2019-02-28 , Volume 5 Issue 1

Cover illustration

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    Artemisinin and its derivatives represent the most important and influential class of drugs in the fight against malaria. In this issue, Tu and her colleagues discussed the process of discovery of artemisinin, the potential mechanism of action, and future application to other important diseases. The cover shows the Artemisia annua L. (Chinese name: Huanghuahao), from which the artemisinin was derived. The first recorded usage of Artemisia plants as a specific remedy for malarial symptoms was in Ge Hong’s Zhouhou Beiji Fang (Handbook of Prescriptions for Emergency) dating back to the Eastern Jin Dynasty (317–420 AD), which is also shown in the cover.

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    Editorial
  • Editorial
    The Quest for the Modernization and Internationalization of Traditional Chinese Medicine
    [Author(id=1166069214483243446, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159839964408111631, 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=1166069214638432697, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159839964408111631, authorId=1166069214483243446, language=EN, stringName=Boli Zhang, firstName=Boli, middleName=null, lastName=Zhang, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, address=a Tianjin University of Traditional Chinese Medicine, Tianjin 300193, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null), CN=AuthorExt(id=1166069214755873211, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159839964408111631, authorId=1166069214483243446, language=CN, stringName=张伯礼, firstName=null, middleName=null, lastName=null, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, address=a Tianjin University of Traditional Chinese Medicine, Tianjin 300193, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1166069214873313726, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159839964408111631, 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=1166069215024308673, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159839964408111631, authorId=1166069214873313726, language=EN, stringName=Shengli Yang, firstName=Shengli, middleName=null, lastName=Yang, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=b, address=b Shanghai Institutes for Biological Sciences, Chinese Academy of Sciences, Shanghai 200031, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null), CN=AuthorExt(id=1166069215137554884, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159839964408111631, authorId=1166069214873313726, language=CN, stringName=杨胜利, firstName=null, middleName=null, lastName=null, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=b, address=b Shanghai Institutes for Biological Sciences, Chinese Academy of Sciences, Shanghai 200031, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1166069215254995399, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159839964408111631, 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=1166069215418573259, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159839964408111631, authorId=1166069215254995399, language=EN, stringName=De-an Guo, firstName=De-an, middleName=null, lastName=Guo, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=c, address=c Shanghai Institute of Materia Medica, Chinese Academy of Sciences, Shanghai 201203, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null), CN=AuthorExt(id=1166069215531819469, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159839964408111631, authorId=1166069215254995399, language=CN, stringName=果德安, firstName=null, middleName=null, lastName=null, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=c, address=c Shanghai Institute of Materia Medica, Chinese Academy of Sciences, Shanghai 201203, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null)] Boli Zhang , Shengli Yang , De-an Guo

    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.

  • Editorial
    Cell Therapy: A New Era of Disease Intervention
    [Author(id=1166069219315081707, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159840123418370636, 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=1166069219466076653, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159840123418370636, authorId=1166069219315081707, language=EN, stringName=Ling Lu, firstName=Ling, middleName=null, lastName=Lu, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, address=a Nanjing Medical University, Nanjing 211166, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null), CN=AuthorExt(id=1166069219570934255, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159840123418370636, authorId=1166069219315081707, language=CN, stringName=吕凌, firstName=null, middleName=null, lastName=null, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, address=a Nanjing Medical University, Nanjing 211166, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1166069219679986162, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159840123418370636, 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=1166069219830981108, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159840123418370636, authorId=1166069219679986162, language=EN, stringName=Zhigang Tian, firstName=Zhigang, middleName=null, lastName=Tian, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=b, address=b University of Science and Technology of China, Hefei 230026, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null), CN=AuthorExt(id=1166069219940033013, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159840123418370636, authorId=1166069219679986162, language=CN, stringName=田志刚, firstName=null, middleName=null, lastName=null, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=b, address=b University of Science and Technology of China, Hefei 230026, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1166069220049084919, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159840123418370636, 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=1166069220204274169, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159840123418370636, authorId=1166069220049084919, language=EN, stringName=Xuehao Wang, firstName=Xuehao, middleName=null, lastName=Wang, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, address=a Nanjing Medical University, Nanjing 211166, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null), CN=AuthorExt(id=1166069220317520378, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159840123418370636, authorId=1166069220049084919, language=CN, stringName=王学浩, firstName=null, middleName=null, lastName=null, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, address=a Nanjing Medical University, Nanjing 211166, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null)] Ling Lu , Zhigang Tian , Xuehao 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.

  • Topic Insights
  • Topic Insights
    Cell Therapy: Pharmacological Intervention Enters a Third Era
    [Author(id=1166069092219281755, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159839958594806284, 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=1166069092378665309, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159839958594806284, authorId=1166069092219281755, language=EN, stringName=Wei He, firstName=Wei, middleName=null, lastName=He, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=null, address= Professor, MD, Chairman of the Department of Immunology, Institute of Basic Medical Sciences, Chinese Academy of Medical Sciences & School of Basic Medicine, Peking Union Medical College, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null), CN=AuthorExt(id=1166069092483522910, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159839958594806284, authorId=1166069092219281755, language=CN, stringName=何维, firstName=null, middleName=null, lastName=null, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=null, address= Professor, MD, Chairman of the Department of Immunology, Institute of Basic Medical Sciences, Chinese Academy of Medical Sciences & School of Basic Medicine, Peking Union Medical College, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null)] Wei 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.

