2025-10-29 , Volume 53 Issue 10

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    Carbon-neutral buildings eliminate fossil fuel combustion, adopt nature-based passive and green design strategies, and ensure zero-carbon electricity and heat supply. This special issue examines China’s building sector and proposes an ecological transformation pathway toward carbon neutrality. End-use energy demand is first minimized through sufficiency and efficiency measures. On the electricity side, building surfaces are utilized for distributed photovoltaics, integrated with electric vehicle batteries, enabling demand-side coordination with the power grid via photovoltaic–energy storage–direct current–flexibility (PEDF) systems. On the heating side, zero-carbon supply is achieved through natural-source heat pumps and surplus-heat sharing systems with thermal storage. Future buildings will evolve from energy consumers into prosumers and system regulators, representing a fundamental shift in the carbon-neutral transition.



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    Editorial
  • review-article
    Editorial for the Special Issue on Carbon-Neutrality Pathways for Building Operations
    [Author(id=1190597827098923954, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1189587339770777640, 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=1190597827241530298, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1189587339770777640, authorId=1190597827098923954, language=EN, stringName=Yi Jiang, firstName=Yi, middleName=null, lastName=Jiang, 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=1190597827363165123, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1189587339770777640, 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=1190597827493188557, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1189587339770777640, authorId=1190597827363165123, language=EN, stringName=Xudong Yang, firstName=Xudong, middleName=null, lastName=Yang, 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)] Yi Jiang , Xudong 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.

  • News & Highlights
  • research-article
    Chinese AI Model Shocks the World—What Comes Next?
    [Author(id=1190597822141256378, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1189589005865767377, 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=1190597822250308293, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1189589005865767377, authorId=1190597822141256378, 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":"

    Mitch Leslie,Senior Technology Writer

    "}, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null)]
    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.

  • research-article
    Booming Demand for Lithium Drives Extraction Innovation
    [Author(id=1190597827790140321, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1189689668259680813, 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=1190597827903386535, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1189689668259680813, authorId=1190597827790140321, 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":"

    Chris Palmer, Senior Technology Writer

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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.

  • research-article
    Biology Inspires Innovative Materials Science
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    Mark Peplow, Senior Technology Writer

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    Mark Peplow

    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
  • review-article
    Quantifying Urban Disaster Resilience for Informed Mitigation Strategies
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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.

  • Research
  • review-article
    Excellent Insulation Vacuum Glazing for Low-Carbon Buildings: Fabrication, Modeling, and Evaluation
    [Author(id=1190597842881245690, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159993067405107978, orderNo=0, firstName=null, middleName=null, lastName=null, nameCn=null, orcid=null, stid=null, country=null, authorPic=null, dead=0, email=jqpeng@hnu.edu.cn, emailSecond=null, emailThird=null, correspondingAuthor=1, authorType=1, ext={EN=AuthorExt(id=1190597843216790021, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159993067405107978, authorId=1190597842881245690, language=EN, stringName=Jinqing Peng, firstName=Jinqing, middleName=null, lastName=Peng, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, b, *, address=aCollege of Civil Engineering, Hunan University, Changsha 410082, China
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    Jinqing Peng , Yutong Tan , Yueping Fang , Hongxing Yang , Aotian Song , Charlie Curcija , Stephen Selkowitz

    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-article
    Ecological Pathway to Achieve Carbon Neutrality in China’s Building Sector
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Ltd., Chengdu 610041, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1190597829761463272, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1189593945257599256, 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=1190597829887292404, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1189593945257599256, authorId=1190597829761463272, language=EN, stringName=Bin Hao, firstName=Bin, middleName=null, lastName=Hao, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=d, address=dShenzhen Institute of Building Research, Shenzhen 518049, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1190597829962789882, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1189593945257599256, 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=1190597830138949635, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1189593945257599256, authorId=1190597829962789882, language=EN, stringName=Ziyi Yang, firstName=Ziyi, middleName=null, lastName=Yang, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, address=aBuilding Energy Research Center, School of Architecture, Tsinghua University, Beijing 100084, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1190597830264778764, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1189593945257599256, 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=1190597830403190804, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1189593945257599256, authorId=1190597830264778764, language=EN, stringName=Yang Zhang, firstName=Yang, middleName=null, lastName=Zhang, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, address=aBuilding Energy Research Center, School of Architecture, Tsinghua University, Beijing 100084, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1190597830499659805, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1189593945257599256, orderNo=8, 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=1190597830600323108, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1189593945257599256, authorId=1190597830499659805, language=EN, stringName=Da Yan, firstName=Da, middleName=null, lastName=Yan, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, address=aBuilding Energy Research Center, School of Architecture, Tsinghua University, Beijing 100084, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null)] Shan Hu , Yi Jiang , Xudong Yang , Yungang Pan , Xiangyang Rong , Bin Hao , Ziyi Yang , Yang Zhang , Da Yan

