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Unified framework for information integration based on information geometry

机译:基于信息几何的信息集成统一框架

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摘要

Assessment of causal influences is a ubiquitous and important subject across diverse research fields. Drawn from consciousness studies, integrated information is a measure that defines integration as the degree of causal influences among elements. Whereas pairwise causal influences between elements can be quantified with existing methods, quantifying multiple influences among many elements poses two major mathematical difficulties. First, overestimation occurs due to interdependence among influences if each influence is separately quantified in a part-based manner and then simply summed over. Second, it is difficult to isolate causal influences while avoiding noncausal confounding influences. To resolve these difficulties, we propose a theoretical framework based on information geometry for the quantification of multiple causal influences with a holistic approach. We derive a measure of integrated information, which is geometrically interpreted as the divergence between the actual probability distribution of a system and an approximated probability distribution where causal influences among elements are statistically disconnected. This framework provides intuitive geometric interpretations harmonizing various information theoretic measures in a unified manner, including mutual information, transfer entropy, stochastic interaction, and integrated information, each of which is characterized by how causal influences are disconnected. In addition to the mathematical assessment of consciousness, our framework should help to analyze causal relationships in complex systems in a complete and hierarchical manner.
机译:因果影响的评估是各个研究领域中普遍存在且重要的主题。从意识研究中得出的结论是,整合信息是一种将整合定义为要素之间因果影响程度的度量。尽管可以使用现有方法量化元素之间的成对因果影响,但是量化许多元素之间的多重影响却带来了两个主要的数学困难。首先,如果每种影响都以基于部分的方式分别量化,然后简单地求和,则会由于影响之间的相互依赖性而发生高估。其次,很难在避免非因果混杂影响的同时隔离因果影响。为了解决这些困难,我们提出了一种基于信息几何的理论框架,用于采用整体方法量化多种因果影响。我们得出一种综合信息的度量,该度量在几何上被解释为系统的实际概率分布与元素之间因果影响在统计上不相关的近似概率分布之间的差异。该框架提供直观的几何解释,以统一的方式协调各种信息理论方法,包括互信息,传递熵,随机交互作用和集成信息,每种特征均以因果关系如何断开为特征。除了对意识进行数学评估之外,我们的框架还应有助于以完整和分层的方式分析复杂系统中的因果关系。

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