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Diagnosis of Human Psychological Disorders using Supervised Learning and Nature-Inspired Computing Techniques: A Meta-Analysis

机译:利用监督学习和自然启发计算技术诊断人类心理障碍:META分析

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A psychological disorder is a mutilation state of the body that intervenes the imperative functioning of the mind or brain. In the last few years, the number of psychological disorders patients has been significantly raised. This paper presents a comprehensive review of some of the major human psychological disorders (stress, depression, autism, anxiety, Attention-deficit hyperactivity disorder (ADHD), Alzheimer, Parkinson, insomnia, schizophrenia and mood disorder) mined using different supervised and nature-inspired computing techniques. A systematic review methodology based on three-dimensional search space i.e. disease diagnosis, psychological disorders and classification techniques has been employed. This study reviews the discipline, models, and methodologies used to diagnose different psychological disorders. Initially, different types of human psychological disorders along with their biological and behavioural symptoms have been presented. The racial effects on these human disorders have been briefly explored. The morbidity rate of psychological disordered Indian patients has also been depicted. The significance of using different supervised learning and nature-inspired computing techniques in the diagnosis of different psychological disorders has been extensively examined and the publication trend of the related articles has also been comprehensively accessed. The brief details of the datasets used in mining these human disorders have also been shown. In addition, the effect of using feature selection on the predictive rate of accuracy of these human disorders is also presented in this study. Finally, the research gaps have been identified that witnessed that there is a full scope for diagnosis of mania, insomnia, mood disorder using emerging nature-inspired computing techniques. Moreover, there is a need to explore the use of a binary or chaotic variant of different nature-inspired computing techniques in the diagnosis of different human psychological disorders. This study will serve as a roadmap to guide the researchers who want to pursue their research work in the mining of different psychological disorders.
机译:心理障碍是身体的肢解状态,介于脑部或大脑的命令功能。在过去的几年里,心理障碍患者的数量被显着提出。本文旨在全面审查一些主要的人类心理疾病(压力,抑郁,自闭症,焦虑,注意力缺陷多动障碍(ADHD),阿尔茨海默,帕金森,失眠,精神分裂症和情绪障碍)使用不同的监督和性质开采 - 灵感的计算技术。基于三维搜索空间的系统审查方法,即疾病诊断,心理障碍和分类技术。本研究审查了用于诊断不同心理障碍的学科,模型和方法。最初,已经提出了不同类型的人类心理障碍以及其生物和行为症状。简要探讨了对这些人类障碍的种族影响。还描绘了心理紊乱的印度患者的发病率。广泛地研究了在不同心理障碍诊断中使用不同监督学习和自然灵感的计算技术的重要性,并综合地探讨了相关文章的出版趋势。还显示了在挖掘这些人类障碍的数据集的简要细节。此外,还在本研究中介绍了使用特征选择对这些人类疾病精度预测率的影响。最后,已经确定了研究差距,目睹了使用新兴自然启发的计算技术诊断躁狂症,失眠,情绪障碍的全部范围。此外,需要探讨在不同人类心理障碍的诊断中使用不同性质启发的计算技术的二元或混沌变体。本研究将作为指导该研究人员在不同的心理障碍开采中寻求研究工作的路线图。

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