2025-12-26 , Volume 55 Issue 12

Cover illustration

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    Amid escalating environmental concerns surrounding wastewater pollution, recent advances in wastewater treatment technologies have introduced a novel solution that significantly enhances treatment efficiency. By utilizing an innovative electro-reactive membrane (RuO2@PbO2-M), this research achieves the rapid generation of reactive chlorine radicals, specifically ·ClO and ·Cl, through an advanced electro-filtration process. This dual-action mechanism effectively facilitates the conversion of harmful ammonia nitrogen and organic pollutants into benign byproducts, enabling simultaneous denitrification and decarbonization with minimal energy consumption. This study elucidates the complex pathways of radical generation and highlights the capability of the membrane to optimize mass transport, thereby ensuring peak catalyst performance. This innovative approach addresses the limitations of conventional wastewater treatment methods while providing pathways for integration into existing systems, thereby promoting sustainable practices. By enhancing the removal of nitrogen and carbon from wastewater, this study represents a significant advancement in environmental engineering, contributing to healthier aquatic ecosystems and improved public health outcomes, while underscoring the essential role of engineering advancements in tackling global environmental challenges.



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    Editorial
  • editorial
    Global Top Ten Engineering Achievements 2025
    [Author(id=1212359773723742513, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1212330237221065476, 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=1212359777121128778, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1212330237221065476, authorId=1212359773723742513, language=EN, stringName=Junzhi Cui, firstName=Junzhi, middleName=null, lastName=Cui, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=null, address=Chinese Academy of Engineering, Beijing100088,China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1212359780392685911, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1212330237221065476, 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=1212359783613911412, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1212330237221065476, authorId=1212359780392685911, language=EN, stringName=Jian-Feng Chen, firstName=Jian-Feng, middleName=null, lastName=Chen, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=null, address=Chinese Academy of Engineering, Beijing100088,China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null)] Junzhi Cui , Jian-Feng Chen

    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
  • news
    Chinese Biotechnology Ascends to World Stage
    [Author(id=1212359767260320011, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1199770202301702433, 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=1212359769168728340, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1199770202301702433, authorId=1212359767260320011, language=EN, stringName=Jennifer Welsh, firstName=Jennifer, middleName=null, lastName=Welsh, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=null, address=Senior Technology Writer, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null)] Jennifer Welsh

    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
    Quantum Computing Gamble Bets on Stealthy Majorana Qubits
    [Author(id=1212359768032989749, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1199770207771447773, 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=1212359768368534085, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1199770207771447773, authorId=1212359768032989749, 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=Senior Technology Writer, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null)] 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.

  • news
    AI’s Talent for Translation Lowers Language Barriers
    [Author(id=1212359752350486929, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1199770204239470921, 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=1212359753801716117, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1199770204239470921, authorId=1212359752350486929, 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=Senior Technology Writer, bio=null, 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.

  • Views & Comments
  • Correspondence
    Technological Development and Challenges in Emerging Ocean Industries and Infrastructures
    [Author(id=1212359778186481998, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762846319415659, 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=1212359778970816849, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762846319415659, authorId=1212359778186481998, language=EN, stringName=Huajun Li, firstName=Huajun, middleName=null, lastName=Li, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, address=aState Key Laboratory of Coastal and Offshore Engineering, Ocean University of China, Qingdao 265300, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1212359780438823257, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762846319415659, 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=1212359782397563235, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762846319415659, authorId=1212359780438823257, language=EN, stringName=Xinmeng Zeng, firstName=Xinmeng, middleName=null, lastName=Zeng, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, address=aState Key Laboratory of Coastal and Offshore Engineering, Ocean University of China, Qingdao 265300, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1212359783647465847, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762846319415659, 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=1212359784003981690, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762846319415659, authorId=1212359783647465847, language=EN, stringName=Torgeir Moan, firstName=Torgeir, middleName=null, lastName=Moan, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=b, address=bDepartment of Marine Technology, Norwegian University of Science and Technology, Trondheim 7491, Norway, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1212359784712819070, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762846319415659, orderNo=3, firstName=null, middleName=null, lastName=null, nameCn=null, orcid=null, stid=null, country=null, authorPic=null, dead=0, email=xukun@ouc.edu.cn, emailSecond=null, emailThird=null, correspondingAuthor=1, authorType=1, ext={EN=AuthorExt(id=1212359784826065283, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762846319415659, authorId=1212359784712819070, language=EN, stringName=Kun Xu, firstName=Kun, middleName=null, lastName=Xu, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, *, address=aState Key Laboratory of Coastal and Offshore Engineering, Ocean University of China, Qingdao 265300, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null)] Huajun Li , Xinmeng Zeng , Torgeir Moan , Kun Xu

