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Medical image analysis of abdominal X-ray CT images by hybrid deep neural network of deep logistic GMDH-type neural network and convolutional neural network

Research Project

Project/Area Number 15K06145
Research Category

Grant-in-Aid for Scientific Research (C)

Allocation TypeMulti-year Fund
Section一般
Research Field Control engineering/System engineering
Research InstitutionThe University of Tokushima

Principal Investigator

UENO Junji  徳島大学, 大学院医歯薬学研究部(医学系), 教授 (60116788)

Co-Investigator(Kenkyū-buntansha) 近藤 正  徳島大学, 大学院医歯薬学研究部(医学系), 名誉教授 (80205559)
Project Period (FY) 2015-04-01 – 2018-03-31
Project Status Completed (Fiscal Year 2017)
Budget Amount *help
¥2,990,000 (Direct Cost: ¥2,300,000、Indirect Cost: ¥690,000)
Fiscal Year 2017: ¥910,000 (Direct Cost: ¥700,000、Indirect Cost: ¥210,000)
Fiscal Year 2016: ¥910,000 (Direct Cost: ¥700,000、Indirect Cost: ¥210,000)
Fiscal Year 2015: ¥1,170,000 (Direct Cost: ¥900,000、Indirect Cost: ¥270,000)
Keywordsニューラルネットワーク / GMDH / MDCT / 医用画像診断 / CAD / GMDH / MDCT
Outline of Final Research Achievements

We proposed the hybrid artificial neural network algorisms of the convolutional neural network (CNN) and the deep GMDH-type neural networks. The deep GMDH-type neural networks can automatically organize the deep neural network architectures which have many hidden layers. These hybrid artificial neural network algorisms were applied to the medical image diagnosis of the liver cancer and the medical image recognitions of the abdominal organs such as spleen. The recognition results were compared with those of the conventional sigmoid function type neural network using the backpropagation algorithm as the learning calculations. It was shown that these proposed algorithms were useful for the medical image recognitions and the medical image diagnosis of the abdominal organs.

Report

(4 results)
  • 2017 Annual Research Report   Final Research Report ( PDF )
  • 2016 Research-status Report
  • 2015 Research-status Report
  • Research Products

    (12 results)

All 2018 2017 2016 2015

All Journal Article (6 results) (of which Peer Reviewed: 6 results,  Acknowledgement Compliant: 4 results) Presentation (6 results) (of which Int'l Joint Research: 5 results)

  • [Journal Article] Deep multi-layered GMDH-type neural network using revised heuristic self-organization and its application to medical image diagnosis of liver cancer2018

    • Author(s)
      Shoichiro Takao, Sayaka Kondo, Junji Ueno, Tadashi Kondo
    • Journal Title

      Artificial Life and Robotics

      Volume: 23 Issue: 1 Pages: 48-59

    • DOI

      10.1007/s10015-017-0392-z

    • Related Report
      2017 Annual Research Report
    • Peer Reviewed
  • [Journal Article] Medical image analysis of abdominal X-ray CT images by deep multi-layered GMDH-type neural network2018

    • Author(s)
      Shoichiro Takao, Sayaka Kondo, Junji Ueno, Tadashi Kondo
    • Journal Title

      Artificial Life and Robotics

      Volume: 23 Issue: 2 Pages: 271-278

    • DOI

      10.1007/s10015-017-0420-z

    • Related Report
      2017 Annual Research Report
    • Peer Reviewed
  • [Journal Article] Medical image diagnosis of kidney regions by deep feedback GMDH-type neural network using principal component-regression analysis2017

    • Author(s)
      Tadashi Kondo, Sayaka Kondo, Junji Ueno and Shoichiro Takao
    • Journal Title

      Artificial Life and Robotics

      Volume: 22 Issue: 1 Pages: 1-9

    • DOI

      10.1007/s10015-016-0337-y

    • Related Report
      2016 Research-status Report
    • Peer Reviewed / Acknowledgement Compliant
  • [Journal Article] The 3-dimensional medical image recognition of right and left kidneys by deep GMDH-type neural network2015

    • Author(s)
      Tadashi Kondo, Junji Ueno and Shoichiro Takao
    • Journal Title