  • Engineering Achievements
  • Engineering Achievements
    The Hong Kong–Zhuhai–Macao Bridge
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    c CCCC Highway Consultant Co., Ltd., Beijing 100088, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1166068383742616227, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159839090336129798, 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=1166068383847473829, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159839090336129798, authorId=1166068383742616227, language=EN, stringName=Xiaodong Liu, firstName=Xiaodong, middleName=null, lastName=Liu, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=c, address=c CCCC Highway Consultant Co., Ltd., Beijing 100088, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null), CN=AuthorExt(id=1166068383931359911, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159839090336129798, authorId=1166068383742616227, language=CN, stringName=刘晓东, firstName=null, middleName=null, lastName=null, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=c, address=c CCCC Highway Consultant Co., Ltd., Beijing 100088, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1166068384011051689, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159839090336129798, 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=1166068384115909291, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159839090336129798, authorId=1166068384011051689, language=EN, stringName=Wei Lin, firstName=Wei, middleName=null, lastName=Lin, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=c, address=c CCCC Highway Consultant Co., Ltd., Beijing 100088, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null), CN=AuthorExt(id=1166068384195601068, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159839090336129798, authorId=1166068384011051689, language=CN, stringName=林巍, firstName=null, middleName=null, lastName=null, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=c, address=c CCCC Highway Consultant Co., Ltd., Beijing 100088, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null)]
    Yonglin Zhu , Ming Lin , Fanchao Meng , Xiaodong Liu , Wei Lin

    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.

  • Engineering Achievements
    State-of-the-Art Technology in the Construction of Sea-Crossing Fixed Links with a Bridge, Island, and Tunnel Combination
    [Author(id=1166069273065087693, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159840018283946822, 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=1166069273211888335, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159840018283946822, authorId=1166069273065087693, language=EN, stringName=Yaojun Ge, firstName=Yaojun, middleName=null, lastName=Ge, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=null, address= State Key Laboratory of Disaster Reduction in Civil Engineering, Tongji University, Shanghai 200092, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null), CN=AuthorExt(id=1166069273316745936, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159840018283946822, authorId=1166069273065087693, language=CN, stringName=葛耀君, firstName=null, middleName=null, lastName=null, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=null, address= State Key Laboratory of Disaster Reduction in Civil Engineering, Tongji University, Shanghai 200092, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1166069273429992146, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159840018283946822, 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=1166069273572598484, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159840018283946822, authorId=1166069273429992146, language=EN, stringName=Yong Yuan, firstName=Yong, middleName=null, lastName=Yuan, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=null, address= State Key Laboratory of Disaster Reduction in Civil Engineering, Tongji University, Shanghai 200092, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null), CN=AuthorExt(id=1166069273681650389, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159840018283946822, authorId=1166069273429992146, language=CN, stringName=袁勇, firstName=null, middleName=null, lastName=null, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=null, address= State Key Laboratory of Disaster Reduction in Civil Engineering, Tongji University, Shanghai 200092, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null)] Yaojun Ge , Yong Yuan

    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 Traditional Chinese Medicine—Perspective
    The Globalization of Traditional Medicines: Perspectives Related to the European Union Regulatory Environment
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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 Traditional Chinese Medicine—Review
    Artemisinin, the Magic Drug Discovered from Traditional Chinese Medicine
    [Author(id=1166068615020733100, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159839558030385362, 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=1, authorType=1, ext={EN=AuthorExt(id=1166068615209476791, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159839558030385362, authorId=1166068615020733100, language=EN, stringName=Jigang Wang, firstName=Jigang, middleName=null, lastName=Wang, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, b, c, d, *, address=a Artemisinin Research Center, China Academy of Chinese Medical Sciences, Beijing 100700, China
    b Institute of Chinese Materia Medica, China Academy of Chinese Medical Sciences, Beijing 100700, China
    c Department of Pharmacology, Yong Loo Lin School of Medicine, National University of Singapore, Singapore 117600, Singapore
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    b Institute of Chinese Materia Medica, China Academy of Chinese Medical Sciences, Beijing 100700, China
    c Department of Pharmacology, Yong Loo Lin School of Medicine, National University of Singapore, Singapore 117600, Singapore
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    b Institute of Chinese Materia Medica, China Academy of Chinese Medical Sciences, Beijing 100700, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1166068616211915482, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159839558030385362, 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=1166068616362910432, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159839558030385362, authorId=1166068616211915482, language=EN, stringName=Fulong Liao, firstName=Fulong, middleName=null, lastName=Liao, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, b, address=a Artemisinin Research Center, China Academy of Chinese Medical Sciences, Beijing 100700, China
    b Institute of Chinese Materia Medica, China Academy of Chinese Medical Sciences, Beijing 100700, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null), CN=AuthorExt(id=1166068616476156642, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159839558030385362, authorId=1166068616211915482, language=CN, stringName=廖福龙, firstName=null, middleName=null, lastName=null, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, b, address=a Artemisinin Research Center, China Academy of Chinese Medical Sciences, Beijing 100700, China
    b Institute of Chinese Materia Medica, China Academy of Chinese Medical Sciences, Beijing 100700, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1166068616564237029, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159839558030385362, 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=1166068616715231979, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159839558030385362, authorId=1166068616564237029, language=EN, stringName=Tingliang Jiang, firstName=Tingliang, middleName=null, lastName=Jiang, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, b, address=a Artemisinin Research Center, China Academy of Chinese Medical Sciences, Beijing 100700, China
    b Institute of Chinese Materia Medica, China Academy of Chinese Medical Sciences, Beijing 100700, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null), CN=AuthorExt(id=1166068616799118062, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159839558030385362, authorId=1166068616564237029, language=CN, stringName=姜廷良, firstName=null, middleName=null, lastName=null, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, b, address=a Artemisinin Research Center, China Academy of Chinese Medical Sciences, Beijing 100700, China
    b Institute of Chinese Materia Medica, China Academy of Chinese Medical Sciences, Beijing 100700, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1166068616891392753, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159839558030385362, 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=1166068617038193398, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159839558030385362, authorId=1166068616891392753, language=EN, stringName=Youyou Tu, firstName=Youyou, middleName=null, lastName=Tu, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, b, address=a Artemisinin Research Center, China Academy of Chinese Medical Sciences, Beijing 100700, China
    b Institute of Chinese Materia Medica, China Academy of Chinese Medical Sciences, Beijing 100700, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null), CN=AuthorExt(id=1166068617126273784, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159839558030385362, authorId=1166068616891392753, language=CN, stringName=屠呦呦, firstName=null, middleName=null, lastName=null, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, b, address=a Artemisinin Research Center, China Academy of Chinese Medical Sciences, Beijing 100700, China
    b Institute of Chinese Materia Medica, China Academy of Chinese Medical Sciences, Beijing 100700, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null)]
    Jigang Wang , Chengchao Xu , Yin Kwan Wong , Yujie Li , Fulong Liao , Tingliang Jiang , Youyou Tu

