Implications of Information Theory for Computational Modeling of Schizophrenia.

Steven M Silverstein, Michael Wibral, William A Phillips
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引用次数: 18

Abstract

Information theory provides a formal framework within which information processing and its disorders can be described. However, information theory has rarely been applied to modeling aspects of the cognitive neuroscience of schizophrenia. The goal of this article is to highlight the benefits of an approach based on information theory, including its recent extensions, for understanding several disrupted neural goal functions as well as related cognitive and symptomatic phenomena in schizophrenia. We begin by demonstrating that foundational concepts from information theory-such as Shannon information, entropy, data compression, block coding, and strategies to increase the signal-to-noise ratio-can be used to provide novel understandings of cognitive impairments in schizophrenia and metrics to evaluate their integrity. We then describe more recent developments in information theory, including the concepts of infomax, coherent infomax, and coding with synergy, to demonstrate how these can be used to develop computational models of schizophrenia-related failures in the tuning of sensory neurons, gain control, perceptual organization, thought organization, selective attention, context processing, predictive coding, and cognitive control. Throughout, we demonstrate how disordered mechanisms may explain both perceptual/cognitive changes and symptom emergence in schizophrenia. Finally, we demonstrate that there is consistency between some information-theoretic concepts and recent discoveries in neurobiology, especially involving the existence of distinct sites for the accumulation of driving input and contextual information prior to their interaction. This convergence can be used to guide future theory, experiment, and treatment development.

信息理论对精神分裂症计算模型的启示。
信息论提供了一个正式的框架,在这个框架中可以描述信息处理及其紊乱。然而,信息论很少被应用于精神分裂症认知神经科学的建模方面。本文的目的是强调基于信息理论的方法的好处,包括其最近的扩展,用于理解精神分裂症中几种中断的神经目标功能以及相关的认知和症状现象。我们首先展示了信息论的基本概念——如香农信息、熵、数据压缩、块编码和提高信噪比的策略——可以用来提供对精神分裂症认知障碍的新理解,以及评估其完整性的指标。然后,我们描述了信息理论的最新发展,包括信息最大化、连贯信息最大化和协同编码的概念,以展示如何使用这些概念来开发与精神分裂症相关的计算模型,包括感觉神经元的调节、获得控制、感知组织、思维组织、选择性注意、上下文处理、预测编码和认知控制。在整个过程中,我们展示了紊乱机制如何解释精神分裂症的感知/认知变化和症状出现。最后,我们证明了一些信息理论概念与神经生物学的最新发现之间存在一致性,特别是涉及到驱动输入和上下文信息在相互作用之前积累的不同位点的存在。这种趋同可以用来指导未来的理论、实验和治疗发展。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
4.30
自引率
0.00%
发文量
0
审稿时长
17 weeks
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