Integrated Intelligent Computing Models for Cognitive-Based Neurological Disease Interpretation in Children: A Survey

Archana Tandon, B. Mazumdar, Manoj Kumar Pal
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Abstract

INTRODUCTION: This piece of work provides the description of integrated intelligent computing models for the interpretation of cognitive-based neurological diseases in children. These diseases can have a significant impact on children's cognitive and developmental functioning. OBJECTIVES: The research work review the current diagnosis and treatment methods for cognitive based neurological diseases and discusses the potential of machine learning, deep learning, Natural language processing, speech recognition, brain imaging, and signal processing techniques in interpreting the diseases. METHODS: A survey of recent research on integrated intelligent computing models for cognitive-based neurological disease interpretation in children is presented, highlighting the benefits and limitations of these models. RESULTS: The significant of this work provide important implications for healthcare practice and policy, with strengthen diagnosis and treatment of cognitive-based neurological diseases in children. CONCLUSION: This research paper concludes with a discussion of the ethical and legal considerations surrounding the use of intelligent computing models in healthcare, as well as future research directions in this area.
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基于认知的儿童神经系统疾病解释的集成智能计算模型:调查
简介:本作品介绍了用于解释儿童认知神经系统疾病的集成智能计算模型。这些疾病会对儿童的认知和发育功能产生重大影响。目标:该研究工作回顾了目前对基于认知的神经系统疾病的诊断和治疗方法,并讨论了机器学习、深度学习、自然语言处理、语音识别、脑成像和信号处理技术在解读疾病方面的潜力。方法:介绍了近期关于基于认知的儿童神经系统疾病解读的集成智能计算模型的研究调查,强调了这些模型的优势和局限性。结果:这项工作的重要意义为医疗保健实践和政策提供了重要参考,加强了对基于认知的儿童神经系统疾病的诊断和治疗。结论:本研究论文最后讨论了在医疗保健领域使用智能计算模型的伦理和法律问题,以及该领域未来的研究方向。
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来源期刊
EAI Endorsed Transactions on Pervasive Health and Technology
EAI Endorsed Transactions on Pervasive Health and Technology Computer Science-Computer Science (miscellaneous)
CiteScore
3.50
自引率
0.00%
发文量
14
审稿时长
10 weeks
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