FCC-hh). The authors then explore several AI techniques analyses designed specifically for both image and point-cloud (PC) data in HEP. Additionally, a closer look is taken at the classification associated with Jet tagging in hadron collisions. In this review, various state-of-the-art (SOTA) techniques in ML and DL are examined, with a focus on their implications for HEP demands. More precisely, this discussion addresses various applications in extensive detail, such as Jet tagging, Jet tracking, and particle classification. The review concludes with an analysis of the current state of HEP using DL methodologies. It highlights the challenges and potential areas for future research, which are illustrated for each application.

  • Evolution of Satellite Communication Systems Toward 5G/6G for 2030 and Beyond
    [Author(id=1198762783090283484, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762781974598595, orderNo=0, firstName=null, middleName=null, lastName=null, nameCn=null, orcid=null, stid=null, country=null, authorPic=null, dead=0, email=null, emailSecond=null, emailThird=null, correspondingAuthor=0, authorType=1, ext={EN=AuthorExt(id=1198762783161586657, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762781974598595, authorId=1198762783090283484, language=EN, stringName=Afang Yuan, firstName=Afang, middleName=null, lastName=Yuan, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, address=aCommunication Engineering Research Center, Harbin Institute of Technology, Shenzhen 518055, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1198762783224501223, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762781974598595, orderNo=1, firstName=null, middleName=null, lastName=null, nameCn=null, orcid=null, stid=null, country=null, authorPic=null, dead=0, email=null, emailSecond=null, emailThird=null, correspondingAuthor=0, authorType=1, ext={EN=AuthorExt(id=1198762783446799341, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762781974598595, authorId=1198762783224501223, language=EN, stringName=Zhihua Yang, firstName=Zhihua, middleName=null, lastName=Yang, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, b, address=aCommunication Engineering Research Center, Harbin Institute of Technology, Shenzhen 518055, China
    bPengcheng Laboratory, Shenzhen 518055, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1198762783509713904, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762781974598595, orderNo=2, firstName=null, middleName=null, lastName=null, nameCn=null, orcid=null, stid=null, country=null, authorPic=null, dead=0, email=z.sun@surrey.ac.uk, emailSecond=null, emailThird=null, correspondingAuthor=1, authorType=1, ext={EN=AuthorExt(id=1198762783622960118, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762781974598595, authorId=1198762783509713904, language=EN, stringName=Zhili Sun, firstName=Zhili, middleName=null, lastName=Sun, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=c, *, address=cInstitute for Communication Systems (ICS), University of Surrey, Guildford GU27XH, UK, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null)]
    Afang Yuan , Zhihua Yang , Zhili Sun

    Nowadays, there has been a growing trend in the field of high-energy physics (HEP), in both its experimental and phenomenological studies, to incorporate machine learning (ML) and its specialized branch, deep learning (DL). This review paper provides a thorough illustration of these applications using different ML and DL approaches. The first part of the paper examines the basics of various particle physics types and establishes guidelines for assessing particle physics alongside the available learning models. Next, a detailed classification is provided for representing Jets that are reconstructed in high-energy collisions, mainly in proton-proton collisions at well-defined beam energies. This section covers various datasets, preprocessing techniques, and feature extraction and selection methods. The presented techniques can be applied to future hadron−hadron colliders (HHC), such as the high-luminosity LHC (HL-LHC) and the future circular collider−hadron−hadron (FCC-hh). The authors then explore several AI techniques analyses designed specifically for both image and point-cloud (PC) data in HEP. Additionally, a closer look is taken at the classification associated with Jet tagging in hadron collisions. In this review, various state-of-the-art (SOTA) techniques in ML and DL are examined, with a focus on their implications for HEP demands. More precisely, this discussion addresses various applications in extensive detail, such as Jet tagging, Jet tracking, and particle classification. The review concludes with an analysis of the current state of HEP using DL methodologies. It highlights the challenges and potential areas for future research, which are illustrated for each application.

  • Toward Mobile Satellite Internet: The Fundamental Limitation of Wireless Transmission and Enabling Technologies
    [Author(id=1198762783987695872, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762782553243831, orderNo=0, firstName=null, middleName=null, lastName=null, nameCn=null, orcid=null, stid=null, country=null, authorPic=null, dead=0, email=wangwj@seu.edu.cn, emailSecond=null, emailThird=null, correspondingAuthor=1, authorType=1, ext={EN=AuthorExt(id=1198762784226771213, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762782553243831, authorId=1198762783987695872, language=EN, stringName=Wenjin Wang, firstName=Wenjin, middleName=null, lastName=Wang, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, b, *, address=aNational Mobile Communications Research Laboratory, Southeast University, Nanjing 210096, China
    bPurple Mountain Laboratories, Nanjing 211100, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1198762784373571860, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762782553243831, orderNo=1, firstName=null, middleName=null, lastName=null, nameCn=null, orcid=null, stid=null, country=null, authorPic=null, dead=0, email=null, emailSecond=null, emailThird=null, correspondingAuthor=0, authorType=1, ext={EN=AuthorExt(id=1198762784499400985, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762782553243831, authorId=1198762784373571860, language=EN, stringName=Yiming Zhu, firstName=Yiming, middleName=null, lastName=Zhu, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, b, address=aNational Mobile Communications Research Laboratory, Southeast University, Nanjing 210096, China
    bPurple Mountain Laboratories, Nanjing 211100, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1198762784730087713, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762782553243831, orderNo=2, firstName=null, middleName=null, lastName=null, nameCn=null, orcid=null, stid=null, country=null, authorPic=null, dead=0, email=null, emailSecond=null, emailThird=null, correspondingAuthor=0, authorType=1, ext={EN=AuthorExt(id=1198762785053049132, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762782553243831, authorId=1198762784730087713, language=EN, stringName=Yafei Wang, firstName=Yafei, middleName=null, lastName=Wang, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, b, address=aNational Mobile Communications Research Laboratory, Southeast University, Nanjing 210096, China
    bPurple Mountain Laboratories, Nanjing 211100, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1198762785480868153, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762782553243831, orderNo=3, firstName=null, middleName=null, lastName=null, nameCn=null, orcid=null, stid=null, country=null, authorPic=null, dead=0, email=null, emailSecond=null, emailThird=null, correspondingAuthor=0, authorType=1, ext={EN=AuthorExt(id=1198762785640251714, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762782553243831, authorId=1198762785480868153, language=EN, stringName=Rui Ding, firstName=Rui, middleName=null, lastName=Ding, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=c, address=cChina Satellite Network Group Co., Ltd., Beijing 100029, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1198762785753497926, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762782553243831, orderNo=4, firstName=null, middleName=null, lastName=null, nameCn=null, orcid=null, stid=null, country=null, authorPic=null, dead=0, email=symeon.chatzinotas@uni.lu, emailSecond=null, emailThird=null, correspondingAuthor=1, authorType=1, ext={EN=AuthorExt(id=1198762785996767568, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762782553243831, authorId=1198762785753497926, language=EN, stringName=Symeon Chatzinotas, firstName=Symeon, middleName=null, lastName=Chatzinotas, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=d, *, address=dInterdisciplinary Centre for Security, Reliability and Trust, University of Luxembourg, Luxembourg L-1855, Luxembourg, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null)]
    Wenjin Wang , Yiming Zhu , Yafei Wang , Rui Ding , Symeon Chatzinotas

    Nowadays, there has been a growing trend in the field of high-energy physics (HEP), in both its experimental and phenomenological studies, to incorporate machine learning (ML) and its specialized branch, deep learning (DL). This review paper provides a thorough illustration of these applications using different ML and DL approaches. The first part of the paper examines the basics of various particle physics types and establishes guidelines for assessing particle physics alongside the available learning models. Next, a detailed classification is provided for representing Jets that are reconstructed in high-energy collisions, mainly in proton-proton collisions at well-defined beam energies. This section covers various datasets, preprocessing techniques, and feature extraction and selection methods. The presented techniques can be applied to future hadron−hadron colliders (HHC), such as the high-luminosity LHC (HL-LHC) and the future circular collider−hadron−hadron (FCC-hh). The authors then explore several AI techniques analyses designed specifically for both image and point-cloud (PC) data in HEP. Additionally, a closer look is taken at the classification associated with Jet tagging in hadron collisions. In this review, various state-of-the-art (SOTA) techniques in ML and DL are examined, with a focus on their implications for HEP demands. More precisely, this discussion addresses various applications in extensive detail, such as Jet tagging, Jet tracking, and particle classification. The review concludes with an analysis of the current state of HEP using DL methodologies. It highlights the challenges and potential areas for future research, which are illustrated for each application.

  • Key Challenges and Research Directions for Space–Air–Ground Integrated Emergency Communication Networks
    [Author(id=1198762836647351085, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762831832289823, orderNo=0, firstName=null, middleName=null, lastName=null, nameCn=null, orcid=null, stid=null, country=null, authorPic=null, dead=0, email=null, emailSecond=null, emailThird=null, correspondingAuthor=0, authorType=1, ext={EN=AuthorExt(id=1198762836882232124, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762831832289823, authorId=1198762836647351085, language=EN, stringName=Bo Xu, firstName=Bo, middleName=null, lastName=Xu, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, address=aSchool of Communications and Information Engineering, Nanjing University of Posts and Telecommunications, Nanjing 210003, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1198762837200999244, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762831832289823, orderNo=1, firstName=null, middleName=null, lastName=null, nameCn=null, orcid=null, stid=null, country=null, authorPic=null, dead=0, email=null, emailSecond=null, emailThird=null, correspondingAuthor=0, authorType=1, ext={EN=AuthorExt(id=1198762837410714459, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762831832289823, authorId=1198762837200999244, language=EN, stringName=Haitao Zhao, firstName=Haitao, middleName=null, lastName=Zhao, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, address=aSchool of Communications and Information Engineering, Nanjing University of Posts and Telecommunications, Nanjing 210003, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1198762837729481577, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762831832289823, orderNo=2, firstName=null, middleName=null, lastName=null, nameCn=null, orcid=null, stid=null, country=null, authorPic=null, dead=0, email=null, emailSecond=null, emailThird=null, correspondingAuthor=0, authorType=1, ext={EN=AuthorExt(id=1198762838035665785, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762831832289823, authorId=1198762837729481577, language=EN, stringName=Jiawen Kang, firstName=Jiawen, middleName=null, lastName=Kang, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=b, address=bSchool of Automation, Guangdong University of Technology, Guangzhou 510006, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1198762838283129737, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762831832289823, orderNo=3, firstName=null, middleName=null, lastName=null, nameCn=null, orcid=null, stid=null, country=null, authorPic=null, dead=0, email=dniyato@ntu.edu.sg, emailSecond=null, emailThird=null, correspondingAuthor=1, authorType=1, ext={EN=AuthorExt(id=1198762838639645594, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762831832289823, authorId=1198762838283129737, language=EN, stringName=Dusit Niyato, firstName=Dusit, middleName=null, lastName=Niyato, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=c, *, address=cCollege of Computing and Data Science, Nanyang Technological University, Singapore 639798 Singapore, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null)] Bo Xu , Haitao Zhao , Jiawen Kang , Dusit Niyato

    Nowadays, there has been a growing trend in the field of high-energy physics (HEP), in both its experimental and phenomenological studies, to incorporate machine learning (ML) and its specialized branch, deep learning (DL). This review paper provides a thorough illustration of these applications using different ML and DL approaches. The first part of the paper examines the basics of various particle physics types and establishes guidelines for assessing particle physics alongside the available learning models. Next, a detailed classification is provided for representing Jets that are reconstructed in high-energy collisions, mainly in proton-proton collisions at well-defined beam energies. This section covers various datasets, preprocessing techniques, and feature extraction and selection methods. The presented techniques can be applied to future hadron−hadron colliders (HHC), such as the high-luminosity LHC (HL-LHC) and the future circular collider−hadron−hadron (FCC-hh). The authors then explore several AI techniques analyses designed specifically for both image and point-cloud (PC) data in HEP. Additionally, a closer look is taken at the classification associated with Jet tagging in hadron collisions. In this review, various state-of-the-art (SOTA) techniques in ML and DL are examined, with a focus on their implications for HEP demands. More precisely, this discussion addresses various applications in extensive detail, such as Jet tagging, Jet tracking, and particle classification. The review concludes with an analysis of the current state of HEP using DL methodologies. It highlights the challenges and potential areas for future research, which are illustrated for each application.

