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检索条件"作者=a.tonio j.Conejo"
7 条 记 录,以下是1-10 订阅
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Modular-integrative modeling: a new framework for building brain models that blend biological realism and functional performance
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National Science Review 2024年 第5期11卷 13-16页
作者: Mario Senden Sacha j.van Albada Giovanni Pezzulo Egidio Falotico Ibrahim Hashim Alexander Kroner Anno C.Kurth Pablo Lanillos Vaishnavi Narayanan Cyriel Pennartz Mihai A.Petrovici Lea Steffen tonio Weidler Rainer Goebel Department of Cognitive Neuroscience Maastricht University Maastricht Brain Imaging Centre Maastricht University Institute of Neuroscience and Medicine(INM-6) and Institute for Advanced Simulation(IAS-6) and jARA-Institut Brain Structure-Function Relationships(INM-10) Jülich Research Center Institute of Zoology University of Cologne Institute of Cognitive Sciences and Technologies The Bio Robotics Institute Scuola Superiore Sant'Anna RWTH Aachen University Donders Institute for Brain Cognition and BehaviorRadboud University Cognitive and Systems Neuroscience Group Swammerdam Institute for Life Sciences University of Amsterdam Department of Physiology University of Bern FZI Research Center of Information Technology
To cope with the immense complexity of the brain, neuroscientific research often focuses on isolated brain structures or circumscribed perceptual, cognitive or motor functions [1]. This reductionist approach overlooks... 详细信息
来源: 同方期刊数据库 同方期刊数据库 评论
Discovering equations that govern experimental materials stability under environmental stress using scientific machine learning
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npj Computational Materials 2022年 第1期8卷 679-686页
作者: Richa Ramesh Naik Armi Tiihonen janak Thapa Clio Batali Zhe Liu Shijing Sun tonio Buonassisi Massachusetts Institute of Technology 77 Massachusetts AvenueCambridgeMA02139USA
While machine learning(ML)in experimental research has demonstrated impressive predictive capabilities,extracting fungible knowledge representations from experimental data remains an elusive *** this manuscript,we use... 详细信息
来源: 维普期刊数据库 维普期刊数据库 评论
Machine learning enables polymer cloud-point engineering via inverse design
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npj Computational Materials 2019年 第1期5卷 523-528页
作者: jatin N.Kumar Qianxiao Li Karen Y.T.Tang tonio Buonassisi Anibal L.Gonzalez-Oyarce jun Ye Institute of Materials Research&Engineering 2 Fusionopolis Way#08-03Singapore 138634Singapore Institute of High-Performance Computing 1 Fusionopolis Way#16-16Singapore 138632Singapore Massachussets Institute of Technology CambridgeMA 02139USA
Inverse design is an outstanding challenge in disordered systems with multiple length scales such as polymers,particularly when designing polymers with desired phase *** we demonstrate high-accuracy tuning of poly(2-o... 详细信息
来源: 维普期刊数据库 维普期刊数据库 评论
Two-step machine learning enables optimized nanoparticle synthesis
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npj Computational Materials 2021年 第1期7卷 498-507页
作者: Flore Mekki-Berrada Zekun Ren Tan Huang Wai Kuan Wong Fang Zheng jiaxun Xie Isaac Parker Siyu Tian Senthilnath jayavelu Zackaria Mahfoud Daniil Bash Kedar Hippalgaonkar Saif Khan tonio Buonassisi Qianxiao Li Xiaonan Wang Department of Chemical and Biomolecular Engineering National University of SingaporeSingaporeSingapore Singapore-MIT Alliance for Research and Technology SMART SingaporeSingapore Institute for Infocomm Research Agency for ScienceTechnology and Research(A*STAR)SingaporeSingapore Institute of Materials Research&Engineering SingaporeSingapore Department of Materials Science and Engineering Nanyang Technological UniversitySingaporeSingapore Massachusetts Institute of Technology CambridgeMAUSA Department of Mathematics National University of SingaporeSingaporeSingapore Institute of High Performance Computing SingaporeSingapore
