DocumentCode :
3519576
Title :
Figure Classification in Biomedical Literature towards Figure Mining
Author :
Ishii, Natsu ; Koike, Asako ; Yamamoto, Yasunori ; Takagi, Toshihisa
Author_Institution :
Dept. of Comput. Biol., Univ. of Tokyo, Tokyo
fYear :
2008
fDate :
3-5 Nov. 2008
Firstpage :
263
Lastpage :
269
Abstract :
Biomedical papers contain large amounts of figures. Since they provide important information about research outcomes, mining techniques targeting them have attracted a great deal of attention. Our final goal is to develop a figure finding system, FigFinder, to retrieve figures relevant to a userpsilas query by mining information contained in figures, their legends, and the main text in an integrative manner. In this study, we worked on figure classification to choose those representing signaling or metabolic pathways, based on textual information contained in biomedical papers, as the first step to develop FigFinder. We took several supervised machine learning methods, and could confirm that the use of main text combined with figure legends was quite effective. Although many groups have considered figure legends, this is the first attempt to address figure classification task by utilizing figure legends together with main text to our knowledge.
Keywords :
data mining; learning (artificial intelligence); medical information systems; pattern classification; query processing; text analysis; FigFinder; biomedical literature; biomedical papers; figure classification; figure mining techniques; metabolic pathways; signaling pathways; supervised machine learning method; text analysis; textual information; users query processing; Abstracts; Bioinformatics; Computational biology; Data mining; Databases; Educational institutions; Information retrieval; Laboratories; Machine learning; Proteins; Figure classification; Text mining;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Bioinformatics and Biomedicine, 2008. BIBM '08. IEEE International Conference on
Conference_Location :
Philadelphia, PA
Print_ISBN :
978-0-7695-3452-7
Type :
conf
DOI :
10.1109/BIBM.2008.38
Filename :
4684901
Link To Document :
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