  • Research
  • Review
    Non-Terrestrial Networking for 6G: Evolution, Opportunities, and Future Directions
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    Nowadays, there has been a growing trend in the field of high-energy physics (HEP), in both its experimental and phenomenological studies, to incorporate machine learning (ML) and its specialized branch, deep learning (DL). This review paper provides a thorough illustration of these applications using different ML and DL approaches. The first part of the paper examines the basics of various particle physics types and establishes guidelines for assessing particle physics alongside the available learning models. Next, a detailed classification is provided for representing Jets that are reconstructed in high-energy collisions, mainly in proton-proton collisions at well-defined beam energies. This section covers various datasets, preprocessing techniques, and feature extraction and selection methods. The presented techniques can be applied to future hadron−hadron colliders (HHC), such as the high-luminosity LHC (HL-LHC) and the future circular collider−hadron−hadron (FCC-hh). The authors then explore several AI techniques analyses designed specifically for both image and point-cloud (PC) data in HEP. Additionally, a closer look is taken at the classification associated with Jet tagging in hadron collisions. In this review, various state-of-the-art (SOTA) techniques in ML and DL are examined, with a focus on their implications for HEP demands. More precisely, this discussion addresses various applications in extensive detail, such as Jet tagging, Jet tracking, and particle classification. The review concludes with an analysis of the current state of HEP using DL methodologies. It highlights the challenges and potential areas for future research, which are illustrated for each application.

  • Review
    Network-Layer Perspectives on Satellite–Terrestrial Integrated Networks in 6G: A Comprehensive Review
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orderNo=1, firstName=null, middleName=null, lastName=null, nameCn=null, orcid=null, stid=null, country=null, authorPic=null, dead=0, email=null, emailSecond=null, emailThird=null, correspondingAuthor=0, authorType=1, ext={EN=AuthorExt(id=1162124925890781531, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1160003914512785659, authorId=1162124925718815065, language=EN, stringName=Yujie Song, firstName=Yujie, middleName=null, lastName=Song, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, address=aSchool of Cyber Science and Engineering, Wuhan University, Wuhan 430000, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1162124926020804957, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1160003914512785659, orderNo=2, firstName=null, middleName=null, lastName=null, nameCn=null, orcid=null, stid=null, country=null, authorPic=null, dead=0, email=yue.cao@whu.edu.cn, emailSecond=null, emailThird=null, correspondingAuthor=1, authorType=1, ext={EN=AuthorExt(id=1162124926192771423, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1160003914512785659, authorId=1162124926020804957, language=EN, stringName=Yue Cao, firstName=Yue, middleName=null, lastName=Cao, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, *, address=aSchool of Cyber Science and Engineering, Wuhan University, Wuhan 430000, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1162124926322794849, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1160003914512785659, orderNo=3, firstName=null, middleName=null, lastName=null, nameCn=null, orcid=null, stid=null, country=null, authorPic=null, dead=0, email=z.sun@surrey.ac.uk, emailSecond=null, emailThird=null, correspondingAuthor=1, authorType=1, ext={EN=AuthorExt(id=1162124926490567011, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1160003914512785659, authorId=1162124926322794849, language=EN, stringName=Zhili Sun, firstName=Zhili, middleName=null, lastName=Sun, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=b, *, address=bInstitute for Communication Systems (ICS), School of Computer Science and Electronic Engineering & Faculty of Engineering and Physical Science, University of Surrey, Guildford GU2 7XH, UK, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1162124926620590437, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1160003914512785659, orderNo=4, firstName=null, middleName=null, lastName=null, nameCn=null, orcid=null, stid=null, country=null, authorPic=null, dead=0, email=null, emailSecond=null, emailThird=null, correspondingAuthor=0, authorType=1, 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authorId=1162124926918386026, language=EN, stringName=Mi Wang, firstName=Mi, middleName=null, lastName=Wang, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=c, address=cState Key Laboratory of Information Engineering in Surveying, Mapping, and Remote Sensing, Wuhan 430000, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1162124927220375922, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1160003914512785659, orderNo=6, firstName=null, middleName=null, lastName=null, nameCn=null, orcid=null, stid=null, country=null, authorPic=null, dead=0, email=null, emailSecond=null, emailThird=null, correspondingAuthor=0, authorType=1, ext={EN=AuthorExt(id=1162124927392342389, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1160003914512785659, authorId=1162124927220375922, language=EN, stringName=Debiao He, firstName=Debiao, middleName=null, lastName=He, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, address=aSchool of Cyber Science and Engineering, Wuhan University, Wuhan 430000, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1162124927518171511, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1160003914512785659, orderNo=7, firstName=null, middleName=null, lastName=null, nameCn=null, orcid=null, stid=null, country=null, authorPic=null, dead=0, email=null, emailSecond=null, emailThird=null, correspondingAuthor=0, authorType=1, ext={EN=AuthorExt(id=1162124927690137977, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1160003914512785659, authorId=1162124927518171511, language=EN, stringName=Guojun Peng, firstName=Guojun, middleName=null, lastName=Peng, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, address=aSchool of Cyber Science and Engineering, Wuhan University, Wuhan 430000, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null)] Nuo Chen , Yujie Song , Yue Cao , Zhili Sun , Bo Zhao , Mi Wang , Debiao He , Guojun Peng

    Nowadays, there has been a growing trend in the field of high-energy physics (HEP), in both its experimental and phenomenological studies, to incorporate machine learning (ML) and its specialized branch, deep learning (DL). This review paper provides a thorough illustration of these applications using different ML and DL approaches. The first part of the paper examines the basics of various particle physics types and establishes guidelines for assessing particle physics alongside the available learning models. Next, a detailed classification is provided for representing Jets that are reconstructed in high-energy collisions, mainly in proton-proton collisions at well-defined beam energies. This section covers various datasets, preprocessing techniques, and feature extraction and selection methods. The presented techniques can be applied to future hadron−hadron colliders (HHC), such as the high-luminosity LHC (HL-LHC) and the future circular collider−hadron−hadron (FCC-hh). The authors then explore several AI techniques analyses designed specifically for both image and point-cloud (PC) data in HEP. Additionally, a closer look is taken at the classification associated with Jet tagging in hadron collisions. In this review, various state-of-the-art (SOTA) techniques in ML and DL are examined, with a focus on their implications for HEP demands. More precisely, this discussion addresses various applications in extensive detail, such as Jet tagging, Jet tracking, and particle classification. The review concludes with an analysis of the current state of HEP using DL methodologies. It highlights the challenges and potential areas for future research, which are illustrated for each application.

  • Article
    Effects of Space Environment on Satellite Mega-Constellations: From Nodes and Links to Network Performance
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tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762804690948144, authorId=1198762809325654342, language=EN, stringName=Sijing Ji, firstName=Sijing, middleName=null, lastName=Ji, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=null, address=null, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1198762809682170198, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762804690948144, orderNo=3, firstName=null, middleName=null, lastName=null, nameCn=null, orcid=null, stid=null, country=null, authorPic=null, dead=0, email=null, emailSecond=null, emailThird=null, correspondingAuthor=0, authorType=1, ext={EN=AuthorExt(id=1198762809812193631, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762804690948144, authorId=1198762809682170198, language=EN, stringName=Weigang Bai, firstName=Weigang, middleName=null, 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nameCn=null, orcid=null, stid=null, country=null, authorPic=null, dead=0, email=null, emailSecond=null, emailThird=null, correspondingAuthor=0, authorType=1, ext={EN=AuthorExt(id=1198762810797855136, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762804690948144, authorId=1198762810575557012, language=EN, stringName=Jiandong Li, firstName=Jiandong, middleName=null, lastName=Li, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=null, address=null, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null)] Min Sheng , Di Zhou , Sijing Ji , Weigang Bai , Yan Zhu , Junyu Liu , Jiandong Li

    Nowadays, there has been a growing trend in the field of high-energy physics (HEP), in both its experimental and phenomenological studies, to incorporate machine learning (ML) and its specialized branch, deep learning (DL). This review paper provides a thorough illustration of these applications using different ML and DL approaches. The first part of the paper examines the basics of various particle physics types and establishes guidelines for assessing particle physics alongside the available learning models. Next, a detailed classification is provided for representing Jets that are reconstructed in high-energy collisions, mainly in proton-proton collisions at well-defined beam energies. This section covers various datasets, preprocessing techniques, and feature extraction and selection methods. The presented techniques can be applied to future hadron−hadron colliders (HHC), such as the high-luminosity LHC (HL-LHC) and the future circular collider−hadron−hadron (FCC-hh). The authors then explore several AI techniques analyses designed specifically for both image and point-cloud (PC) data in HEP. Additionally, a closer look is taken at the classification associated with Jet tagging in hadron collisions. In this review, various state-of-the-art (SOTA) techniques in ML and DL are examined, with a focus on their implications for HEP demands. More precisely, this discussion addresses various applications in extensive detail, such as Jet tagging, Jet tracking, and particle classification. The review concludes with an analysis of the current state of HEP using DL methodologies. It highlights the challenges and potential areas for future research, which are illustrated for each application.

  • Article
    On an Ultra-Dense LEO-Satellite-Based Computing Network Constellation Design
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    bSchool of Electronic and Computer Engineering, Peking University Shenzhen Graduate School, Shenzhen 518055, China
    cHunan Institute of Advanced Sensing and Information Technology, Xiangtan University, Xiangtan 411105, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null)]
    Yijing Sun , Boya Di , Ruoqi Deng , Lingyang Song

    Nowadays, there has been a growing trend in the field of high-energy physics (HEP), in both its experimental and phenomenological studies, to incorporate machine learning (ML) and its specialized branch, deep learning (DL). This review paper provides a thorough illustration of these applications using different ML and DL approaches. The first part of the paper examines the basics of various particle physics types and establishes guidelines for assessing particle physics alongside the available learning models. Next, a detailed classification is provided for representing Jets that are reconstructed in high-energy collisions, mainly in proton-proton collisions at well-defined beam energies. This section covers various datasets, preprocessing techniques, and feature extraction and selection methods. The presented techniques can be applied to future hadron−hadron colliders (HHC), such as the high-luminosity LHC (HL-LHC) and the future circular collider−hadron−hadron (FCC-hh). The authors then explore several AI techniques analyses designed specifically for both image and point-cloud (PC) data in HEP. Additionally, a closer look is taken at the classification associated with Jet tagging in hadron collisions. In this review, various state-of-the-art (SOTA) techniques in ML and DL are examined, with a focus on their implications for HEP demands. More precisely, this discussion addresses various applications in extensive detail, such as Jet tagging, Jet tracking, and particle classification. The review concludes with an analysis of the current state of HEP using DL methodologies. It highlights the challenges and potential areas for future research, which are illustrated for each application.