    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-article
    Indoor Thermal Environment Improvement Based on Switchable Radiation/Convection-Combined Intermittent Heating: Comparison Between Conventional Terminals and an Integrated Novel Terminal
    [Author(id=1190597831175786651, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159987425147675452, 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=1190597831603605676, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159987425147675452, authorId=1190597831175786651, language=EN, stringName=Hongli Sun, firstName=Hongli, middleName=null, lastName=Sun, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, e, address=aCollege of Architecture and Environment, Sichuan University, Chengdu 610065, China
    eState Key Laboratory of Intelligent Construction and Healthy Operation and Maintenance of Deep Underground Engineering, Sichuan University, Chengdu 610065, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1190597831804932280, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159987425147675452, orderNo=1, firstName=null, middleName=null, lastName=null, nameCn=null, orcid=null, stid=null, country=null, authorPic=null, dead=0, email=wuyf97@126.com, emailSecond=null, emailThird=null, correspondingAuthor=1, authorType=1, ext={EN=AuthorExt(id=1190597832023036102, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159987425147675452, authorId=1190597831804932280, language=EN, stringName=Yifan Wu, firstName=Yifan, middleName=null, lastName=Wu, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=b, d, *, address=bDepartment of Building Science, Tsinghua University, Beijing 100084, China
    dKey Laboratory of Eco Planning & Green Building, Ministry of Education, Tsinghua University, Beijing 100084, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1190597832245334226, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159987425147675452, orderNo=2, firstName=null, middleName=null, lastName=null, nameCn=null, orcid=null, stid=null, country=null, authorPic=null, dead=0, email=linbr@tsinghua.edu.cn, emailSecond=null, emailThird=null, correspondingAuthor=1, authorType=1, ext={EN=AuthorExt(id=1190597832484409565, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159987425147675452, authorId=1190597832245334226, language=EN, stringName=Borong Lin, firstName=Borong, middleName=null, lastName=Lin, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=b, d, *, address=bDepartment of Building Science, Tsinghua University, Beijing 100084, China
    dKey Laboratory of Eco Planning & Green Building, Ministry of Education, Tsinghua University, Beijing 100084, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1190597832694124775, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159987425147675452, 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=1190597833214218485, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159987425147675452, authorId=1190597832694124775, language=EN, stringName=Mengfan Duan, firstName=Mengfan, middleName=null, lastName=Duan, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=c, d, address=cSchool of Energy and Environment, Southeast University, Nanjing 211189, China
    dKey Laboratory of Eco Planning & Green Building, Ministry of Education, Tsinghua University, Beijing 100084, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1190597833512014081, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159987425147675452, 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=1190597833784643855, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159987425147675452, authorId=1190597833512014081, language=EN, stringName=Zixu Yang, firstName=Zixu, middleName=null, lastName=Yang, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=b, d, address=bDepartment of Building Science, Tsinghua University, Beijing 100084, China
    dKey Laboratory of Eco Planning & Green Building, Ministry of Education, Tsinghua University, Beijing 100084, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1190597833990164764, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159987425147675452, 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=1190597834216657194, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159987425147675452, authorId=1190597833990164764, language=EN, stringName=Hengxin Zhao, firstName=Hengxin, middleName=null, lastName=Zhao, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=b, d, address=bDepartment of Building Science, Tsinghua University, Beijing 100084, China
    dKey Laboratory of Eco Planning & Green Building, Ministry of Education, Tsinghua University, Beijing 100084, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1190597834371846451, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159987425147675452, 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=1190597834560590141, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159987425147675452, authorId=1190597834371846451, language=EN, stringName=Ziliang Wei, firstName=Ziliang, middleName=null, lastName=Wei, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=b, d, address=bDepartment of Building Science, Tsinghua University, Beijing 100084, China
    dKey Laboratory of Eco Planning & Green Building, Ministry of Education, Tsinghua University, Beijing 100084, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1190597834732556614, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159987425147675452, 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=1190597834925494607, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159987425147675452, authorId=1190597834732556614, language=EN, stringName=Shenfei Yu, firstName=Shenfei, middleName=null, lastName=Yu, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, address=aCollege of Architecture and Environment, Sichuan University, Chengdu 610065, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1190597835093266773, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159987425147675452, orderNo=8, 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=1190597835307176286, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159987425147675452, authorId=1190597835093266773, language=EN, stringName=Songjun Li, firstName=Songjun, middleName=null, lastName=Li, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, address=aCollege of Architecture and Environment, Sichuan University, Chengdu 610065, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1190597835571417451, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159987425147675452, 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=1190597835919544697, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159987425147675452, authorId=1190597835571417451, language=EN, stringName=Junkang Song, firstName=Junkang, middleName=null, lastName=Song, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, address=aCollege of Architecture and Environment, Sichuan University, Chengdu 610065, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null)]
    Hongli Sun , Yifan Wu , Borong Lin , Mengfan Duan , Zixu Yang , Hengxin Zhao , Ziliang Wei , Shenfei Yu , Songjun Li , Junkang 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.

  • Research-article
    Risk-Aware Optimal Dispatch of Resource Aggregators Integrating NGBoost-Based Probabilistic Renewable Forecasting and Bi-Level Building Flexibility Engagements
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    cResearch Institute of Smart Energy, The Hong Kong Polytechnic University, Hong Kong 999077, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null)]
    Hong Tang , Zhe Chen , Hangxin Li , Shengwei 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.

  • Research-article
    Decarbonization of Building Operations with Adaptive Quantum Computing-Based Model Predictive Control
    [Author(id=1190597826587218826, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159999318646121033, 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=1190597826767573911, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159999318646121033, authorId=1190597826587218826, language=EN, stringName=Akshay Ajagekar, firstName=Akshay, middleName=null, lastName=Ajagekar, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, address=aSystems Engineering, Cornell University, Ithaca, NY 14853, USA, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1190597826926957473, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159999318646121033, orderNo=1, firstName=null, middleName=null, lastName=null, nameCn=null, orcid=null, stid=null, country=null, authorPic=null, dead=0, email=fengqi.you@cornell.edu, emailSecond=null, emailThird=null, correspondingAuthor=1, authorType=1, ext={EN=AuthorExt(id=1190597827098923955, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159999318646121033, authorId=1190597826926957473, language=EN, stringName=Fengqi You, firstName=Fengqi, middleName=null, lastName=You, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, b, *, address=aSystems Engineering, Cornell University, Ithaca, NY 14853, USA
    bRobert Frederick Smith School of Chemical and Biomolecular Engineering, Cornell University, Ithaca, NY 14853, USA, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null)]
    Akshay Ajagekar , Fengqi You

    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-article
    Optimal Scheduling and On-the-Fly Flexible Control of Integrated Energy Systems for Residential Buildings Considering Photovoltaic Prediction Errors
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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.