    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
  • The Future of AI-Driven RNA Drug Development
    [Author(id=1212359773795963568, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762800630694144, 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=1212359774030844604, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762800630694144, authorId=1212359773795963568, language=EN, stringName=Yilin Yan, firstName=Yilin, middleName=null, lastName=Yan, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, b, address=aKey Laboratory of Smart Manuyfacturing in Energy Chemical Process,Mimistry of Fducation,East China University of Scence and Techolog, Shanghai 200237,China
    bState Key Laboratory of Ilndustrial Control Technology, East China University of Science and Technology, Shanghai 200237,China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1212359774194422470, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762800630694144, 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=1212359774458663637, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762800630694144, authorId=1212359774194422470, language=EN, stringName=Tianyu Wu, firstName=Tianyu, middleName=null, lastName=Wu, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, b, address=aKey Laboratory of Smart Manuyfacturing in Energy Chemical Process,Mimistry of Fducation,East China University of Scence and Techolog, Shanghai 200237,China
    bState Key Laboratory of Ilndustrial Control Technology, East China University of Science and Technology, Shanghai 200237,China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1212359774634824414, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762800630694144, orderNo=2, firstName=null, middleName=null, lastName=null, nameCn=null, orcid=null, stid=null, country=null, authorPic=null, dead=0, email=hlli@hsc.ecnu.edu.cn, emailSecond=null, emailThird=null, correspondingAuthor=1, authorType=1, ext={EN=AuthorExt(id=1212359774890676968, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762800630694144, authorId=1212359774634824414, language=EN, stringName=Honglin Li, firstName=Honglin, middleName=null, lastName=Li, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=c, *, address=cInnovation Center for Al and Drug Discovery, School of Pharmacy, East China Normal University, Shanghai 200062,China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1212359775167501043, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762800630694144, orderNo=3, firstName=null, middleName=null, lastName=null, nameCn=null, orcid=null, stid=null, country=null, authorPic=null, dead=0, email=yangtang@ecust.edu.cn, emailSecond=null, emailThird=null, correspondingAuthor=1, authorType=1, ext={EN=AuthorExt(id=1212359775503045380, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762800630694144, authorId=1212359775167501043, language=EN, stringName=Yang Tang, firstName=Yang, middleName=null, lastName=Tang, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, b, *, address=aKey Laboratory of Smart Manuyfacturing in Energy Chemical Process,Mimistry of Fducation,East China University of Scence and Techolog, Shanghai 200237,China
    bState Key Laboratory of Ilndustrial Control Technology, East China University of Science and Technology, Shanghai 200237,China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1212359775675011856, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762800630694144, orderNo=4, firstName=null, middleName=null, lastName=null, nameCn=null, orcid=null, stid=null, country=null, authorPic=null, dead=0, email=fqian@ecust.edu.cn, emailSecond=null, emailThird=null, correspondingAuthor=1, authorType=1, ext={EN=AuthorExt(id=1212359775880532764, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762800630694144, authorId=1212359775675011856, language=EN, stringName=Feng Qian, firstName=Feng, middleName=null, lastName=Qian, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, b, *, address=aKey Laboratory of Smart Manuyfacturing in Energy Chemical Process,Mimistry of Fducation,East China University of Scence and Techolog, Shanghai 200237,China
    bState Key Laboratory of Ilndustrial Control Technology, East China University of Science and Technology, Shanghai 200237,China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null)]
    Yilin Yan , Tianyu Wu , Honglin Li , Yang Tang , Feng Qian