  • Article
    SatFed: A Resource-Efficient LEO-Satellite-Assisted Heterogeneous Federated Learning Framework
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    bCollege of Computer Science and Artificial Intelligence, Fudan University, Shanghai 200438, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1198762837494432627, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762835766379217, orderNo=1, firstName=null, middleName=null, lastName=null, nameCn=null, orcid=null, stid=null, country=null, authorPic=null, dead=0, email=null, emailSecond=null, emailThird=null, correspondingAuthor=0, authorType=1, ext={EN=AuthorExt(id=1198762837582513025, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762835766379217, authorId=1198762837494432627, language=EN, stringName=Zheng Lin, firstName=Zheng, middleName=null, lastName=Lin, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, c, address=aInstitute of Space Internet, Fudan University, Shanghai 200438, China
    cDepartment of Electrical and Electronic Engineering, University of Hong Kong, Hong Kong 999077, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1198762837746090890, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762835766379217, orderNo=2, firstName=null, middleName=null, lastName=null, nameCn=null, orcid=null, stid=null, country=null, authorPic=null, dead=0, email=null, emailSecond=null, emailThird=null, correspondingAuthor=0, authorType=1, ext={EN=AuthorExt(id=1198762837825782677, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762835766379217, authorId=1198762837746090890, language=EN, stringName=Zhe Chen, firstName=Zhe, middleName=null, lastName=Chen, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, address=aInstitute of Space Internet, Fudan University, Shanghai 200438, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1198762837901280159, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762835766379217, orderNo=3, firstName=null, middleName=null, lastName=null, nameCn=null, orcid=null, stid=null, country=null, authorPic=null, dead=0, email=null, emailSecond=null, emailThird=null, correspondingAuthor=0, authorType=1, ext={EN=AuthorExt(id=1198762838161327029, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762835766379217, authorId=1198762837901280159, language=EN, stringName=Zihan Fang, firstName=Zihan, middleName=null, lastName=Fang, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, d, address=aInstitute of Space Internet, Fudan University, Shanghai 200438, China
    dDepartment of Computer Science, City University of Hong Kong, Hong Kong 999077, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1198762838236824509, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762835766379217, orderNo=4, firstName=null, middleName=null, lastName=null, nameCn=null, orcid=null, stid=null, country=null, authorPic=null, dead=0, email=null, emailSecond=null, emailThird=null, correspondingAuthor=0, authorType=1, ext={EN=AuthorExt(id=1198762838438151112, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762835766379217, authorId=1198762838236824509, language=EN, stringName=Xianhao Chen, firstName=Xianhao, middleName=null, lastName=Chen, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=c, address=cDepartment of Electrical and Electronic Engineering, University of Hong Kong, Hong Kong 999077, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1198762838526231505, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762835766379217, orderNo=5, firstName=null, middleName=null, lastName=null, nameCn=null, orcid=null, stid=null, country=null, authorPic=null, dead=0, email=null, emailSecond=null, emailThird=null, correspondingAuthor=0, authorType=1, ext={EN=AuthorExt(id=1198762838635283424, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762835766379217, authorId=1198762838526231505, language=EN, stringName=Wenjun Zhu, firstName=Wenjun, middleName=null, lastName=Zhu, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, b, address=aInstitute of Space Internet, Fudan University, Shanghai 200438, China
    bCollege of Computer Science and Artificial Intelligence, Fudan University, Shanghai 200438, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1198762838828221423, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762835766379217, orderNo=6, firstName=null, middleName=null, lastName=null, nameCn=null, orcid=null, stid=null, country=null, authorPic=null, dead=0, email=null, emailSecond=null, emailThird=null, correspondingAuthor=0, authorType=1, ext={EN=AuthorExt(id=1198762838949856252, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762835766379217, authorId=1198762838828221423, language=EN, stringName=Jin Zhao, firstName=Jin, middleName=null, lastName=Zhao, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, b, address=aInstitute of Space Internet, Fudan University, Shanghai 200438, China
    bCollege of Computer Science and Artificial Intelligence, Fudan University, Shanghai 200438, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1198762839172153347, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762835766379217, orderNo=7, firstName=null, middleName=null, lastName=null, nameCn=null, orcid=null, stid=null, country=null, authorPic=null, dead=0, email=gao.yue@fudan.edu.cn, emailSecond=null, emailThird=null, correspondingAuthor=1, authorType=1, ext={EN=AuthorExt(id=1198762839285399568, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762835766379217, authorId=1198762839172153347, language=EN, stringName=Yue Gao, firstName=Yue, middleName=null, lastName=Gao, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, *, address=aInstitute of Space Internet, Fudan University, Shanghai 200438, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null)]
    Yuxin Zhang , Zheng Lin , Zhe Chen , Zihan Fang , Xianhao Chen , Wenjun Zhu , Jin Zhao , Yue Gao

    Nowadays, there has been a growing trend in the field of high-energy physics (HEP), in both its experimental and phenomenological studies, to incorporate machine learning (ML) and its specialized branch, deep learning (DL). This review paper provides a thorough illustration of these applications using different ML and DL approaches. The first part of the paper examines the basics of various particle physics types and establishes guidelines for assessing particle physics alongside the available learning models. Next, a detailed classification is provided for representing Jets that are reconstructed in high-energy collisions, mainly in proton-proton collisions at well-defined beam energies. This section covers various datasets, preprocessing techniques, and feature extraction and selection methods. The presented techniques can be applied to future hadron−hadron colliders (HHC), such as the high-luminosity LHC (HL-LHC) and the future circular collider−hadron−hadron (FCC-hh). The authors then explore several AI techniques analyses designed specifically for both image and point-cloud (PC) data in HEP. Additionally, a closer look is taken at the classification associated with Jet tagging in hadron collisions. In this review, various state-of-the-art (SOTA) techniques in ML and DL are examined, with a focus on their implications for HEP demands. More precisely, this discussion addresses various applications in extensive detail, such as Jet tagging, Jet tracking, and particle classification. The review concludes with an analysis of the current state of HEP using DL methodologies. It highlights the challenges and potential areas for future research, which are illustrated for each application.

  • Article
    Dynamic Time-Difference QoS Guarantee in Satellite–Terrestrial Integrated Networks: An Online Learning-Based Resource Scheduling Scheme
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articleId=1198762830922125796, orderNo=1, firstName=null, middleName=null, lastName=null, nameCn=null, orcid=null, stid=null, country=null, authorPic=null, dead=0, email=null, emailSecond=null, emailThird=null, correspondingAuthor=0, authorType=1, ext={EN=AuthorExt(id=1198762835955290897, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762830922125796, authorId=1198762835758158594, language=EN, stringName=Tianqi Zhang, firstName=Tianqi, middleName=null, lastName=Zhang, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, address=aSchool of Electronic Science and Engineering, Nanjing University, Nanjing 210023, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1198762836240503579, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762830922125796, orderNo=2, firstName=null, middleName=null, lastName=null, nameCn=null, orcid=null, stid=null, country=null, authorPic=null, dead=0, email=null, emailSecond=null, emailThird=null, correspondingAuthor=0, authorType=1, ext={EN=AuthorExt(id=1198762836794151738, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762830922125796, authorId=1198762836240503579, language=EN, stringName=Kai Yu, firstName=Kai, middleName=null, lastName=Yu, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, address=aSchool of Electronic Science and Engineering, Nanjing University, Nanjing 210023, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1198762837138084681, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762830922125796, orderNo=3, firstName=null, middleName=null, lastName=null, nameCn=null, orcid=null, stid=null, country=null, authorPic=null, dead=0, email=null, emailSecond=null, emailThird=null, correspondingAuthor=0, authorType=1, ext={EN=AuthorExt(id=1198762837368771418, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762830922125796, authorId=1198762837138084681, language=EN, stringName=Xin Zhang, firstName=Xin, middleName=null, lastName=Zhang, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, address=aSchool of Electronic Science and Engineering, Nanjing University, Nanjing 210023, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1198762838073414525, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762830922125796, orderNo=4, firstName=null, middleName=null, lastName=null, nameCn=null, orcid=null, stid=null, country=null, authorPic=null, dead=0, email=haibozhou@nju.edu.cn, emailSecond=null, emailThird=null, correspondingAuthor=1, authorType=1, ext={EN=AuthorExt(id=1198762838283129740, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762830922125796, authorId=1198762838073414525, language=EN, stringName=Haibo Zhou, firstName=Haibo, middleName=null, lastName=Zhou, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, *, address=aSchool of Electronic Science and Engineering, Nanjing University, Nanjing 210023, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1198762838689977248, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762830922125796, orderNo=5, firstName=null, middleName=null, lastName=null, nameCn=null, orcid=null, stid=null, country=null, authorPic=null, dead=0, email=null, emailSecond=null, emailThird=null, correspondingAuthor=0, authorType=1, ext={EN=AuthorExt(id=1198762839054881709, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762830922125796, authorId=1198762838689977248, language=EN, stringName=Weihua Zhuang, firstName=Weihua, middleName=null, lastName=Zhuang, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=b, address=bDepartment of Electrical and Computer Engineering, University of Waterloo, Waterloo, ON N2L 3G1, Canada, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1198762839541420998, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762830922125796, orderNo=6, firstName=null, middleName=null, lastName=null, nameCn=null, orcid=null, stid=null, country=null, authorPic=null, dead=0, email=sshen@uwaterloo.ca, emailSecond=null, emailThird=null, correspondingAuthor=1, authorType=1, ext={EN=AuthorExt(id=1198762840023765982, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762830922125796, authorId=1198762839541420998, language=EN, stringName=Xuemin Shen, firstName=Xuemin, middleName=null, lastName=Shen, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=b, *, address=bDepartment of Electrical and Computer Engineering, University of Waterloo, Waterloo, ON N2L 3G1, Canada, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null)] Xiaohan Qin , Tianqi Zhang , Kai Yu , Xin Zhang , Haibo Zhou , Weihua Zhuang , Xuemin Shen

    Nowadays, there has been a growing trend in the field of high-energy physics (HEP), in both its experimental and phenomenological studies, to incorporate machine learning (ML) and its specialized branch, deep learning (DL). This review paper provides a thorough illustration of these applications using different ML and DL approaches. The first part of the paper examines the basics of various particle physics types and establishes guidelines for assessing particle physics alongside the available learning models. Next, a detailed classification is provided for representing Jets that are reconstructed in high-energy collisions, mainly in proton-proton collisions at well-defined beam energies. This section covers various datasets, preprocessing techniques, and feature extraction and selection methods. The presented techniques can be applied to future hadron−hadron colliders (HHC), such as the high-luminosity LHC (HL-LHC) and the future circular collider−hadron−hadron (FCC-hh). The authors then explore several AI techniques analyses designed specifically for both image and point-cloud (PC) data in HEP. Additionally, a closer look is taken at the classification associated with Jet tagging in hadron collisions. In this review, various state-of-the-art (SOTA) techniques in ML and DL are examined, with a focus on their implications for HEP demands. More precisely, this discussion addresses various applications in extensive detail, such as Jet tagging, Jet tracking, and particle classification. The review concludes with an analysis of the current state of HEP using DL methodologies. It highlights the challenges and potential areas for future research, which are illustrated for each application.

  • Article
    Learning-Based Matching Game for Task Scheduling and Resource Collaboration in Intent-Driven Task-Oriented Networks
    [Author(id=1198762819047883191, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762816489357556, orderNo=0, firstName=null, middleName=null, lastName=null, nameCn=null, orcid=null, stid=null, country=null, authorPic=null, dead=0, email=null, emailSecond=null, emailThird=null, correspondingAuthor=0, authorType=1, ext={EN=AuthorExt(id=1198762819186295233, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762816489357556, authorId=1198762819047883191, language=EN, stringName=Jiaorui Huang, firstName=Jiaorui, middleName=null, lastName=Huang, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, address=aState Key Laboratory of Integrated Services Networks (ISN), Xidian University, Xi’an 710071, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1198762819299541452, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762816489357556, orderNo=1, firstName=null, middleName=null, lastName=null, nameCn=null, orcid=null, stid=null, country=null, authorPic=null, dead=0, email=null, emailSecond=null, emailThird=null, correspondingAuthor=0, authorType=1, ext={EN=AuthorExt(id=1198762819597337050, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762816489357556, authorId=1198762819299541452, language=EN, stringName=Min Cao, firstName=Min, middleName=null, lastName=Cao, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=b, address=bDepartment of Wireless Communication, The PLA Information Support Force Engineering University, Wuhan 430035, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1198762819739943398, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762816489357556, orderNo=2, firstName=null, middleName=null, lastName=null, nameCn=null, orcid=null, stid=null, country=null, authorPic=null, dead=0, email=guideyang2050@163.com, emailSecond=null, emailThird=null, correspondingAuthor=1, authorType=1, ext={EN=AuthorExt(id=1198762820071293427, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762816489357556, authorId=1198762819739943398, language=EN, stringName=Chungang Yang, firstName=Chungang, middleName=null, lastName=Yang, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, *, address=aState Key Laboratory of Integrated Services Networks (ISN), Xidian University, Xi’an 710071, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1198762820226482689, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762816489357556, orderNo=3, firstName=null, middleName=null, lastName=null, nameCn=null, orcid=null, stid=null, country=null, authorPic=null, dead=0, email=hanzhu22@gmail.com, emailSecond=null, emailThird=null, correspondingAuthor=1, authorType=1, ext={EN=AuthorExt(id=1198762820356506127, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762816489357556, authorId=1198762820226482689, language=EN, stringName=Zhu Han, firstName=Zhu, middleName=null, lastName=Han, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=c, *, address=cDepartment of Electrical and Computer Engineering, University of Houston, Houston, TX 77204, USA, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1198762820633330205, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762816489357556, orderNo=4, firstName=null, middleName=null, lastName=null, nameCn=null, orcid=null, stid=null, country=null, authorPic=null, dead=0, email=null, emailSecond=null, emailThird=null, correspondingAuthor=0, authorType=1, ext={EN=AuthorExt(id=1198762820780130860, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762816489357556, authorId=1198762820633330205, language=EN, stringName=Tong Li, firstName=Tong, middleName=null, lastName=Li, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, address=aState Key Laboratory of Integrated Services Networks (ISN), Xidian University, Xi’an 710071, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null)] Jiaorui Huang , Min Cao , Chungang Yang , Zhu Han , Tong Li

    Nowadays, there has been a growing trend in the field of high-energy physics (HEP), in both its experimental and phenomenological studies, to incorporate machine learning (ML) and its specialized branch, deep learning (DL). This review paper provides a thorough illustration of these applications using different ML and DL approaches. The first part of the paper examines the basics of various particle physics types and establishes guidelines for assessing particle physics alongside the available learning models. Next, a detailed classification is provided for representing Jets that are reconstructed in high-energy collisions, mainly in proton-proton collisions at well-defined beam energies. This section covers various datasets, preprocessing techniques, and feature extraction and selection methods. The presented techniques can be applied to future hadron−hadron colliders (HHC), such as the high-luminosity LHC (HL-LHC) and the future circular collider−hadron−hadron (FCC-hh). The authors then explore several AI techniques analyses designed specifically for both image and point-cloud (PC) data in HEP. Additionally, a closer look is taken at the classification associated with Jet tagging in hadron collisions. In this review, various state-of-the-art (SOTA) techniques in ML and DL are examined, with a focus on their implications for HEP demands. More precisely, this discussion addresses various applications in extensive detail, such as Jet tagging, Jet tracking, and particle classification. The review concludes with an analysis of the current state of HEP using DL methodologies. It highlights the challenges and potential areas for future research, which are illustrated for each application.