    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 Traditional Chinese Medicine—Review
    Enhancing Clinical Efficacy through the Gut Microbiota: A New Field of Traditional Chinese Medicine
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    b Collaborative Innovation Center for Diagnosis and Treatment of Infectious Diseases, Hangzhou 310003, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null), CN=AuthorExt(id=1166068639242838089, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159839587226935637, authorId=1166068638970208325, language=CN, stringName=陆艳蒙, firstName=null, middleName=null, lastName=null, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, b, *, address=a State Key Laboratory for Diagnosis and Treatment of Infectious Diseases, The First Affiliated Hospital, School of Medicine, Zhejiang University, Hangzhou 310003, China
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    b Collaborative Innovation Center for Diagnosis and Treatment of Infectious Diseases, Hangzhou 310003, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null), CN=AuthorExt(id=1166068639616131151, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159839587226935637, authorId=1166068639343501387, language=CN, stringName=谢娇娇, firstName=null, middleName=null, lastName=null, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, b, *, address=a State Key Laboratory for Diagnosis and Treatment of Infectious Diseases, The First Affiliated Hospital, School of Medicine, Zhejiang University, Hangzhou 310003, China
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    b Collaborative Innovation Center for Diagnosis and Treatment of Infectious Diseases, Hangzhou 310003, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null), CN=AuthorExt(id=1166068639989424213, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159839587226935637, authorId=1166068639720988753, language=CN, stringName=彭聪高, firstName=null, middleName=null, lastName=null, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, b, *, address=a State Key Laboratory for Diagnosis and Treatment of Infectious Diseases, The First Affiliated Hospital, School of Medicine, Zhejiang University, Hangzhou 310003, China
    b Collaborative Innovation Center for Diagnosis and Treatment of Infectious Diseases, Hangzhou 310003, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1166068640094281815, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159839587226935637, 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=1, authorType=1, ext={EN=AuthorExt(id=1166068640262053978, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159839587226935637, authorId=1166068640094281815, language=EN, stringName=Bao-Hong Wang, firstName=Bao-Hong, middleName=null, lastName=Wang, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, b, *, address=a State Key Laboratory for Diagnosis and Treatment of Infectious Diseases, The First Affiliated Hospital, School of Medicine, Zhejiang University, Hangzhou 310003, China
    b Collaborative Innovation Center for Diagnosis and Treatment of Infectious Diseases, Hangzhou 310003, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null), CN=AuthorExt(id=1166068640362717275, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159839587226935637, authorId=1166068640094281815, language=CN, stringName=王保红, firstName=null, middleName=null, lastName=null, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, b, *, address=a State Key Laboratory for Diagnosis and Treatment of Infectious Diseases, The First Affiliated Hospital, School of Medicine, Zhejiang University, Hangzhou 310003, China
    b Collaborative Innovation Center for Diagnosis and Treatment of Infectious Diseases, Hangzhou 310003, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1166068640463380573, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159839587226935637, 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=1166068640631152736, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159839587226935637, authorId=1166068640463380573, language=EN, stringName=Kai-Cen Wang, firstName=Kai-Cen, middleName=null, lastName=Wang, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, b, address=a State Key Laboratory for Diagnosis and Treatment of Infectious Diseases, The First Affiliated Hospital, School of Medicine, Zhejiang University, Hangzhou 310003, China
    b Collaborative Innovation Center for Diagnosis and Treatment of Infectious Diseases, Hangzhou 310003, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null), CN=AuthorExt(id=1166068640731816033, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159839587226935637, authorId=1166068640463380573, language=CN, stringName=王恺岑, firstName=null, middleName=null, lastName=null, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, b, address=a State Key Laboratory for Diagnosis and Treatment of Infectious Diseases, The First Affiliated Hospital, School of Medicine, Zhejiang University, Hangzhou 310003, China
    b Collaborative Innovation Center for Diagnosis and Treatment of Infectious Diseases, Hangzhou 310003, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1166068640836673635, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159839587226935637, 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=1166068641008640102, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159839587226935637, authorId=1166068640836673635, language=EN, stringName=Lan-Juan Li, firstName=Lan-Juan, middleName=null, lastName=Li, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, b, address=a State Key Laboratory for Diagnosis and Treatment of Infectious Diseases, The First Affiliated Hospital, School of Medicine, Zhejiang University, Hangzhou 310003, China
    b Collaborative Innovation Center for Diagnosis and Treatment of Infectious Diseases, Hangzhou 310003, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null), CN=AuthorExt(id=1166068641109303399, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159839587226935637, authorId=1166068640836673635, language=CN, stringName=李兰娟, firstName=null, middleName=null, lastName=null, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, b, address=a State Key Laboratory for Diagnosis and Treatment of Infectious Diseases, The First Affiliated Hospital, School of Medicine, Zhejiang University, Hangzhou 310003, China
    b Collaborative Innovation Center for Diagnosis and Treatment of Infectious Diseases, Hangzhou 310003, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null)]
    Yan-Meng Lu , Jiao-Jiao Xie , Cong-Gao Peng , Bao-Hong Wang , Kai-Cen Wang , Lan-Juan 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 Traditional Chinese Medicine—Review
    Biotechnology Applications of Plant Callus Cultures
    [Author(id=1166067853276406440, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159838773016060408, 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=1166067853410624172, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159838773016060408, authorId=1166067853276406440, language=EN, stringName=Thomas Efferth, firstName=Thomas, middleName=null, lastName=Efferth, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=null, address= Department of Pharmaceutical Biology, Institute of Pharmacy and Biochemistry, Johannes Gutenberg University Mainz, Mainz 55128, Germany, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null), CN=AuthorExt(id=1166067853523870381, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159838773016060408, authorId=1166067853276406440, language=CN, stringName=Thomas Efferth, firstName=null, middleName=null, lastName=null, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=null, address= Department of Pharmaceutical Biology, Institute of Pharmacy and Biochemistry, Johannes Gutenberg University Mainz, Mainz 55128, Germany, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null)] Thomas Efferth