  • Research-article
    A Wearable Stethoscope for Accurate Real-Time Lung Sound Monitoring and Automatic Wheezing Detection Based on an AI Algorithm
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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=1190597821226898059, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159998431802482890, authorId=1190597821012988545, language=EN, stringName=Sunghoon Im, firstName=Sunghoon, middleName=null, lastName=Im, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=b, #, address=bDepartment of Mechanical Engineering, Ajou University, Suwon 16499, Republic of Korea, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1190597821453390485, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159998431802482890, orderNo=3, firstName=null, middleName=null, lastName=null, nameCn=null, orcid=null, stid=null, country=null, authorPic=null, dead=0, email=null, emailSecond=null, 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authorComment=null, nameInitials=null, affiliation=null, department=null, xref=b, address=bDepartment of Mechanical Engineering, Ajou University, Suwon 16499, Republic of Korea, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1190597823181443831, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159998431802482890, 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=1190597823659594492, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159998431802482890, authorId=1190597823181443831, language=EN, stringName=Jin Goo Lee, firstName=Jin Goo, middleName=null, lastName=Lee, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=b, address=bDepartment of Mechanical Engineering, Ajou University, Suwon 16499, Republic of Korea, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1190597823793812227, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159998431802482890, 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=1190597823969973005, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159998431802482890, authorId=1190597823793812227, language=EN, stringName=Dohyeong Kim, firstName=Dohyeong, middleName=null, lastName=Kim, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=c, address=cSchool of Economic, Political and Policy Sciences, The University of Texas at Dallas, Richardson, TX 75080, USA, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1190597824087413523, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159998431802482890, 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=1190597824259379993, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159998431802482890, authorId=1190597824087413523, language=EN, stringName=Gil-Soon Choi, firstName=Gil-Soon, middleName=null, lastName=Choi, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=d, address=dDepartment of Internal Medicine, Kosin University College of Medicine, Busan 49267, Republic of Korea, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1190597824364237602, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159998431802482890, orderNo=12, firstName=null, middleName=null, lastName=null, nameCn=null, orcid=null, stid=null, country=null, authorPic=null, dead=0, email=dskang@ajou.ac.kr, emailSecond=null, emailThird=null, correspondingAuthor=1, authorType=1, ext={EN=AuthorExt(id=1190597824523621163, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159998431802482890, authorId=1190597824364237602, language=EN, stringName=Daeshik Kang, firstName=Daeshik, middleName=null, lastName=Kang, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=b, *, address=bDepartment of Mechanical Engineering, Ajou University, Suwon 16499, Republic of Korea, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1190597824712364850, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159998431802482890, orderNo=13, firstName=null, middleName=null, lastName=null, nameCn=null, orcid=null, stid=null, country=null, authorPic=null, dead=0, email=haha0694@gmail.com, emailSecond=null, emailThird=null, correspondingAuthor=1, authorType=1, ext={EN=AuthorExt(id=1190597824850776893, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159998431802482890, authorId=1190597824712364850, language=EN, stringName=SungChul Seo, firstName=SungChul, middleName=null, lastName=Seo, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=e, *, address=eDepartment of Nano, Chemical and Biological Engineering, Seokyeong University, Seoul 02713, Republic of Korea, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1190597824959828805, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159998431802482890, orderNo=14, firstName=null, middleName=null, lastName=null, nameCn=null, orcid=null, stid=null, country=null, authorPic=null, dead=0, email=shleekist@kist.re.kr, emailSecond=null, emailThird=null, correspondingAuthor=1, authorType=1, ext={EN=AuthorExt(id=1190597825127600973, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159998431802482890, authorId=1190597824959828805, language=EN, stringName=Soo Hyun Lee, firstName=Soo Hyun, middleName=null, lastName=Lee, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, *, address=aCenter for Biomicrosystems, Brain Science Institute, Korea Institute of Science and Technology, Seoul 02792, Republic of Korea, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null)] Kyoung-Ryul Lee , Taewi Kim , Sunghoon Im , Yi Jae Lee , Seongeun Jeong , Hanho Shin , Hana Cho , Sang-Heon Park , Minho Kim , Jin Goo Lee , Dohyeong Kim , Gil-Soon Choi , Daeshik Kang , SungChul Seo , Soo Hyun Lee

    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-article
    A Deep Learning-Based Framework for Environment-Adaptive Navigation of Size-Adaptable Microswarms
    [Author(id=1190597818920030742, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159992676915405533, 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=1190597819112968733, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159992676915405533, authorId=1190597818920030742, language=EN, stringName=Jialin Jiang, firstName=Jialin, middleName=null, lastName=Jiang, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, b, address=aDepartment of Mechanical and Automation Engineering, The Chinese University of Hong Kong, Hong Kong 999077, China
    bShenzhen Research Institute, The Chinese University of Hong Kong, Shenzhen 518000, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1190597819192660513, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159992676915405533, orderNo=1, firstName=null, middleName=null, lastName=null, nameCn=null, orcid=null, stid=null, country=null, authorPic=null, dead=0, email=lidong.yang@polyu.edu.hk, emailSecond=null, emailThird=null, correspondingAuthor=1, authorType=1, ext={EN=AuthorExt(id=1190597819310101031, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159992676915405533, authorId=1190597819192660513, language=EN, stringName=Lidong Yang, firstName=Lidong, middleName=null, lastName=Yang, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=c, *, address=cDepartment of Industrial and Systems Engineering, The Hong Kong Polytechnic University (PolyU), Hong Kong 999077, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1190597819393987116, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159992676915405533, 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=1190597819490456112, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159992676915405533, authorId=1190597819393987116, language=EN, stringName=Shihao Yang, firstName=Shihao, middleName=null, lastName=Yang, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, address=aDepartment of Mechanical and Automation Engineering, The Chinese University of Hong Kong, Hong Kong 999077, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1190597819595313719, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159992676915405533, orderNo=3, firstName=null, middleName=null, lastName=null, nameCn=null, orcid=null, stid=null, country=null, authorPic=null, dead=0, email=lizhang@cuhk.edu.hk, emailSecond=null, emailThird=null, correspondingAuthor=1, authorType=1, ext={EN=AuthorExt(id=1190597819872137801, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159992676915405533, authorId=1190597819595313719, language=EN, stringName=Li Zhang, firstName=Li, middleName=null, lastName=Zhang, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, b, d, e, f, g, *, address=aDepartment of Mechanical and Automation Engineering, The Chinese University of Hong Kong, Hong Kong 999077, China
    bShenzhen Research Institute, The Chinese University of Hong Kong, Shenzhen 518000, China
    dDepartment of Surgery, The Chinese University of Hong Kong, Hong Kong 999077, China
    eCUHK T Stone Robotics Institute, The Chinese University of Hong Kong, Hong Kong 999077, China
    fChow Yuk Ho Technology Center for Innovative Medicine, The Chinese University of Hong Kong, Hong Kong 999077, China
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    Jialin Jiang , Lidong Yang , Shihao Yang , Li 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-article
    Progress of Machine Learning in Molecular Crystal Design and Crystallization Development
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    bDepartment of Chemical Engineering, Loughborough University, Leicestershire LE11 3TU, UK, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1190597830269816935, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1160003936830677257, 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=1190597830479532144, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1160003936830677257, authorId=1190597830269816935, language=EN, stringName=Yuechao Cao, firstName=Yuechao, middleName=null, lastName=Cao, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, address=aSchool of Chemical Engineering and Technology, State Key Laboratory of Chemical Engineering & Collaborative Innovation Center of Chemical Science and Chemical Engineering, Tianjin University, Tianjin 300072, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1190597830689247358, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1160003936830677257, orderNo=3, 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=1190597830894768265, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1160003936830677257, authorId=1190597830689247358, 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, *, address=aSchool of Chemical Engineering and Technology, State Key Laboratory of Chemical Engineering & Collaborative Innovation Center of Chemical Science and Chemical Engineering, Tianjin University, Tianjin 300072, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1190597831138037913, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1160003936830677257, 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=1190597831473582246, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1160003936830677257, authorId=1190597831138037913, language=EN, stringName=Sohrab Rohani, firstName=Sohrab, middleName=null, lastName=Rohani, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=c, address=cDepartment of Chemical and Biochemical Engineering, University of Western Ontario, London, ON N6A 5B9, Canada, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1190597831737823412, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1160003936830677257, 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=1190597831951732931, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1160003936830677257, authorId=1190597831737823412, language=EN, stringName=Junbo Gong, firstName=Junbo, middleName=null, lastName=Gong, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, address=aSchool of Chemical Engineering and Technology, State Key Laboratory of Chemical Engineering & Collaborative Innovation Center of Chemical Science and Chemical Engineering, Tianjin University, Tianjin 300072, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1190597832144670928, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1160003936830677257, 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=1190597832408912092, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1160003936830677257, authorId=1190597832144670928, language=EN, stringName=Jingkang Wang, firstName=Jingkang, middleName=null, lastName=Wang, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, address=aSchool of Chemical Engineering and Technology, State Key Laboratory of Chemical Engineering & Collaborative Innovation Center of Chemical Science and Chemical Engineering, Tianjin University, Tianjin 300072, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null)]
    Shengzhe Jia , Yiming Ma , Yuechao Cao , Zhenguo Gao , Sohrab Rohani , Junbo Gong , Jingkang 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.