    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
  • research-article
    Machine Memory Intelligence: Inspired by Human Memory Mechanisms
    [Author(id=1212359813452190417, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159999319094911563, 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=1212359813963895515, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159999319094911563, authorId=1212359813452190417, language=EN, stringName=Qinghua Zheng, firstName=Qinghua, middleName=null, lastName=Zheng, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, b, address=aSchool of Computer Science and Technology, Xi’an Jiaotong University, Xi’an 710049, China
    bShaanxi Provincial Key Laboratory of Big Data Knowledge Engineering, Xi’an Jiaotong University, Xi’an 710049, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1212359814597235432, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159999319094911563, orderNo=1, firstName=null, middleName=null, lastName=null, nameCn=null, orcid=null, stid=null, country=null, authorPic=null, dead=0, email=huanliu@xjtu.edu.cn, emailSecond=null, emailThird=null, correspondingAuthor=1, authorType=1, ext={EN=AuthorExt(id=1212359814945362673, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159999319094911563, authorId=1212359814597235432, language=EN, stringName=Huan Liu, firstName=Huan, middleName=null, lastName=Liu, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, b, *, address=aSchool of Computer Science and Technology, Xi’an Jiaotong University, Xi’an 710049, China
    bShaanxi Provincial Key Laboratory of Big Data Knowledge Engineering, Xi’an Jiaotong University, Xi’an 710049, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1212359816417563396, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159999319094911563, 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=1212359816983794443, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159999319094911563, authorId=1212359816417563396, language=EN, stringName=Xiaoqing Zhang, firstName=Xiaoqing, middleName=null, lastName=Zhang, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=c, d, address=cTranslational Research Institute of Brain and Brain-Like Intelligence, Shanghai Fourth People’s Hospital, Shanghai 200434, China
    dSchool of Medicine, Tongji University, Shanghai 200092, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1212359817390641944, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159999319094911563, 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=1212359818103673634, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159999319094911563, authorId=1212359817390641944, language=EN, stringName=Caixia Yan, firstName=Caixia, middleName=null, lastName=Yan, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, b, address=aSchool of Computer Science and Technology, Xi’an Jiaotong University, Xi’an 710049, China
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    bShaanxi Provincial Key Laboratory of Big Data Knowledge Engineering, Xi’an Jiaotong University, Xi’an 710049, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1212359819886252864, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159999319094911563, 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=1212359820221797194, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159999319094911563, authorId=1212359819886252864, language=EN, stringName=Tieliang Gong, firstName=Tieliang, middleName=null, lastName=Gong, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, b, address=aSchool of Computer Science and Technology, Xi’an Jiaotong University, Xi’an 710049, China
    bShaanxi Provincial Key Laboratory of Big Data Knowledge Engineering, Xi’an Jiaotong University, Xi’an 710049, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1212359820569924438, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159999319094911563, 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=1212359821073240923, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159999319094911563, authorId=1212359820569924438, language=EN, stringName=Yong-Jin Liu, firstName=Yong-Jin, middleName=null, lastName=Liu, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=e, address=eDepartment of Computer Science and Technology, Tsinghua University, Beijing 100084, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1212359821924684657, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159999319094911563, 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=1212359822230868860, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159999319094911563, authorId=1212359821924684657, language=EN, stringName=Bin Shi, firstName=Bin, middleName=null, lastName=Shi, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, b, address=aSchool of Computer Science and Technology, Xi’an Jiaotong University, Xi’an 710049, China
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    bShaanxi Provincial Key Laboratory of Big Data Knowledge Engineering, Xi’an Jiaotong University, Xi’an 710049, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1212359823271056280, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159999319094911563, 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=1212359824051196835, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159999319094911563, authorId=1212359823271056280, language=EN, stringName=Xiaocen Fan, firstName=Xiaocen, middleName=null, lastName=Fan, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=c, d, address=cTranslational Research Institute of Brain and Brain-Like Intelligence, Shanghai Fourth People’s Hospital, Shanghai 200434, China
    dSchool of Medicine, Tongji University, Shanghai 200092, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1212359824369963944, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159999319094911563, 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=1212359824986526644, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159999319094911563, authorId=1212359824369963944, language=EN, stringName=Ying Cai, firstName=Ying, middleName=null, lastName=Cai, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=f, address=fDepartment of Computer Science, Iowa State University, Ames, IA 50011, USA, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1212359825481454523, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159999319094911563, 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=1212359825980576715, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159999319094911563, authorId=1212359825481454523, language=EN, stringName=Jun Liu, firstName=Jun, middleName=null, lastName=Liu, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, b, address=aSchool of Computer Science and Technology, Xi’an Jiaotong University, Xi’an 710049, China
    bShaanxi Provincial Key Laboratory of Big Data Knowledge Engineering, Xi’an Jiaotong University, Xi’an 710049, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null)]
    Qinghua Zheng , Huan Liu , Xiaoqing Zhang , Caixia Yan , Xiangyong Cao , Tieliang Gong , Yong-Jin Liu , Bin Shi , Zhen Peng , Xiaocen Fan , Ying Cai , Jun 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
    Data-Model Fusion Methods and Applications Toward Smart Manufacturing and Digital Engineering
    [Author(id=1212359762307764727, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159998875257856449, orderNo=0, firstName=null, middleName=null, lastName=null, nameCn=null, orcid=null, stid=null, country=null, authorPic=null, dead=0, email=ftao@buaa.edu.cn, emailSecond=null, emailThird=null, correspondingAuthor=1, authorType=1, ext={EN=AuthorExt(id=1212359762861412866, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159998875257856449, authorId=1212359762307764727, language=EN, stringName=Fei Tao, firstName=Fei, middleName=null, lastName=Tao, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, b, *, address=aDigital Twin Research Center, International Frontier lnterdisciplinary Science Research Institute,Beihang University,Beijing 100191, China
    bSchool of Automation Science and Electrical Engineering,Beihang University, Beijing 100191, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1212359763238900229, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159998875257856449, 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=1212359763482169863, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159998875257856449, authorId=1212359763238900229, language=EN, stringName=Yilin Li, firstName=Yilin, middleName=null, lastName=Li, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=b, address=bSchool of Automation Science and Electrical Engineering,Beihang University, Beijing 100191, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1212359764417499663, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159998875257856449, 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=1212359764664963601, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159998875257856449, authorId=1212359764417499663, language=EN, stringName=Yupeng Wei, firstName=Yupeng, middleName=null, lastName=Wei, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, address=aDigital Twin Research Center, International Frontier lnterdisciplinary Science Research Institute,Beihang University,Beijing 100191, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1212359765147308564, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159998875257856449, 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=1212359766502068767, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159998875257856449, authorId=1212359765147308564, language=EN, stringName=Chenyuan Zhang, firstName=Chenyuan, middleName=null, lastName=Zhang, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=b, address=bSchool of Automation Science and Electrical Engineering,Beihang University, Beijing 100191, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1212359768385311302, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159998875257856449, 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=1212359768800547403, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159998875257856449, authorId=1212359768385311302, language=EN, stringName=Ying Zuo, firstName=Ying, middleName=null, lastName=Zuo, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=b, address=bSchool of Automation Science and Electrical Engineering,Beihang University, Beijing 100191, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null)]
    Fei Tao , Yilin Li , Yupeng Wei , Chenyuan Zhang , Ying Zuo

