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 Conference Papers (Available on Advance Programs)  (Sort by: Date Descending)
 Results 1 - 20 of 162  /  [Next]  
Committee Date Time Place Paper Title / Authors Abstract Paper #
MI, MICT 2023-11-14
13:20
Fukuoka   Medical image diagnosis support system with image anonymization based on deep learning techniques
Katsuto Iwai, Ryuunosuke Kounosu (Toho Univ./AIST), Hirokazu Nosato (AIST), Yuu Nakajima (Toho Univ.) MICT2023-30 MI2023-23
When medical imaging AI models are hosted on cloud service there is a risk of sensitive medical images being leaked when... [more] MICT2023-30 MI2023-23
pp.21-24
MI, MICT 2023-11-14
14:00
Fukuoka   Estimating the degree of coronary artery stenosis from non-contrast CT images using a 3D convolution model -- Categorical approach --
Hiroki Shinoda, Tetsuya Asakawa (TUT), Kazuki Shimizu, Takuya Togawa, Kei Nomura (Toyohashi Heart Center), Masaki Aono (TUT) MICT2023-32 MI2023-25
In current medical images diagnosis, specialists take pictures of patients and search for the disease from the images. I... [more] MICT2023-32 MI2023-25
pp.29-32
MI 2023-07-03
13:00
Miyagi Tohoku Univ. Sakura Hall [Special Talk] Transition of Medical Imaging
Koichi Ito (Tohoku Univ.) MI2023-10
Over the past decade, research in medical image processing has dramatically changed. In particular, feature extraction u... [more] MI2023-10
p.11
MBE, IEE-MBE 2023-06-16
14:10
Hokkaido Hokkaido University
(Primary: On-site, Secondary: Online)
Development of an Extra-corporeal circuit Assembly Support System Using Image Recognition
Hisashi Miyazaki (Nippon Bunri Univ.), Takayuki Torigoe, Isao Kayano (Kawasaki Univ. of Medical Welfare) MBE2023-9
In this research, we developed a system that automatically displays an assembly manual for an artificial heart-lung mach... [more] MBE2023-9
p.3
SC 2023-06-03
10:35
Fukushima UBIC 3D Theater, University of Aizu
(Primary: On-site, Secondary: Online)
[Poster Presentation] Understanding transfer learning for medical image classification.
Dao Ngoc HOng, Paik Incheon (UoA) SC2023-9
Transfer learning is one of the critical solutions to deal with the problem of data scarcity, where the learning process... [more] SC2023-9
pp.48-52
CCS 2023-03-27
09:00
Hokkaido RUSUTSU RESORT Medical Image Segmentation with Inverse Heat Dissipation Model
Yu Kashihara, Takashi Matsubara (Osaka Univ.) CCS2022-82
The diffusion model is a generative model based on stochastic transitions and has been successfully used to generate
an... [more]
CCS2022-82
pp.107-112
MI 2023-03-06
17:04
Okinawa OKINAWA SEINENKAIKAN
(Primary: On-site, Secondary: Online)
[Short Paper] Rotation-Equivariant CNN for Medical Image Processing Applications
Ryota Ogino, Kugler Mauricio, Tatsuya Yokota, Hidekata Hontani (NITech) MI2022-96
In this study, we report an attempt to use a Rotation-Equivariant CNN to organize image data whose rotation direction an... [more] MI2022-96
pp.113-114
MI 2023-03-07
16:13
Okinawa OKINAWA SEINENKAIKAN
(Primary: On-site, Secondary: Online)
Classification of endoscope images with specular reflection using CNN
Shun Katsuyama, Masashi Fujii (Tottori Univ.), Kazutake Uehara (Yonago Coll.), Masaru Ueki, Hajime Isomoto, Katsuya Kondo (Tottori Univ.) MI2022-123
The endoscopic training system is required that checks whether the inspection points have been taken. In this report, we... [more] MI2022-123
pp.199-204
PRMU, IBISML, IPSJ-CVIM [detail] 2023-03-02
11:05
Hokkaido Future University Hakodate
(Primary: On-site, Secondary: Online)
On the Effectiveness of Formula-Driven Supervised Learning for Medical Image Tasks
Ryuto Endo, Shuya Takahashi, Eisaku Maeda (TDU) PRMU2022-71 IBISML2022-78
Deep learning for image information processing often uses manually maintained natural image data. However, these data ha... [more] PRMU2022-71 IBISML2022-78
pp.71-75
EST 2023-01-27
11:40
Okinawa
(Primary: On-site, Secondary: Online)
Radar Detection of Multiple Walking People Using Image-Processing Technique and Generalized Likelihood Ratio Test
Jianxuan Yang, Jianxin Yi (Wuhan Univ.), Takuya Sakamoto (Kyoto Univ.), Xianrong Wan (Wuhan Univ.) EST2022-95
This study presents a detection algorithm of extended radar targets using image features and achieves the detection of m... [more] EST2022-95
