Literature DB >> 34986108

Machine Learning Based Healthcare System for Investigating the Association Between Depression and Quality of Life.

Masood Habib, Zhelong Wang, Sen Qiu, Hongyu Zhao, Aparna S Murthy.   

Abstract

New technological innovations are changing the future of healthcare system. Identification of factors that are responsible for causing depression may lead to new experiments and treatments. Because depression as a disease is becoming a leading community health concern worldwide. Using machine learning techniques this article presents a complete methodological framework to process and explore the heterogenous data and to better understand the association between factors related to quality of life and depression. Subsequently, the experimental study is mainly divided into two parts. In the first part, a data consolidation process is presented. The relationship of data is formed and to uniquely identify each relation in data the concept of the Secure Hash Algorithm is adopted. Hashing is used to locate and index the actual items in the data. The second part proposed a model using both unsupervised and supervised machine learning techniques. The consolidation approach helped in providing a base for formulation and validation of the research hypothesis. The Self organizing map provided 08 cluster solution and the classification problems were taken from the clustered data to further validate the performance of the posterior probability multi-class Support Vector Machine. The expectations of the importance sampling resulted in factors responsible for causing depression. The proposed model was adopted to improve the classification performance, and the result showed classification accuracy of 91.16%.

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Year:  2022        PMID: 34986108     DOI: 10.1109/JBHI.2022.3140433

Source DB:  PubMed          Journal:  IEEE J Biomed Health Inform        ISSN: 2168-2194            Impact factor:   5.772


  1 in total

1.  Impact of Social Participation Types on Depression in the Elderly in China: An Analysis Based on Counterfactual Causal Inference.

Authors:  Xiaofeng Wang; Jiamin Guo; Huawei Liu; Tengteng Zhao; Hu Li; Tan Wang
Journal:  Front Public Health       Date:  2022-04-01
  1 in total

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