    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
    Material Removal Mechanisms in Ultra-High-Speed Machining
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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
    Physics-Guided Deep Network for Milling Dynamics Prediction
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    bSchool of Machinery and Automation, Wuhan University of Science and Technology, Wuhan 430081, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1212359786198519969, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159990274510348866, 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=1212359786458566832, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159990274510348866, authorId=1212359786198519969, language=EN, stringName=Jun Li, firstName=Jun, middleName=null, lastName=Li, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, b, address=aLab of Precision Manufacturing, Institute of Intelligent Machines, Hefei Institutes of Physical Science, Chinese Academy of Sciences, Changzhou 213164, China
    bSchool of Machinery and Automation, Wuhan University of Science and Technology, Wuhan 430081, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null)]
    Kunpeng Zhu , Jun 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
    Self-Adaptive Core-Shell Dry Adhesive with a “Live Core” for High-Strength Adhesion Under Non-Parallel Contact
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    bFrontier Institute of Science and Technology (FIST), Xi’anJiaotongUniversity,Xi’an710049,ChinaHongmiao, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null)]
    Duorui Wang , Hongmiao Tian , Jinyu Zhang , Haoran Liu , Xiangming Li , Chunhui Wang , Xiaoliang Chen , Jinyou 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
    A Soft Tactile Unit with Three-Dimensional Force and Temperature Mathematical Decoupling Ability for Robots
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    cCenter for Smart Manufacturing, The Hong Kong University of Science and Technology, Hong Kong 999077, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null)]
    Xiong Yang , Hao Ren , Dong Guo , Zhengrong Ling , Tieshan Zhang , Gen Li , Yifeng Tang , Haoxiang Zhao , Jiale Wang , Hongyuan Chang , TszKi Gao , Jia Dong , Ningxin Wu , Yajing Shen

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

  • Review-article
    Construction Robotics in Extreme Environments: From Earth to Space
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    bSchool of Civil and Hydraulic Engineering, Huazhong University of Science and Technology, Wuhan 430074, China
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    bSchool of Civil and Hydraulic Engineering, Huazhong University of Science and Technology, Wuhan 430074, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1212359838194389021, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159998449108181208, orderNo=2, firstName=null, middleName=null, lastName=null, nameCn=null, orcid=null, stid=null, country=null, authorPic=null, dead=0, email=dly@hust.edu.cn, emailSecond=null, emailThird=null, correspondingAuthor=1, authorType=1, ext={EN=AuthorExt(id=1212359838802563110, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159998449108181208, authorId=1212359838194389021, language=EN, stringName=Lieyun Ding, firstName=Lieyun, middleName=null, lastName=Ding, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, b, *, address=aNational Center of Technology Innovation for Digital Construction, Huazhong University of Science and Technology, Wuhan 430074, China
    bSchool of Civil and Hydraulic Engineering, Huazhong University of Science and Technology, Wuhan 430074, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1212359839045832754, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159998449108181208, 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=1212359839549149245, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159998449108181208, authorId=1212359839045832754, language=EN, stringName=Yuxiang Wang, firstName=Yuxiang, middleName=null, lastName=Wang, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, b, address=aNational Center of Technology Innovation for Digital Construction, Huazhong University of Science and Technology, Wuhan 430074, China
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    Ke You , Cheng Zhou , Lieyun Ding , Yuxiang 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
    The Convergence of Artificial Intelligence and Microfluidics in Drug Research and Development
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stringName=Weiping Zhu, firstName=Weiping, middleName=null, lastName=Zhu, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=b, address=bShanghai Key Laboratory of New Drug Design, School of Pharmacy, East China University of Science and Technology, Shanghai 200237, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1212359784931840132, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1199770206143685032, 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=1212359785175109774, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1199770206143685032, authorId=1212359784931840132, language=EN, stringName=Xuhong Qian, firstName=Xuhong, middleName=null, lastName=Qian, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=c, address=cInnovation Center for AI and Drug Discovery, School of Pharmacy, East China Normal University, Shanghai 200062, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1212359786106245276, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1199770206143685032, orderNo=9, firstName=null, middleName=null, lastName=null, nameCn=null, orcid=null, stid=null, country=null, authorPic=null, dead=0, email=hlli@hsc.ecnu.edu.cn, emailSecond=null, emailThird=null, correspondingAuthor=1, authorType=1, ext={EN=AuthorExt(id=1212359786324349100, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1199770206143685032, authorId=1212359786106245276, language=EN, stringName=Honglin Li, firstName=Honglin, middleName=null, lastName=Li, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=c, *, address=cInnovation Center for AI and Drug Discovery, School of Pharmacy, East China Normal University, Shanghai 200062, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null)] Du Qiao , Hongxia Li , Xue Zhang , Xuhui Chen , Jiang Zhang , Jianan Zou , Danyang Zhao , Weiping Zhu , Xuhong Qian , Honglin 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
    Highly Selective Production of “Jadeite Hydrogen” from the Catalytic Decomposition of Diesel
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address=aDepartment of Chemical Engineering, Tsinghua University, Beijing 100084, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1212359775216914748, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762842175275175, 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=1212359775946723650, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762842175275175, authorId=1212359775216914748, language=EN, stringName=Yong Jin, firstName=Yong, middleName=null, lastName=Jin, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, address=aDepartment of Chemical Engineering, Tsinghua University, Beijing 100084, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null)] Bofan Li , Ruijing Jiao , Chaojie Cui , Xiang Yu , Jian Wang , Yunhai Ma , Weizhong Qian , Yong Jin

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

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    Huan Jin , Guanyu Xiao , Chao Zhou , Chuanyi Zhao , Shijie Shi , Haihong Liu , Fang Liu , Huajun Liu , Yu Wu , Zuojiafeng Wu , Hugues Bajas , Jack Greenwood , Mattia Ortino , Kamil Sedlak , Valentina Corato , Richard Kamendje , Alexandre Torre , Arend Nijhuis , Giulio Anniballi , Arnaud Devred , Jinggang Qina , Yuntao Song , Jiangang 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.

