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Adaptive Resonance Theory: How a brain learns to consciously attend, learn, and recognize a changing world

Published: 01 January 2013 Publication History

Abstract

Adaptive Resonance Theory, or ART, is a cognitive and neural theory of how the brain autonomously learns to categorize, recognize, and predict objects and events in a changing world. This article reviews classical and recent developments of ART, and provides a synthesis of concepts, principles, mechanisms, architectures, and the interdisciplinary data bases that they have helped to explain and predict. The review illustrates that ART is currently the most highly developed cognitive and neural theory available, with the broadest explanatory and predictive range. Central to ART's predictive power is its ability to carry out fast, incremental, and stable unsupervised and supervised learning in response to a changing world. ART specifies mechanistic links between processes of consciousness, learning, expectation, attention, resonance, and synchrony during both unsupervised and supervised learning. ART provides functional and mechanistic explanations of such diverse topics as laminar cortical circuitry; invariant object and scenic gist learning and recognition; prototype, surface, and boundary attention; gamma and beta oscillations; learning of entorhinal grid cells and hippocampal place cells; computation of homologous spatial and temporal mechanisms in the entorhinal-hippocampal system; vigilance breakdowns during autism and medial temporal amnesia; cognitive-emotional interactions that focus attention on valued objects in an adaptively timed way; item-order-rank working memories and learned list chunks for the planning and control of sequences of linguistic, spatial, and motor information; conscious speech percepts that are influenced by future context; auditory streaming in noise during source segregation; and speaker normalization. Brain regions that are functionally described include visual and auditory neocortex; specific and nonspecific thalamic nuclei; inferotemporal, parietal, prefrontal, entorhinal, hippocampal, parahippocampal, perirhinal, and motor cortices; frontal eye fields; supplementary eye fields; amygdala; basal ganglia: cerebellum; and superior colliculus. Due to the complementary organization of the brain, ART does not describe many spatial and motor behaviors whose matching and learning laws differ from those of ART. ART algorithms for engineering and technology are listed, as are comparisons with other types of models.

References

[1]
Synaptic depression and cortical gain control. Science. v275. 220-223.
[2]
Imitating unfamiliar sequences of connected linear motions. Journal of Neurophysiology. v94. 2832-2843.
[3]
Learning to imitate novel motion sequences. Journal of Vision. v7.
[4]
The contribution of the amygdala to normal and abnormal emotional states. Trends in Neurosciences. v16. 328-333.
[5]
Attentional control of early perceptual learning. Proceedings of the National Academy of Sciences USA. v90. 5718-5722.
[6]
An intelligent ballistocardiographic chair using a novel SF-ART neural network and biorthogonal wavelets. Journal of Medical Systems. v31. 69-77.
[7]
Speaker normalization using cortical strip maps: a neural model for steady state vowel categorization. Journal of the Acoustical Society of America. v124. 3918-3936.
[8]
Cortical hierarchy reflected in the organization of intrinsic connections in macaque monkey visual cortex. Journal of Comparative Neurology. v334. 19-46.
[9]
Default ARTMAP 2. In: Proceedings of the international joint conference on neural networks, IEEE Press, Orlando, Florida. pp. 777-782.
[10]
Self-supervised ARTMAP. Neural Networks. v23. 265-282.
[11]
Amis, G., Carpenter, G.A., Ersoy, B., & Grossberg, S. (2009). Cortical learning of recognition categories: a resolution of the exemplar vs. prototype debate (submitted for publication).
[12]
Anagnostopoulos, G.C., & Georgiopoulos, M. (2000). Hypersphere ART and ARTMAP for unsupervised and supervised incremental learning. In Neural networks, proceedings of the IEEE-INNS-ENNS international joint conference on neural networks, vol. 6 (pp. 59-64).
[13]
Recognition of coloured and textured images through a multi-scale neural architecture with orientational filtering and chromatic diffusion. Neurocomputing. v72. 3713-3725.
[14]
Blockade of central cholinergic receptors impairs new learning and increases proactive interference in a word paired-associate memory task. Behavioral Neuroscience. v118. 223-236.
[15]
Probabilistic phonotactics in spoken word recognition. In: Pisoni, D.B., Remez, R.E. (Eds.), The handbook of speech perception, Wiley Online Library.