  • Article
    Internet of Satellites (IoS) for Intelligent Satellite Cluster: Applications, Methods, and Challenges
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authorId=1198762801113207601, language=EN, stringName=Yimeng Zhang, firstName=Yimeng, middleName=null, lastName=Zhang, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=d, address=dThe State Key Laboratory of Networking and Switching Technology, Beijing University of Posts and Telecommunications, Beijing 100876, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1198762801431974723, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762791432753475, orderNo=7, firstName=null, middleName=null, lastName=null, nameCn=null, orcid=null, stid=null, country=null, authorPic=null, dead=0, email=caolu_space@163.com, emailSecond=null, emailThird=null, correspondingAuthor=1, authorType=1, ext={EN=AuthorExt(id=1198762801658467149, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762791432753475, authorId=1198762801431974723, language=EN, stringName=Lu Cao, firstName=Lu, middleName=null, lastName=Cao, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, *, address=aNational Innovation Institute of Defense Technology, Academy of Military Science, Beijing 100071, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1198762801796879195, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762791432753475, orderNo=8, firstName=null, middleName=null, lastName=null, nameCn=null, orcid=null, stid=null, country=null, authorPic=null, dead=0, email=wjxu@bupt.edu.cn, emailSecond=null, emailThird=null, correspondingAuthor=1, authorType=1, ext={EN=AuthorExt(id=1198762801901736809, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762791432753475, authorId=1198762801796879195, language=EN, stringName=Wenjun Xu, firstName=Wenjun, middleName=null, lastName=Xu, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=d, *, address=dThe State Key Laboratory of Networking and Switching Technology, Beijing University of Posts and Telecommunications, Beijing 100876, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1198762802094674805, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762791432753475, orderNo=9, firstName=null, middleName=null, lastName=null, nameCn=null, orcid=null, stid=null, country=null, authorPic=null, dead=0, email=pzhang@bupt.edu.cn, emailSecond=null, emailThird=null, correspondingAuthor=1, authorType=1, ext={EN=AuthorExt(id=1198762802216309633, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762791432753475, authorId=1198762802094674805, language=EN, stringName=Ping Zhang, firstName=Ping, middleName=null, lastName=Zhang, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=d, *, address=dThe State Key Laboratory of Networking and Switching Technology, Beijing University of Posts and Telecommunications, Beijing 100876, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null)] Guangteng Fan , Peng Wu , Mengqi Yang , Jian Wang , Dechao Ran , Jincheng Dai , Yimeng Zhang , Lu Cao , Wenjun Xu , Ping Zhang

    Nowadays, there has been a growing trend in the field of high-energy physics (HEP), in both its experimental and phenomenological studies, to incorporate machine learning (ML) and its specialized branch, deep learning (DL). This review paper provides a thorough illustration of these applications using different ML and DL approaches. The first part of the paper examines the basics of various particle physics types and establishes guidelines for assessing particle physics alongside the available learning models. Next, a detailed classification is provided for representing Jets that are reconstructed in high-energy collisions, mainly in proton-proton collisions at well-defined beam energies. This section covers various datasets, preprocessing techniques, and feature extraction and selection methods. The presented techniques can be applied to future hadron−hadron colliders (HHC), such as the high-luminosity LHC (HL-LHC) and the future circular collider−hadron−hadron (FCC-hh). The authors then explore several AI techniques analyses designed specifically for both image and point-cloud (PC) data in HEP. Additionally, a closer look is taken at the classification associated with Jet tagging in hadron collisions. In this review, various state-of-the-art (SOTA) techniques in ML and DL are examined, with a focus on their implications for HEP demands. More precisely, this discussion addresses various applications in extensive detail, such as Jet tagging, Jet tracking, and particle classification. The review concludes with an analysis of the current state of HEP using DL methodologies. It highlights the challenges and potential areas for future research, which are illustrated for each application.

  • Review
    Organoids and Organ-On-Chip Models for COVID-19 Research and Its Application in Modernization of Traditional Chinese Medicine: Opportunities and Challenges
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    bDepartment of Physiology and Pharmacology and Center for Molecular Medicine, Karolinska Institutet and University Hospital, Stockholm 17177, Sweden, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1162124327346823747, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159995612798182011, orderNo=1, firstName=null, middleName=null, lastName=null, nameCn=null, orcid=null, stid=null, country=null, authorPic=null, dead=0, email=null, emailSecond=null, emailThird=null, correspondingAuthor=0, authorType=1, ext={EN=AuthorExt(id=1162124327510401608, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159995612798182011, authorId=1162124327346823747, language=EN, stringName=Yingxin Liang, firstName=Yingxin, middleName=null, lastName=Liang, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, address=aCollege of Pharmaceutical Sciences, Zhejiang University, Hangzhou 310058, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1162124327636230731, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159995612798182011, orderNo=2, firstName=null, middleName=null, lastName=null, nameCn=null, orcid=null, stid=null, country=null, authorPic=null, dead=0, email=null, emailSecond=null, emailThird=null, correspondingAuthor=0, authorType=1, ext={EN=AuthorExt(id=1162124327900471892, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159995612798182011, authorId=1162124327636230731, language=EN, stringName=Volker M. Lauschke, firstName=Volker M., middleName=null, lastName=Lauschke, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=b, c, d, e, address=bDepartment of Physiology and Pharmacology and Center for Molecular Medicine, Karolinska Institutet and University Hospital, Stockholm 17177, Sweden
    cDr. Margarete Fischer-Bosch Institute of Clinical Pharmacology, Stuttgart 70376, Germany
    dUniversity of Tuebingen, Tuebingen 72074, Germany
    eDepartment of Pharmacy, the Second Xiangya Hospital, Central South University, Changsha 410011 China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1162124328043078231, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159995612798182011, orderNo=3, firstName=null, middleName=null, lastName=null, nameCn=null, orcid=null, stid=null, country=null, authorPic=null, dead=0, email=zjuwangyi@zju.edu.cn, emailSecond=null, emailThird=null, correspondingAuthor=1, authorType=1, ext={EN=AuthorExt(id=1162124328248599132, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159995612798182011, authorId=1162124328043078231, language=EN, stringName=Yi Wang, firstName=Yi, middleName=null, lastName=Wang, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, f, *, address=aCollege of Pharmaceutical Sciences, Zhejiang University, Hangzhou 310058, China
    fNational Key Laboratory of Chinese Medicine Modernization, Innovation Center of Yangtze River Delta, Zhejiang University, Jiaxing 314100, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null)]
    Hongda Sheng , Yingxin Liang , Volker M. Lauschke , Yi Wang

    Nowadays, there has been a growing trend in the field of high-energy physics (HEP), in both its experimental and phenomenological studies, to incorporate machine learning (ML) and its specialized branch, deep learning (DL). This review paper provides a thorough illustration of these applications using different ML and DL approaches. The first part of the paper examines the basics of various particle physics types and establishes guidelines for assessing particle physics alongside the available learning models. Next, a detailed classification is provided for representing Jets that are reconstructed in high-energy collisions, mainly in proton-proton collisions at well-defined beam energies. This section covers various datasets, preprocessing techniques, and feature extraction and selection methods. The presented techniques can be applied to future hadron−hadron colliders (HHC), such as the high-luminosity LHC (HL-LHC) and the future circular collider−hadron−hadron (FCC-hh). The authors then explore several AI techniques analyses designed specifically for both image and point-cloud (PC) data in HEP. Additionally, a closer look is taken at the classification associated with Jet tagging in hadron collisions. In this review, various state-of-the-art (SOTA) techniques in ML and DL are examined, with a focus on their implications for HEP demands. More precisely, this discussion addresses various applications in extensive detail, such as Jet tagging, Jet tracking, and particle classification. The review concludes with an analysis of the current state of HEP using DL methodologies. It highlights the challenges and potential areas for future research, which are illustrated for each application.

  • Article
    Elucidating Forsythin’s Anti-Inflammatory Action Through Modulation of the P38 MAPK Pathway in SARS-CoV-2 Infection
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department=null, xref=e, address=eThe Eighth School of Clinical Medicine, Guangzhou University of Chinese Medicine, Foshan 528000, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1162124325518107149, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159995612554912378, orderNo=9, firstName=null, middleName=null, lastName=null, nameCn=null, orcid=null, stid=null, country=null, authorPic=null, dead=0, email=nanshan@vip.163.com, emailSecond=null, emailThird=null, correspondingAuthor=1, authorType=1, ext={EN=AuthorExt(id=1162124325757182483, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159995612554912378, authorId=1162124325518107149, language=EN, stringName=Nanshan Zhong, firstName=Nanshan, middleName=null, lastName=Zhong, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, b, c, *, address=aState Key Laboratory of Respiratory Disease, National Clinical Research Center for Respiratory Disease, Guangzhou Institute of Respiratory Health, the First Affiliated Hospital of Guangzhou Medical University, Guangzhou 510230, China
    bGuangzhou Laboratory, Guangzhou 510000, China
    cState Key Laboratory of Quality Research in Chinese Medicine, Macau University of Science and Technology, Macao 999078, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1162124325878817303, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159995612554912378, orderNo=10, firstName=null, middleName=null, lastName=null, nameCn=null, orcid=null, stid=null, country=null, authorPic=null, dead=0, email=Jeffyah@163.com, emailSecond=null, emailThird=null, correspondingAuthor=1, authorType=1, ext={EN=AuthorExt(id=1162124326126281247, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159995612554912378, authorId=1162124325878817303, language=EN, stringName=Zifeng Yang, firstName=Zifeng, middleName=null, lastName=Yang, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, b, c, *, address=aState Key Laboratory of Respiratory Disease, National Clinical Research Center for Respiratory Disease, Guangzhou Institute of Respiratory Health, the First Affiliated Hospital of Guangzhou Medical University, Guangzhou 510230, China
    bGuangzhou Laboratory, Guangzhou 510000, China
    cState Key Laboratory of Quality Research in Chinese Medicine, Macau University of Science and Technology, Macao 999078, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null)]
    Qinhai Ma , Peifang Xie , Yangqing Zhan , Ruihan Chen , Bin Liu , Yongjie Su , Wanli Qiu , Xuanxuan Li , Tingting Zhao , Nanshan Zhong , Zifeng Yang

    Nowadays, there has been a growing trend in the field of high-energy physics (HEP), in both its experimental and phenomenological studies, to incorporate machine learning (ML) and its specialized branch, deep learning (DL). This review paper provides a thorough illustration of these applications using different ML and DL approaches. The first part of the paper examines the basics of various particle physics types and establishes guidelines for assessing particle physics alongside the available learning models. Next, a detailed classification is provided for representing Jets that are reconstructed in high-energy collisions, mainly in proton-proton collisions at well-defined beam energies. This section covers various datasets, preprocessing techniques, and feature extraction and selection methods. The presented techniques can be applied to future hadron−hadron colliders (HHC), such as the high-luminosity LHC (HL-LHC) and the future circular collider−hadron−hadron (FCC-hh). The authors then explore several AI techniques analyses designed specifically for both image and point-cloud (PC) data in HEP. Additionally, a closer look is taken at the classification associated with Jet tagging in hadron collisions. In this review, various state-of-the-art (SOTA) techniques in ML and DL are examined, with a focus on their implications for HEP demands. More precisely, this discussion addresses various applications in extensive detail, such as Jet tagging, Jet tracking, and particle classification. The review concludes with an analysis of the current state of HEP using DL methodologies. It highlights the challenges and potential areas for future research, which are illustrated for each application.