    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 Traditional Chinese Medicine—Review
    Chinmedomics: A Powerful Approach Integrating Metabolomics with Serum Pharmacochemistry to Evaluate the Efficacy of Traditional Chinese Medicine
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bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1166068317824934423, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159839064968979196, 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=1166068317963346457, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159839064968979196, authorId=1166068317824934423, language=EN, stringName=Xi-Jun Wang, firstName=Xi-Jun, middleName=null, lastName=Wang, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=null, address= National Chinmedomics Research Center & Sino-America Chinmedomics Technology Collaboration Center & National TCM Key Laboratory of Serum Pharmacochemistry & Laboratory of Metabolomics, Department of Pharmaceutical Analysis, Heilongjiang University of Chinese Medicine, Harbin 150040, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null), CN=AuthorExt(id=1166068318051426842, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159839064968979196, authorId=1166068317824934423, language=CN, stringName=王喜军, firstName=null, middleName=null, lastName=null, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=null, address= National Chinmedomics Research Center & Sino-America Chinmedomics Technology Collaboration Center & National TCM Key Laboratory of Serum Pharmacochemistry & Laboratory of Metabolomics, Department of Pharmaceutical Analysis, Heilongjiang University of Chinese Medicine, Harbin 150040, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null)] Ai-Hua Zhang , Hui Sun , Guang-Li Yan , Ying Han , Qi-Qi Zhao , Xi-Jun Wang

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

  • Research Traditional Chinese Medicine—Review
    Andrographolide Loaded in Micro- and Nano-Formulations: Improved Bioavailability, Target-Tissue Distribution, and Efficacy of the “King of Bitters”
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authorId=1166069133721920203, language=EN, stringName=Giulia Vanti, firstName=Giulia, middleName=null, lastName=Vanti, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=null, address= Department of Chemistry “Ugo Schiff,” University of Florence, Sesto Fiorentino 50019, Italy, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null), CN=AuthorExt(id=1166069133960995537, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159839977985073705, authorId=1166069133721920203, language=CN, stringName=Giulia Vanti, firstName=null, middleName=null, lastName=null, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=null, address= Department of Chemistry “Ugo Schiff,” University of Florence, Sesto Fiorentino 50019, Italy, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1166069134044881621, 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authorId=1166069134044881621, language=CN, stringName=Veri Piazzini, firstName=null, middleName=null, lastName=null, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=null, address= Department of Chemistry “Ugo Schiff,” University of Florence, Sesto Fiorentino 50019, Italy, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1166069134401397469, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159839977985073705, 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=1166069134531420897, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159839977985073705, authorId=1166069134401397469, language=EN, stringName=Maria Camilla Bergonzi, firstName=Maria Camilla, middleName=null, lastName=Bergonzi, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=null, address= Department of Chemistry “Ugo Schiff,” University of Florence, Sesto Fiorentino 50019, Italy, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null), CN=AuthorExt(id=1166069134619501282, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159839977985073705, authorId=1166069134401397469, language=CN, stringName=Maria Camilla Bergonzi, firstName=null, middleName=null, lastName=null, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=null, address= Department of Chemistry “Ugo Schiff,” University of Florence, Sesto Fiorentino 50019, Italy, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1166069134711775973, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159839977985073705, 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=1166069134829216487, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159839977985073705, authorId=1166069134711775973, language=EN, stringName=Anna Rita Bilia, firstName=Anna Rita, middleName=null, lastName=Bilia, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=null, address= Department of Chemistry “Ugo Schiff,” University of Florence, Sesto Fiorentino 50019, Italy, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null), CN=AuthorExt(id=1166069134913102569, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159839977985073705, authorId=1166069134711775973, language=CN, stringName=Anna Rita Bilia, firstName=null, middleName=null, lastName=null, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=null, address= Department of Chemistry “Ugo Schiff,” University of Florence, Sesto Fiorentino 50019, Italy, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null)] Marta Casamonti , Laura Risaliti , Giulia Vanti , Veri Piazzini , Maria Camilla Bergonzi , Anna Rita Bilia