  • Review-article
    Design Principles and Emerging Applications of Starch-Involved Superwettable Systems
    [Author(id=1190597819276546596, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1160002758977839374, 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=1190597819414958638, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1160002758977839374, authorId=1190597819276546596, language=EN, stringName=Fan Wang, firstName=Fan, middleName=null, lastName=Wang, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, b, c, e, address=aState Key Laboratory of Food Science and Resources, Jiangnan University, Wuxi 214122, China
    bDepartment of Biomedical Engineering, National University of Singapore, Singapore 119276, Singapore
    cSchool of Food Science and Technology, Jiangnan University, Wuxi 214122, China
    eCollege of Biosystems Engineering and Food Science, Zhejiang University, Hangzhou 310058, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1190597819515621939, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1160002758977839374, 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=1190597819675005502, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1160002758977839374, authorId=1190597819515621939, language=EN, stringName=Rongrong Ma, firstName=Rongrong, middleName=null, lastName=Ma, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, c, address=aState Key Laboratory of Food Science and Resources, Jiangnan University, Wuxi 214122, China
    cSchool of Food Science and Technology, Jiangnan University, Wuxi 214122, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1190597819842777671, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1160002758977839374, 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=1190597820056687183, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1160002758977839374, authorId=1190597819842777671, language=EN, stringName=Jingling Zhu, firstName=Jingling, middleName=null, lastName=Zhu, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=b, d, address=bDepartment of Biomedical Engineering, National University of Singapore, Singapore 119276, Singapore
    dNUS Environmental Research Institute (NERI), National University of Singapore, Singapore 117411, Singapore, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1190597820220265047, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1160002758977839374, 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=1190597820341899872, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1160002758977839374, authorId=1190597820220265047, language=EN, stringName=Wei Ma, firstName=Wei, middleName=null, lastName=Ma, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, c, address=aState Key Laboratory of Food Science and Resources, Jiangnan University, Wuxi 214122, China
    cSchool of Food Science and Technology, Jiangnan University, Wuxi 214122, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1190597820480311914, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1160002758977839374, orderNo=4, firstName=null, middleName=null, lastName=null, nameCn=null, orcid=null, stid=null, country=null, authorPic=null, dead=0, email=jun-li@nus.edu.sg, emailSecond=null, emailThird=null, correspondingAuthor=1, authorType=1, ext={EN=AuthorExt(id=1190597820794884722, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1160002758977839374, authorId=1190597820480311914, language=EN, stringName=Jun Li, firstName=Jun, middleName=null, lastName=Li, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=b, d, *, address=bDepartment of Biomedical Engineering, National University of Singapore, Singapore 119276, Singapore
    dNUS Environmental Research Institute (NERI), National University of Singapore, Singapore 117411, Singapore, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1190597820958462587, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1160002758977839374, orderNo=5, firstName=null, middleName=null, lastName=null, nameCn=null, orcid=null, stid=null, country=null, authorPic=null, dead=0, email=yqtian@jiangnan.edu.cn, emailSecond=null, emailThird=null, correspondingAuthor=1, authorType=1, ext={EN=AuthorExt(id=1190597821122040455, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1160002758977839374, authorId=1190597820958462587, language=EN, stringName=Yaoqi Tian, firstName=Yaoqi, middleName=null, lastName=Tian, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, c, *, address=aState Key Laboratory of Food Science and Resources, Jiangnan University, Wuxi 214122, China
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    Fan Wang , Rongrong Ma , Jingling Zhu , Wei Ma , Jun Li , Yaoqi Tian

    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-article
    A Potential Commercialization Method for Gas Production from Off-Shore Hydrate Reservoirs
    [Author(id=1190597829707780160, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1160001985325884151, orderNo=0, firstName=null, middleName=null, lastName=null, nameCn=null, orcid=null, stid=null, country=null, authorPic=null, dead=0, email=sunbj1128@vip.126.com, emailSecond=null, emailThird=null, correspondingAuthor=1, authorType=1, ext={EN=AuthorExt(id=1190597829900718158, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1160001985325884151, authorId=1190597829707780160, language=EN, stringName=Baojiang Sun, firstName=Baojiang, middleName=null, lastName=Sun, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, b, *, address=aSchool of Petroleum Engineering, China University of Petroleum (East China), Qingdao 266580, China
    bState Key Laboratory of Deep Oil and Gas, China University of Petroleum (East China), Qingdao 266580, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1190597830055907417, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1160001985325884151, 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=1190597830336925804, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1160001985325884151, authorId=1190597830055907417, language=EN, stringName=Jinsheng Sun, firstName=Jinsheng, middleName=null, lastName=Sun, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, b, address=aSchool of Petroleum Engineering, China University of Petroleum (East China), Qingdao 266580, China
    bState Key Laboratory of Deep Oil and Gas, China University of Petroleum (East China), Qingdao 266580, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1190597830546641015, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1160001985325884151, 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=1190597830798299271, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1160001985325884151, authorId=1190597830546641015, language=EN, stringName=Youqiang Liao, firstName=Youqiang, middleName=null, lastName=Liao, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=c, address=cState Key Laboratory of Geomechanics and Geotechnical Engineering Safety, Institute of Rock and Soil Mechanics, Chinese Academy of Sciences, Wuhan 430071, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1190597831049957523, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1160001985325884151, 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=1190597831372918947, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1160001985325884151, authorId=1190597831049957523, language=EN, stringName=Miao Dong, firstName=Miao, middleName=null, lastName=Dong, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=d, address=dKey Laboratory of Deep Petroleum Intelligent Exploration and Development, Institute of Geology and Geophysics, Chinese Academy of Sciences, Beijing 100029, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1190597831641354414, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1160001985325884151, 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=1190597831872041152, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1160001985325884151, authorId=1190597831641354414, language=EN, stringName=Jie Zhong, firstName=Jie, middleName=null, lastName=Zhong, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, b, address=aSchool of Petroleum Engineering, China University of Petroleum (East China), Qingdao 266580, China
    bState Key Laboratory of Deep Oil and Gas, China University of Petroleum (East China), Qingdao 266580, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1190597832035619015, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1160001985325884151, orderNo=5, firstName=null, middleName=null, lastName=null, nameCn=null, orcid=null, stid=null, country=null, authorPic=null, dead=0, email=chepl@nus.edu.sg, emailSecond=null, emailThird=null, correspondingAuthor=1, authorType=1, ext={EN=AuthorExt(id=1190597832312443095, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1160001985325884151, authorId=1190597832035619015, language=EN, stringName=Praveen Linga, firstName=Praveen, middleName=null, lastName=Linga, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=e, *, address=eDepartment of Chemical and Biomolecular Engineering, National University of Singapore, Singapore 117582, Singapore, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null)]
    Baojiang Sun , Jinsheng Sun , Youqiang Liao , Miao Dong , Jie Zhong , Praveen Linga