[16]
Parallel processing of serial movements in prefrontal cortex. Proceedings of the National Academy of Sciences, USA. v99 i20. 13172-13177.
[17]
Neural activity in prefrontal cortex during copying geometrical shapes, I, single cells encode shape, sequence, and metric parameters. Experimental Brain Research. v150. 127-141.
[18]
Neural activity in prefrontal cortex during copying geometrical shapes, II, decoding shape segments from neural ensembles. Experimental Brain Research. v150. 142-153.
[19]
Neural networks and principal component analysis: learning from examples and local minima. Neural Networks. v2. 53-58.
[20]
Cortical mechanisms specific to explicit object recognition. Neuron. v29. 529-535.
[21]
Anatomic basis of cognitive-emotional interactions in the primate prefrontal cortex. Neuroscience and Biobehavioral Reviews. v19. 499-510.
[22]
Connections underlying the synthesis of cognition, memory and emotion in primate prefrontal cortices. Brain Research Bulletin. v52 i5. 319-330.
[23]
Computational models of thalamocortical augmenting responses. Journal of Neuroscience. v18. 6444-6465.
[24]
Control of response selection by reinforcer value requires interaction of amygdala and orbital prefrontal cortex. Journal of Neuroscience. v20. 4311-4319.
[25]
Sensitivity to curvatures in orientation-based texture segmentation. Vision Research. v44. 257-277.
[26]
Role of the hippocampus in classical conditioning of aversive and appetitive behaviors. In: Isaacson, R.L., Pribram, K.H. (Eds.), The hippocampus, vol. 4, Plenum Press, New York. pp. 203-239.
[27]
Transient 23-30-Hz oscillations in mouse hippocampus during exploration of novel environments. Hippocampus. v18. 519-529.
[28]
Laminar cortical dynamics of visual form and motion interactions during coherent object motion perception. Spatial Vision. v20. 337-395.
[29]
Texture segregation by visual cortex: perceptual grouping, attention, and learning. Vision Research. v47. 3173-3211.
[30]
Synaptic modification by correlated activity: Hebb's postulate revisited. Annual Review of Neuroscience. v24. 139-166.
[31]
Cholinergic influences on feature binding. Behavioral Neuroscience. v121. 264-276.
[32]
Cholinergic deafferentation of the neocortex using 192 igg-saporin impairs feature binding in rats. The Journal of Neuroscience. v29. 4120-4130.
[33]
Working memory networks for learning temporal order with application to 3-D visual object recognition. Neural Computation. v4. 270-286.
[34]
STORE working memory networks for storage and recall of arbitrary temporal sequences. Biological Cybernetics. v71. 469-480.
[35]
Coordinated machine learning and decision support for situation awareness. Neural Networks. v22. 316-325.
[36]
Auditory scene analysis: the perceptual organization of sound. MIT Press, Cambridge, MA.
[37]
How the basal ganglia use parallel excitatory and inhibitory learning pathways to selectively respond to unexpected rewarding cues. Journal of Neuroscience. v19. 10502-10511.
[38]
How laminar frontal cortex and basal ganglia circuits interact to control planned and reactive saccades. Neural Networks. v17. 471-510.
[39]
Shifting attention into and out of objects: evaluating the processes underlying the object advantage. Perception & Psychophysics. v69. 606-618.
[40]
Learning in honeybees as a function of amount and frequency of reward. Animal Learning and Behavior. v16. 247-255.
[41]
Laminar differences in gamma and alpha coherence in the ventral stream. Proceedings of the National Academy of Sciences. v108. 11262-11267.
[42]
Functional interactions between areas V1 and V2 in the monkey. Journal of Physiology (Paris). v90. 217-220.
[43]
Cortical networks for control of voluntary arm movements under variable force conditions. Cerebral Cortex. v8. 48-62.
[44]
Neural dynamics of planned arm movements: emergent invariants and speed-accuracy properties during trajectory formation. Psychological Review. v95. 49-90.
[45]
A self-organizing neural model of motor equivalent reaching and tool use by a multijoint arm. Journal of Cognitive Neuroscience. v5. 408-435.