    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 Traditional Chinese Medicine—Review
    Safety Research in Traditional Chinese Medicine: Methods, Applications, and Outlook
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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=1166069212159598969, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159839957835637259, authorId=1166069212021186933, language=EN, stringName=Xiaohui Fan, firstName=Xiaohui, middleName=null, lastName=Fan, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=c, address=c Pharmaceutical Informatics Institute, College of Pharmaceutical Sciences, Zhejiang University, Hangzhou 310058, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null), CN=AuthorExt(id=1166069212247679356, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159839957835637259, authorId=1166069212021186933, language=CN, stringName=范骁辉, firstName=null, middleName=null, lastName=null, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=c, address=c Pharmaceutical Informatics Institute, College of Pharmaceutical Sciences, Zhejiang University, Hangzhou 310058, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1166069212327371136, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159839957835637259, 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=1166069212440617347, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159839957835637259, authorId=1166069212327371136, language=EN, stringName=Limin Hu, firstName=Limin, middleName=null, lastName=Hu, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=d, address=d 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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=1166069212717441421, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159839957835637259, authorId=1166069212608389513, language=EN, stringName=Feiran Hao, firstName=Feiran, middleName=null, lastName=Hao, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, address=a Institute of Radiation Medicine, Academy of Military Medical Sciences, Beijing 100850, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null), CN=AuthorExt(id=1166069212801327502, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159839957835637259, authorId=1166069212608389513, language=CN, stringName=郝斐然, firstName=null, middleName=null, lastName=null, prefix=null, suffix=null, authorComment=null, 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Medicine, School of Chinese Materia Medica, Tianjin University of Traditional Chinese Medicine, Tianjin 300193, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null), CN=AuthorExt(id=1166069213073957271, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159839957835637259, authorId=1166069212881019281, language=CN, stringName=李遇伯, firstName=null, middleName=null, lastName=null, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=d, address=d Tianjin State Key Laboratory of Modern Chinese Medicine, School of Chinese Materia Medica, Tianjin University of Traditional Chinese Medicine, Tianjin 300193, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null)] Yue Gao , Aihua Liang , Xiaohui Fan , Limin Hu , Feiran Hao , Yubo 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 Traditional Chinese Medicine—Review
    Deeper Chemical Perceptions for Better Traditional Chinese Medicine Standards
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Shanghai 201203, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1166069155670712331, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159839986226881127, 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=1166069155817512974, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159839986226881127, authorId=1166069155670712331, language=EN, stringName=Rudolf Bauer, firstName=Rudolf, middleName=null, lastName=Bauer, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=b, address=b Department of Pharmacognosy, Institute of Pharmaceutical Sciences, Karl-Franzens-Universität Graz, Graz A-8010, Austria, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null), CN=AuthorExt(id=1166069155922370576, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159839986226881127, authorId=1166069155670712331, language=CN, stringName=Rudolf Bauer, firstName=null, middleName=null, lastName=null, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=b, address=b Department of Pharmacognosy, Institute of Pharmaceutical Sciences, Karl-Franzens-Universität Graz, Graz A-8010, Austria, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1166069156039811091, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159839986226881127, 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=1166069156186611734, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159839986226881127, authorId=1166069156039811091, language=EN, stringName=Ikhlas A. Khan, firstName=Ikhlas A., middleName=null, lastName=Khan, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=c, address=c National Center for Natural Products Research, School of Pharmacy, The University of Mississippi, University, MS 38677, USA, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null), CN=AuthorExt(id=1166069156291469336, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159839986226881127, authorId=1166069156039811091, language=CN, stringName=Ikhlas A. Khan, firstName=null, middleName=null, lastName=null, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=c, address=c National Center for Natural Products Research, School of Pharmacy, The University of Mississippi, University, MS 38677, USA, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1166069156404715546, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159839986226881127, 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=1166069156551516188, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159839986226881127, authorId=1166069156404715546, language=EN, stringName=Wan-Ying Wu, firstName=Wan-Ying, middleName=null, lastName=Wu, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, address=a Shanghai Research Center for Modernization of Traditional Chinese Medicine, National Engineering Laboratory for TCM Standardization Technology, Shanghai Institute of Materia Medica, Chinese Academy of Sciences, Shanghai 201203, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null), CN=AuthorExt(id=1166069156660568093, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159839986226881127, authorId=1166069156404715546, language=CN, stringName=吴婉莹, firstName=null, middleName=null, lastName=null, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, address=a Shanghai Research Center for Modernization of Traditional Chinese Medicine, National Engineering Laboratory for TCM Standardization Technology, Shanghai Institute of Materia Medica, Chinese Academy of Sciences, Shanghai 201203, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1166069156769620000, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159839986226881127, 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=1166069156916420642, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159839986226881127, authorId=1166069156769620000, language=EN, stringName=De-an Guo, firstName=De-an, middleName=null, lastName=Guo, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, address=a Shanghai Research Center for Modernization of Traditional Chinese Medicine, National Engineering Laboratory for TCM Standardization Technology, Shanghai Institute of Materia Medica, Chinese Academy of Sciences, Shanghai 201203, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null), CN=AuthorExt(id=1166069157025472547, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159839986226881127, authorId=1166069156769620000, language=CN, stringName=果德安, firstName=null, middleName=null, lastName=null, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, address=a Shanghai Research Center for Modernization of Traditional Chinese Medicine, National Engineering Laboratory for TCM Standardization Technology, Shanghai Institute of Materia Medica, Chinese Academy of Sciences, Shanghai 201203, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null)] Jin-Jun Hou , Jian-Qing Zhang , Chang-Liang Yao , Rudolf Bauer , Ikhlas A. Khan , Wan-Ying Wu , De-an Guo

    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 Immunology—Review
    Immune Regulatory Cell Biology and Clinical Applications to Prevent or Treat Acute Graft-Versus-Host Disease
    [Author(id=1166068721807712773, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159839543018971330, 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=1166068721925153288, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159839543018971330, authorId=1166068721807712773, language=EN, stringName=Bruce R. Blazar, firstName=Bruce R., middleName=null, lastName=Blazar, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=null, address= Masonic Cancer Center & Division of Blood and Marrow Transplantation, Department of Pediatrics, University of Minnesota, Minneapolis, MN 55455, USA, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null), CN=AuthorExt(id=1166068722025816586, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159839543018971330, authorId=1166068721807712773, language=CN, stringName=Bruce R. Blazar, firstName=null, middleName=null, lastName=null, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=null, address= Masonic Cancer Center & Division of Blood and Marrow Transplantation, Department of Pediatrics, University of Minnesota, Minneapolis, MN 55455, USA, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null)] Bruce R. Blazar