    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-article
    Amplified Risks of the Yarlung Zangbo–Brahmaputra River to Glacier Hazard Chains due to Multi-Hazard Transformation
    [Author(id=1190597841551651279, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1189601127084647276, 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=1190597841883001308, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1189601127084647276, authorId=1190597841551651279, language=EN, stringName=Ruochen Jiang, firstName=Ruochen, middleName=null, lastName=Jiang, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, address=aDepartment of Civil and Environmental Engineering, The Hong Kong University of Science and Technology, Hong Kong 999077, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1190597842235322855, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1189601127084647276, orderNo=1, firstName=null, middleName=null, lastName=null, nameCn=null, orcid=null, stid=null, country=null, authorPic=null, dead=0, email=cezhangl@ust.hk, emailSecond=null, emailThird=null, correspondingAuthor=1, authorType=1, ext={EN=AuthorExt(id=1190597842692502006, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1189601127084647276, authorId=1190597842235322855, language=EN, stringName=Limin Zhang, firstName=Limin, middleName=null, lastName=Zhang, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, b, *, address=aDepartment of Civil and Environmental Engineering, The Hong Kong University of Science and Technology, Hong Kong 999077, China
    bHKUST Shenzhen-Hong Kong Collaborative Innovation Research Institute, Shenzhen 518000, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1190597843103543808, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1189601127084647276, 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=1190597843510391310, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1189601127084647276, authorId=1190597843103543808, language=EN, stringName=Ming Peng, firstName=Ming, middleName=null, lastName=Peng, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=c, d, address=cKey Laboratory of Geotechnical and Underground Engineering of Ministry of Education, Tongji University, Shanghai 200092, China
    dDepartment of Geotechnical Engineering, College of Civil Engineering, Tongji University, Shanghai 200092, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1190597843799798295, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1189601127084647276, 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=1190597844080816672, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1189601127084647276, authorId=1190597843799798295, language=EN, stringName=Wenjun Lu, firstName=Wenjun, middleName=null, lastName=Lu, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=e, address=eSchool of Intelligent Civil and Ocean Engineering, Harbin Institute of Technology (Shenzhen), Shenzhen 518055, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1190597844353446443, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1189601127084647276, 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=1190597844743516721, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1189601127084647276, authorId=1190597844353446443, language=EN, stringName=Dalei Peng, firstName=Dalei, middleName=null, lastName=Peng, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=f, address=fState Key Laboratory of Geohazard Prevention and Geoenvironment Protection, Chengdu University of Technology, Chengdu 610000, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1190597845007757882, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1189601127084647276, 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=1190597845305553474, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1189601127084647276, authorId=1190597845007757882, language=EN, stringName=Shihao Xiao, firstName=Shihao, middleName=null, lastName=Xiao, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, address=aDepartment of Civil and Environmental Engineering, The Hong Kong University of Science and Technology, Hong Kong 999077, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1190597845511074377, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1189601127084647276, 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=1190597845716595281, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1189601127084647276, authorId=1190597845511074377, language=EN, stringName=Xin He, firstName=Xin, middleName=null, lastName=He, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, address=aDepartment of Civil and Environmental Engineering, The Hong Kong University of Science and Technology, Hong Kong 999077, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null)]
    Ruochen Jiang , Limin Zhang , Ming Peng , Wenjun Lu , Dalei Peng , Shihao Xiao , Xin He

    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-article
    Bank Filtration as a Robust Pretreatment of Gravity-Driven Membrane Filtration: Performance Enhancement and Mechanistic Insights
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emailSecond=null, emailThird=null, correspondingAuthor=0, authorType=1, ext={EN=AuthorExt(id=1190597829971178492, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159998860993028542, authorId=1190597829836960752, language=EN, stringName=Fang Xu, firstName=Fang, middleName=null, lastName=Xu, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=b, address=bFaculty of Resources and Environmental Science, Hubei University, Wuhan 430062, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1190597830138949634, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159998860993028542, 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=1190597830264778763, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159998860993028542, authorId=1190597830138949634, language=EN, stringName=Danting Shi, firstName=Danting, middleName=null, lastName=Shi, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, address=aSchool of Civil Engineering, Wuhan University, Wuhan 430072, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1190597830357053456, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159998860993028542, 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=1190597830432550934, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159998860993028542, authorId=1190597830357053456, language=EN, 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bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1190597831040725059, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159998860993028542, orderNo=7, firstName=null, middleName=null, lastName=null, nameCn=null, orcid=null, stid=null, country=null, authorPic=null, dead=0, email=shaosenlin@whu.edu.cn, emailSecond=null, emailThird=null, correspondingAuthor=1, authorType=1, ext={EN=AuthorExt(id=1190597831216885838, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159998860993028542, authorId=1190597831040725059, language=EN, stringName=Senlin Shao, firstName=Senlin, middleName=null, lastName=Shao, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, *, address=aSchool of Civil Engineering, Wuhan University, Wuhan 430072, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null)] Na Li , Chu Zhou , Fang Xu , Danting Shi , Fanxi Zeng , Liang Luo , Zheng Fang , Senlin Shao

