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  1. Home
  2. Volume 7, Issue 8
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Online ISSN: 2515-8260

Volume7, Issue8

A Novel Approach For Predicting Drug Response Similarity Using Machine Learning

    M Supriya Menon P Raja Rajeswari

European Journal of Molecular & Clinical Medicine, 2020, Volume 7, Issue 8, Pages 796-808

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Abstract

Medical domain is revolutionized in terms of Diseases, Diagnosis, and Treatment Prediction thereby undergoing immense pressure due to the high dimensionality of numerable multivariate attributes, suppressing the quality of the analysis. Many techniques like Clustering and Classification have ruled over despite, rendering few hairline gaps towards attaining maximum efficiency. Our Machine Learning-based approach heads towards filling these gaps by adopting advanced K-Means in anticipating Drug likelihood in core attributes of Patients. The proposed Methodology focuses on determining Drug Response similarity by enhanced clustering technique concerning sensitive attributes of Patients. We successfully demonstrated its performance on the UCI Patient dataset reflecting enhanced results concerning Quality Parameters.
Keywords:
    K-means Euclidean distance KNN algorithm, Drug responses Clustering
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(2020). A Novel Approach For Predicting Drug Response Similarity Using Machine Learning. European Journal of Molecular & Clinical Medicine, 7(8), 796-808.
M Supriya Menon; P Raja Rajeswari. "A Novel Approach For Predicting Drug Response Similarity Using Machine Learning". European Journal of Molecular & Clinical Medicine, 7, 8, 2020, 796-808.
(2020). 'A Novel Approach For Predicting Drug Response Similarity Using Machine Learning', European Journal of Molecular & Clinical Medicine, 7(8), pp. 796-808.
A Novel Approach For Predicting Drug Response Similarity Using Machine Learning. European Journal of Molecular & Clinical Medicine, 2020; 7(8): 796-808.
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