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    Efficient Multifunctional Modification of Commercial Carbon Fiber Through Tailored Carbon Layer Structure
    [Author(id=1212359819311633208, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159989080178090388, 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=1212359820079190855, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159989080178090388, authorId=1212359819311633208, language=EN, stringName=Chun Pei, firstName=Chun, middleName=null, lastName=Pei, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, b, address=aCollege of Civil and Transportation Engineering, Shenzhen University, Shenzhen 518060, China
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    bGuangdong Province Key Laboratory of Durability for Marine Civil Engineering, Shenzhen 518060, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1212359821190681442, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159989080178090388, orderNo=2, firstName=null, middleName=null, lastName=null, nameCn=null, orcid=null, stid=null, country=null, authorPic=null, dead=0, email=zhujh@szu.edu.cn, emailSecond=null, emailThird=null, correspondingAuthor=1, authorType=1, ext={EN=AuthorExt(id=1212359821488477034, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159989080178090388, authorId=1212359821190681442, language=EN, stringName=Ji-Hua Zhu, firstName=Ji-Hua, middleName=null, lastName=Zhu, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, b, *, address=aCollege of Civil and Transportation Engineering, Shenzhen University, Shenzhen 518060, China
    bGuangdong Province Key Laboratory of Durability for Marine Civil Engineering, Shenzhen 518060, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1212359822151177081, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159989080178090388, 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=1212359822369280897, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159989080178090388, authorId=1212359822151177081, language=EN, stringName=Feng Xing, firstName=Feng, middleName=null, lastName=Xing, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=b, c, address=bGuangdong Province Key Laboratory of Durability for Marine Civil Engineering, Shenzhen 518060, China
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    Chun Pei , Hongtao Yu , Ji-Hua Zhu , Feng Xing