    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-article
    PbS Quantum Dot Image Sensors Derived from Spent Lead-Acid Batteries via an Environmentally Friendly Route
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    bHubei Provincial Engineering Laboratory of Solid Waste Treatment, Disposal and Recycling, Wuhan 430074, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1190597839542579589, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159990274829115972, orderNo=12, firstName=null, middleName=null, lastName=null, nameCn=null, orcid=null, stid=null, country=null, authorPic=null, dead=0, email=jbzhang@hust.edu.cn, emailSecond=null, emailThird=null, correspondingAuthor=1, authorType=1, ext={EN=AuthorExt(id=1190597839899095439, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159990274829115972, authorId=1190597839542579589, language=EN, stringName=Jianbing Zhang, firstName=Jianbing, middleName=null, lastName=Zhang, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=c, *, address=cSchool of Integrated Circuits, Wuhan National Laboratory for Optoelectronics, Huazhong University of Science and Technology (HUST), Wuhan 430074, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1190597840226251164, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159990274829115972, orderNo=13, firstName=null, middleName=null, lastName=null, nameCn=null, orcid=null, stid=null, country=null, authorPic=null, dead=0, email=jkyang@mail.hust.edu.cn, emailSecond=null, emailThird=null, correspondingAuthor=1, authorType=1, ext={EN=AuthorExt(id=1190597840607932843, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159990274829115972, authorId=1190597840226251164, language=EN, stringName=Jiakuan Yang, firstName=Jiakuan, middleName=null, lastName=Yang, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, b, d, *, address=aHubei Key Laboratory of Multi-media Pollution Cooperative Control in Yangtze Basin, School of Environmental Science and Engineering, Huazhong University of Science and Technology (HUST), Wuhan 430074, China
    bHubei Provincial Engineering Laboratory of Solid Waste Treatment, Disposal and Recycling, Wuhan 430074, China
    dState Key Laboratory of Coal Combustion, Huazhong University of Science and Technology (HUST), Wuhan 430074, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null)]
    Yuxin Tong , Dijie Zhang , Zhaoyang Li , Guang Hu , Qingfang Zou , Luna Xiao , Weidong Wu , Liang Huang , Sha Liang , Huabo Duan , Jingping Hu , Huijie Hou , Jianbing Zhang , Jiakuan 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.

  • Research-article
    Association Between Long-Term PM1 Exposure and Cognition in Middle-Aged and Older Adults: Evidence from China and the United Kingdom
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    bKey Laboratory of Modern Toxicology, Ministry of Education, School of Public Health, Nanjing Medical University, Nanjing, 211166, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1190597822455829199, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159986871575044336, 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=1190597822602629844, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159986871575044336, authorId=1190597822455829199, language=EN, stringName=Bo Hang, firstName=Bo, middleName=null, lastName=Hang, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=c, address=cBiological Systems and Engineering Division, Lawrence Berkeley National Laboratory, Berkeley, CA 94720, USA, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1190597822690710234, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159986871575044336, orderNo=8, 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=1190597822787179234, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159986871575044336, authorId=1190597822690710234, language=EN, stringName=Antoine M. Snijders, firstName=Antoine M., middleName=null, lastName=Snijders, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=c, address=cBiological Systems and Engineering Division, Lawrence Berkeley National Laboratory, Berkeley, CA 94720, USA, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1190597822996894443, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159986871575044336, orderNo=9, firstName=null, middleName=null, lastName=null, nameCn=null, orcid=null, stid=null, country=null, authorPic=null, dead=0, email=yankaixia@njmu.edu.cn, emailSecond=null, emailThird=null, correspondingAuthor=1, authorType=1, ext={EN=AuthorExt(id=1190597823135306483, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159986871575044336, authorId=1190597822996894443, language=EN, stringName=Yankai Xia, firstName=Yankai, middleName=null, lastName=Xia, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, b, *, address=aState Key Laboratory of Reproductive Medicine and Offspring Health, Center for Global Health, School of Public Health, Nanjing Medical University, Nanjing 211166, China
    bKey Laboratory of Modern Toxicology, Ministry of Education, School of Public Health, Nanjing Medical University, Nanjing, 211166, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null)]
    Qiurun Yu , Hongcheng Wei , Mingzhi Zhang , Xiaochen Zhang , Francis Manyori Bigambo , Danrong Chen , Quanquan Guan , Bo Hang , Antoine M. Snijders , Yankai Xia