  • Article
    Rapid In-Vitro Inactivation of Various SARS-CoV-2 Strains Using Ionizing Radiation: New Inactivation Patterns and Mechanistic Insights
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Zhejiang University School of Medicine, Hangzhou 310009, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1198762823959580841, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198680676971864696, orderNo=9, firstName=null, middleName=null, lastName=null, nameCn=null, orcid=null, stid=null, country=null, authorPic=null, dead=0, email=null, emailSecond=null, emailThird=null, correspondingAuthor=0, authorType=1, ext={EN=AuthorExt(id=1198762824160907446, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198680676971864696, authorId=1198762823959580841, language=EN, stringName=Osama Alam, firstName=Osama, middleName=null, lastName=Alam, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, address=aInstitute of Nuclear Agricultural Sciences, Key Laboratory of Nuclear Agricultural Sciences of Ministry of Agriculture of the People's Republic of China, Zhejiang University, Hangzhou 310058, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1198762824462897346, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198680676971864696, orderNo=10, firstName=null, middleName=null, lastName=null, nameCn=null, orcid=null, stid=null, country=null, authorPic=null, dead=0, email=null, emailSecond=null, emailThird=null, correspondingAuthor=0, authorType=1, ext={EN=AuthorExt(id=1198762824785858764, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198680676971864696, authorId=1198762824462897346, language=EN, stringName=Dahang Shen, firstName=Dahang, middleName=null, lastName=Shen, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, address=aInstitute of Nuclear Agricultural Sciences, Key Laboratory of Nuclear Agricultural Sciences of Ministry of Agriculture of the People's Republic of China, Zhejiang University, Hangzhou 310058, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1198762824957825237, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198680676971864696, orderNo=11, firstName=null, middleName=null, lastName=null, nameCn=null, orcid=null, stid=null, country=null, authorPic=null, dead=0, email=null, emailSecond=null, emailThird=null, correspondingAuthor=0, authorType=1, ext={EN=AuthorExt(id=1198762825272398047, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198680676971864696, authorId=1198762824957825237, language=EN, stringName=Qian Bao, firstName=Qian, middleName=null, lastName=Bao, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, address=aInstitute of Nuclear Agricultural Sciences, Key Laboratory of Nuclear Agricultural Sciences of Ministry of Agriculture of the People's Republic of China, Zhejiang University, Hangzhou 310058, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1198762825574387946, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198680676971864696, orderNo=12, firstName=null, middleName=null, lastName=null, nameCn=null, orcid=null, stid=null, country=null, authorPic=null, dead=0, email=qfye@zju.edu.cn, emailSecond=null, emailThird=null, correspondingAuthor=1, authorType=1, ext={EN=AuthorExt(id=1198762825826046201, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198680676971864696, authorId=1198762825574387946, language=EN, stringName=Qingfu Ye, firstName=Qingfu, middleName=null, lastName=Ye, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, *, address=aInstitute of Nuclear Agricultural Sciences, Key Laboratory of Nuclear Agricultural Sciences of Ministry of Agriculture of the People's Republic of China, Zhejiang University, Hangzhou 310058, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1198762826157396230, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198680676971864696, orderNo=13, firstName=null, middleName=null, lastName=null, nameCn=null, orcid=null, stid=null, country=null, authorPic=null, dead=0, email=ljli@zju.edu.cn, emailSecond=null, emailThird=null, correspondingAuthor=1, authorType=1, ext={EN=AuthorExt(id=1198762826501329175, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198680676971864696, authorId=1198762826157396230, language=EN, stringName=Lanjuan Li, firstName=Lanjuan, middleName=null, lastName=Li, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=b, *, address=bState Key Laboratory for Diagnosis and Treatment of Infectious Diseases, National Clinical Research Center for Infectious Diseases, The First Affiliated Hospital, Zhejiang University School of Medicine, Hangzhou 310009, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1198762826635546914, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198680676971864696, orderNo=14, firstName=null, middleName=null, lastName=null, nameCn=null, orcid=null, stid=null, country=null, authorPic=null, dead=0, email=yaohangping@zju.edu.cn, emailSecond=null, emailThird=null, correspondingAuthor=1, authorType=1, ext={EN=AuthorExt(id=1198762826937536811, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198680676971864696, authorId=1198762826635546914, language=EN, stringName=Hangping Yao, firstName=Hangping, middleName=null, lastName=Yao, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=b, *, address=bState Key Laboratory for Diagnosis and Treatment of Infectious Diseases, National Clinical Research Center for Infectious Diseases, The First Affiliated Hospital, Zhejiang University School of Medicine, Hangzhou 310009, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null)] Wei Wang , Xiaodi Zhang , Jiageng Yu , Tianhao Weng , Zhiyang Yu , Zhigang Wu , Danrong Shi , Sufen Zhang , Xiangyun Lu , Osama Alam , Dahang Shen , Qian Bao , Qingfu Ye , Lanjuan Li , Hangping Yao

    Nowadays, there has been a growing trend in the field of high-energy physics (HEP), in both its experimental and phenomenological studies, to incorporate machine learning (ML) and its specialized branch, deep learning (DL). This review paper provides a thorough illustration of these applications using different ML and DL approaches. The first part of the paper examines the basics of various particle physics types and establishes guidelines for assessing particle physics alongside the available learning models. Next, a detailed classification is provided for representing Jets that are reconstructed in high-energy collisions, mainly in proton-proton collisions at well-defined beam energies. This section covers various datasets, preprocessing techniques, and feature extraction and selection methods. The presented techniques can be applied to future hadron−hadron colliders (HHC), such as the high-luminosity LHC (HL-LHC) and the future circular collider−hadron−hadron (FCC-hh). The authors then explore several AI techniques analyses designed specifically for both image and point-cloud (PC) data in HEP. Additionally, a closer look is taken at the classification associated with Jet tagging in hadron collisions. In this review, various state-of-the-art (SOTA) techniques in ML and DL are examined, with a focus on their implications for HEP demands. More precisely, this discussion addresses various applications in extensive detail, such as Jet tagging, Jet tracking, and particle classification. The review concludes with an analysis of the current state of HEP using DL methodologies. It highlights the challenges and potential areas for future research, which are illustrated for each application.

  • Article
    Xuanfei Baidu Formula Ameliorates Influenza A Virus-Induced Lung Inflammation by Repressing the NLRP3 Inflammasome in Macrophages
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    dState Key Laboratory of Component-Based Chinese Medicine, Tianjin University of Traditional Chinese Medicine, Tianjin 301617, China
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    Tao Liu , Yueyuan Xu , Ziwei Yan , Lin Ma , Hongda Sheng , Mingyu Ding , Jiabao Wang , Qingdi Fang , Qianru Zhao , Yu Tang , Tianyuan Zhang , Lu Chen , Rui Shao , Bin Qu , Jing Qian , Yi Wang , Junhua Zhang , Xiaohuan Guo , Yu Wang , Han Zhang

    Nowadays, there has been a growing trend in the field of high-energy physics (HEP), in both its experimental and phenomenological studies, to incorporate machine learning (ML) and its specialized branch, deep learning (DL). This review paper provides a thorough illustration of these applications using different ML and DL approaches. The first part of the paper examines the basics of various particle physics types and establishes guidelines for assessing particle physics alongside the available learning models. Next, a detailed classification is provided for representing Jets that are reconstructed in high-energy collisions, mainly in proton-proton collisions at well-defined beam energies. This section covers various datasets, preprocessing techniques, and feature extraction and selection methods. The presented techniques can be applied to future hadron−hadron colliders (HHC), such as the high-luminosity LHC (HL-LHC) and the future circular collider−hadron−hadron (FCC-hh). The authors then explore several AI techniques analyses designed specifically for both image and point-cloud (PC) data in HEP. Additionally, a closer look is taken at the classification associated with Jet tagging in hadron collisions. In this review, various state-of-the-art (SOTA) techniques in ML and DL are examined, with a focus on their implications for HEP demands. More precisely, this discussion addresses various applications in extensive detail, such as Jet tagging, Jet tracking, and particle classification. The review concludes with an analysis of the current state of HEP using DL methodologies. It highlights the challenges and potential areas for future research, which are illustrated for each application.

  • Review
    Elucidating the Substrate Specificity of Cytochrome P450 Enzymes: Insights into N- And S-Containing Small-Molecule Metabolism
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    Chaohua Yan , Guilin Wei , Zhuoan Jin , Xiaodong Li , Liuyi Yang , Liwei Zou , Ling Yang

    Nowadays, there has been a growing trend in the field of high-energy physics (HEP), in both its experimental and phenomenological studies, to incorporate machine learning (ML) and its specialized branch, deep learning (DL). This review paper provides a thorough illustration of these applications using different ML and DL approaches. The first part of the paper examines the basics of various particle physics types and establishes guidelines for assessing particle physics alongside the available learning models. Next, a detailed classification is provided for representing Jets that are reconstructed in high-energy collisions, mainly in proton-proton collisions at well-defined beam energies. This section covers various datasets, preprocessing techniques, and feature extraction and selection methods. The presented techniques can be applied to future hadron−hadron colliders (HHC), such as the high-luminosity LHC (HL-LHC) and the future circular collider−hadron−hadron (FCC-hh). The authors then explore several AI techniques analyses designed specifically for both image and point-cloud (PC) data in HEP. Additionally, a closer look is taken at the classification associated with Jet tagging in hadron collisions. In this review, various state-of-the-art (SOTA) techniques in ML and DL are examined, with a focus on their implications for HEP demands. More precisely, this discussion addresses various applications in extensive detail, such as Jet tagging, Jet tracking, and particle classification. The review concludes with an analysis of the current state of HEP using DL methodologies. It highlights the challenges and potential areas for future research, which are illustrated for each application.

  • Article
    Low and Decreasing Cholesterol Levels and Risk of All-Cause and Cause-Specific Mortality: A Prospective and Longitudinal Cohort Study
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Environmental Health, Key Laboratory of Environment and Health, Ministry of Education & State Key Laboratory of Environmental Health (Incubating), School of Public Health, Tongji Medical College, Huazhong University of Science and Technology, Wuhan 430030, China
    dSchool of Public Health, Guangzhou Medical University, Guangzhou 511495, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1198762823485457121, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762817017839903, orderNo=6, firstName=null, middleName=null, lastName=null, nameCn=null, orcid=null, stid=null, country=null, authorPic=null, dead=0, email=null, emailSecond=null, emailThird=null, correspondingAuthor=0, authorType=1, ext={EN=AuthorExt(id=1198762823653229295, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762817017839903, authorId=1198762823485457121, language=EN, stringName=Shihe Liu, firstName=Shihe, middleName=null, lastName=Liu, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=e, address=eGraduate School, North China University of Science and Technology, Tangshan 063210, China, bio=null, bioImg=null, 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of Science and Technology, Wuhan 430022, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1198762827201610720, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762817017839903, orderNo=16, firstName=null, middleName=null, lastName=null, nameCn=null, orcid=null, stid=null, country=null, authorPic=null, dead=0, email=null, emailSecond=null, emailThird=null, correspondingAuthor=0, authorType=1, ext={EN=AuthorExt(id=1198762827449074668, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762817017839903, authorId=1198762827201610720, language=EN, stringName=Xiang Cheng, firstName=Xiang, middleName=null, lastName=Cheng, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=i, address=iDepartment of Cardiology, Union Hospital, Tongji Medical College, Huazhong University of Science and Technology, Wuhan 430022, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1198762827591681013, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762817017839903, orderNo=17, firstName=null, middleName=null, lastName=null, nameCn=null, orcid=null, stid=null, country=null, authorPic=null, dead=0, email=null, emailSecond=null, emailThird=null, correspondingAuthor=0, authorType=1, ext={EN=AuthorExt(id=1198762827818172417, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762817017839903, authorId=1198762827591681013, language=EN, stringName=An Pan, firstName=An, middleName=null, lastName=Pan, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=c, address=cDepartment of Epidemiology and Biostatistics, Key Laboratory of Environment and Health, Ministry of Education, School of Public Health, Tongji Medical College, Huazhong University of Science and Technology, Wuhan 430030, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1198762827931418634, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762817017839903, orderNo=18, firstName=null, middleName=null, lastName=null, nameCn=null, orcid=null, stid=null, country=null, authorPic=null, dead=0, email=drwusl@163.com, emailSecond=null, emailThird=null, correspondingAuthor=1, authorType=1, ext={EN=AuthorExt(id=1198762828170493969, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762817017839903, authorId=1198762827931418634, language=EN, stringName=Shouling Wu, firstName=Shouling, middleName=null, lastName=Wu, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=j, *, address=jDepartment of Cardiology, Kailuan General Hospital, Tangshan 063001, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1198762828283740189, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762817017839903, orderNo=19, firstName=null, middleName=null, lastName=null, nameCn=null, orcid=null, stid=null, country=null, authorPic=null, dead=0, email=chaolong@hust.edu.cn, emailSecond=null, emailThird=null, correspondingAuthor=1, authorType=1, ext={EN=AuthorExt(id=1198762828552175656, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762817017839903, authorId=1198762828283740189, language=EN, stringName=Chaolong Wang, firstName=Chaolong, middleName=null, lastName=Wang, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=c, *, address=cDepartment of Epidemiology and Biostatistics, Key Laboratory of Environment and Health, Ministry of Education, School of Public Health, Tongji Medical College, Huazhong University of Science and Technology, Wuhan 430030, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1202990535498580882, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762817017839903, orderNo=20, firstName=null, middleName=null, lastName=null, nameCn=null, orcid=null, stid=null, country=null, authorPic=null, dead=0, email=wut@mails.tjmu.edu.cn, emailSecond=null, emailThird=null, correspondingAuthor=1, authorType=1, ext={EN=AuthorExt(id=1202990535666353044, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762817017839903, authorId=1202990535498580882, language=EN, stringName=Tangchun Wu, firstName=Tangchun, middleName=null, lastName=Wu, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, *, address=, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null), CN=AuthorExt(id=1202990535645381523, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762817017839903, authorId=1202990535498580882, language=CN, stringName=Tangchun Wu, firstName=null, middleName=null, lastName=null, prefix=, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=null, address=null, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null), CHT=AuthorExt(id=1202990535678935957, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762817017839903, authorId=1202990535498580882, language=CHT, stringName=null, firstName=null, middleName=null, lastName=null, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=null, address=null, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null)]
    Qin Jiang , Jiachen Wu , Yu Yuan , Xingjie Hao , Pinpin Long , Kang Liu , Shihe Liu , Rong Peng , Kuai Yu , Rui Zeng , Shuohua Chen , Handong Yang , Xiulou Li , Xiaomin Zhang , Meian He , Lin Wang , Xiang Cheng , An Pan , Shouling Wu , Chaolong Wang , Tangchun Wu