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

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    Microcrack/Microscale Decorated Fiber-Based Electronics for Waist Rehabilitation
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address=aResearch Center of Health and Protective Smart Textiles, College of Textiles and Clothing, Qingdao University, Qingdao 266071, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1212359786492121265, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762807530492135, orderNo=10, firstName=null, middleName=null, lastName=null, nameCn=null, orcid=null, stid=null, country=null, authorPic=null, dead=0, email=liyutian@qdu.edu.cn, emailSecond=null, emailThird=null, correspondingAuthor=1, authorType=1, ext={EN=AuthorExt(id=1212359786697642169, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762807530492135, authorId=1212359786492121265, language=EN, stringName=Yutian Li, firstName=Yutian, middleName=null, lastName=Li, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, *, address=aResearch Center of Health and Protective Smart Textiles, College of Textiles and Clothing, Qingdao University, Qingdao 266071, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null)] Feiyu Tong , Jingmin Shi , Qi Jiang , Ming Li , Ruidong Xu , Ganghua Li , Yuanyuan Liu , Xinyu Zhang , Jinfeng Yang , Mingwei Tian , Yutian 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
    Simultaneous Denitrification and Decarbonization of Wastewater over In Situ Generation of ·ClO Radicals Through a Fast, High-Performance Electro-Filtration Process
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    bCenter for Water and Ecology, State Key Joint Laboratory of Environment Simulation and Pollution Control, School of Environment, Tsinghua University, Beijing 100084, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1212359811325678259, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198699356191854890, 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=1212359812697215678, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198699356191854890, authorId=1212359811325678259, language=EN, stringName=Jialin Yang, firstName=Jialin, middleName=null, lastName=Yang, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, c, #, address=aKey Laboratory of Environmental Aquatic Chemistry, State Key Laboratory of Regional Environment and Sustainability, Research Center for Eco-Environmental Sciences, Chinese Academy of Sciences, Beijing 100085, China
    cScience and Technology Innovation Center for Municipal Wastewater Treatment and Water Quality Protection, School of Environment, Northeast Normal University, Changchun 130117, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1212359813108257487, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198699356191854890, 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=1212359813829677785, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198699356191854890, authorId=1212359813108257487, language=EN, stringName=Ruiping Liu, firstName=Ruiping, middleName=null, lastName=Liu, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=b, address=bCenter for Water and Ecology, State Key Joint Laboratory of Environment Simulation and Pollution Control, School of Environment, Tsinghua University, Beijing 100084, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1212359814408491748, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198699356191854890, 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=1212359814798562030, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198699356191854890, authorId=1212359814408491748, language=EN, stringName=Jiuhui Qu, firstName=Jiuhui, middleName=null, lastName=Qu, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, b, address=aKey Laboratory of Environmental Aquatic Chemistry, State Key Laboratory of Regional Environment and Sustainability, Research Center for Eco-Environmental Sciences, Chinese Academy of Sciences, Beijing 100085, China
    bCenter for Water and Ecology, State Key Joint Laboratory of Environment Simulation and Pollution Control, School of Environment, Tsinghua University, Beijing 100084, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1212359815415124728, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198699356191854890, orderNo=4, firstName=null, middleName=null, lastName=null, nameCn=null, orcid=null, stid=null, country=null, authorPic=null, dead=0, email=mengsun@rcees.ac.cn, emailSecond=null, emailThird=null, correspondingAuthor=1, authorType=1, ext={EN=AuthorExt(id=1212359816031687422, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198699356191854890, authorId=1212359815415124728, language=EN, stringName=Meng Sun, firstName=Meng, middleName=null, lastName=Sun, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, b, *, address=aKey Laboratory of Environmental Aquatic Chemistry, State Key Laboratory of Regional Environment and Sustainability, Research Center for Eco-Environmental Sciences, Chinese Academy of Sciences, Beijing 100085, China
    bCenter for Water and Ecology, State Key Joint Laboratory of Environment Simulation and Pollution Control, School of Environment, Tsinghua University, Beijing 100084, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null)]
    Bin Zhao , Jialin Yang , Ruiping Liu , Jiuhui Qu , Meng 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
    Toward Sustainable Agriculture: The Design of Environmentally Friendly, Economical, and Modular Vertical Farming Systems
    [Author(id=1212359768121070137, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762863251653390, 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=1212359768725049929, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762863251653390, authorId=1212359768121070137, language=EN, stringName=Junye Wu, firstName=Junye, middleName=null, lastName=Wu, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, b, c, address=aResearch Center of Solar Power and Refrigeration, Institute of Refrigeration and Cryogenics, Shanghai Jiao Tong University, Shanghai 200240, China
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    dNUS Environmental Research Institute, National University of Singapore, Singapore 138602, Singapore, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1212359770511823449, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762863251653390, 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=1212359770826396255, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762863251653390, authorId=1212359770511823449, language=EN, stringName=Guiying Lin, firstName=Guiying, middleName=null, lastName=Lin, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=b, c, address=bEnergy and Environmental Sustainability Solutions for Megacities (E2S2), Campus for Research Excellence and Technological Enterprise (CREATE), Singapore 138602, Singapore
    cDepartment of Chemical and Biomolecular Engineering, National University of Singapore, Singapore 117585, Singapore, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1212359770964808289, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762863251653390, 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=1212359771359072873, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762863251653390, authorId=1212359770964808289, language=EN, stringName=Dequan Xu, firstName=Dequan, middleName=null, lastName=Xu, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, b, c, address=aResearch Center of Solar Power and Refrigeration, Institute of Refrigeration and Cryogenics, Shanghai Jiao Tong University, Shanghai 200240, China
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    cDepartment of Chemical and Biomolecular Engineering, National University of Singapore, Singapore 117585, Singapore, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1212359771782697582, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762863251653390, 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=1212359772135019128, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762863251653390, authorId=1212359771782697582, language=EN, stringName=Yiying Wang, firstName=Yiying, middleName=null, lastName=Wang, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=b, c, address=bEnergy and Environmental Sustainability Solutions for Megacities (E2S2), Campus for Research Excellence and Technological Enterprise (CREATE), Singapore 138602, Singapore
    cDepartment of Chemical and Biomolecular Engineering, National University of Singapore, Singapore 117585, Singapore, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1212359772462174846, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762863251653390, 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=1212359772684472966, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762863251653390, authorId=1212359772462174846, language=EN, stringName=Clive Chong, firstName=Clive, middleName=null, lastName=Chong, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=e, address=eParadise Eco Tourism Pte. Ltd., Singapore 049909, Singapore, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1212359772877410959, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762863251653390, 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=1212359773498167962, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762863251653390, authorId=1212359772877410959, language=EN, stringName=Yanjun Dai, firstName=Yanjun, middleName=null, lastName=Dai, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, b, address=aResearch Center of Solar Power and Refrigeration, Institute of Refrigeration and Cryogenics, Shanghai Jiao Tong University, Shanghai 200240, China
    bEnergy and Environmental Sustainability Solutions for Megacities (E2S2), Campus for Research Excellence and Technological Enterprise (CREATE), Singapore 138602, Singapore, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1212359773682717350, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762863251653390, orderNo=7, firstName=null, middleName=null, lastName=null, nameCn=null, orcid=null, stid=null, country=null, authorPic=null, dead=0, email=chewch@nus.edu.sg, emailSecond=null, emailThird=null, correspondingAuthor=1, authorType=1, ext={EN=AuthorExt(id=1212359773858878134, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762863251653390, authorId=1212359773682717350, language=EN, stringName=Chi-Hwa Wang, firstName=Chi-Hwa, middleName=null, lastName=Wang, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=b, c, *, address=bEnergy and Environmental Sustainability Solutions for Megacities (E2S2), Campus for Research Excellence and Technological Enterprise (CREATE), Singapore 138602, Singapore
    cDepartment of Chemical and Biomolecular Engineering, National University of Singapore, Singapore 117585, Singapore, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1212359774085370559, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762863251653390, orderNo=8, firstName=null, middleName=null, lastName=null, nameCn=null, orcid=null, stid=null, country=null, authorPic=null, dead=0, email=baby_wo@sjtu.edu.cn, emailSecond=null, emailThird=null, correspondingAuthor=1, authorType=1, ext={EN=AuthorExt(id=1212359774282502861, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762863251653390, authorId=1212359774085370559, language=EN, stringName=Tianshu Ge, firstName=Tianshu, middleName=null, lastName=Ge, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, b, *, address=aResearch Center of Solar Power and Refrigeration, Institute of Refrigeration and Cryogenics, Shanghai Jiao Tong University, Shanghai 200240, China
    bEnergy and Environmental Sustainability Solutions for Megacities (E2S2), Campus for Research Excellence and Technological Enterprise (CREATE), Singapore 138602, Singapore, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null)]
    Junye Wu , Yoke Wang Cheng , Guiying Lin , Dequan Xu , Yiying Wang , Clive Chong , Yanjun Dai , Chi-Hwa Wang , Tianshu Ge