    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-article
    Modular Engineering of a Synthetic Biology-Based Platform for Sustainable Bioremediation of Residual Antibiotics in Aquatic Environments
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    bGuangdong Laboratory for Lingnan Modern Agriculture, National Risk Assessment Laboratory for Antimicrobial Resistance of Animal Original Bacteria, College of Veterinary Medicine, South China Agricultural University, Guangzhou 510642, China
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    bGuangdong Laboratory for Lingnan Modern Agriculture, National Risk Assessment Laboratory for Antimicrobial Resistance of Animal Original Bacteria, College of Veterinary Medicine, South China Agricultural University, Guangzhou 510642, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1190597831376269400, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1160001122138120682, 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=1190597831514681444, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1160001122138120682, authorId=1190597831376269400, language=EN, stringName=Qian He, firstName=Qian, middleName=null, lastName=He, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, b, d, address=aState Key Laboratory for Animal Disease Control and Prevention, South China Agricultural University, Guangzhou 510642, China
    bGuangdong Laboratory for Lingnan Modern Agriculture, National Risk Assessment Laboratory for Antimicrobial Resistance of Animal Original Bacteria, College of Veterinary Medicine, South China Agricultural University, Guangzhou 510642, China
    dSchool of Biotechnology, Jiangnan University, Wuxi 214122, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1190597831846031471, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1160001122138120682, 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=1190597832160604279, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1160001122138120682, authorId=1190597831846031471, language=EN, stringName=Jiahao Zhong, firstName=Jiahao, middleName=null, lastName=Zhong, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, b, address=aState Key Laboratory for Animal Disease Control and Prevention, South China Agricultural University, Guangzhou 510642, China
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    bGuangdong Laboratory for Lingnan Modern Agriculture, National Risk Assessment Laboratory for Antimicrobial Resistance of Animal Original Bacteria, College of Veterinary Medicine, South China Agricultural University, Guangzhou 510642, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1190597832680697990, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1160001122138120682, orderNo=8, 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=1190597832865247370, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1160001122138120682, authorId=1190597832680697990, language=EN, stringName=Xinlei Lian, firstName=Xinlei, middleName=null, lastName=Lian, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, b, address=aState Key Laboratory for Animal Disease Control and Prevention, South China Agricultural University, Guangzhou 510642, China
    bGuangdong Laboratory for Lingnan Modern Agriculture, National Risk Assessment Laboratory for Antimicrobial Resistance of Animal Original Bacteria, College of Veterinary Medicine, South China Agricultural University, Guangzhou 510642, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1190597832974299278, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1160001122138120682, 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=1190597833272094875, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1160001122138120682, authorId=1190597832974299278, language=EN, stringName=Hongxia Jiang, firstName=Hongxia, middleName=null, lastName=Jiang, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, b, address=aState Key Laboratory for Animal Disease Control and Prevention, South China Agricultural University, Guangzhou 510642, China
    bGuangdong Laboratory for Lingnan Modern Agriculture, National Risk Assessment Laboratory for Antimicrobial Resistance of Animal Original Bacteria, College of Veterinary Medicine, South China Agricultural University, Guangzhou 510642, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1190597833368563872, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1160001122138120682, 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=1190597833578279084, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1160001122138120682, authorId=1190597833368563872, language=EN, stringName=Xiaoping Liao, firstName=Xiaoping, middleName=null, lastName=Liao, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, b, c, address=aState Key Laboratory for Animal Disease Control and Prevention, South China Agricultural University, Guangzhou 510642, China
    bGuangdong Laboratory for Lingnan Modern Agriculture, National Risk Assessment Laboratory for Antimicrobial Resistance of Animal Original Bacteria, College of Veterinary Medicine, South China Agricultural University, Guangzhou 510642, China
    cGuangdong Provincial Key Laboratory of Veterinary Pharmaceutics, Development and Safety Evaluation, South China Agricultural University, Guangzhou 510642, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1190597833691525299, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1160001122138120682, orderNo=11, firstName=null, middleName=null, lastName=null, nameCn=null, orcid=null, stid=null, country=null, authorPic=null, dead=0, email=jiansun@scau.edu.cn, emailSecond=null, emailThird=null, correspondingAuthor=1, authorType=1, ext={EN=AuthorExt(id=1190597833909629117, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1160001122138120682, authorId=1190597833691525299, language=EN, stringName=Jian Sun, firstName=Jian, middleName=null, lastName=Sun, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, b, c, e, *, address=aState Key Laboratory for Animal Disease Control and Prevention, South China Agricultural University, Guangzhou 510642, China
    bGuangdong Laboratory for Lingnan Modern Agriculture, National Risk Assessment Laboratory for Antimicrobial Resistance of Animal Original Bacteria, College of Veterinary Medicine, South China Agricultural University, Guangzhou 510642, China
    cGuangdong Provincial Key Laboratory of Veterinary Pharmaceutics, Development and Safety Evaluation, South China Agricultural University, Guangzhou 510642, China
    eJiangsu Co-Innovation Center for the Prevention and Control of Important Animal Infectious Disease and Zoonoses, Yangzhou University, Yangzhou 225009, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null)]
    Hao Ren , Meilin Qin , Lin Zhang , Zemiao Li , Yuze Li , Qian He , Jiahao Zhong , Donghao Zhao , Xinlei Lian , Hongxia Jiang , Xiaoping Liao , Jian 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.

  • Research-article
    Transmission of tmexCD1-toprJ1-Positive Klebsiella pneumoniae Across Multiple Ecological Niches: A Global Epidemiological and Genomic Analysis
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Guangdong Laboratory for Lingnan Modern Agriculture, College of Veterinary Medicine, South China Agricultural University, Guangzhou 510642, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1190597858031915160, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1189686268709180046, orderNo=12, firstName=null, middleName=null, lastName=null, nameCn=null, orcid=null, stid=null, country=null, authorPic=null, dead=0, email=zongzhiy@scu.edu.cn, emailSecond=null, emailThird=null, correspondingAuthor=1, authorType=1, ext={EN=AuthorExt(id=1190597858099024030, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1189686268709180046, authorId=1190597858031915160, language=EN, stringName=Zhiyong Zong, firstName=Zhiyong, middleName=null, lastName=Zong, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=c, *, address=cCenter of Infectious Diseases, West China Hospital of Sichuan University, Chengdu 610041, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1190597858153549986, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1189686268709180046, orderNo=13, firstName=null, middleName=null, lastName=null, nameCn=null, orcid=null, stid=null, country=null, authorPic=null, dead=0, email=jhliu21@163.com, emailSecond=null, emailThird=null, correspondingAuthor=1, authorType=1, ext={EN=AuthorExt(id=1190597858237436071, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1189686268709180046, authorId=1190597858153549986, language=EN, stringName=Jian-Hua Liu, firstName=Jian-Hua, middleName=null, lastName=Liu, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, b, *, address=aState Key Laboratory for Animal Disease Control and Prevention, Guangdong Laboratory for Lingnan Modern Agriculture, College of Veterinary Medicine, South China Agricultural University, Guangzhou 510642, China
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    Luchao Lv , Xun Gao , Chengzhen Wang , Guolong Gao , Jie Yang , Miao Wan , Zhongpeng Cai , Sheng Chen , Jing Wang , Chuying Liang , Chao Yue , Litao Lu , Zhiyong Zong , Jian-Hua 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-article
    Anti-Senescent Biomaterials for Breaking Intervertebral Disc Degeneration
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    cDepartment of Orthopedic, Guanghua Hospital Affiliated to Shanghai University of Traditional Chinese Medicine, Shanghai 200052, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null)]
    Jia-Ying Ding , Yang-Shuo Ge , Jun Shen , Wen-Yao Li , Chun-Meng Huang , Min-Jun Zhao , Jian-Li Yin , Xue-Zong Wang , Jian-Guang Xu , Wenguo Cui , Dao-Fang Ding