    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 Immunology—Review
    Natural Killer Cell-Based Immunotherapy for Cancer: Advances and Prospects
    [Author(id=1166068740761772860, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159839550153482441, 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=1166068740891796287, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159839550153482441, authorId=1166068740761772860, language=EN, stringName=Yuan Hu, firstName=Yuan, middleName=null, lastName=Hu, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, address=a Institute of Immunopharmacology and Immunotherapy, School of Pharmaceutical Sciences, Shandong University, Jinan 250012, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null), CN=AuthorExt(id=1166068740996653890, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159839550153482441, authorId=1166068740761772860, language=CN, stringName=胡渊, firstName=null, middleName=null, lastName=null, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, address=a Institute of Immunopharmacology and Immunotherapy, School of Pharmaceutical Sciences, Shandong University, Jinan 250012, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1166068741101511493, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159839550153482441, 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=1166068741235729224, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159839550153482441, authorId=1166068741101511493, language=EN, stringName=Zhigang Tian, firstName=Zhigang, middleName=null, lastName=Tian, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=b, address=b Institute of Immunology, School of Life Sciences, University of Science and Technology of China, Hefei 230061, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null), CN=AuthorExt(id=1166068741336392522, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159839550153482441, authorId=1166068741101511493, language=CN, stringName=田志刚, firstName=null, middleName=null, lastName=null, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=b, address=b Institute of Immunology, School of Life Sciences, University of Science and Technology of China, Hefei 230061, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1166068741441250125, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159839550153482441, 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=1166068741575467856, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159839550153482441, authorId=1166068741441250125, language=EN, stringName=Cai Zhang, firstName=Cai, middleName=null, lastName=Zhang, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, address=a Institute of Immunopharmacology and Immunotherapy, School of Pharmaceutical Sciences, Shandong University, Jinan 250012, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null), CN=AuthorExt(id=1166068741676131154, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159839550153482441, authorId=1166068741441250125, language=CN, stringName=张彩, firstName=null, middleName=null, lastName=null, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, address=a Institute of Immunopharmacology and Immunotherapy, School of Pharmaceutical Sciences, Shandong University, Jinan 250012, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null)] Yuan Hu , Zhigang Tian , Cai Zhang

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

  • Review Immunology—Review
    FOXP3 and Its Cofactors as Targets of Immunotherapies
    [Author(id=1166069129619890811, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159839971576177180, 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=1166069129770885758, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159839971576177180, authorId=1166069129619890811, language=EN, stringName=Yasuhiro Nagai, firstName=Yasuhiro, middleName=null, lastName=Nagai, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=null, address= Department of Pathology and Laboratory Medicine, Perelman School of Medicine, University of Pennsylvania, Philadelphia, PA 19104-4238, USA, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null), CN=AuthorExt(id=1166069129884131969, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159839971576177180, authorId=1166069129619890811, language=CN, stringName=Yasuhiro Nagai, firstName=null, middleName=null, lastName=null, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=null, address= Department of Pathology and Laboratory Medicine, Perelman School of Medicine, University of Pennsylvania, Philadelphia, PA 19104-4238, USA, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1166069130001572484, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159839971576177180, 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=1166069130156761735, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159839971576177180, authorId=1166069130001572484, language=EN, stringName=Lian Lam, firstName=Lian, middleName=null, lastName=Lam, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=null, address= Department of Pathology and Laboratory Medicine, Perelman School of Medicine, University of Pennsylvania, Philadelphia, PA 19104-4238, USA, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null), CN=AuthorExt(id=1166069130270007944, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159839971576177180, authorId=1166069130001572484, language=CN, stringName=Lian Lam, firstName=null, middleName=null, lastName=null, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=null, address= Department of Pathology and Laboratory Medicine, Perelman School of Medicine, University of Pennsylvania, Philadelphia, PA 19104-4238, USA, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1166069130387448459, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159839971576177180, 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=1166069130542637709, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159839971576177180, authorId=1166069130387448459, language=EN, stringName=Mark I. Greene, firstName=Mark I., middleName=null, lastName=Greene, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=null, address= Department of Pathology and Laboratory Medicine, Perelman School of Medicine, University of Pennsylvania, Philadelphia, PA 19104-4238, USA, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null), CN=AuthorExt(id=1166069130660078222, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159839971576177180, authorId=1166069130387448459, language=CN, stringName=Mark I. Greene, firstName=null, middleName=null, lastName=null, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=null, address= Department of Pathology and Laboratory Medicine, Perelman School of Medicine, University of Pennsylvania, Philadelphia, PA 19104-4238, USA, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1166069130777518736, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159839971576177180, 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=1166069130928513682, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159839971576177180, authorId=1166069130777518736, language=EN, stringName=Hongtao Zhang, firstName=Hongtao, middleName=null, lastName=Zhang, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=null, address= Department of Pathology and Laboratory Medicine, Perelman School of Medicine, University of Pennsylvania, Philadelphia, PA 19104-4238, USA, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null), CN=AuthorExt(id=1166069131045954195, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159839971576177180, authorId=1166069130777518736, language=CN, stringName=Hongtao Zhang, firstName=null, middleName=null, lastName=null, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=null, address= Department of Pathology and Laboratory Medicine, Perelman School of Medicine, University of Pennsylvania, Philadelphia, PA 19104-4238, USA, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null)] Yasuhiro Nagai , Lian Lam , Mark I. Greene , Hongtao 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.