    Nowadays, there has been a growing trend in the field of high-energy physics (HEP), in both its experimental and phenomenological studies, to incorporate machine learning (ML) and its specialized branch, deep learning (DL). This review paper provides a thorough illustration of these applications using different ML and DL approaches. The first part of the paper examines the basics of various particle physics types and establishes guidelines for assessing particle physics alongside the available learning models. Next, a detailed classification is provided for representing Jets that are reconstructed in high-energy collisions, mainly in proton-proton collisions at well-defined beam energies. This section covers various datasets, preprocessing techniques, and feature extraction and selection methods. The presented techniques can be applied to future hadron−hadron colliders (HHC), such as the high-luminosity LHC (HL-LHC) and the future circular collider−hadron−hadron (FCC-hh). The authors then explore several AI techniques analyses designed specifically for both image and point-cloud (PC) data in HEP. Additionally, a closer look is taken at the classification associated with Jet tagging in hadron collisions. In this review, various state-of-the-art (SOTA) techniques in ML and DL are examined, with a focus on their implications for HEP demands. More precisely, this discussion addresses various applications in extensive detail, such as Jet tagging, Jet tracking, and particle classification. The review concludes with an analysis of the current state of HEP using DL methodologies. It highlights the challenges and potential areas for future research, which are illustrated for each application.

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journalId=1155139928190095384, articleId=1198762814450925642, authorId=1198762823896498937, language=EN, stringName=Feng Liu, firstName=Feng, middleName=null, lastName=Liu, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=d, e, i, *, address=dState Key Laboratory of Organ Regeneration and Reconstruction, Beijing Institute for Stem Cell and Regenerative Medicine, Institute of Zoology, Chinese Academy of Sciences, Beijing 100101, China
    eUniversity of Chinese Academy of Sciences, Beijing 100049, China
    iSchool of Life Sciences, Shandong University, Qingdao 266237, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1198762824332706585, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762814450925642, orderNo=18, firstName=null, middleName=null, lastName=null, nameCn=null, orcid=null, stid=null, country=null, authorPic=null, dead=0, email=liush@shutcm.edu.cn, emailSecond=null, emailThird=null, correspondingAuthor=1, authorType=1, ext={EN=AuthorExt(id=1198762824487895846, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762814450925642, authorId=1198762824332706585, language=EN, stringName=Sanhong Liu, firstName=Sanhong, middleName=null, lastName=Liu, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, *, address=aState Key Laboratory of Discovery and Utilization of Functional Components in Traditional Chinese Medicine & Shanghai Frontiers Science Center of TCM Chemical Biology, Institute of Interdisciplinary Integrative Medicine Research, Shanghai University of Traditional Chinese Medicine, Shanghai 201203, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1198762824735359796, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762814450925642, orderNo=19, firstName=null, middleName=null, lastName=null, nameCn=null, orcid=null, stid=null, country=null, authorPic=null, dead=0, email=wdzhangy@smmu.edu.cn, emailSecond=null, emailThird=null, correspondingAuthor=1, authorType=1, ext={EN=AuthorExt(id=1198762824886354754, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762814450925642, authorId=1198762824735359796, language=EN, stringName=Weidong Zhang, firstName=Weidong, middleName=null, lastName=Zhang, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=b, j, *, address=bDepartment of Phytochemistry, School of Pharmacy, Second Military Medical University, Shanghai 200433, China
    jInstitute of Medicinal Plant Development, Chinese Academy of Medical Sciences and Peking Union Medical College, Beijing 100193, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null)]
    Pengli Huang , Rui Jing , Wendan Zhang , Jun Xia , Xin Luan , Ji Ye , Saisai Tian , Hao Zhang , Qun Wang , Honghong Jiang , Ningbo Wu , Mengting Xu , Guangyong Zheng , Dong Lu , Fei Qian , Tao Cheng , Weian Yuan , Feng Liu , Sanhong Liu , Weidong Zhang

    Nowadays, there has been a growing trend in the field of high-energy physics (HEP), in both its experimental and phenomenological studies, to incorporate machine learning (ML) and its specialized branch, deep learning (DL). This review paper provides a thorough illustration of these applications using different ML and DL approaches. The first part of the paper examines the basics of various particle physics types and establishes guidelines for assessing particle physics alongside the available learning models. Next, a detailed classification is provided for representing Jets that are reconstructed in high-energy collisions, mainly in proton-proton collisions at well-defined beam energies. This section covers various datasets, preprocessing techniques, and feature extraction and selection methods. The presented techniques can be applied to future hadron−hadron colliders (HHC), such as the high-luminosity LHC (HL-LHC) and the future circular collider−hadron−hadron (FCC-hh). The authors then explore several AI techniques analyses designed specifically for both image and point-cloud (PC) data in HEP. Additionally, a closer look is taken at the classification associated with Jet tagging in hadron collisions. In this review, various state-of-the-art (SOTA) techniques in ML and DL are examined, with a focus on their implications for HEP demands. More precisely, this discussion addresses various applications in extensive detail, such as Jet tagging, Jet tracking, and particle classification. The review concludes with an analysis of the current state of HEP using DL methodologies. It highlights the challenges and potential areas for future research, which are illustrated for each application.

  • Review
    Innovative Strategies in Natural Product Drug Discovery: The Case of Anemoside B4
    [Author(id=1198762814186853011, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762811246645697, orderNo=0, firstName=null, middleName=null, lastName=null, nameCn=null, orcid=null, stid=null, country=null, authorPic=null, dead=0, email=null, emailSecond=null, emailThird=null, correspondingAuthor=0, authorType=1, ext={EN=AuthorExt(id=1198762814442705569, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762811246645697, authorId=1198762814186853011, language=EN, stringName=Naixin Kang, firstName=Naixin, middleName=null, lastName=Kang, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, address=aCollege of Pharmaceutical Science, Soochow University, Suzhou 215123, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1198762814568534703, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762811246645697, 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authorType=1, ext={EN=AuthorExt(id=1198762815680025324, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762811246645697, authorId=1198762815411589856, language=EN, stringName=Yue Lu, firstName=Yue, middleName=null, lastName=Lu, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, address=aCollege of Pharmaceutical Science, Soochow University, Suzhou 215123, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1198762815801660153, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762811246645697, orderNo=4, firstName=null, middleName=null, lastName=null, nameCn=null, orcid=null, stid=null, country=null, authorPic=null, dead=0, email=null, emailSecond=null, emailThird=null, correspondingAuthor=0, authorType=1, ext={EN=AuthorExt(id=1198762816036541188, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762811246645697, authorId=1198762815801660153, language=EN, stringName=Zhong Chen, firstName=Zhong, middleName=null, lastName=Chen, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, address=aCollege of Pharmaceutical Science, Soochow University, Suzhou 215123, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1198762816162370316, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762811246645697, orderNo=5, firstName=null, middleName=null, lastName=null, nameCn=null, orcid=null, stid=null, country=null, authorPic=null, dead=0, email=null, emailSecond=null, emailThird=null, correspondingAuthor=0, authorType=1, ext={EN=AuthorExt(id=1198762816443388696, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762811246645697, authorId=1198762816162370316, language=EN, stringName=Xiaoran Li, firstName=Xiaoran, middleName=null, lastName=Li, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, address=aCollege of Pharmaceutical Science, Soochow University, Suzhou 215123, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1198762816594383651, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762811246645697, orderNo=6, firstName=null, middleName=null, lastName=null, nameCn=null, orcid=null, stid=null, country=null, authorPic=null, dead=0, email=null, emailSecond=null, emailThird=null, correspondingAuthor=0, authorType=1, ext={EN=AuthorExt(id=1198762816883790640, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762811246645697, authorId=1198762816594383651, language=EN, stringName=Ikhlas A. Khan, firstName=Ikhlas A., middleName=null, lastName=Khan, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=b, address=bNational Center for Natural Products Research, School of Pharmacy, University of Mississippi, Oxford, MS 38677, USA, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1198762817047368513, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762811246645697, orderNo=7, firstName=null, middleName=null, lastName=null, nameCn=null, orcid=null, stid=null, country=null, authorPic=null, dead=0, email=null, emailSecond=null, emailThird=null, correspondingAuthor=0, authorType=1, ext={EN=AuthorExt(id=1198762817328386893, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762811246645697, authorId=1198762817047368513, language=EN, stringName=Shilin Yang, firstName=Shilin, middleName=null, lastName=Yang, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, address=aCollege of Pharmaceutical Science, Soochow University, Suzhou 215123, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1198762817433244503, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762811246645697, orderNo=8, firstName=null, middleName=null, lastName=null, nameCn=null, orcid=null, stid=null, country=null, authorPic=null, dead=0, email=xuqiongming@suda.edu.cn, emailSecond=null, emailThird=null, correspondingAuthor=1, authorType=1, ext={EN=AuthorExt(id=1198762817701679968, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762811246645697, authorId=1198762817433244503, language=EN, stringName=Qiongming Xu, firstName=Qiongming, middleName=null, lastName=Xu, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, *, address=aCollege of Pharmaceutical Science, Soochow University, Suzhou 215123, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1198762817806537578, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762811246645697, orderNo=9, firstName=null, middleName=null, lastName=null, nameCn=null, orcid=null, stid=null, country=null, authorPic=null, dead=0, email=liuyanli@suda.edu.cn, emailSecond=null, emailThird=null, correspondingAuthor=1, authorType=1, ext={EN=AuthorExt(id=1198762818058195833, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762811246645697, authorId=1198762817806537578, language=EN, stringName=Yanli Liu, firstName=Yanli, middleName=null, lastName=Liu, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, *, address=aCollege of Pharmaceutical Science, Soochow University, Suzhou 215123, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null)] Naixin Kang , Jianping Zhao , Penghao Gao , Yue Lu , Zhong Chen , Xiaoran Li , Ikhlas A. Khan , Shilin Yang , Qiongming Xu , Yanli Liu

    Nowadays, there has been a growing trend in the field of high-energy physics (HEP), in both its experimental and phenomenological studies, to incorporate machine learning (ML) and its specialized branch, deep learning (DL). This review paper provides a thorough illustration of these applications using different ML and DL approaches. The first part of the paper examines the basics of various particle physics types and establishes guidelines for assessing particle physics alongside the available learning models. Next, a detailed classification is provided for representing Jets that are reconstructed in high-energy collisions, mainly in proton-proton collisions at well-defined beam energies. This section covers various datasets, preprocessing techniques, and feature extraction and selection methods. The presented techniques can be applied to future hadron−hadron colliders (HHC), such as the high-luminosity LHC (HL-LHC) and the future circular collider−hadron−hadron (FCC-hh). The authors then explore several AI techniques analyses designed specifically for both image and point-cloud (PC) data in HEP. Additionally, a closer look is taken at the classification associated with Jet tagging in hadron collisions. In this review, various state-of-the-art (SOTA) techniques in ML and DL are examined, with a focus on their implications for HEP demands. More precisely, this discussion addresses various applications in extensive detail, such as Jet tagging, Jet tracking, and particle classification. The review concludes with an analysis of the current state of HEP using DL methodologies. It highlights the challenges and potential areas for future research, which are illustrated for each application.

