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Development of machine learning methods for materials informatics

Planned Research

Project AreaExploration of nanostructure-property relationships for materials innovation
Project/Area Number 16H00736
Research Category

Grant-in-Aid for Scientific Research on Innovative Areas (Research in a proposed research area)

Allocation TypeSingle-year Grants
Review Section Science and Engineering
Research InstitutionThe University of Tokyo

Principal Investigator

Tsuda Koji  東京大学, 大学院新領域創成科学研究科, 教授 (90357517)

Co-Investigator(Kenkyū-buntansha) 志賀 元紀  岐阜大学, 工学部, 准教授 (20437263)
鹿島 久嗣  京都大学, 情報学研究科, 教授 (80545583)
Co-Investigator(Renkei-kenkyūsha) TAKEUCHI Ichiro  名古屋工業大学, 工学(系)研究科, 教授 (40335146)
Project Period (FY) 2016-04-01 – 2018-03-31
Project Status Completed (Fiscal Year 2017)
Budget Amount *help
¥12,090,000 (Direct Cost: ¥9,300,000、Indirect Cost: ¥2,790,000)
Fiscal Year 2017: ¥5,070,000 (Direct Cost: ¥3,900,000、Indirect Cost: ¥1,170,000)
Fiscal Year 2016: ¥7,020,000 (Direct Cost: ¥5,400,000、Indirect Cost: ¥1,620,000)
Keywordsマテリアルズインフォマティクス / 機械学習
Outline of Final Research Achievements

This research started from 2016 to boost the development of informatics methods in materials development. As a result of collaborations with other groups, we obtained the following achievements. (1) Statistical machine learning methods for spectrum analysis to discovering nanostructures. (2) Automatic design of materials using Monte Carlo tree search. (3) Discovery of stable compounds with recommendation algorithms.

Report

(3 results)
  • 2017 Annual Research Report   Final Research Report ( PDF )
  • 2016 Annual Research Report
  • Research Products

    (23 results)

All 2018 2017 2016

All Journal Article (12 results) (of which Int'l Joint Research: 4 results,  Peer Reviewed: 12 results,  Open Access: 6 results,  Acknowledgement Compliant: 6 results) Presentation (11 results) (of which Int'l Joint Research: 3 results,  Invited: 8 results)

  • [Journal Article] Informatics-Aided Raman Microscopy for Nanometric 3D Stress Characterization2018

    • Author(s)
      Wang Hongxin、Zhang Han、Da Bo、Shiga Motoki、Kitazawa Hideaki、Fujita Daisuke
    • Journal Title

      The Journal of Physical Chemistry C

      Volume: 122 Issue: 13 Pages: 7187-7193

    • DOI

      10.1021/acs.jpcc.7b12415

    • Related Report
      2017 Annual Research Report
    • Peer Reviewed
  • [Journal Article] Exploring a potential energy surface by machine learning for characterizing atomic transport2018

    • Author(s)
      Kanamori Kenta、Toyoura Kazuaki、Honda Junya、Hattori Kazuki、Seko Atsuto、Karasuyama Masayuki、Shitara Kazuki、Shiga Motoki、Kuwabara Akihide、Takeuchi Ichiro
    • Journal Title

      Physical Review B

      Volume: 97 Issue: 12 Pages: 125124-125124

    • DOI

      10.1103/physrevb.97.125124

    • Related Report
      2017 Annual Research Report
    • Peer Reviewed
  • [Journal Article] ChemTS: an efficient python library for de novo molecular generation2017

    • Author(s)
      Yang Xiufeng、Zhang Jinzhe、Yoshizoe Kazuki、Terayama Kei、Tsuda Koji
    • Journal Title

      Science and Technology of Advanced Materials

      Volume: 18 Issue: 1 Pages: 972-976

    • DOI

      10.1080/14686996.2017.1401424

    • Related Report
      2017 Annual Research Report
    • Peer Reviewed / Open Access / Int'l Joint Research
  • [Journal Article] Transfer Learning to Accelerate Interface Structure Searches2017

    • Author(s)
      Oda Hiromi、Kiyohara Shin、Tsuda Koji、Mizoguchi Teruyasu
    • Journal Title

