Bridging Medical Data Inference to Achilles Tendon Rupture Rehabilitation

December 07, 2016 ยท Declared Dead ยท ๐Ÿ› Neural Information Processing Systems

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Authors An Qu, Cheng Zhang, Paul Ackermann, Hedvig Kjellstrรถm arXiv ID 1612.02490 Category cs.LG: Machine Learning Cross-listed stat.AP Citations 1 Venue Neural Information Processing Systems Last Checked 4 months ago
Abstract
Imputing incomplete medical tests and predicting patient outcomes are crucial for guiding the decision making for therapy, such as after an Achilles Tendon Rupture (ATR). We formulate the problem of data imputation and prediction for ATR relevant medical measurements into a recommender system framework. By applying MatchBox, which is a collaborative filtering approach, on a real dataset collected from 374 ATR patients, we aim at offering personalized medical data imputation and prediction. In this work, we show the feasibility of this approach and discuss potential research directions by conducting initial qualitative evaluations.
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