      Journal of Bioinformatics and Neuroscience

      Volume: 1 Pages: 14-23

    • Related Report
      2015 Research-status Report
    • Peer Reviewed / Acknowledgement Compliant
  • [Journal Article] Medical image diagnosis of liver cancer by hybrid feedback GMDH-type neural network using principal component-regression analysis2015

    • Author(s)
      Tadashi Kondo, Junji Ueno and Shoichiro Takao
    • Journal Title

      Artificial Life and Robotics

      Volume: 20 Issue: 2 Pages: 145-151

    • DOI

      10.1007/s10015-015-0213-1

    • Related Report
      2015 Research-status Report
    • Peer Reviewed / Acknowledgement Compliant
  • [Journal Article] Deep feedback GMDH-type neural network using principal component-regression analysis and its application to medical image recognition of abdominal multi-organs2015

    • Author(s)
      Tadashi Kondo, Junji Ueno and Shoichiro Takao
    • Journal Title

      Journal of Robotics Networking and Artificial Life

      Volume: 2 Issue: 2 Pages: 94-99

    • DOI

      10.2991/jrnal.2015.2.2.6

    • Related Report
      2015 Research-status Report
    • Peer Reviewed / Acknowledgement Compliant
  • [Presentation] Hybrid deep neural network of deep multi-layered GMDH-type neural network and convolutional neural network and its application to medical image recognition of spleen regions2018

    • Author(s)
      Shoichiro Takao, Sayaka Kondo, Junji Ueno, Tadashi Kondo
    • Organizer
      The twenty-third International Symposium on Artificial Life and Robotics 2018 (AROB 23nd 2018)
    • Related Report
      2017 Annual Research Report
    • Int'l Joint Research
  • [Presentation] Medical image diagnosis of liver cancer by hybrid deep neural network of deep logistic GMDH-type neural network and convolutional neural network2018

    • Author(s)
      Shoichiro Takao, Sayaka Kondo, Junji Ueno, Tadashi Kondo
    • Organizer
      The twenty-third International Symposium on Artificial Life and Robotics 2018 (AROB 23nd 1018)
    • Related Report
      2017 Annual Research Report
    • Int'l Joint Research
  • [Presentation] Deep multi-layered GMDH-type neural network using revised heuristic self-organization and its application to medical image diagnosis of liver cancer2017

    • Author(s)
      Tadashi Kondo, Sayaka Kondo, Junji Ueno and Shoichiro Takao
    • Organizer
      The twenty-second international symposium on artificial life and robotics (AROB 22nd 2017)
    • Place of Presentation
      B-con Plaza (大分県・別府市)
    • Year and Date
      2017-01-19
    • Related Report
      2016 Research-status Report
    • Int'l Joint Research
  • [Presentation] ディープ多層構造型GMDH-type ニューラルネットワークを用いた肝臓がんの医用画像診断2017

    • Author(s)
      高尾正一郎、近藤明佳、上野淳二、近藤 正
    • Organizer
      医療情報学会・人工知能学会AIM合同研究会
    • Related Report
      2017 Annual Research Report
  • [Presentation] Medical image analysis of abdominal X-ray CT images by deep multi-layered GMDH-type neural network2016

    • Author(s)
      Tadashi Kondo, Junji Ueno and Shoichiro Takao
    • Organizer
      The Twenty-First International Symposium on Artificial Life and Robotics (AROB 21st 2016)
    • Place of Presentation
      B-con Plaza (Oita)
    • Year and Date
      2016-01-20
    • Related Report
      2015 Research-status Report
    • Int'l Joint Research
  • [Presentation] The 3-dimensional medical image recognition of right and left kidneys by deep GMDH-type neural network2015

    • Author(s)
      Tadashi Kondo, Junji Ueno and Shoichiro Takao
    • Organizer
      International Conference on Intelligent Informatics and Biomedical Sciences
    • Place of Presentation
      Okinawa institute of science and technology graduate university (Okinawa)
    • Year and Date
      2015-11-28
    • Related Report
      2015 Research-status Report
    • Int'l Joint Research

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Published: 2015-04-16   Modified: 2019-03-29  

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