    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
    Livestock Probiotics in China: Quality Analysis and Enterococcus-Associated Antibiotic Resistance Dissemination Risks
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for Food Quality and Safety & State Key Laboratory Cultivation Base of Ministry of Science and Technology, Institute of Food Safety and Nutrition,Jiangsu Academy of Agricultural Sciences, Nanjing 210040, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1212359809631179415, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1160000794244210947, 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=1212359810839138981, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1160000794244210947, authorId=1212359809631179415, language=EN, stringName=Lili Zhang, firstName=Lili, middleName=null, lastName=Zhang, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, 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lastName=He, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, *, address=aJiangsu Key Laboratory for Food Quality and Safety & State Key Laboratory Cultivation Base of Ministry of Science and Technology, Institute of Food Safety and Nutrition,Jiangsu Academy of Agricultural Sciences, Nanjing 210040, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null)]
    Xing Ji , Jiayun Wang , Jun Li , Lili Zhang , Ruicheng Wei , Ran Wang , Tao 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
    Revealing the Mechanisms of Compound Kushen Injection on Oxidative Stress Regulation in the Treatment of Radiation-Induced Lung Injury
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authorComment=null, nameInitials=null, affiliation=null, department=null, xref=b, *, address=bDepartment of Microbiology and Immunology, Guangdong Pharmaceutical University, Guangzhou 510006, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1212359781102441455, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762841399328885, orderNo=10, firstName=null, middleName=null, lastName=null, nameCn=null, orcid=null, stid=null, country=null, authorPic=null, dead=0, email=shaoli@tsinghua.edu.cn, emailSecond=null, emailThird=null, correspondingAuthor=1, authorType=1, ext={EN=AuthorExt(id=1212359781324739579, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762841399328885, authorId=1212359781102441455, language=EN, stringName=Shao Li, firstName=Shao, middleName=null, lastName=Li, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, *, address=aInstitute for TCM-X, MOE Key Laboratory of Bioinformatics, Bioinformatics Division, BNRist, Department of Automation, Tsinghua University, Beijing 100084, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null)] Boyang Wang , Defei Kong , Zhiru Yang , Jun Kang , Deyang Sun , Xiumei Duan , Jing Jin , Tingyu Zhang , Qingyuan Liu , Hui Yin , Shao 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
    Single-Nucleus RNA Sequencing Reveals the Mechanism of Neonatal Hypoxic–Ischemic Encephalopathy and the Neuroprotection Effects of Salvianolic Acid C
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    bState Key Laboratory of Chinese Medicine Modernization, Innovation Center of Yangtze River Delta, Zhejiang University, Jiaxing 314102, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1212359813989061340, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762817412104510, orderNo=1, firstName=null, middleName=null, lastName=null, nameCn=null, orcid=null, stid=null, country=null, authorPic=null, dead=0, email=luciali@zju.edu.cn, emailSecond=null, emailThird=null, correspondingAuthor=1, authorType=1, ext={EN=AuthorExt(id=1212359814773396205, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762817412104510, authorId=1212359813989061340, language=EN, stringName=Lu Li, firstName=Lu, middleName=null, lastName=Li, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, b, c, d, *, address=aCollege of Pharmaceutical Sciences & Women’s Hospital, School of Medicine, Zhejiang University, Hangzhou 310058, China
    bState Key Laboratory of Chinese Medicine Modernization, Innovation Center of Yangtze River Delta, Zhejiang University, Jiaxing 314102, China
    cDepartment of Obstetrics and Gynaecology & Li Ka Shing Institute of Health Sciences & School of Biomedical Sciences & Sichuan University-The Chinese University of Hong Kong Joint Reproductive Medicine Laboratory, The Chinese University of Hong Kong, Hong Kong 999077, China
    dModern Chinese Medicine and Reproductive Health Joint Innovation Center, Innovation Center of Yangtze River Delta, Zhejiang University, Jiaxing 314102, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1212359816052658943, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762817412104510, 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=1212359817059291916, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762817412104510, authorId=1212359816052658943, language=EN, stringName=Xinyue Liu, firstName=Xinyue, middleName=null, lastName=Liu, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, b, address=aCollege of Pharmaceutical Sciences & Women’s Hospital, School of Medicine, Zhejiang University, Hangzhou 310058, China
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    bState Key Laboratory of Chinese Medicine Modernization, Innovation Center of Yangtze River Delta, Zhejiang University, Jiaxing 314102, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1212359822956483468, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762817412104510, 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=1212359823224918935, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762817412104510, authorId=1212359822956483468, language=EN, stringName=Malte Spielmann, firstName=Malte, middleName=null, lastName=Spielmann, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=e, address=eInstitute of Human Genetics, University Medical Center Schleswig-Holstein, University of Lübeck & Kiel University, Lübeck 23538, Germany, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1212359823908590495, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762817412104510, 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=1212359824424489898, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762817412104510, authorId=1212359823908590495, language=EN, stringName=Chi Chiu Wang, firstName=Chi, middleName=null, lastName=Chiu Wang, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=c, d, address=cDepartment of Obstetrics and Gynaecology & Li Ka Shing Institute of Health Sciences & School of Biomedical Sciences & Sichuan University-The Chinese University of Hong Kong Joint Reproductive Medicine Laboratory, The Chinese University of Hong Kong, Hong Kong 999077, China
    dModern Chinese Medicine and Reproductive Health Joint Innovation Center, Innovation Center of Yangtze River Delta, Zhejiang University, Jiaxing 314102, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1212359824927806386, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762817412104510, orderNo=10, firstName=null, middleName=null, lastName=null, nameCn=null, orcid=null, stid=null, country=null, authorPic=null, dead=0, email=cong6406@hebmu.edu.cn, emailSecond=null, emailThird=null, correspondingAuthor=1, authorType=1, ext={EN=AuthorExt(id=1212359825208824761, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762817412104510, authorId=1212359824927806386, language=EN, stringName=Bin Cong, firstName=Bin, middleName=null, lastName=Cong, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=f, *, address=fHebei Key Laboratory of Forensic Medicine, College of Forensic Medicine & College of Integrated Traditional Chinese and Western Medicine & College of Basic Medicine, Hebei Medical University, Shijiazhuang 050017, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1212359825699558338, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762817412104510, orderNo=11, firstName=null, middleName=null, lastName=null, nameCn=null, orcid=null, stid=null, country=null, authorPic=null, dead=0, email=fanxh@zju.edu.cn, emailSecond=null, emailThird=null, correspondingAuthor=1, authorType=1, ext={EN=AuthorExt(id=1212359826467115981, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762817412104510, authorId=1212359825699558338, language=EN, stringName=Xiaohui Fan, firstName=Xiaohui, middleName=null, lastName=Fan, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, b, d, *, address=aCollege of Pharmaceutical Sciences & Women’s Hospital, School of Medicine, Zhejiang University, Hangzhou 310058, China
    bState Key Laboratory of Chinese Medicine Modernization, Innovation Center of Yangtze River Delta, Zhejiang University, Jiaxing 314102, China
    dModern Chinese Medicine and Reproductive Health Joint Innovation Center, Innovation Center of Yangtze River Delta, Zhejiang University, Jiaxing 314102, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null)]
    Xuan Mou , Lu Li , Xinyue Liu , Aolin Zhang , Tao He , Baofeng Rao , Jiatian Zhang , Renjie Chen , Malte Spielmann , Chi Chiu Wang , Bin Cong , Xiaohui Fan

