MOLIERE: Automatic Biomedical Hypothesis Generation System
February 20, 2017 ยท Declared Dead ยท ๐ Knowledge Discovery and Data Mining
"No code URL or promise found in abstract"
Evidence collected by the PWNC Scanner
Authors
Justin Sybrandt, Michael Shtutman, Ilya Safro
arXiv ID
1702.06176
Category
cs.IR: Information Retrieval
Cross-listed
cs.DL,
cs.SI,
q-bio.QM,
stat.OT
Citations
70
Venue
Knowledge Discovery and Data Mining
Last Checked
2 months ago
Abstract
Hypothesis generation is becoming a crucial time-saving technique which allows biomedical researchers to quickly discover implicit connections between important concepts. Typically, these systems operate on domain-specific fractions of public medical data. MOLIERE, in contrast, utilizes information from over 24.5 million documents. At the heart of our approach lies a multi-modal and multi-relational network of biomedical objects extracted from several heterogeneous datasets from the National Center for Biotechnology Information (NCBI). These objects include but are not limited to scientific papers, keywords, genes, proteins, diseases, and diagnoses. We model hypotheses using Latent Dirichlet Allocation applied on abstracts found near shortest paths discovered within this network, and demonstrate the effectiveness of MOLIERE by performing hypothesis generation on historical data. Our network, implementation, and resulting data are all publicly available for the broad scientific community.
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