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Summary of Fast Polypharmacy Side Effect Prediction Using Tensor Factorisation, by Oliver Lloyd et al.


Fast Polypharmacy Side Effect Prediction Using Tensor Factorisation

by Oliver Lloyd, Yi Liu, Tom R. Gaunt

First submitted to arxiv on: 17 Apr 2024

Categories

  • Main: Machine Learning (cs.LG)
  • Secondary: Biomolecules (q-bio.BM)

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GrooveSquid.com Paper Summaries

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Summary difficulty Written by Summary
High Paper authors High Difficulty Summary
Read the original abstract here
Medium GrooveSquid.com (original content) Medium Difficulty Summary
This paper investigates the application of tensor factorization models in predicting adverse drug reactions from combinations. The authors aim to optimize these models for accurate prediction, as current laboratory-based methods are insufficient due to the combinatorial nature of the problem. While previous computational approaches have shown mixed results, the study focuses on evaluating the capabilities of tensor factorization models when properly optimized.
Low GrooveSquid.com (original content) Low Difficulty Summary
This paper is trying to help doctors predict when a combination of medicines might cause bad side effects. Right now, doctors can only test each medicine one at a time in a lab, which isn’t enough because there are many possible combinations. The study looks at special computer models that try to figure out what might happen if different medicines are combined. These models have had mixed results so far, and the goal is to make them better at predicting when bad side effects will happen.

Keywords

» Artificial intelligence