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

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    Joint Optimization of Train Timetable and Rolling Stock Circulation Plan with Flexible Composition and Skip-Stop Strategies for Co-Transportation of Passenger and Freight
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orderNo=1, firstName=null, middleName=null, lastName=null, nameCn=null, orcid=null, stid=null, country=null, authorPic=null, dead=0, email=qijianguo@bjtu.edu.cn, emailSecond=null, emailThird=null, correspondingAuthor=1, authorType=1, ext={EN=AuthorExt(id=1212454994214965969, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762822541738661, authorId=1212454994147857103, language=EN, stringName=Jianguo Qi, firstName=Jianguo, middleName=null, lastName=Qi, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, *, address=aSchool of Systems Science, Beijing Jiaotong University, Beijing 100044, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1212454994273686227, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762822541738661, orderNo=2, firstName=null, middleName=null, lastName=null, nameCn=null, orcid=null, stid=null, country=null, 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ext={EN=AuthorExt(id=1212454994504372953, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762822541738661, authorId=1212454994433069783, language=EN, stringName=Zhen Di, firstName=Zhen, middleName=null, lastName=Di, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=b, address=bSchool of Transportation Engineering, East China Jiaotong University, Nanchang 330013, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1212454994575676123, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762822541738661, orderNo=4, firstName=null, middleName=null, lastName=null, nameCn=null, orcid=null, stid=null, country=null, authorPic=null, dead=0, email=hszhou@bjtu.edu.cn, emailSecond=null, emailThird=null, correspondingAuthor=1, authorType=1, ext={EN=AuthorExt(id=1212454994684728029, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762822541738661, authorId=1212454994575676123, language=EN, stringName=Housheng Zhou, firstName=Housheng, middleName=null, lastName=Zhou, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, *, address=aSchool of Systems Science, Beijing Jiaotong University, Beijing 100044, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1212454994751836895, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762822541738661, 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=1212454994860888801, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1198762822541738661, authorId=1212454994751836895, language=EN, stringName=Chuntian Zhang, firstName=Chuntian, middleName=null, lastName=Zhang, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, address=aSchool of Systems Science, Beijing Jiaotong University, Beijing 100044, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null)] Jianian He , Jianguo Qi , Lixing Yang , Zhen Di , Housheng Zhou , Chuntian 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.