Literature DB >> 33446730

Machine learning predicts lymph node metastasis of poorly differentiated-type intramucosal gastric cancer.

Cheng-Mao Zhou1, Ying Wang2, Hao-Tian Ye2, Shuping Yan3, Muhuo Ji2, Panmiao Liu2, Jian-Jun Yang4.   

Abstract

To construct a machine learning algorithm model of lymph node metastasis (LNM) in patients with poorly differentiated-type intramucosal gastric cancer. 1169 patients with postoperative gastric cancer were divided into a training group and a test group at a ratio of 7:3. The model for lymph node metastasis was established with python machine learning. The Gbdt algorithm in the machine learning results finds that number of resected nodes, lymphovascular invasion and tumor size are the primary 3 factors that account for the weight of LNM. Effect of the LNM model of PDC gastric cancer patients in the training group: Among the 7 algorithm models, the highest accuracy rate was that of GBDT (0.955); The AUC values for the 7 algorithms were, from high to low, XGB (0.881), RF (0.802), GBDT (0.798), LR (0.778), XGB + LR (0.739), RF + LR (0.691) and GBDT + LR (0.626). Results of the LNM model of PDC gastric cancer patients in test group : Among the 7 algorithmic models, XGB had the highest accuracy rate (0.952); Among the 7 algorithms, the AUC values, from high to low, were GBDT (0.788), RF (0.765), XGB (0.762), LR (0.750), RF + LR (0.678), GBDT + LR (0.650) and XGB + LR (0.619). Single machine learning algorithm can predict LNM in poorly differentiated-type intramucosal gastric cancer, but fusion algorithm can not improve the effect of machine learning in predicting LNM.

Entities:  

Year:  2021        PMID: 33446730      PMCID: PMC7809018          DOI: 10.1038/s41598-020-80582-w

Source DB:  PubMed          Journal:  Sci Rep        ISSN: 2045-2322            Impact factor:   4.379


  27 in total

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Authors:  Filippo Catalano; Antonello Trecca; Luca Rodella; Francesco Lombardo; Anna Tomezzoli; Serena Battista; Marco Silano; Fabio Gaj; Giovanni de Manzoni
Journal:  Surg Endosc       Date:  2009-03-05       Impact factor: 4.584

2.  Early gastric cancer of signet ring cell carcinoma is more amenable to endoscopic treatment than is early gastric cancer of poorly differentiated tubular adenocarcinoma in select tumor conditions.

Authors:  Hee Man Kim; Kyung Ho Pak; Moon Jae Chung; Jae Hee Cho; Woo Jin Hyung; Sung Hoon Noh; Choong Bai Kim; Yong Chan Lee; Si Young Song; Sang Kil Lee
Journal:  Surg Endosc       Date:  2011-04-13       Impact factor: 4.584

3.  Risk factors of lymph node metastasis in 1620 early gastric carcinoma radical resections in Jiangsu Province in China: A multicenter clinicopathological study.

Authors:  Ling Chen; Yao Hui Wang; Yu Qing Cheng; Ming Zhan Du; Jiong Shi; Xiang Shan Fan; Xiao Li Zhou; Yi Fen Zhang; Ling Chuan Guo; Gui Fang Xu; Ya Min He; Dan Zhou; Xiao Ping Zou; Qin Huang; The Jiangsu Province Early Gastric Carcinoma Multicenter Study Team
Journal:  J Dig Dis       Date:  2017-10       Impact factor: 2.325

4.  Early gastric cancer with a mixed-type Lauren classification is more aggressive and exhibits greater lymph node metastasis.

Authors:  Jeung Hui Pyo; Hyuk Lee; Byung-Hoon Min; Jun Haeng Lee; Min Gew Choi; Jun Ho Lee; Tae Sung Sohn; Jae Moon Bae; Kyoung-Mee Kim; Seungmin Yeon; Sin-Ho Jung; Jae J Kim; Sung Kim
Journal:  J Gastroenterol       Date:  2016-09-02       Impact factor: 7.527

Review 5.  Gastric cancer: prevention, screening and early diagnosis.

Authors:  Victor Pasechnikov; Sergej Chukov; Evgeny Fedorov; Ilze Kikuste; Marcis Leja
Journal:  World J Gastroenterol       Date:  2014-10-14       Impact factor: 5.742

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Journal:  Am J Gastroenterol       Date:  2017-04-11       Impact factor: 10.864

Review 7.  Treatment modalities for early gastric cancer.

Authors:  Jesús Espinel; Eugenia Pinedo; Vanesa Ojeda; Maria Guerra Del Rio
Journal:  World J Gastrointest Endosc       Date:  2015-09-10

8.  Development and Validation of a Machine Learning Algorithm After Primary Total Hip Arthroplasty: Applications to Length of Stay and Payment Models.

Authors:  Prem N Ramkumar; Sergio M Navarro; Heather S Haeberle; Jaret M Karnuta; Michael A Mont; Joseph P Iannotti; Brendan M Patterson; Viktor E Krebs
Journal:  J Arthroplasty       Date:  2018-12-27       Impact factor: 4.757

Review 9.  Clinical practice guidelines for gastric cancer in Korea: an evidence-based approach.

Authors:  Jun Haeng Lee; Jae G Kim; Hye-Kyung Jung; Jung Hoon Kim; Woo Kyoung Jeong; Tae Joo Jeon; Joon Mee Kim; Young Il Kim; Keun Won Ryu; Seong-Ho Kong; Hyoung-Il Kim; Hwoon-Yong Jung; Yong Sik Kim; Dae Young Zang; Jae Yong Cho; Joon Oh Park; Do Hoon Lim; Eun Sun Jung; Hyeong Sik Ahn; Hyun Jung Kim
Journal:  J Gastric Cancer       Date:  2014-06-30       Impact factor: 3.720

10.  Lymph Node Metastasis, a Unique Independent Prognostic Factor in Early Gastric Cancer.

Authors:  Bai-Wei Zhao; Yong-Ming Chen; Shan-Shan Jiang; Yin-Bo Chen; Zhi-Wei Zhou; Yuan-Fang Li
Journal:  PLoS One       Date:  2015-07-08       Impact factor: 3.240

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  4 in total

1.  Comparison of Four Machine Learning Techniques for Prediction of Intensive Care Unit Length of Stay in Heart Transplantation Patients.

Authors:  Kan Wang; Li Zhao Yan; Wang Zi Li; Chen Jiang; Ni Ni Wang; Qiang Zheng; Nian Guo Dong; Jia Wei Shi
Journal:  Front Cardiovasc Med       Date:  2022-06-21

2.  Cost-Sensitive Uncertainty Hypergraph Learning for Identification of Lymph Node Involvement With CT Imaging.

Authors:  Qianli Ma; Jielong Yan; Jun Zhang; Qiduo Yu; Yue Zhao; Chaoyang Liang; Donglin Di
Journal:  Front Med (Lausanne)       Date:  2022-02-10

3.  Evaluation of CSTB and DMBT1 expression in saliva of gastric cancer patients and controls.

Authors:  Maryam Koopaie; Marjan Ghafourian; Soheila Manifar; Shima Younespour; Mansour Davoudi; Sajad Kolahdooz; Mohammad Shirkhoda
Journal:  BMC Cancer       Date:  2022-04-30       Impact factor: 4.638

4.  Machine learning for lymph node metastasis prediction of in patients with gastric cancer: A systematic review and meta-analysis.

Authors:  Yilin Li; Fengjiao Xie; Qin Xiong; Honglin Lei; Peimin Feng
Journal:  Front Oncol       Date:  2022-08-18       Impact factor: 5.738

  4 in total

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