[46]
A solvable connectionist model of immediate recall of ordered lists. In: Tesauro, G., Touretzky, D.S., Leen, T.K. (Eds.), Advances in neural information processing systems, vol. 7, MIT Press, Cambridge, MA.
[47]
Toward a network model of the articulatory loop. Journal of Memory and Language. v31. 429-460.
[48]
Top-down versus bottom-up control of attention in the prefrontal and posterior parietal cortices. Science. v315. 1860-1862.
[49]
Serial, covert shifts of attention during visual search are reflected by the frontal eye fields and correlated with population oscillations. Neuron. v63. 386-396.
[50]
An efficient approach for electric load forecasting using distributed ART (adaptive resonance theory) & HS-ARTMAP (Hyper-spherical ARTMAP network) neural network. Energy. v36. 1340-1350.
[51]
dFasArt: dynamic neural processing in FasArt model. Neural Networks. v22. 479-487.
[52]
A laminar cortical model of stereopsis and 3D surface perception: closure and da Vinci stereopsis. Spatial Vision. v18. 515-578.
[53]
How does the brain rapidly learn and reorganize view- and positionally-invariant object representations in inferior temporal cortex?. Neural Networks. v24. 1050-1061.
[54]
Attentional selection by distractor suppression. Vision Research. v38. 669-689.
[55]
Distributed learning, recognition, and prediction by ART and ARTMAP neural networks. Neural Networks. v10. 1473-1494.
[56]
Carpenter, G.A. (2003). Default ARTMAP. In Proceedings of the international joint conference on neural networks, IJCNN'03 (pp. 1396-1401).
[57]
Biased ART: a neural architecture that shifts attention toward previously disregarded features following an incorrect prediction. Neural Networks. v23. 435-451.
[58]
A massively parallel architecture for a self-organizing neural pattern recognition machine. Computer Vision, Graphics, and Image Processing. v37. 54-115.
[59]
ART 3: hierarchical search using chemical transmitters in self- organizing pattern recognition architectures. Neural Networks. v3. 129-152.
[60]
Pattern recognition by self-organizing neural networks. MIT Press, Cambridge, MA.
[61]
Normal and amnesic learning, recognition, and memory by a neural model of cortico-hippocampal interactions. Trends in Neurosciences. v16. 131-137.
[62]
Fuzzy ARTMAP: a neural network architecture for incremental supervised learning of analog multidimensional maps. IEEE Transactions on Neural Networks. v3. 698-713.
[63]
ARTMAP: supervised real-time learning and classification of nonstationary data by a self-organizing neural network. Neural Networks. v4. 565-588.
[64]
Fuzzy ART: fast stable learning and categorization of analog patterns by an adaptive resonance system. Neural Networks. v4. 759-771.
[65]
Self-organizing information fusion and hierarchical knowledge discovery: a new framework using ARTMAP neural networks. Neural Networks. v18. 287-295.
[66]
Distributed ARTMAP: a neural network for fast distributed supervised learning. Neural Networks. v11. 793-813.
[67]
Carpenter, G.A., & Ravindran, A. (2008). Unifying multiple knowledge domains using the ARTMAP information fusion system. In Proceedings of the 11th international conference on information fusion. Cologne, Germany. June 30-July 3.
[68]
Spatial covert attention increases contrast sensitivity across the CSF: support for signal enhancement. Vision Research. v40. 1203-1215.
[69]
Hybrid optoelectronic adaptive rsonance theory neura processor, ART 1. Applied Optics. v31. 6220-6229.
[70]
An industrial application to neural networks to reusable design. Neural Networks, International Joint Conference on Neural Networks. v2. 919
[71]
Synaptic physiology of horizontal afferents to layer I in slices of rat SI cortex. Journal of Neuroscience. v14. 751-762.
[72]
Chao, H.-C., Hsiao, C.-M., Su, W.-S., Hsu, C.-C., & Wu, C.-Y. (2011). Modified adaptive resonance theory for alarm correlation based on distance hierarchy in mobile networks. Network operations and management symposium, 2011 13th Asia-Pacific (pp. 1-4).
[73]
Critical motion detection of nearby moving vehicles in a vision-based driver-assistance system. IEEE Transactions on Intelligent Transportation Systems. v10. 70-82.
[74]
Basal forebrain cholinergic lesions disrupt increments but not decrements in conditioned stimulus processing. The Journal of Neuroscience. v15. 7315-7322.