  • Research Immunology—Review
    Quality Control and Nonclinical Research on CAR-T Cell Products: General Principles and Key Issues
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China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1166068747413939115, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159839972595393054, 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=1166068747560739759, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159839972595393054, authorId=1166068747413939115, language=EN, stringName=Junzhi Wang, firstName=Junzhi, middleName=null, lastName=Wang, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=null, address= National Institutes for Food and Drug Control, Beijing 100050, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null), CN=AuthorExt(id=1166068747669791665, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159839972595393054, authorId=1166068747413939115, language=CN, stringName=王军志, firstName=null, middleName=null, lastName=null, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=null, address= National Institutes for Food and Drug Control, Beijing 100050, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null)] Yonghong Li , Yan Huo , Lei Yu , Junzhi Wang

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

  • Research Immunology—Review
    Regulatory T Cells and Their Clinical Applications in Antitumor Immunotherapy
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    b Department of Immunology and Microbiology, Shanghai Jiao Tong University School of Medicine, Shanghai 200025, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1166068757614486507, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159839567199133932, 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=1166068757757092846, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159839567199133932, authorId=1166068757614486507, language=EN, stringName=Rui Liang, firstName=Rui, middleName=null, lastName=Liang, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, b, address=a Shanghai Institute of Immunology, Shanghai Jiao Tong University School of Medicine, Shanghai 200025, China
    b Department of Immunology and Microbiology, Shanghai Jiao Tong University School of Medicine, Shanghai 200025, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null), CN=AuthorExt(id=1166068757866144751, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159839567199133932, authorId=1166068757614486507, language=CN, stringName=梁瑞, firstName=null, middleName=null, lastName=null, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, b, address=a Shanghai Institute of Immunology, Shanghai Jiao Tong University School of Medicine, Shanghai 200025, China
    b Department of Immunology and Microbiology, Shanghai Jiao Tong University School of Medicine, Shanghai 200025, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1166068757958419441, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159839567199133932, 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=1166068758109414388, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159839567199133932, authorId=1166068757958419441, language=EN, stringName=Dan Li, firstName=Dan, middleName=null, lastName=Li, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, b, address=a Shanghai Institute of Immunology, Shanghai Jiao Tong University School of Medicine, Shanghai 200025, China
    b Department of Immunology and Microbiology, Shanghai Jiao Tong University School of Medicine, Shanghai 200025, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null), CN=AuthorExt(id=1166068758201689077, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159839567199133932, authorId=1166068757958419441, language=CN, stringName=李丹, firstName=null, middleName=null, lastName=null, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, b, address=a Shanghai Institute of Immunology, Shanghai Jiao Tong University School of Medicine, Shanghai 200025, China
    b Department of Immunology and Microbiology, Shanghai Jiao Tong University School of Medicine, Shanghai 200025, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1166068758289769463, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159839567199133932, 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=1166068758440764410, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159839567199133932, authorId=1166068758289769463, language=EN, stringName=Bin Li, firstName=Bin, middleName=null, lastName=Li, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, b, address=a Shanghai Institute of Immunology, Shanghai Jiao Tong University School of Medicine, Shanghai 200025, China
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    Feng Xie , Rui Liang , Dan Li , Bin 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 Immunology—Review
    Engineered T Cell Therapies from a Drug Development Viewpoint
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    Fang Chen , Joseph A. Fraietta , Carl H. June , Zhongwei Xu , J. Joseph Melenhorst , Simon F. Lacey

    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 Immunology—Article
    Donor-Derived CD19-Targeted T Cell Infusion Eliminates B Cell Acute Lymphoblastic Leukemia Minimal Residual Disease with No Response to Donor Lymphocytes after Allogeneic Hematopoietic Stem Cell Transplantation
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    Yifei Cheng , Yuhong Chen , Chenhua Yan , Yu Wang , Xiangyu Zhao , Yao Chen , Wei Han , Lanping Xu , Xiaohui Zhang , Kaiyan Liu , Shasha Wang , Lungji Chang , Lei Xiao , Xiaojun Huang

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

  • Research Artificial Intelligence—Article
    Wasserstein GAN-Based Small-Sample Augmentation for New-Generation Artificial Intelligence: A Case Study of Cancer-Staging Data in Biology
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lastName=Wang, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, address=a College of Life Science and Technology, Huazhong University of Science and Technology, Wuhan 430074, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null), CN=AuthorExt(id=1166069167662227571, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159840013720544046, authorId=1166069167452512368, language=CN, stringName=王畅, firstName=null, middleName=null, lastName=null, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, address=a College of Life Science and Technology, Huazhong University of Science and Technology, Wuhan 430074, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1166069167750307957, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159840013720544046, 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=1166069167871942775, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159840013720544046, authorId=1166069167750307957, language=EN, stringName=Zihong Wang, firstName=Zihong, middleName=null, lastName=Wang, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=c, address=c School of Mechanical Science and Engineering, Huazhong University of Science and Technology, Wuhan 430074, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null), CN=AuthorExt(id=1166069167960023160, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159840013720544046, authorId=1166069167750307957, language=CN, stringName=王子鸿, firstName=null, middleName=null, lastName=null, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=c, address=c School of Mechanical Science and Engineering, Huazhong University of Science and Technology, Wuhan 430074, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null)]
    Yufei Liu , Yuan Zhou , Xin Liu , Fang Dong , Chang Wang , Zihong Wang