      Journal of the Physical Society of Japan

      Volume: 86 Issue: 12 Pages: 123601-123601

    • DOI

      10.7566/jpsj.86.123601

    • NAID

      210000134600

    • Related Report
      2017 Annual Research Report
    • Peer Reviewed / Open Access
  • [Journal Article] RNA inverse folding using Monte Carlo tree search2017

    • Author(s)
      Yang Xiufeng、Yoshizoe Kazuki、Taneda Akito、Tsuda Koji
    • Journal Title

      BMC Bioinformatics

      Volume: 18 Issue: 1 Pages: 468-468

    • DOI

      10.1186/s12859-017-1882-7

    • Related Report
      2017 Annual Research Report
    • Peer Reviewed / Open Access
  • [Journal Article] MDTS: automatic complex materials design using Monte Carlo tree search2017

    • Author(s)
      M. Dieb Thaer、Ju Shenghong、Yoshizoe Kazuki、Hou Zhufeng、Shiomi Junichiro、Tsuda Koji
    • Journal Title

      Science and Technology of Advanced Materials

      Volume: 18 Issue: 1 Pages: 498-503

    • DOI

      10.1080/14686996.2017.1344083

    • Related Report
      2017 Annual Research Report
    • Peer Reviewed / Open Access
  • [Journal Article] Learning to Enumerate2016

    • Author(s)
      Patrick Joeger, Yukino Baba, Hisashi Kashima
    • Journal Title

      Proceedings of the 25th International Conference on Artificial Neural Networks (ICANN)

      Volume: 1 Pages: 453-460

    • DOI

      10.1007/978-3-319-44778-0_53

    • ISBN
      9783319447773, 9783319447780
    • Related Report
      2016 Annual Research Report
    • Peer Reviewed / Int'l Joint Research / Acknowledgement Compliant
  • [Journal Article] Budgeted Stream-based Active Learning via Adaptive Submodular Maximization2016

    • Author(s)
      Kaito Fujii, Hisashi Kashima
    • Journal Title

      Advances in Neural Information Processing Systems (NIPS)

      Volume: 1 Pages: 514-522

    • NAID

      40021033042

    • Related Report
      2016 Annual Research Report
    • Peer Reviewed / Open Access / Acknowledgement Compliant
  • [Journal Article] Matrix Factorization for Automatic Chemical Mapping from Electron Microscopic Spectral Imaging Datasets2016

    • Author(s)
      Motoki Shiga, Shunsuke Muto, Kazuyoshi Tatsumi, Koji Tsuda
    • Journal Title

      Transactions of the Materials Research Society of Japan

      Volume: 41 Issue: 4 Pages: 333-336

    • DOI

      10.14723/tmrsj.41.333

    • NAID

      130005172417

    • ISSN
      1382-3469, 2188-1650
    • Related Report
      2016 Annual Research Report
    • Peer Reviewed / Acknowledgement Compliant
  • [Journal Article] Sparse Modeling of EELS and EDX Spectral Imaging Data by Nonnegative Matrix Factorization2016

    • Author(s)
      Motoki Shiga, Kazuyoshi Tatsumi, Shunsuke Muto, Koji Tsuda, Yuta Yamamoto, Toshiyuki Mori, Takayoshi Tanji
    • Journal Title

      Ultramicroscopy

      Volume: 170 Pages: 43-59

    • DOI

      10.1016/j.ultramic.2016.08.006

    • Related Report
      2016 Annual Research Report
    • Peer Reviewed / Int'l Joint Research / Acknowledgement Compliant
  • [Journal Article] Machine-learning prediction of d-band center for metals and bimetals2016

    • Author(s)
      I. Takigawa, K. Shimizu, K. Tsuda and S. Takakusagi
    • Journal Title

      RSC Advances

      Volume: 6 Issue: 58 Pages: 52587-52595

    • DOI

      10.1039/c6ra04345c

    • NAID

      120006219935

    • Related Report
      2016 Annual Research Report
    • Peer Reviewed / Open Access / Acknowledgement Compliant
  • [Journal Article] COMBO: An Efficient Bayesian Optimization Library for Materials Science2016

    • Author(s)
      T. Ueno, T.D. Rhone, Z. Hou, T. Mizoguchi and K. Tsuda
    • Journal Title