    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-article
    Direct Differentiation of Human Adult Adipose Tissue into Multilineage Functional Organoids
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    bShanghai Institute for Plastic and Reconstructive Surgery, Shanghai 200011, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1190597840423383459, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1189688101292344315, 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=1190597840784093621, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1189688101292344315, authorId=1190597840423383459, language=EN, stringName=Rehanguli Aimaier, firstName=Rehanguli, middleName=null, lastName=Aimaier, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, b, address=aDepartment of Plastic and Reconstructive Surgery, Shanghai Ninth People’s Hospital, Shanghai Jiao Tong University School of Medicine, Shanghai 200011, China
    bShanghai Institute for Plastic and Reconstructive Surgery, Shanghai 200011, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1190597841044140478, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1189688101292344315, orderNo=8, 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=1190597841417433550, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1189688101292344315, authorId=1190597841044140478, language=EN, stringName=Qiumei Ji, firstName=Qiumei, middleName=null, lastName=Ji, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, b, address=aDepartment of Plastic and Reconstructive Surgery, Shanghai Ninth People’s Hospital, Shanghai Jiao Tong University School of Medicine, Shanghai 200011, China
    bShanghai Institute for Plastic and Reconstructive Surgery, Shanghai 200011, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1190597841807503832, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1189688101292344315, 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=1190597842117882340, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1189688101292344315, authorId=1190597841807503832, language=EN, stringName=Gen Li, firstName=Gen, middleName=null, lastName=Li, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=c, address=cEye Hospital and Institute for Advanced Study on Eye Diseases and Health, Wenzhou Medical University, Wenzhou 325000, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1190597842491175408, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1189688101292344315, 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=1190597842868662778, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1189688101292344315, authorId=1190597842491175408, language=EN, stringName=Tao Zan, firstName=Tao, middleName=null, lastName=Zan, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, b, address=aDepartment of Plastic and Reconstructive Surgery, Shanghai Ninth People’s Hospital, Shanghai Jiao Tong University School of Medicine, Shanghai 200011, China
    bShanghai Institute for Plastic and Reconstructive Surgery, Shanghai 200011, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1190597843220984326, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1189688101292344315, orderNo=11, firstName=null, middleName=null, lastName=null, nameCn=null, orcid=null, stid=null, country=null, authorPic=null, dead=0, email=kang.zhang@gmail.com, emailSecond=null, emailThird=null, correspondingAuthor=1, authorType=1, ext={EN=AuthorExt(id=1190597843510391311, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1189688101292344315, authorId=1190597843220984326, language=EN, stringName=Kang Zhang, firstName=Kang, middleName=null, lastName=Zhang, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=c, d, *, address=cEye Hospital and Institute for Advanced Study on Eye Diseases and Health, Wenzhou Medical University, Wenzhou 325000, China
    dMacau Institute for Artificial Intelligence in Medicine, Faculty of Medicine, Macau University of Science and Technology, Macao 999078, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1190597843808186905, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1189688101292344315, orderNo=12, firstName=null, middleName=null, lastName=null, nameCn=null, orcid=null, stid=null, country=null, authorPic=null, dead=0, email=dr.liqingfeng@shsmu.edu.cn, emailSecond=null, emailThird=null, correspondingAuthor=1, authorType=1, ext={EN=AuthorExt(id=1190597844160508449, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1189688101292344315, authorId=1190597843808186905, language=EN, stringName=Qingfeng Li, firstName=Qingfeng, middleName=null, lastName=Li, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, b, *, address=aDepartment of Plastic and Reconstructive Surgery, Shanghai Ninth People’s Hospital, Shanghai Jiao Tong University School of Medicine, Shanghai 200011, China
    bShanghai Institute for Plastic and Reconstructive Surgery, Shanghai 200011, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null)]
    Ru-Lin Huang , Jing Yang , Yuxin Yan , Xiangqi Liu , Xiya Yin , Chuanqi Liu , Xingran Liu , Rehanguli Aimaier , Qiumei Ji , Gen Li , Tao Zan , Kang Zhang , Qingfeng 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.

  • Research-article
    MXene Hydrogel Microneedles with Nitric Oxide and HIF-1α Plasmid Controllable Releasing for Wound Healing
    [Author(id=1190597830173347940, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1189688534563946899, 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=1190597830517280883, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1189688534563946899, authorId=1190597830173347940, language=EN, stringName=Wanchuan Ding, firstName=Wanchuan, middleName=null, lastName=Ding, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, address=aDepartment of Rheumatology and Immunology, Nanjing Drum Tower Hospital, School of Biological Science and Medical Engineering, Southeast University, Nanjing 210096, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), 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orcid=null, stid=null, country=null, authorPic=null, dead=0, email=yjzhao@seu.edu.cn, emailSecond=null, emailThird=null, correspondingAuthor=1, authorType=1, ext={EN=AuthorExt(id=1190597833419739387, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1189688534563946899, authorId=1190597832702513385, language=EN, stringName=Yuanjin Zhao, firstName=Yuanjin, middleName=null, lastName=Zhao, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, b, c, *, address=aDepartment of Rheumatology and Immunology, Nanjing Drum Tower Hospital, School of Biological Science and Medical Engineering, Southeast University, Nanjing 210096, China
    bDepartment of Otolaryngology Head and Neck Surgery, Zhongda Hospital, Southeast University, Nanjing 210096, China
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    Wanchuan Ding , Xiangyi Wu , Yi Cheng , Ling Lu , Weijian Sun , Yuanjin Zhao

    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-article
    Intelligent Fault Diagnosis for CNC Through the Integration of Large Language Models and Domain Knowledge Graphs
    [Author(id=1190597817879843301, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1189689160585318422, 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=1190597818030838248, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1189689160585318422, authorId=1190597817879843301, language=EN, stringName=Yuhan Liu, firstName=Yuhan, middleName=null, lastName=Liu, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, address=aSchool of Mechanical Science and Engineering, Huazhong University of Science and Technology, Wuhan 430074, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1190597818127307242, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1189689160585318422, 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=1190597818186027500, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1189689160585318422, authorId=1190597818127307242, language=EN, stringName=Yuan Zhou, firstName=Yuan, middleName=null, lastName=Zhou, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=b, address=bSchool of Public Policy and Management, Tsinghua University, Beijing 100084, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1190597818240553454, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1189689160585318422, orderNo=2, firstName=null, middleName=null, lastName=null, nameCn=null, orcid=null, stid=null, country=null, authorPic=null, dead=0, email=liuyf@cae.cn, emailSecond=null, emailThird=null, correspondingAuthor=1, authorType=1, ext={EN=AuthorExt(id=1190597818307662321, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1189689160585318422, authorId=1190597818240553454, language=EN, stringName=Yufei Liu, firstName=Yufei, middleName=null, lastName=Liu, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=c, *, address=cCenter for Strategic Studies, Chinese Academy of Engineering, Beijing 100088, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1190597818362188278, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1189689160585318422, 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=1190597818471240191, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1189689160585318422, authorId=1190597818362188278, language=EN, stringName=Zhen Xu, firstName=Zhen, middleName=null, lastName=Xu, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, address=aSchool of Mechanical Science and Engineering, Huazhong University of Science and Technology, Wuhan 430074, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1190597818534154754, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1189689160585318422, 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=1190597818609652228, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1189689160585318422, authorId=1190597818534154754, language=EN, stringName=Yixin He, firstName=Yixin, middleName=null, lastName=He, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, address=aSchool of Mechanical Science and Engineering, Huazhong University of Science and Technology, Wuhan 430074, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null)] Yuhan Liu , Yuan Zhou , Yufei Liu , Zhen Xu , Yixin He

    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.