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

  • Research Robotics—Article
    Enhanced Autonomous Exploration and Mapping of an Unknown Environment with the Fusion of Dual RGB-D Sensors
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    Tianjin Key Laboratory of Intelligent Robotics, Nankai University, Tianjin 300353, China
    State Key Laboratory of Robotics, Shenyang Institute of Automation, Chinese Academy of Sciences, Shenyang 110016, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null), CN=AuthorExt(id=1166069064473960741, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159839776738173318, authorId=1166069064209719584, language=CN, stringName=于宁波, firstName=null, middleName=null, lastName=null, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, b, c, address= Institute of Robotics and Automatic Information Systems, Nankai University, Tianjin 300353, China
    Tianjin Key Laboratory of Intelligent Robotics, Nankai University, Tianjin 300353, China
    State Key Laboratory of Robotics, Shenyang Institute of Automation, Chinese Academy of Sciences, Shenyang 110016, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1166069064566235431, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159839776738173318, 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=1166069064713036074, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159839776738173318, authorId=1166069064566235431, language=EN, stringName=Shirong Wang, firstName=Shirong, middleName=null, lastName=Wang, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, b, address= Institute of Robotics and Automatic Information Systems, Nankai University, Tianjin 300353, China
    Tianjin Key Laboratory of Intelligent Robotics, Nankai University, Tianjin 300353, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null), CN=AuthorExt(id=1166069064805310763, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159839776738173318, authorId=1166069064566235431, language=CN, stringName=王石荣, firstName=null, middleName=null, lastName=null, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=a, b, address= Institute of Robotics and Automatic Information Systems, Nankai University, Tianjin 300353, China
    Tianjin Key Laboratory of Intelligent Robotics, Nankai University, Tianjin 300353, China, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null)]
    Ningbo Yu , Shirong Wang

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

  • Research Synthetic Biology—Article
    An Additive Manufacturing Approach that Enables the Field Deployment of Synthetic Biosensors
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Lake, firstName=John R., middleName=null, lastName=Lake, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=b, address= Department of Bioengineering, University of Pittsburgh, Pittsburgh, PA 15219, USA, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null), CN=AuthorExt(id=1166068677884961054, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159839629207724737, authorId=1166068677645885723, language=CN, stringName=John R. Lake, firstName=null, middleName=null, lastName=null, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=b, address= Department of Bioengineering, University of Pittsburgh, Pittsburgh, PA 15219, USA, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1166068677985624352, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159839629207724737, 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=1166068678119842082, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159839629207724737, authorId=1166068677985624352, language=EN, stringName=Paul G. Movizzo, firstName=Paul G., middleName=null, lastName=Movizzo, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=b, address= Department of Bioengineering, University of Pittsburgh, Pittsburgh, PA 15219, USA, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null), CN=AuthorExt(id=1166068678224699683, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159839629207724737, authorId=1166068677985624352, language=CN, stringName=Paul G. 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Ruder, firstName=Warren C., middleName=null, lastName=Ruder, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=b, address= Department of Bioengineering, University of Pittsburgh, Pittsburgh, PA 15219, USA, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null), CN=AuthorExt(id=1166068678828679469, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159839629207724737, authorId=1166068678618964266, language=CN, stringName=Warren C. Ruder, firstName=null, middleName=null, lastName=null, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=b, address= Department of Bioengineering, University of Pittsburgh, Pittsburgh, PA 15219, USA, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null)] Daniel Wolozny , John R. Lake , Paul G. Movizzo , Zhicheng Long , Warren C. Ruder

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

  • Corrigendum
    Corrigendum to ‘‘A Comparison of SWAT Model Calibration Techniques for Hydrological Modeling in the Ganga River Watershed” [Engineering 4 (2018) 643–652]
    [Author(id=1166068258681053530, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159839541718737089, 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=1166068258806882652, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159839541718737089, authorId=1166068258681053530, language=EN, stringName=Nikita Shivhare, firstName=Nikita, middleName=null, lastName=Shivhare, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=null, address= Indian Institute of Technology, Banaras Hindu University, Varanasi 221005, India, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null), CN=AuthorExt(id=1166068258907545949, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159839541718737089, authorId=1166068258681053530, language=CN, stringName=Nikita Shivhare, firstName=null, middleName=null, lastName=null, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=null, address= Indian Institute of Technology, Banaras Hindu University, Varanasi 221005, India, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1166068258995626335, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159839541718737089, 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=1166068259117261153, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159839541718737089, authorId=1166068258995626335, language=EN, stringName=Prabhat Kumar Singh Dikshit, firstName=Prabhat Kumar Singh, middleName=null, lastName=Dikshit, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=null, address= Indian Institute of Technology, Banaras Hindu University, Varanasi 221005, India, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null), CN=AuthorExt(id=1166068259205341538, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159839541718737089, authorId=1166068258995626335, language=CN, stringName=Prabhat Kumar Singh Dikshit, firstName=null, middleName=null, lastName=null, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=null, address= Indian Institute of Technology, Banaras Hindu University, Varanasi 221005, India, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null), Author(id=1166068259301810532, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159839541718737089, 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=1166068259423445350, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159839541718737089, authorId=1166068259301810532, language=EN, stringName=Shyam Bihari, firstName=Shyam, middleName=null, lastName=Bihari, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=null, address= Indian Institute of Technology, Banaras Hindu University, Varanasi 221005, India, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null), CN=AuthorExt(id=1166068259511525735, tenantId=1045748351789510663, journalId=1155139928190095384, articleId=1159839541718737089, authorId=1166068259301810532, language=CN, stringName=Shyam Bihari, firstName=null, middleName=null, lastName=null, prefix=null, suffix=null, authorComment=null, nameInitials=null, affiliation=null, department=null, xref=null, address= Indian Institute of Technology, Banaras Hindu University, Varanasi 221005, India, bio=null, bioImg=null, bioContent=null, aboutCorrespAuthor=null)}, companyList=null)] Nikita Shivhare , Prabhat Kumar Singh Dikshit , Shyam Bihari

    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.