2018
DOI: 10.1155/2018/6217812
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How Artificial Intelligence Can Improve Our Understanding of the Genes Associated with Endometriosis: Natural Language Processing of the PubMed Database

Abstract: Endometriosis is a disease characterized by the development of endometrial tissue outside the uterus, but its cause remains largely unknown. Numerous genes have been studied and proposed to help explain its pathogenesis. However, the large number of these candidate genes has made functional validation through experimental methodologies nearly impossible. Computational methods could provide a useful alternative for prioritizing those most likely to be susceptibility genes. Using artificial intelligence applied … Show more

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Cited by 32 publications
(23 citation statements)
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“…“Mastermind” is an NLP‐based genomic search engine that can provide a list of prioritized articles for a specific variant and help researchers in variant interpretations, verifying variant‐disease associations, and genomic analysis . Other teams have trained NLP models to mine the PubMed data base for candidate genes for preeclampsia, G6PD deficiency, and endometriosis …”
Section: Implementations Of Nlp In Clinical Genetics and Breast Cancementioning
confidence: 99%
“…“Mastermind” is an NLP‐based genomic search engine that can provide a list of prioritized articles for a specific variant and help researchers in variant interpretations, verifying variant‐disease associations, and genomic analysis . Other teams have trained NLP models to mine the PubMed data base for candidate genes for preeclampsia, G6PD deficiency, and endometriosis …”
Section: Implementations Of Nlp In Clinical Genetics and Breast Cancementioning
confidence: 99%
“…The virtual branch includes informatics, which is expected to assist physicians in their clinical diagnosis and treatment decisions. The recent progress of machine-learning, with big data analysis, is contributing greatly, especially in the field of clinical imaging 11,12 , pharmacokinetics 13 , genetics 14 and oncology 15 . However, there is so far little information about predictive models of prognosis and/or progression of complications in life-style related diseases, such as T2DM 1619 .…”
Section: Introductionmentioning
confidence: 99%
“…00043 useful information from unstructured narrative text. 4,5 NLP algorithms have been widely applied to medical research in recent years for various tasks, including extracting protein-protein interactions, 6 predicting gene-disease associations from biomedical literature databases, 7 improving the sensitivity of screening for suicide behaviors among pregnant women from electronic health record systems, 8 and correlating mammographic imaging features with pathologic findings. 9 Our group previously used an NLP algorithm to automatically parse breast pathologic reports in both English and Chinese.…”
Section: Introductionmentioning
confidence: 99%