Neural and phenotypic representation under the free-energy principle

被引:15
作者
Ramstead, Maxwell J. D. [1 ,2 ,3 ]
Hesp, Casper [3 ,4 ,5 ,6 ]
Tschantz, Alexander [9 ,10 ]
Smith, Ryan [7 ]
Constant, Axel [2 ,3 ,8 ]
Friston, Karl [3 ]
机构
[1] McGill Univ, Div Social & Transcultural Psychiat, Dept Psychiat, 1033 Pine Ave West, Montreal, PQ H3W 1A1, Canada
[2] McGill Univ, Culture Mind & Brain Program, Montreal, PQ, Canada
[3] UCL, Wellcome Ctr Human Neuroimaging, London WC1N 3BG, England
[4] Univ Amsterdam, Dept Psychol, Sci Pk 904, NL-1098 XH Amsterdam, Netherlands
[5] Univ Amsterdam, Amsterdam Brain & Cognit Ctr, Sci Pk 904, NL-1098 XH Amsterdam, Netherlands
[6] Univ Amsterdam, Inst Adv Study, Oude Turfmarkt 147, NL-1012 GC Amsterdam, Netherlands
[7] Laureate Inst Brain Res, Tulsa, OK USA
[8] Univ Sydney, Charles Perkins Ctr D17, Theory & Method Biosci, Level 6,Johns Hopkins Dr, Sydney, NSW 2006, Australia
[9] Univ Sussex, Sackler Ctr Consciousness Sci, Brighton, E Sussex, England
[10] Univ Sussex, Dept Informat, Brighton, E Sussex, England
基金
英国惠康基金;
关键词
Neural representation; Neuronal packet hypothesis; Phenotypic representation; Markov blankets; Active inference; Free-energy principle; MACAQUE MONKEY; BRAIN; ORGANIZATION; CAT; NEUROTROPHINS; PROJECTIONS; SELECTIVITY; ASSEMBLIES; PLASTICITY; EXPERIENCE;
D O I
10.1016/j.neubiorev.2020.11.024
中图分类号
B84 [心理学]; C [社会科学总论]; Q98 [人类学];
学科分类号
03 ; 0303 ; 030303 ; 04 ; 0402 ;
摘要
The aim of this paper is to leverage the free-energy principle and its corollary process theory, active inference, to develop a generic, generalizable model of the representational capacities of living creatures; that is, a theory of phenotypic representation. Given their ubiquity, we are concerned with distributed forms of representation (e.g., population codes), whereby patterns of ensemble activity in living tissue come to represent the causes of sensory input or data. The active inference framework rests on the Markov blanket formalism, which allows us to partition systems of interest, such as biological systems, into internal states, external states, and the blanket (active and sensory) states that render internal and external states conditionally independent of each other. In this framework, the representational capacity of living creatures emerges as a consequence of their Markovian structure and nonequilibrium dynamics, which together entail a dual-aspect information geometry. This entails a modest representational capacity: internal states have an intrinsic information geometry that describes their trajectory over time in state space, as well as an extrinsic information geometry that allows internal states to encode (the parameters of) probabilistic beliefs about (fictive) external states. Building on this, we describe here how, in an automatic and emergent manner, information about stimuli can come to be encoded by groups of neurons bound by a Markov blanket; what is known as the neuronal packet hypothesis. As a concrete demonstration of this type of emergent representation, we present numerical simulations showing that self-organizing ensembles of active inference agents sharing the right kind of probabilistic generative model are able to encode recoverable information about a stimulus array.
引用
收藏
页码:109 / 122
页数:14
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