pp.108-111
MBE, MICT, IEE-MBE [detail] 2023-01-17
10:40
Saga   Potential problems that will arise for hospital LANs
Eisuke Hanada (Saga Univ.), Takato Kudou (Oita Univ.) MICT2022-46 MBE2022-46
Hospital Information Systems (HIS) have been introduced in almost all large hospitals. In addition to this, IP networks ... [more] MICT2022-46 MBE2022-46
pp.17-21
IMQ 2022-12-16
15:30
Chiba Nishi-Chiba Campus, Chiba Univ. A Study of Correction Method for Calculation Error of Auscultation Position in Augmented Reality Type Auscultation Training Simulator
Yoshito Mikado, keiichiro miura, Hajime Kasai, Shoichi Ito, Asahina Mayumi, Masahiro Tanabe, Yukihiro Nomura, Toshiya Nakaguchi (Chiba Univ.) IMQ2022-17
Current auscultation training for healthcare professionals is conducted using a simulated patient and a mannequin for au... [more] IMQ2022-17
pp.12-15
MI 2022-07-08
17:00
Hokkaido
(Primary: On-site, Secondary: Online)
[Short Paper] Weakly-Supervised Focal Liver Lesion Detection in CT Images
He Li, Yutaro Iwamoto (Ritsumeikan Univ.), Xianhua Han (Yamaguchi Univ.), Lanfen Lin, Ruofeng Tong, Hongjie Hu (Zhejiang Univ.), Akira Furukawa (Tokyo Metropolitan Univ.), Shuzo Kanasaki (Koseikai Takeda Hospital), Yen-Wei Chen (Ritsumeikan Univ.) MI2022-40
Convolutional neural networks have been widely used for anomaly detection and one of their most common methods is autoen... [more] MI2022-40
pp.30-33
SC 2022-05-27
11:20
Online Online Developing a Secure Streaming System of Clinic Site for Medical Education
Sinan Chen, Masahide Nakamura, Kenji Sekiguchi (Kobe Univ.) SC2022-5
Clinical practice in the outpatient consultation room is restricted due to the COVID-19 control measures, resulting in t... [more] SC2022-5
pp.25-30
PRMU, IPSJ-CVIM 2022-03-10
10:40
Online Online Medical Image Captioning with Information based on Medical Concepts
Riku Tsuneda, Tetsuya Asakawa (TUT), Kazuki Shimizu, Takuyuki Komoda (THC), Masaki Aono (TUT) PRMU2021-64
Image Captioning for medical images is expected to augment the judgment of doctors and serve as a second opinion. Medica... [more] PRMU2021-64
pp.25-30
IE, ITS, ITE-AIT, ITE-ME, ITE-MMS [detail] 2022-02-21
15:35
Online Online Liver Tumor Segmentation by Using a Massive-Training Artificial Neural Network (MTANN) and its Analysis in Liver CT.
Yuqiao Yang, Muneyuki Sato, Ze Jin, Kenji Suzuki (Tokyo Tech) ITS2021-33 IE2021-42
Based on a 3D massive-training artificial neural network (MTANN) combined with a Hessian-based ellipse enhancer, a small... [more] ITS2021-33 IE2021-42
pp.49-54
EST 2022-01-28
11:00
Online Online Blood Vessel Structure Analysis using a Simulation Model for the Purpose of Polyp Shape Recovery from Endoscopic Images
Shusuke Kato, Hiroyasu Usami, Akihiko Okazaki, Yuji Iwahori (Chubu Univ.), Ogasawara Naotaka, Kunio Kasugai (Aichi Medical Univ.) EST2021-83
In recent years, the incidence of colorectal cancer in Japan has been on the rise. It is essential to realize a medical ... [more] EST2021-83
pp.130-135
MI 2022-01-26
13:00
Online Online Relationship between Image Quality and Learning Effect in Color Laparoscopic Images Generation by Generative Adversarial Networks
Norifumi Kawabata (Hokkaido Univ.), Toshiya Nakaguchi (Chiba Univ.) MI2021-59
Improving of personal computer performance, it is possible for healthcare workers and related researchers to support for... [more] MI2021-59
pp.59-64
MI 2022-01-27
11:10
Online Online [Fellow Memorial Lecture] [IEICE Fellow Special Lecture] Human anatomical structure analysis by medical image processing and its application to diagnostic and therapeutic procedures assistance -- Look back 30 years of research experiences and predict future --
Kensaku Mori (Nagoya Univ.) MI2021-74
This paper outlines my IEICE Fellow Special Lecture entitled human anatomical structure analysis by medical image proces... [more] MI2021-74
pp.127-132
IBISML 2022-01-18
11:15
Online Online [Invited Talk] TBA
Jun Sakuma (Tsukuba Univ./RIKEN)
Explainability is one of the key elements required in medical image diagnosis using deep image recognition models. In th... [more]
 Results 1 - 20 of 162  /  [Next]  
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