  • Review
    Engineered Bacterial Extracellular Vesicles: Developments, Challenges, and Opportunities
    [Author(id=1198762786495889758, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762783115280594, orderNo=0, firstName=null, middleName=null, lastName=null, nameCn=null, orcid=null, stid=null, country=null, authorPic=null, dead=0, email=null, emailSecond=null, emailThird=null, correspondingAuthor=0, authorType=1, ext={EN=AuthorExt(id=1198762786693022052, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762783115280594, authorId=1198762786495889758, language=EN, stringName=Qiqiong Li, firstName=Qiqiong, middleName=null, lastName=Li, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=null, address=null, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1198762786932097386, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762783115280594, orderNo=1, firstName=null, middleName=null, lastName=null, nameCn=null, orcid=null, stid=null, country=null, authorPic=null, dead=0, email=null, emailSecond=null, emailThird=null, correspondingAuthor=0, authorType=1, ext={EN=AuthorExt(id=1198762787276030329, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762783115280594, authorId=1198762786932097386, language=EN, stringName=Xinyang Chen, firstName=Xinyang, middleName=null, lastName=Chen, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=null, address=null, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1198762787578020228, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762783115280594, orderNo=2, firstName=null, middleName=null, lastName=null, nameCn=null, orcid=null, stid=null, country=null, authorPic=null, dead=0, email=junhuax@ncu.edu.cn, emailSecond=null, emailThird=null, correspondingAuthor=1, authorType=1, ext={EN=AuthorExt(id=1198762788106502547, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762783115280594, authorId=1198762787578020228, language=EN, stringName=Junhua Xie, firstName=Junhua, middleName=null, lastName=Xie, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=*, address=null, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1198762788249108893, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762783115280594, orderNo=3, firstName=null, middleName=null, lastName=null, nameCn=null, orcid=null, stid=null, country=null, authorPic=null, dead=0, email=spnie@ncu.edu.cn, emailSecond=null, emailThird=null, correspondingAuthor=1, authorType=1, ext={EN=AuthorExt(id=1198762788597236135, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762783115280594, authorId=1198762788249108893, language=EN, stringName=Shaoping Nie, firstName=Shaoping, middleName=null, lastName=Nie, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=*, address=null, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null)] Qiqiong Li , Xinyang Chen , Junhua Xie , Shaoping Nie

    Nowadays, there has been a growing trend in the field of high-energy physics (HEP), in both its experimental and phenomenological studies, to incorporate machine learning (ML) and its specialized branch, deep learning (DL). This review paper provides a thorough illustration of these applications using different ML and DL approaches. The first part of the paper examines the basics of various particle physics types and establishes guidelines for assessing particle physics alongside the available learning models. Next, a detailed classification is provided for representing Jets that are reconstructed in high-energy collisions, mainly in proton-proton collisions at well-defined beam energies. This section covers various datasets, preprocessing techniques, and feature extraction and selection methods. The presented techniques can be applied to future hadron−hadron colliders (HHC), such as the high-luminosity LHC (HL-LHC) and the future circular collider−hadron−hadron (FCC-hh). The authors then explore several AI techniques analyses designed specifically for both image and point-cloud (PC) data in HEP. Additionally, a closer look is taken at the classification associated with Jet tagging in hadron collisions. In this review, various state-of-the-art (SOTA) techniques in ML and DL are examined, with a focus on their implications for HEP demands. More precisely, this discussion addresses various applications in extensive detail, such as Jet tagging, Jet tracking, and particle classification. The review concludes with an analysis of the current state of HEP using DL methodologies. It highlights the challenges and potential areas for future research, which are illustrated for each application.

  • Article
    Computer Vision-Assisted High-Throughput Screening of Crystallization Additives for Crystal Size, Shape, and Agglomeration Regulation
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    cHaihe Laboratory of Sustainable Chemical Transformations, Tianjin 300192, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1198762807073312976, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762801763324760, orderNo=5, firstName=null, middleName=null, lastName=null, nameCn=null, orcid=null, stid=null, country=null, authorPic=null, dead=0, email=zhenguogao@tju.edu.cn, emailSecond=null, emailThird=null, correspondingAuthor=1, authorType=1, ext={EN=AuthorExt(id=1198762807446606046, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762801763324760, authorId=1198762807073312976, language=EN, stringName=Zhenguo Gao, firstName=Zhenguo, middleName=null, lastName=Gao, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, c, *, address=aSchool of Chemical Engineering and Technology, State Key Laboratory of Chemical Engineering, Tianjin University & The Co-Innovation Center of Chemistry and Chemical Engineering of Tianjin, Tianjin 300072, China
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    Jian Liu , Tuo Yao , Muyang Li , Sohrab Rohani , Jingkang Wang , Zhenguo Gao , Junbo Gong

    Nowadays, there has been a growing trend in the field of high-energy physics (HEP), in both its experimental and phenomenological studies, to incorporate machine learning (ML) and its specialized branch, deep learning (DL). This review paper provides a thorough illustration of these applications using different ML and DL approaches. The first part of the paper examines the basics of various particle physics types and establishes guidelines for assessing particle physics alongside the available learning models. Next, a detailed classification is provided for representing Jets that are reconstructed in high-energy collisions, mainly in proton-proton collisions at well-defined beam energies. This section covers various datasets, preprocessing techniques, and feature extraction and selection methods. The presented techniques can be applied to future hadron−hadron colliders (HHC), such as the high-luminosity LHC (HL-LHC) and the future circular collider−hadron−hadron (FCC-hh). The authors then explore several AI techniques analyses designed specifically for both image and point-cloud (PC) data in HEP. Additionally, a closer look is taken at the classification associated with Jet tagging in hadron collisions. In this review, various state-of-the-art (SOTA) techniques in ML and DL are examined, with a focus on their implications for HEP demands. More precisely, this discussion addresses various applications in extensive detail, such as Jet tagging, Jet tracking, and particle classification. The review concludes with an analysis of the current state of HEP using DL methodologies. It highlights the challenges and potential areas for future research, which are illustrated for each application.

  • Article
    Resilience Models for Tunnel Recovery After Earthquakes
    [Author(id=1198762793651372673, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762787867427214, orderNo=0, firstName=null, middleName=null, lastName=null, nameCn=null, orcid=null, stid=null, country=null, authorPic=null, dead=0, email=null, emailSecond=null, emailThird=null, correspondingAuthor=0, authorType=1, ext={EN=AuthorExt(id=1198762793831727754, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762787867427214, authorId=1198762793651372673, language=EN, stringName=Zhong-Kai Huang, firstName=Zhong-Kai, middleName=null, lastName=Huang, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, address=aDepartment of Geotechnical Engineering, Tongji University, Shanghai 200092, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1198762794041442963, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762787867427214, orderNo=1, firstName=null, middleName=null, lastName=null, nameCn=null, orcid=null, stid=null, country=null, authorPic=null, dead=0, email=null, emailSecond=null, emailThird=null, correspondingAuthor=0, authorType=1, ext={EN=AuthorExt(id=1198762794150494874, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762787867427214, authorId=1198762794041442963, language=EN, stringName=Nian-Chen Zeng, firstName=Nian-Chen, middleName=null, lastName=Zeng, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, address=aDepartment of Geotechnical Engineering, Tongji University, Shanghai 200092, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1198762794385375909, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762787867427214, orderNo=2, firstName=null, middleName=null, lastName=null, nameCn=null, orcid=null, stid=null, country=null, authorPic=null, dead=0, email=dmzhang@tongji.edu.cn, emailSecond=null, emailThird=null, correspondingAuthor=1, authorType=1, ext={EN=AuthorExt(id=1198762794515399342, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762787867427214, authorId=1198762794385375909, language=EN, stringName=Dong-Mei Zhang, firstName=Dong-Mei, middleName=null, lastName=Zhang, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, b, *, address=aDepartment of Geotechnical Engineering, Tongji University, Shanghai 200092, China
    bState Key Laboratory of Disaster Reduction in Civil Engineering, Tongji University, Shanghai 200092, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1198762794741891768, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762787867427214, orderNo=3, firstName=null, middleName=null, lastName=null, nameCn=null, orcid=null, stid=null, country=null, authorPic=null, dead=0, email=sotirios.argyroudis@brunel.ac.uk, emailSecond=null, emailThird=null, correspondingAuthor=1, authorType=1, ext={EN=AuthorExt(id=1198762794947412675, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762787867427214, authorId=1198762794741891768, language=EN, stringName=Sotirios Argyroudis, firstName=Sotirios, middleName=null, lastName=Argyroudis, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=c, e, *, address=cDepartment of Civil and Environmental Engineering, Brunel University of London, Uxbridge UB8 3PH, UK
    eMetaInfrastructure.org, London NW11 7HQ, UK, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1198762795186488013, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762787867427214, orderNo=4, firstName=null, middleName=null, lastName=null, nameCn=null, orcid=null, stid=null, country=null, authorPic=null, dead=0, email=null, emailSecond=null, emailThird=null, correspondingAuthor=0, authorType=1, ext={EN=AuthorExt(id=1198762795291345624, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762787867427214, authorId=1198762795186488013, language=EN, stringName=Stergios-Aristoteles Mitoulis, firstName=Stergios-Aristoteles, middleName=null, lastName=Mitoulis, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=d, e, address=dThe Bartlett School of Sustainable Construction, University College London, London WC1E 7HB, UK
    eMetaInfrastructure.org, London NW11 7HQ, UK, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null)]
    Zhong-Kai Huang , Nian-Chen Zeng , Dong-Mei Zhang , Sotirios Argyroudis , Stergios-Aristoteles Mitoulis

    Nowadays, there has been a growing trend in the field of high-energy physics (HEP), in both its experimental and phenomenological studies, to incorporate machine learning (ML) and its specialized branch, deep learning (DL). This review paper provides a thorough illustration of these applications using different ML and DL approaches. The first part of the paper examines the basics of various particle physics types and establishes guidelines for assessing particle physics alongside the available learning models. Next, a detailed classification is provided for representing Jets that are reconstructed in high-energy collisions, mainly in proton-proton collisions at well-defined beam energies. This section covers various datasets, preprocessing techniques, and feature extraction and selection methods. The presented techniques can be applied to future hadron−hadron colliders (HHC), such as the high-luminosity LHC (HL-LHC) and the future circular collider−hadron−hadron (FCC-hh). The authors then explore several AI techniques analyses designed specifically for both image and point-cloud (PC) data in HEP. Additionally, a closer look is taken at the classification associated with Jet tagging in hadron collisions. In this review, various state-of-the-art (SOTA) techniques in ML and DL are examined, with a focus on their implications for HEP demands. More precisely, this discussion addresses various applications in extensive detail, such as Jet tagging, Jet tracking, and particle classification. The review concludes with an analysis of the current state of HEP using DL methodologies. It highlights the challenges and potential areas for future research, which are illustrated for each application.