      Materials Discovery

      Volume: 4 Pages: 18-21

    • DOI

      10.1016/j.md.2016.04.001

    • Related Report
      2016 Annual Research Report
    • Peer Reviewed / Int'l Joint Research / Acknowledgement Compliant
  • [Presentation] 統計的機械学習を用いたスペクトルイメージ解析2018

    • Author(s)
      志賀元紀
    • Organizer
      顕微ナノ・表面科学・SPM合同シンポジウム
    • Related Report
      2017 Annual Research Report
    • Invited
  • [Presentation] スペクトルデータ解析のための統計的機械学習2018

    • Author(s)
      志賀元紀
    • Organizer
      合同シンポジウム(「第二回 先端計測インフォマティクス・ワークショップ」「NIMS先端計測シンポジウム 2018」)
    • Related Report
      2017 Annual Research Report
    • Invited
  • [Presentation] スペクトラムイメージ解析のための統計的機械学習法2018

    • Author(s)
      志賀元紀
    • Organizer
      第31回日本放射光学会年会・放射光科学合同シンポジウム
    • Related Report
      2017 Annual Research Report
    • Invited
  • [Presentation] アクセプター添加BaZrO3におけるドーパントおよび酸素欠損の固溶状態に関する第一原理計算2018

    • Author(s)
      桑原彰秀, 志賀元紀, クレイグ フィッシャー, 森分博紀
    • Organizer
      日本金属学会2017年秋季(第161回)講演大会
    • Related Report
      2017 Annual Research Report
  • [Presentation] 統計的機械学習に基づくスペクトラムイメージ解析2018

    • Author(s)
      志賀元紀
    • Organizer
      2017年真空・表面科学合同講演会・:データ駆動表面科学研究部会セッション
    • Related Report
      2017 Annual Research Report
    • Invited
  • [Presentation] Automatic Spectral Imaging Analysis Based on Machine Learning2018

    • Author(s)
      Motoki Shiga, Shunsuke Muto
    • Organizer
      The 8th International Workshop on Electron Energy Loss Spectroscopy and Related Techniques (EDGE 2017: Enhanced Data Generated by Electrons)
    • Related Report
      2017 Annual Research Report
    • Int'l Joint Research
  • [Presentation] 機械学習に基づくスペクトラムイメージング解析2017

    • Author(s)
      志賀元紀
    • Organizer
      第1回 構造イメージングと情報処理研究会
    • Place of Presentation
      仙台市 東北大学原子分子材料科学高等研究機構
    • Year and Date
      2017-02-06
    • Related Report
      2016 Annual Research Report
  • [Presentation] 統計的機械学習に基づく走査型電子顕微鏡データ解析2017

    • Author(s)
      志賀元紀
    • Organizer
      ワークショップ「先端計測インフォマティクス 大量データ時代の情報活用」
    • Place of Presentation
      つくば市 物質・材料研究機構
    • Related Report
      2016 Annual Research Report
    • Invited
  • [Presentation] Machine learning for materials discovery: catalysts, grain boundaries, superlattices and RNAs2016

    • Author(s)
      Koji Tsuda
    • Organizer
      Workshop I: Machine Learning Meets Many Particle Systems
    • Place of Presentation
      IPAM, UCLA, Los Angeles, USA
    • Year and Date
      2016-09-26
    • Related Report
      2016 Annual Research Report
    • Int'l Joint Research / Invited
  • [Presentation] 走査型電子顕微鏡データ解析のための非負値行列分解2016

    • Author(s)
      志賀元紀, 武藤俊介, 巽一厳, 津田宏治
    • Organizer
      日本応用数理学会2016年度年会
    • Place of Presentation
      北九州市北九州国際会議場
    • Year and Date
      2016-09-12
    • Related Report
      2016 Annual Research Report
    • Invited
  • [Presentation] Machine Learning for Materials Discovery: Low-LTC Compounds, GrainBoundaries and Superlattices2016

    • Author(s)
      Koji Tsuda
    • Organizer
      IACS Seminar
    • Place of Presentation
      Harvard University, Boston USA
    • Related Report
      2016 Annual Research Report
    • Int'l Joint Research / Invited

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Published: 2016-04-26   Modified: 2019-03-29  

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