Complementary Learning Systems

被引:143
作者
O'Reilly, Randall C. [1 ]
Bhattacharyya, Rajan [2 ]
Howard, Michael D. [2 ]
Ketz, Nicholas [1 ]
机构
[1] Univ Colorado, Dept Psychol & Neurosci, Boulder, CO 80309 USA
[2] HRL Labs LLC, Malibu, CA USA
关键词
Hippocampus; Neocortex; Learning; Memory; Consolidation; Neural network models; HIERARCHICAL RELATIONAL BINDING; RECOGNITION MEMORY; CONJUNCTIVE REPRESENTATIONS; PATTERN SEPARATION; PREFRONTAL CORTEX; DENTATE GYRUS; HIPPOCAMPAL RIPPLES; WORKING-MEMORY; THETA-RHYTHM; REPLAY;
D O I
10.1111/j.1551-6709.2011.01214.x
中图分类号
B84 [心理学];
学科分类号
04 ; 0402 ;
摘要
This paper reviews the fate of the central ideas behind the complementary learning systems (CLS) framework as originally articulated in McClelland, McNaughton, and O'Reilly (1995). This framework explains why the brain requires two differentially specialized learning and memory systems, and it nicely specifies their central properties (i.e., the hippocampus as a sparse, pattern-separated system for rapidly learning episodic memories, and the neocortex as a distributed, overlapping system for gradually integrating across episodes to extract latent semantic structure). We review the application of the CLS framework to a range of important topics, including the following: the basic neural processes of hippocampal memory encoding and recall, conjunctive encoding, human recognition memory, consolidation of initial hippocampal learning in cortex, dynamic modulation of encoding versus recall, and the synergistic interactions between hippocampus and neocortex. Overall, the CLS framework remains a vital theoretical force in the field, with the empirical data over the past 15 years generally confirming its key principles.
引用
收藏
页码:1229 / 1248
页数:20
相关论文
共 89 条
[81]   REACTIVATION OF HIPPOCAMPAL ENSEMBLE MEMORIES DURING SLEEP [J].
WILSON, MA ;
MCNAUGHTON, BL .
SCIENCE, 1994, 265 (5172) :676-679
[82]   Memory formation and long-term retention in humans and animals: Convergence towards a transformation account of hippocampal-neocortical interactions [J].
Winocur, Gordon ;
Moscovitch, Morris ;
Bontempi, Bruno .
NEUROPSYCHOLOGIA, 2010, 48 (08) :2339-2356
[83]   Object recognition memory: Neurobiological mechanisms of encoding, consolidation and retrieval [J].
Winters, Boyer D. ;
Saksida, Lisa M. ;
Bussey, Timothy J. .
NEUROSCIENCE AND BIOBEHAVIORAL REVIEWS, 2008, 32 (05) :1055-1070
[84]   Measuring Recollection and Familiarity in the Medial Temporal Lobe [J].
Wixted, John T. ;
Mickes, Laura ;
Squire, Larry R. .
HIPPOCAMPUS, 2010, 20 (11) :1195-1205
[85]   Size of CA1-evoked synaptic potentials is related to theta rhythm phase in rat hippocampus [J].
Wyble, BP ;
Linster, C ;
Hasselmo, ME .
JOURNAL OF NEUROPHYSIOLOGY, 2000, 83 (04) :2138-2144
[86]   Recollection and Familiarity: Examining Controversial Assumptions and New Directions [J].
Yonelinas, Andrew P. ;
Aly, Mariam ;
Wang, Wei-Chun ;
Koen, Joshua D. .
HIPPOCAMPUS, 2010, 20 (11) :1178-1194
[87]   The nature of recollection and familiarity: A review of 30 years of research [J].
Yonelinas, AP .
JOURNAL OF MEMORY AND LANGUAGE, 2002, 46 (03) :441-517
[88]   Signal-detection, threshold, and dual-process models of recognition memory: ROCs and conscious recollection [J].
Yonelinas, AP ;
Dobbins, I ;
Szymanski, MD ;
Dhaliwal, HS ;
King, L .
CONSCIOUSNESS AND COGNITION, 1996, 5 (04) :418-441
[89]   Recognition memory for realistic synthetic faces [J].
Yotsumoto, Yuko ;
Kahana, Michael J. ;
Wilson, Hugh R. ;
Sekuler, Robert .
MEMORY & COGNITION, 2007, 35 (06) :1233-1244