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Prediction of Uterine Contractions Using Knowledge-Assisted Sequential Pattern Analysis
Journal article

Prediction of Uterine Contractions Using Knowledge-Assisted Sequential Pattern Analysis

Zifang Huang, Mei-Ling Shyu, James M Tien, Michael M Vigoda and David J Birnbach
IEEE transactions on biomedical engineering, Vol.60(5), pp.1290-1297
2013-05
PMID: 23232363

Abstract

Training pattern analysis Itemsets Pain Time series analysis Collaboration support vector machine (SVM) Predictive models uterine contraction Knowledge-based systems Association rules

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InCites Highlights

These are selected metrics from InCites Benchmarking & Analytics tool, related to this output

Citation topics
1 Clinical & Life Sciences
1.72 Obstetrics & Gynecology
1.72.808 Breech Presentation
Web Of Science research areas
Engineering, Biomedical
ESI research areas
Engineering

UN Sustainable Development Goals (SDGs)

This output has contributed to the advancement of the following goals:

#3 Good Health and Well-Being
#5 Gender Equality

Source: InCites

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