In materials science,the discovery of recipes that yield nanomaterials with defined optical properties is costly and *** this study,we present a two-step framework for a machine learning-driven high-throughput microfl... 详细信息
来源: 维普期刊数据库 维普期刊数据库 评论
Embedding physics domain knowledge into a Bayesian network enables layer-by-layer process innovation for photovoltaics
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npj Computational Materials 2020年 第1期6卷 1592-1600页
作者: Zekun Ren Felipe Oviedo Maung Thway Siyu I.P.Tian Yue Wang Hansong Xue jose Dario Perea Mariya Layurova Thomas Heumueller Erik Birgersson Armin G.Aberle Christoph j.Brabec Rolf Stangl Qianxiao Li Shijing Sun Fen Lin Ian Marius Peters tonio Buonassisi Singapore-MIT Alliance for Research and Technology SMART Singapore 138602Singapore Solar Energy Research Institute of Singapore(SERIS) National University of SingaporeSingapore 117574Singapore Massachusetts Institute of Technology CambridgeMA 02139USA Institute of Materials for Electronics and Energy Technology(i-MEET) Friedrich-Alexander University Erlangen-Nürnberg91058 ErlangenGermany Helmholtz Institute HI-ErN Forschungszentrum JülichImmerwahrstrasse 291058 ErlangenGermany National University of Singapore Singapore 119077Singapore
Process optimization of photovoltaic devices is a time-intensive,trial-and-error endeavor,which lacks full transparency of the underlying physics and relies on user-imposed constraints that may or may not lead to a gl... 详细信息
来源: 维普期刊数据库 维普期刊数据库 评论
Benchmarking the performance of Bayesian optimization across multiple experimental materials science domains
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npj Computational Materials 2021年 第1期7卷 1742-1751页
作者: Qiaohao Liang Aldair E.Gongora Zekun Ren Armi Tiihonen Zhe Liu Shijing Sun james R.Deneault Daniil Bash Flore Mekki-Berrada Saif A.Khan Kedar Hippalgaonkar Benji Maruyama Keith A.Brown john Fisher III tonio Buonassisi Massachusetts Institute of Technology CambridgeMAUnited States Boston University BostonMAUnited States Singapore-MIT Alliance for Research and Technology SingaporeSingapore Air Force Research Laboratory DaytonOhioUnited States Agency for Science Technology and Research(A*STAR)SingaporeSingapore National University of Singapore SingaporeSingapore Present address:Aalto University EspooFinland Present address:Northwestern Polytechincal University(NPU) Xi’anShaanxi P.R.China
Bayesian optimization(BO)has been leveraged for guiding autonomous and high-throughput experiments in materials ***,few have evaluated the efficiency of BO across a broad range of experimental materials *** this work,... 详细信息
来源: 维普期刊数据库 维普期刊数据库 评论
Author Correction:Embedding physics domain knowledge into a Bayesian network enables layer-by-layer process innovation for photovoltaics
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npj Computational Materials 2020年 第1期6卷 955-955页
作者: Zekun Ren Felipe Oviedo Maung Thway Siyu I.P.Tian Yue Wang Hansong Xue jose Dario Perea Mariya Layurova Thomas Heumueller Erik Birgersson Armin G.Aberle Christoph j.Brabec Rolf Stangl Qianxiao Li Shijing Sun Fen Lin Ian Marius Peters tonio Buonassisi Singapore-MIT Alliance for Research and Technology SMART Singapore Singapore Solar Energy Research Institute of Singapore (SERIS) National University of Singapore Singapore Singapore Massachusetts Institute of Technology Cambridge USA Institute of Materials for Electronics and Energy Technology (i-MEET) Friedrich-Alexander University Erlangen-Nürnberg Erlangen Germany Helmholtz Institute HI-ErN Forschungszentrum Jülich Erlangen Germany National University of Singapore Singapore Singapore
In the original version of the published Article,there was ambiguity in Eq.(1).To improve clarity,Eq.(1)has been corrected to the following.
来源: 维普期刊数据库 维普期刊数据库 评论