Neurocomputational theories of homeostatic control

被引:15
|
作者
Hulme, Oliver J. [1 ]
Morville, Tobias [1 ]
Gutkin, Boris [2 ,3 ]
机构
[1] Copenhagen Univ Hosp Hvidovre, Danish Res Ctr Magnet Resonance, Ctr Funct & Diagnost Imaging & Res, Kettegard Alle 30, DK-2650 Hvidovre, Denmark
[2] PSL Univ, Grp Neural Theory, DEC Ecole Normale Super, LNC INSERM U960, Paris, France
[3] NRU Higher Sch Econ, Ctr Cognit & Decis Making, Inst Cognit Neurosci, Moscow, Russia
关键词
Homeostasis; Alostasis; Homeostatic reinforcement learning; Active inference; Computational neuroscience; TRANSITION; ADDICTION; TOLERANCE; ETHANOL; STATE; MODEL;
D O I
10.1016/j.plrev.2019.07.005
中图分类号
Q [生物科学];
学科分类号
07 ; 0710 ; 09 ;
摘要
Homeostasis is a problem for all living agents. It entails predictively regulating internal states within the bounds compatible with survival in order to maximise fitness. This can be achieved physiologically, through complex hierarchies of autonomic regulation, but it must also be achieved via behavioural control, both reactive and proactive. Here we briefly review some of the major theories of homeostatic control and their historical cognates, addressing how they tackle the optimisation of both physiological and behavioural homeostasis. We start with optimal control approaches, setting up key concepts, exploring their strengths and limitations. We then concentrate on contemporary neurocomputational approaches to homeostatic control. We primarily focus on a branch of reinforcement learning known as homeostatic reinforcement learning (HRL). A central premise of HRL is that reward optimisation is directly coupled to homeostatic control. A central construct in this framework is the drive function which maps from homeostatic state to motivational drive, where reductions in drive are operationally defined as reward values. We explain HRL's main advantages, empirical applications, and conceptual insights. Notably, we show how simple constraints on the drive function can yield a normative account of predictive control, as well as account for phenomena such as satiety, risk aversion, and interactions between competing homeostatic needs. We illustrate how HRL agents can learn to avoid hazardous states without any need to experience them, and how HRL can be applied in clinical domains. Finally, we outline several challenges to HRL, and how survival constraints and active inference models could circumvent these problems. (C) 2019 Elsevier B.V. All rights reserved.
引用
收藏
页码:214 / 232
页数:19
相关论文
共 50 条
  • [1] ON THE NATURE OF THEORIES - A NEUROCOMPUTATIONAL PERSPECTIVE
    CHURCHLAND, PM
    MINNESOTA STUDIES IN THE PHILOSOPHY OF SCIENCE, 1990, 14 : 59 - 101
  • [2] HOMEOSTATIC MOTIVATION THEORIES AND FUNCTION
    MCCLEERY, RH
    BEHAVIORAL AND BRAIN SCIENCES, 1979, 2 (01) : 111 - 111
  • [3] Homeostatic control mechanisms
    Waterhouse, Jim
    ANAESTHESIA AND INTENSIVE CARE MEDICINE, 2010, 11 (07): : 274 - 278
  • [4] Homeostatic control mechanisms
    Waterhouse, Jim
    ANAESTHESIA AND INTENSIVE CARE MEDICINE, 2007, 8 (07): : 290 - 294
  • [5] HOMEOSTATIC UTILITY CONTROL
    SCHWEPPE, FC
    TABORS, RD
    KIRTLEY, JL
    OUTHRED, HR
    PICKEL, FH
    COX, AJ
    IEEE TRANSACTIONS ON POWER APPARATUS AND SYSTEMS, 1980, 99 (03): : 1151 - 1163
  • [6] Homeostatic control mechanisms
    Waterhouse, Jim
    ANAESTHESIA AND INTENSIVE CARE MEDICINE, 2013, 14 (07): : 291 - 295
  • [7] The Organization of a Neurocomputational Control Model for Articulatory Speech Synthesis
    Kroeger, Bernd J.
    Lowit, Anja
    Schnitker, Ralph
    VERBAL AND NONVERBAL FEATURES OF HUMAN-HUMAN AND HUMAN-MACHINE INTERACTIONS, 2008, 5042 : 121 - +
  • [8] Instructional control of reinforcement learning: A behavioral and neurocomputational investigation
    Doll, Bradley B.
    Jacobs, W. Jake
    Sanfey, Alan G.
    frank, Michael J.
    BRAIN RESEARCH, 2009, 1299 : 74 - 94
  • [9] Homeostatic Control of Mitotic Arrest
    Varetti, Gianluca
    Guida, Claudia
    Santaguida, Stefano
    Chiroli, Elena
    Musacchio, Andrea
    MOLECULAR CELL, 2011, 44 (05) : 710 - 720
  • [10] Homeostatic control of meiotic crossovers
    Maria Papatriantafyllou
    Nature Reviews Molecular Cell Biology, 2012, 13 (4) : 211 - 211