[75]
A domain-independent source of cognitive control for task sets: shifting spatial attention and switching categorization rules. Journal of Neuroscience. v29. 3930-3938.
[76]
Contextual cueing of visual attention. Trends in Cognitive Sciences. v4. 170-178.
[77]
Contextual cueing: implicit learning and memory of visual context guides spatial attention. Cognitive Psychology. v36. 28-71.
[78]
Atypical categorization in children with high-functioning autism spectrum disorder. Psychonomic Bulletin & Review. v17. 862-868.
[79]
The numerical attribute of stimuli. In: Roitblat, H.L., Bever, T.G., Terrace, H.J. (Eds.), Animal cognition, Erlbaum, Hillsdale, NJ.
[80]
Speech perception and production by a self-organizing neural network. In: Lee, Y.C. (Ed.), Evolution, learning, cognition, and advanced architectures, World Scientific, Hong Kong. pp. 217-231.
[81]
A spectral network model of pitch perception. Journal of the Acoustical Society of America. v98. 862-879.
[82]
Preserved learning and retention of a pattern-analyzing skill in amnesia: dissociation of knowing how and knowing that. Science. v210. 207-210.
[83]
Theory of binaural interaction based on auditory-nerve data, I, general strategy and preliminary results on interaural discrimination. Journal of the Acoustical Society of America. v54. 1458-1470.
[84]
Theory of binaural interaction based on auditory-nerve data, II, detection of tones in noise. Journal of the Acoustical Society of America. v61. 525-533.
[85]
Independent component analysis: a new concept?. Signal Processing. v36. 287-314.
[86]
Sequential learning in non-human primates. Trends in Cognitive Science. v5 i12. 539-546.
[87]
The magical number 4 in short-term memory: a reconsideration of mental storage capacity. Behavioral and Brain Sciences. v24. 87-185.
[88]
The feeling of what happens: body and emotion in the making of consciousness. Houghton Mifflin Harcourt, Boston, MA.
[89]
The number sense: how the mind creates mathematics. Oxford University Press, New York.
[90]
Fault diagnosis of psneumatic systems with artificial neural network architectures. Expert Systems with Applications. v36. 10512-10519.
[91]
Visual attention mediated by biased competition in extrastriate visual cortex. Philosophical Transactions of the Royal Society of London. v353. 1245-1255.
[92]
Cortically-induced coherence of a thalamic-generated oscillation. Neuroscience. v92. 427-443.
[93]
Recurrent excitation in neocortical circuits. Science. v269. 981-985.
[94]
Expectancy and visual-spatial attention: effects on perceptual quality. Journal of Experimental Psychology: Human Perception and Performance. v14. 188-202.
[95]
. In: Doya, K., Ishii, S., Pouget, A., Rao, R.P.N. (Eds.), Bayesian brain: probabilistic approaches to neural coding, MIT Press, Cambridge, MA.
[96]
Dopaminergic and non-dopaminergic value systems in conditioning and outcome-specific revaluation. Brain Research. v1238. 239-287.
[97]
Parietal neglect and visual awareness. Nature Neuroscience. v1. 17-22.
[98]
Organization of visual inputs to interneurons of lateral geniculate nucleus of the cat. Journal of Neurophysiology. v40. 410-427.
[99]
The updating of the representation of visual space in parietal cortex by intended eye movements. Science. v255. 90-92.
[100]
Adaptive resonance theory as a model of polysemy and vagueness in the cognitive lexicon. Cognitive Linguistics. v23. 507-537.
[101]
Selective attention and the organization of visual information. Journal of Experimental Psychology: General. v113. 501-517.
[102]
Coherent oscillations: a mechanism of feature linking in the visual cortex?. Biological Cybernetics. v60. 121-130.
[103]
Shifting visual attention between objects and locations: evidence from normal and parietal lesion subjects. Journal of Experimental Psychology General. v123. 161-177.
[104]
Towards a functional organization of the medial temporal lobe memory system: role of the parahippocampal and medial entorhinal cortical areas. Hippocampus. v18. 1314-1324.
[105]
Pigeons' serial ordering of numerosity with visual arrays. Animal Learning and Behavior. v25. 234-244.
