Informative Causality Extraction from Medical Literature via Dependency-tree based Patterns
Md. Ahsanul Kabir, AlJohara Almulhim, Xiao Luo, Mohammad Al Hasan

TL;DR
This paper introduces PatternCausality, an unsupervised method that effectively extracts complex cause-effect phrases from medical literature, significantly outperforming existing approaches in accuracy.
Contribution
The work presents a novel unsupervised approach tailored for medical texts, utilizing dependency patterns and phrase extraction to improve cause-effect entity extraction.
Findings
Achieves an order of magnitude improvement in F-score over existing methods.
Effectively extracts complex cause-effect phrases in medical literature.
Demonstrates superior performance on PubMed-based dataset.
Abstract
Extracting cause-effect entities from medical literature is an important task in medical information retrieval. A solution for solving this task can be used for compilation of various causality relations, such as, causality between disease and symptoms, between medications and side effects, between genes and diseases, etc. Existing solutions for extracting cause-effect entities work well for sentences where the cause and the effect phrases are name entities, single-word nouns, or noun phrases consisting of two to three words. Unfortunately, in medical literature, cause and effect phrases in a sentence are not simply nouns or noun phrases, rather they are complex phrases consisting of several words, and existing methods fail to correctly extract the cause and effect entities in such sentences. Partial extraction of cause and effect entities conveys poor quality, non informative, and…
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Taxonomy
TopicsBiomedical Text Mining and Ontologies · Topic Modeling · Advanced Text Analysis Techniques
MethodsNetwork On Network