  • Article
    Turning Waste into Valuable Products: Sunlight-Driven Hydrogen from Polystyrene via Porous Tungsten Oxide Photoanodes
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Author(id=1162124184434303893, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159993659326260085, orderNo=1, firstName=null, middleName=null, lastName=null, nameCn=null, orcid=null, stid=null, country=null, authorPic=null, dead=0, email=null, emailSecond=null, emailThird=null, correspondingAuthor=0, authorType=1, ext={EN=AuthorExt(id=1162124184585298841, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159993659326260085, authorId=1162124184434303893, language=EN, stringName=Jun-Tae Kim, firstName=Jun-Tae, middleName=null, lastName=Kim, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, address=a Extreme Materials Research Center & Climate and Environmental Research Institute, Korea Institute of Science and Technology (KIST), Seoul 02792, Republic of Korea, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1162124184698545053, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159993659326260085, orderNo=2, firstName=null, middleName=null, lastName=null, nameCn=null, orcid=null, stid=null, country=null, authorPic=null, dead=0, email=null, emailSecond=null, emailThird=null, correspondingAuthor=0, authorType=1, ext={EN=AuthorExt(id=1162124184849540002, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159993659326260085, authorId=1162124184698545053, language=EN, stringName=Hyoung-il Kim, firstName=Hyoung-il, middleName=null, lastName=Kim, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=b, address=b School of Civil & Environmental Engineering, Yonsei University, Seoul 03722, Republic of Korea, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1162124184962786214, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159993659326260085, orderNo=3, firstName=null, middleName=null, lastName=null, nameCn=null, orcid=null, stid=null, country=null, authorPic=null, dead=0, email=null, emailSecond=null, emailThird=null, correspondingAuthor=0, authorType=1, ext={EN=AuthorExt(id=1162124185076032425, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159993659326260085, authorId=1162124184962786214, language=EN, stringName=Sang Hoon Kim, firstName=Sang, middleName=null, lastName=Hoon Kim, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=null, address=null, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1162124185193472941, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159993659326260085, orderNo=4, firstName=null, middleName=null, lastName=null, nameCn=null, orcid=null, stid=null, country=null, authorPic=null, dead=0, email=null, emailSecond=null, emailThird=null, correspondingAuthor=0, authorType=1, ext={EN=AuthorExt(id=1162124185344467892, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159993659326260085, authorId=1162124185193472941, language=EN, stringName=Ji-Young Kim, firstName=Ji-Young, middleName=null, lastName=Kim, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=e, address=e Advanced Analysis Center, Korea Institute of Science and Technology (KIST), Seoul 02792, Republic of Korea, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1162124185457714104, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159993659326260085, orderNo=5, firstName=null, middleName=null, lastName=null, nameCn=null, orcid=null, stid=null, country=null, authorPic=null, dead=0, email=null, emailSecond=null, emailThird=null, correspondingAuthor=0, authorType=1, ext={EN=AuthorExt(id=1162124185583543226, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159993659326260085, authorId=1162124185457714104, language=EN, stringName=Jonghun Lim, firstName=Jonghun, middleName=null, lastName=Lim, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=null, address=null, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1162124185705178046, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159993659326260085, orderNo=6, firstName=null, middleName=null, lastName=null, nameCn=null, orcid=null, stid=null, country=null, authorPic=null, dead=0, email=null, emailSecond=null, emailThird=null, correspondingAuthor=0, authorType=1, ext={EN=AuthorExt(id=1162124185822618559, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159993659326260085, authorId=1162124185705178046, language=EN, stringName=Gun-hee Moon, firstName=Gun-hee, middleName=null, lastName=Moon, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=null, address=null, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null)] Love Kumar Dhandole , Jun-Tae Kim , Hyoung-il Kim , Sang Hoon Kim , Ji-Young Kim , Jonghun Lim , Gun-hee Moon

    Nowadays, there has been a growing trend in the field of high-energy physics (HEP), in both its experimental and phenomenological studies, to incorporate machine learning (ML) and its specialized branch, deep learning (DL). This review paper provides a thorough illustration of these applications using different ML and DL approaches. The first part of the paper examines the basics of various particle physics types and establishes guidelines for assessing particle physics alongside the available learning models. Next, a detailed classification is provided for representing Jets that are reconstructed in high-energy collisions, mainly in proton-proton collisions at well-defined beam energies. This section covers various datasets, preprocessing techniques, and feature extraction and selection methods. The presented techniques can be applied to future hadron−hadron colliders (HHC), such as the high-luminosity LHC (HL-LHC) and the future circular collider−hadron−hadron (FCC-hh). The authors then explore several AI techniques analyses designed specifically for both image and point-cloud (PC) data in HEP. Additionally, a closer look is taken at the classification associated with Jet tagging in hadron collisions. In this review, various state-of-the-art (SOTA) techniques in ML and DL are examined, with a focus on their implications for HEP demands. More precisely, this discussion addresses various applications in extensive detail, such as Jet tagging, Jet tracking, and particle classification. The review concludes with an analysis of the current state of HEP using DL methodologies. It highlights the challenges and potential areas for future research, which are illustrated for each application.

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    Spatiotemporal Resilience of IoT-enabled Unmanned System of Systems
    [Author(id=1198762839268622352, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762837414740843, orderNo=0, firstName=null, middleName=null, lastName=null, nameCn=null, orcid=null, stid=null, country=null, authorPic=null, dead=0, email=duihongyan@zzu.edu.cn, emailSecond=null, emailThird=null, correspondingAuthor=1, authorType=1, ext={EN=AuthorExt(id=1198762839520280603, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762837414740843, authorId=1198762839268622352, language=EN, stringName=Hongyan Dui, firstName=Hongyan, middleName=null, lastName=Dui, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, *, address=aSchool of Management, Zhengzhou University, Zhengzhou 450001, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1198762839629332519, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762837414740843, orderNo=1, firstName=null, middleName=null, lastName=null, nameCn=null, orcid=null, stid=null, country=null, authorPic=null, dead=0, email=null, emailSecond=null, emailThird=null, correspondingAuthor=0, authorType=1, ext={EN=AuthorExt(id=1198762839885185077, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762837414740843, authorId=1198762839629332519, language=EN, stringName=Huanqi Zhang, firstName=Huanqi, middleName=null, lastName=Zhang, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, address=aSchool of Management, Zhengzhou University, Zhengzhou 450001, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1198762840040374337, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762837414740843, orderNo=2, firstName=null, middleName=null, lastName=null, nameCn=null, orcid=null, stid=null, country=null, authorPic=null, dead=0, email=null, emailSecond=null, emailThird=null, correspondingAuthor=0, authorType=1, ext={EN=AuthorExt(id=1198762840635965524, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762837414740843, authorId=1198762840040374337, language=EN, stringName=Shaomin Wu, firstName=Shaomin, middleName=null, lastName=Wu, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=b, address=bKent Business School, University of Kent, Canterbury, Kent CT2 7FS, UK, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1198762840828903520, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762837414740843, orderNo=3, firstName=null, middleName=null, lastName=null, nameCn=null, orcid=null, stid=null, country=null, authorPic=null, dead=0, email=null, emailSecond=null, emailThird=null, correspondingAuthor=0, authorType=1, ext={EN=AuthorExt(id=1198762841139282027, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762837414740843, authorId=1198762840828903520, language=EN, stringName=Min Xie, firstName=Min, middleName=null, lastName=Xie, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=c, address=cDepartment of Systems Engineering, City University of Hong Kong, Hong Kong 999077, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null)] Hongyan Dui , Huanqi Zhang , Shaomin Wu , Min Xie

    Nowadays, there has been a growing trend in the field of high-energy physics (HEP), in both its experimental and phenomenological studies, to incorporate machine learning (ML) and its specialized branch, deep learning (DL). This review paper provides a thorough illustration of these applications using different ML and DL approaches. The first part of the paper examines the basics of various particle physics types and establishes guidelines for assessing particle physics alongside the available learning models. Next, a detailed classification is provided for representing Jets that are reconstructed in high-energy collisions, mainly in proton-proton collisions at well-defined beam energies. This section covers various datasets, preprocessing techniques, and feature extraction and selection methods. The presented techniques can be applied to future hadron−hadron colliders (HHC), such as the high-luminosity LHC (HL-LHC) and the future circular collider−hadron−hadron (FCC-hh). The authors then explore several AI techniques analyses designed specifically for both image and point-cloud (PC) data in HEP. Additionally, a closer look is taken at the classification associated with Jet tagging in hadron collisions. In this review, various state-of-the-art (SOTA) techniques in ML and DL are examined, with a focus on their implications for HEP demands. More precisely, this discussion addresses various applications in extensive detail, such as Jet tagging, Jet tracking, and particle classification. The review concludes with an analysis of the current state of HEP using DL methodologies. It highlights the challenges and potential areas for future research, which are illustrated for each application.

  • Article
    LearningEMS: A Unified Framework and Open-Source Benchmark for Learning-Based Energy Management of Electric Vehicles
    [Author(id=1162124501490131823, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159998444909682900, orderNo=0, firstName=null, middleName=null, lastName=null, nameCn=null, orcid=null, stid=null, country=null, authorPic=null, dead=0, email=null, emailSecond=null, emailThird=null, correspondingAuthor=0, authorType=1, ext={EN=AuthorExt(id=1162124501657903986, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159998444909682900, authorId=1162124501490131823, language=EN, stringName=Yong Wang, firstName=Yong, middleName=null, lastName=Wang, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, address=aSchool of Mechanical Engineering, Beijing Institute of Technology, Beijing 100081, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1162124501783733109, tenantId=1045748351789510663, journalId=1155139928190095384, 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stringName=Renzong Lian, firstName=Renzong, middleName=null, lastName=Lian, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=c, address=cShenzhen International Graduate School, Tsinghua University, Shenzhen 518000, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1162124503172047755, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159998444909682900, orderNo=6, firstName=null, middleName=null, lastName=null, nameCn=null, orcid=null, stid=null, country=null, authorPic=null, dead=0, email=null, emailSecond=null, emailThird=null, correspondingAuthor=0, authorType=1, ext={EN=AuthorExt(id=1162124503314654093, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159998444909682900, authorId=1162124503172047755, language=EN, stringName=Jingda Wu, firstName=Jingda, middleName=null, lastName=Wu, prefix=null, suffix=null, authorComment=null, 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articleId=1159998444909682900, orderNo=10, firstName=null, middleName=null, lastName=null, nameCn=null, orcid=null, stid=null, country=null, authorPic=null, dead=0, email=null, emailSecond=null, emailThird=null, correspondingAuthor=0, authorType=1, ext={EN=AuthorExt(id=1162124504388395931, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159998444909682900, authorId=1162124504229012377, language=EN, stringName=Fengchun Sun, firstName=Fengchun, middleName=null, lastName=Sun, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, address=aSchool of Mechanical Engineering, Beijing Institute of Technology, Beijing 100081, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1162124504501642141, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159998444909682900, orderNo=11, firstName=null, middleName=null, lastName=null, nameCn=null, orcid=null, stid=null, country=null, authorPic=null, dead=0, email=null, emailSecond=null, emailThird=null, correspondingAuthor=0, authorType=1, ext={EN=AuthorExt(id=1162124504652637089, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159998444909682900, authorId=1162124504501642141, language=EN, stringName=Amir Khajepour, firstName=Amir, middleName=null, lastName=Khajepour, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=f, address=fDepartment of Mechanical and Mechatronics Engineering, University of Waterloo, Waterloo ON, N2L3G1, Canada, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null)] Yong Wang , Hongwen He , Yuankai Wu , Pei Wang , Haoyu Wang , Renzong Lian , Jingda Wu , Qin Li , Xiangfei Meng , Yingjuan Tang , Fengchun Sun , Amir Khajepour

    Nowadays, there has been a growing trend in the field of high-energy physics (HEP), in both its experimental and phenomenological studies, to incorporate machine learning (ML) and its specialized branch, deep learning (DL). This review paper provides a thorough illustration of these applications using different ML and DL approaches. The first part of the paper examines the basics of various particle physics types and establishes guidelines for assessing particle physics alongside the available learning models. Next, a detailed classification is provided for representing Jets that are reconstructed in high-energy collisions, mainly in proton-proton collisions at well-defined beam energies. This section covers various datasets, preprocessing techniques, and feature extraction and selection methods. The presented techniques can be applied to future hadron−hadron colliders (HHC), such as the high-luminosity LHC (HL-LHC) and the future circular collider−hadron−hadron (FCC-hh). The authors then explore several AI techniques analyses designed specifically for both image and point-cloud (PC) data in HEP. Additionally, a closer look is taken at the classification associated with Jet tagging in hadron collisions. In this review, various state-of-the-art (SOTA) techniques in ML and DL are examined, with a focus on their implications for HEP demands. More precisely, this discussion addresses various applications in extensive detail, such as Jet tagging, Jet tracking, and particle classification. The review concludes with an analysis of the current state of HEP using DL methodologies. It highlights the challenges and potential areas for future research, which are illustrated for each application.

  • Corrigendum
  • Corrigendum
    Corrigendum to “Preparation and Characterization of High-Strength Geopolymer Based on BH-1 Lunar Soil Simulant with Low Alkali Content” [Engineering 7(11) (2021) 1631–1645]
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    Nowadays, there has been a growing trend in the field of high-energy physics (HEP), in both its experimental and phenomenological studies, to incorporate machine learning (ML) and its specialized branch, deep learning (DL). This review paper provides a thorough illustration of these applications using different ML and DL approaches. The first part of the paper examines the basics of various particle physics types and establishes guidelines for assessing particle physics alongside the available learning models. Next, a detailed classification is provided for representing Jets that are reconstructed in high-energy collisions, mainly in proton-proton collisions at well-defined beam energies. This section covers various datasets, preprocessing techniques, and feature extraction and selection methods. The presented techniques can be applied to future hadron−hadron colliders (HHC), such as the high-luminosity LHC (HL-LHC) and the future circular collider−hadron−hadron (FCC-hh). The authors then explore several AI techniques analyses designed specifically for both image and point-cloud (PC) data in HEP. Additionally, a closer look is taken at the classification associated with Jet tagging in hadron collisions. In this review, various state-of-the-art (SOTA) techniques in ML and DL are examined, with a focus on their implications for HEP demands. More precisely, this discussion addresses various applications in extensive detail, such as Jet tagging, Jet tracking, and particle classification. The review concludes with an analysis of the current state of HEP using DL methodologies. It highlights the challenges and potential areas for future research, which are illustrated for each application.