[106]
Dynamics predictions: oscillations and synchrony in top-down processing. Nature Reviews Neuroscience. v2. 704-716.
[107]
From stereogram to surface: how the brain sees the world in depth. Spatial Vision. v22. 45-82.
[108]
An endogenous distributed model of ordering in serial recall. Psychonomic Bulletin & Review. v9. 59-79.
[109]
View-invariant object category learning, recognition, and search: how spatial and object attention are coordinated using surface-based attentional shrouds. Cognitive Psychology. v58. 1-48.
[110]
Distributed hierarchical processing in the primate cerebral cortex. Cerebral Cortex. v1. 1-47.
[111]
Metabotropic glutamate receptor activation in cerebellar Purkinje cells as substrate for adaptive timing of the classically conditioned eye blink response. Journal of Neuroscience. v16. 3760-3774.
[112]
Local calcium signalling by inositol-1, 4, 5-triphosphate in Purkinje cell dendrites. Nature. v396. 753-756.
[113]
Neural dynamics of object-based multifocal visual spatial attention and priming: object cueing, useful-field-of-view, and crowding. Cognitive Psychology. v65. 77-117.
[114]
Cortical dynamics of boundary segmentation and reset: persistence, afterimages, and residual traces. Perception. v35. 543-567.
[115]
Cortical dynamics of feature binding and reset: control of visual persistence. Vision Research. v34. 1089-1104.
[116]
Hippocampal plasticity across multiple days of exposure to novel environments. Journal of Neuroscience. v24. 7681-7689.
[117]
Delay-period activity in the primate prefrontal cortex encoding multiple spatial positions and their order of presentation. Behavioral Brain Research. v84. 203-223.
[118]
Recognition impaired and association intact in the memory of monkeys after transection of the fornix. Journal of Comparative and Physiological Psychology. v86. 1100-1109.
[119]
Experience-dependent corticofugal adjustment of midbrain frequency map in bat auditory system. Proceedings of the National Academy of Sciences. v95. 12663-12670.
[120]
Vector associative maps: unsupervised real-time error-based learning and control of movement trajectories. Neural Networks. v4. 147-183.
[121]
Adaptive vector integration to endpoint: self-organizing neural circuits for control of planned movement trajectories. Human Movement Science. v11. 141-155.
[122]
On the relations between the direction of two-dimensional arm movements and cell discharge in primate motor cortex. Journal of Neuroscience. v2. 1527-1537.
[123]
Neuronal population coding of movement direction. Science. v233. 1416-1419.
[124]
Puzzle-solving science: the quixotic quest for units in speech perception. Journal of Phonetics. v31. 305-320.
[125]
Circuitry of primate prefrontal cortex and regulation of behavior by representational memory. In: Plum, F., Mountcastle, V. (Eds.), Handbook of physiology, vol. 5, American Physiological Society, Bethesda. pp. 373-417.
[126]
Space, time and learning in the hippocampus: how fine spatial and temporal scales are expanded into population codes for behavioral control. Neural Networks. v20. 182-193.
[127]
On the problem of local minima in backpropagation. IEEE Transactions on Pattern Analysis and Machine Intelligence. v14. 76-86.
[128]
Simultaneous representation of saccade targets and visual onsets in monkey lateral intraparietal area. Cerebral Cortex. v15. 1198-1206.
[129]
Brightness perception, illusory contours, and corticogeniculate feedback. Visual Neuroscience. v12. 1027-1052.
[130]
Stimulus-specific neuronal oscillations in orientation columns of cat visual cortex. Proceedings of the National Academy of Sciences USA. v86. 1698-1702.
[131]
Action video game modifies visual selective attention. Nature. v423. 534-537.
[132]
Action-video-game experience alters the spatial resolution of vision. Psychological Science. v18. 88-94.
[133]
A prediction theory for some nonlinear functional-differential equations, II: learning of patterns. Journal of Mathematical Analysis and Applications. v22. 490-522.
[134]
Some nonlinear networks capable of learning a spatial pattern of arbitrary complexity. Proceedings of the National Academy of Sciences. v59. 368-372.
[135]
Some physiological and biochemical consequences of psychological postulates. Proceedings of the National Academy of Sciences. v60. 758-765.
