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-List Of Titles -Extracting biomarker information applying natural language processing and machine learning

Please use this identifier to cite or link to this item: http://hdl.handle.net/1959.14/124663

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Title
Extracting biomarker information applying natural language processing and machine learning
Related
International Conference on Bioinformatics and Biomedical Engineering (4th : 2010) (18 - 20 June 2010 : Chengdu, China)
Related
2010 4th international conference on bioinformatics and biomedical engineering (iCBBE) : June 18-20, 2010 Chengdu, China, p.1-4
DOI
10.1109/ICBBE.2010.5514717
Publisher
Piscataway, N.J : IEEE Computer Society
Date
2010
Author/Creator
Islam, Md Tawhidul
Author/Creator
Shaikh, Mostafa
Author/Creator
Nayak, Abhaya
Author/Creator
Ranganathan, Shoba
Description
In this paper, we detail an approach to a very specific task of information extraction namely, extracting biomarker information in biomedical literature. Starting with the abstract of a given publication, we first identify the evaluative sentence(s) among other sentences by recognizing words and phrases in the text belonging to semantic categories of interest to bio-medical entities (i.e., semantic category recognition). For the entities like, protein, gene and disease, we determine whether the statement refers to biomarker relationship (i.e., assertion classification). Finally, we identify the biomarker relationship among the bio-medical entities (i.e., semantic relationship classification). The system, Biomarker Information Extraction Tool (BIET) implements Machine Learning-based biomarker extraction using support vector machines (SVM). The system is trained and tested on a corpus of oncology related PubMed/MEDLINE literatures hand-annotated with biomarker information. We investigate the effectiveness of different features for this task and examine the amount of training data needed to learn the biomarker relationship with the entities. Our system achieved an average F-score of 86% for the task of biomarker information extraction comparing to the human annotated dataset (i.e. gold standard) scores.
Description
4 page(s)
Resource Type
conference paper
Organisation
Macquarie University. Dept. of Chemistry and Biomolecular Sciences

Identifier
http://hdl.handle.net/1959.14/124663
Identifier
ISBN:9781424447121
Identifier
ISSN:2151-7614
Identifier
mq-rm-2009011593
Language
eng
Rights
Copyright 2010 IEEE. Reprinted from 2010 4th international conference on bioinformatics and biomedical engineering (iCBBE) : June 18-20, 2010 Chengdu, China. This material is posted here with permission of the IEEE. Such permission of the IEEE does not in any way imply IEEE endorsement of any of Macquarie University’s products or services. Internal or personal use of this material is permitted. However, permission to reprint/republish this material for advertising or promotional purposes or for creating new collective works for resale or redistribution must be obtained from the IEEE by writing to pubs-permissions@ieee.org. By choosing to view this document, you agree to all provisions of the copyright laws protecting it.
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"2010 4th international conference on bioinformatics and biomedical engineering (iCBBE) : June 18-20, 2010 Chengdu, China"
 
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