Literature DB >> 28284761

Embedding of semantic predications.

Trevor Cohen1, Dominic Widdows2.   

Abstract

This paper concerns the generation of distributed vector representations of biomedical concepts from structured knowledge, in the form of subject-relation-object triplets known as semantic predications. Specifically, we evaluate the extent to which a representational approach we have developed for this purpose previously, known as Predication-based Semantic Indexing (PSI), might benefit from insights gleaned from neural-probabilistic language models, which have enjoyed a surge in popularity in recent years as a means to generate distributed vector representations of terms from free text. To do so, we develop a novel neural-probabilistic approach to encoding predications, called Embedding of Semantic Predications (ESP), by adapting aspects of the Skipgram with Negative Sampling (SGNS) algorithm to this purpose. We compare ESP and PSI across a number of tasks including recovery of encoded information, estimation of semantic similarity and relatedness, and identification of potentially therapeutic and harmful relationships using both analogical retrieval and supervised learning. We find advantages for ESP in some, but not all of these tasks, revealing the contexts in which the additional computational work of neural-probabilistic modeling is justified.
Copyright © 2017 Elsevier Inc. All rights reserved.

Entities:  

Keywords:  Distributional semantics; Literature-based discovery; Pharmacovigilance; Predication-based semantic indexing; Semantic predications; Word embeddings

Mesh:

Year:  2017        PMID: 28284761      PMCID: PMC5441848          DOI: 10.1016/j.jbi.2017.03.003

Source DB:  PubMed          Journal:  J Biomed Inform        ISSN: 1532-0464            Impact factor:   6.317


  18 in total

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2.  Predication-based semantic indexing: permutations as a means to encode predications in semantic space.

Authors:  Trevor Cohen; Roger W Schvaneveldt; Thomas C Rindflesch
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6.  Corpus domain effects on distributional semantic modeling of medical terms.

Authors:  Serguei V S Pakhomov; Greg Finley; Reed McEwan; Yan Wang; Genevieve B Melton
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7.  Discovering discovery patterns with Predication-based Semantic Indexing.

Authors:  Trevor Cohen; Dominic Widdows; Roger W Schvaneveldt; Peter Davies; Thomas C Rindflesch
Journal:  J Biomed Inform       Date:  2012-07-26       Impact factor: 6.317

8.  SemMedDB: a PubMed-scale repository of biomedical semantic predications.

Authors:  Halil Kilicoglu; Dongwook Shin; Marcelo Fiszman; Graciela Rosemblat; Thomas C Rindflesch
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  11 in total

1.  Learning predictive models of drug side-effect relationships from distributed representations of literature-derived semantic predications.

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2.  Complementing Observational Signals with Literature-Derived Distributed Representations for Post-Marketing Drug Surveillance.

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3.  Exploring Novel Computable Knowledge in Structured Drug Product Labels.

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4.  Rapamycin - mTOR + BRAF = ? Using relational similarity to find therapeutically relevant drug-gene relationships in unstructured text.

Authors:  Safa Fathiamini; Amber M Johnson; Jia Zeng; Vijaykumar Holla; Nora S Sanchez; Funda Meric-Bernstam; Elmer V Bernstam; Trevor Cohen
Journal:  J Biomed Inform       Date:  2019-01-04       Impact factor: 6.317

5.  Rediscovering Don Swanson: the Past, Present and Future of Literature-Based Discovery.

Authors:  Neil R Smalheiser
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6.  Using computable knowledge mined from the literature to elucidate confounders for EHR-based pharmacovigilance.

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7.  Predicting drug-disease associations by using similarity constrained matrix factorization.

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8.  Drug repurposing for COVID-19 via knowledge graph completion.

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9.  Predicting Adverse Drug-Drug Interactions with Neural Embedding of Semantic Predications

Authors:  Hannah A Burkhardt; Devika Subramanian; Justin Mower; Trevor Cohen
Journal:  AMIA Annu Symp Proc       Date:  2020-03-04

10.  Broad-coverage biomedical relation extraction with SemRep.

Authors:  Halil Kilicoglu; Graciela Rosemblat; Marcelo Fiszman; Dongwook Shin
Journal:  BMC Bioinformatics       Date:  2020-05-14       Impact factor: 3.169

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