[136]
On learning and energy-entropy dependence in recurrent and nonrecurrent signed networks. Journal of Statistical Physics. v1. 319-350.
[137]
On the production and release of chemical transmitters and related topics in cellular control. Journal of Theoretical Biology. v22. 325-364.
[138]
On the serial learning of lists. Mathematical Biosciences. v4. 201-253.
[139]
On the dynamics of operant conditioning. Journal of Theoretical Biology. v33. 225-255.
[140]
A neural theory of punishment and avoidance, I: qualitative theory. Mathematical Biosciences. v15. 39-67.
[141]
A neural theory of punishment and avoidance, II: quantitative theory. Mathematical Biosciences. v15. 253-285.
[142]
Contour enhancement, short-term memory, and constancies in reverberating neural networks. Studies in Applied Mathematics. v52. 213-257.
[143]
Classical and instrumental learning by neural networks. In: Rosen, R., Snell, F. (Eds.), Progress in theoretical biology, Academic Press, New York. pp. 51-141.
[144]
A neural model of attention, reinforcement, and discrimination learning. International Review of Neurobiology. v18. 263-327.
[145]
Adaptive pattern classification and universal recoding, I: parallel development and coding of neural feature detectors. Biological Cybernetics. v23. 121-134.
[146]
Adaptive pattern classification and universal recoding, II: feedback, expectation, olfaction, and illusions. Biological Cybernetics. v23. 187-202.
[147]
A theory of human memory: self-organization and performance of sensory-motor codes, maps, and plans. In: Rosen, R., Snell, F. (Eds.), Progress in theoretical biology, vol. 5, Academic Press, New York. pp. 233-374.
[148]
Behavioral contrast in short-term memory: serial binary memory models or parallel continuous memory models?. Journal of Mathematical Psychology. v3. 199-219.
[149]
How does a brain build a cognitive code?. Psychological Review. v87. 1-51.
[150]
Processing of expected and unexpected events during conditioning and attention: a psychophysiological theory. Psychological Review. v89. 529-572.
[151]
Some normal and abnormal behavioral syndromes due to transmitter gating of opponent processes. Biological Psychiatry. v19. 1075-1118.
[152]
Some psychophysiological and pharmacological correlates of a developmental, cognitive, and motivational theory. In: Karrer, R., Cohen, J., Tueting, P. (Eds.), Brain and information: event related potentials, New York Academy of Sciences, New York. pp. 58-142.
[153]
The adaptive self-organization of serial order in behavior: speech, language, and motor control. In: Schwab, E.C., Nusbaum, H.C. (Eds.), Pattern recognition by humans and machines, vol. 1: speech perception, Academic Press, New York. pp. 187-294.
[154]
Nonlinear neural networks: principles, mechanisms, and architectures. Neural Networks. v1. 17-61.
[155]
3-D vision and figure-ground separation by visual cortex. Perception and Psychophysics. v55. 48-120.
[156]
Cortical dynamics of three-dimensional figure-ground perception of two-dimensional figures. Psychological Review. v104. 618-658.
[157]
How does the cerebral cortex work? learning, attention and grouping by the laminar circuits of visual cortex. Spatial Vision. v12. 163-186.
[158]
How hallucinations may arise from brain mechanisms of learning, attention, and volition. Journal of the International Neuropsychological Society. v6. 579-588.
[159]
The complementary brain: unifying brain dynamics and modularity. Trends in Cognitive Sciences. v4. 233-246.
[160]
The imbalanced brain: from normal behavior to schizophrenia. Biological Psychiatry. v48. 81-98.
[161]
How does the cerebral cortex work? development, learning, attention, and 3D vision by laminar circuits of visual cortex. Behavioral and Cognitive Neuroscience Reviews. v2. 47-76.
[162]
Resonant neural dynamics of speech perception. Journal of Phonetics. v31. 423-445.
[163]
Consciousness CLEARS the mind. Neural Networks. v20. 1040-1053.
[164]
Towards a unified theory of neocortex: laminar cortical circuits for vision and cognition. Progress in Brain Research. v165. 79-104.
[165]
Beta oscillations and hippocampal place cell learning during exploration of novel environments. Hippocampus. v19. 881-885.
[166]
Cortical and subcortical predictive dynamics and learning during perception, cognition, emotion and action. Philosophical Transactions of the Royal Society of London B Biological Sciences. v364. 1223-1234.
