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9/23/2022 10:13:16 AM | Browse: 218 | Download: 382
Publication Name World Journal of Gastroenterology
Manuscript ID 78896
Country China
Received
2022-07-20 14:49
Peer-Review Started
2022-07-20 14:51
To Make the First Decision
Return for Revision
2022-08-06 04:28
Revised
2022-08-14 12:50
Second Decision
2022-09-05 03:24
Accepted by Journal Editor-in-Chief
Accepted by Company Editor-in-Chief
2022-09-06 17:25
Articles in Press
2022-09-06 17:25
Publication Fee Transferred
Edit the Manuscript by Language Editor
Typeset the Manuscript
2022-09-15 08:44
Publish the Manuscript Online
2022-09-23 10:13
ISSN 1007-9327 (print) and 2219-2840 (online)
Open Access This article is an open-access article that was selected by an in-house editor and fully peer-reviewed by external reviewers. It is distributed in accordance with the Creative Commons Attribution NonCommercial (CC BY-NC 4.0) license, which permits others to distribute, remix, adapt, build upon this work non-commercially, and license their derivative works on different terms, provided the original work is properly cited and the use is non-commercial. See: http://creativecommons.org/Licenses/by-nc/4.0/
Copyright © The Author(s) 2022. Published by Baishideng Publishing Group Inc. All rights reserved.
Article Reprints For details, please visit: http://www.wjgnet.com/bpg/gerinfo/247
Permissions For details, please visit: http://www.wjgnet.com/bpg/gerinfo/207
Publisher Baishideng Publishing Group Inc, 7041 Koll Center Parkway, Suite 160, Pleasanton, CA 94566, USA
Website http://www.wjgnet.com
Category Gastroenterology & Hepatology
Manuscript Type Retrospective Cohort Study
Article Title Machine learning-based gray-level co-occurrence matrix signature for predicting lymph node metastasis in undifferentiated-type early gastric cancer
Manuscript Source Unsolicited Manuscript
All Author List Xin Wei, Xue-Jiao Yan, Yu-Yan Guo, Jie Zhang, Guo-Rong Wang, Arsalan Fayyaz and Jiao Yu
ORCID
Author(s) ORCID Number
Jiao Yu http://orcid.org/0000-0002-8707-8606
Funding Agency and Grant Number
Funding Agency Grant Number
General Project-Social Development Field of Shaanxi Province Science and Technology Department 2021SF-313
Innovation Capability Support Plan of Shaanxi Science and Technology Department - Science and Technology Innovation Team 2020TD-048
Corresponding Author Jiao Yu, MD, Surgical Oncologist, Department of Radiotherapy, Shaanxi Provincial People’s Hospital, No. 256 Youyi West Road, Beilin District, Xi’an 710068, Shaanxi Province, China. shawn170215@163.com
Key Words Undifferentiated early gastric cancer; Machine learning; Lymph node metastasis; Gray-level co-occurrence matrix; Feature selection; Prediction
Core Tip Gray-level co-occurrence matrix-based feature extraction can be a robust and promising tool to improve the efficiency in predicting lymph node metastasis of individual undifferentiated early gastric cancer patients. Additionally, machine learning adopts more optimized algorithms and more clear feature extraction. Models developed using random forest classifier have the highest predictive accuracy in terms of Entropy, Haralick full angle, Haralick 30°, inverse gap full angle, inverse gap 45°, inverse gap 0°, and inertia value 45°. Further research is required to develop these models for clinical practice.
Publish Date 2022-09-23 10:13
Citation Wei X, Yan XJ, Guo YY, Zhang J, Wang GR, Fayyaz A, Yu J. Machine learning-based gray-level co-occurrence matrix signature for predicting lymph node metastasis in undifferentiated-type early gastric cancer. World J Gastroenterol 2022; 28(36): 5338-5350
URL https://www.wjgnet.com/1007-9327/full/v28/i36/5338.htm
DOI https://dx.doi.org/10.3748/wjg.v28.i36.5338
Full Article (PDF) WJG-28-5338.pdf
Full Article (Word) WJG-28-5338.docx
STROBE Statement 78896-STROBE-Statement-revision.doc
Manuscript File 78896_Auto_Edited-LM.docx
Answering Reviewers 78896-Answering reviewers.pdf
Audio Core Tip 78896-Audio core tip.m4a
Biostatistics Review Certificate 78896-Biostatistics statement.pdf
Conflict-of-Interest Disclosure Form 78896-Conflict-of-interest statement.pdf
Copyright License Agreement 78896-Copyright license agreement.pdf
Approved Grant Application Form(s) or Funding Agency Copy of any Approval Document(s) 78896-Grant application form(s).pdf
Signed Informed Consent Form(s) or Document(s) 78896-Informed consent statement.pdf
Institutional Review Board Approval Form or Document 78896-Institutional review board statement.pdf
Non-Native Speakers of English Editing Certificate 78896-Language certificate.pdf
Supplementary Material 78896-Supplementary material.pdf
Peer-review Report 78896-Peer-review(s).pdf
Scientific Misconduct Check 78896-Bing-Wang JJ-2.png
Scientific Editor Work List 78896-Scientific editor work list.pdf