[167]
Neural dynamics underlying impaired autonomic and conditioned responses following amygdala and orbitofrontal lesions. Behavioral Neuroscience. v122. 1100-1125.
[168]
ARTSTREAM: a neural network model of auditory scene analysis and source segregation. Neural Networks. v17. 511-536.
[169]
Cortical synchronization and perceptual framing. Journal of Cognitive Neuroscience. v9. 117-132.
[170]
ARTSCENE: a neural system for natural scene classification. Journal of Vision. v9 i6. 1-19.
[171]
Laminar cortical dynamics of conscious speech perception: a neural model of phonemic restoration using subsequent context in noise. Journal of the Acoustical Society of America. v130. 440-460.
[172]
Neural dynamics of attentionally modulated Pavlovian conditioning: blocking, inter-stimulus interval, and secondary reinforcement. Applied Optics. v26. 5015-5030.
[173]
On the road to invariant recognition: explaining tradeoff and morph properties of cells in inferotemporal cortex using multiple-scale task-sensitive attentive learning. Neural Networks. v24. 1036-1049.
[174]
Cortical dynamics of 3-D surface perception: binocular and half-occluded scenic images. Neural Networks. v10. 1583-1605.
[175]
A neural network model of adaptively timed reinforcement learning and hippocampal dynamics. Cognitive Brain Research. v1. 3-38.
[176]
The hippocampus and cerebellum in adaptively timed learning, recognition, and movement. Journal of Cognitive Neuroscience. v8. 257-277.
[177]
Neural dynamics of form perception: boundary completion, illusory figures, and neon color spreading. Psychological Review. v92. 173-211.
[178]
Visual brain and visual perception: how does the cortex do perceptual grouping?. Trends in Neurosciences. v20. 106-111.
[179]
Neural dynamics of motion integration and segmentation within and across apertures. Vision Research. v41. 2521-2553.
[180]
The resonant dynamics of speech perception: interword integration and duration-dependent backward effects. Psychological Review. v107. 735-767.
[181]
A neural model of corticocerebellar interactions during attentive imitation and predictive learning of sequential handwriting movements. Neural Networks. v13. 999-1046.
[182]
Laminar cortical dynamics of cognitive and motor working memory, sequence learning and performance: toward a unified theory of how the cerebral cortex works. Psychological Review. v115. 677-732.
[183]
Grossberg, S., & Pilly, P. (2012). How entorhinal grid cells may learn multiple spatial scales from a dorsoventral gradient of cell response rates in a self-organizing map. PLoS Computational Biology (in press).
[184]
Contrast-sensitive perceptual grouping and object-based attention in the laminar circuits of primary visual cortex. Vision Research. v40. 1413-1432.
[185]
A neural model of how the brain represents and compares multi-digit numbers: spatial and categorical processes. Neural Networks. v16. 1107-1140.
[186]
A neural model of multimodal adaptive saccadic eye movement control by superior colliculus. Journal of Neuroscience. v17. 9706-9725.
[187]
Neural dynamics of adaptive timing and temporal discrimination during associative learning. Neural Networks. v2. 79-102.
[188]
Neural dynamics of autistic behaviors: cognitive, emotional, and timing substrates. Psychological Review. v113. 483-525.
[189]
Synchronized oscillations during cooperative feature linking in a cortical model of visual perception. Neural Networks. v4. 453-466.
[190]
A laminar cortical model for 3D perception of slanted and curved surfaces and of 2D images: development, attention and bistability. Vision Research. v44. 1147-1187.
[191]
Neural dynamics of 1-D and 2-D brightness perception: a unified model of classical and recent phenomena. Perception & Psychophysics. v43. 241-277.
[192]
Spikes, synchrony, and attentive learning by laminar thalamocortical circuits. Brain Research. v1218. 278-312.
[193]
How do children learn to follow gaze, share joint attention, imitate their teachers, and use tools during social interactions?. Neural Networks. v23. 940-965.
[194]
A neural model of how horizontal and interlaminar connections of visual cortex develop into adult circuits that carry out perceptual groupings and learning. Cerebral Cortex. v11. 37-58.
[195]
Laminar cortical dynamics of 3D surface perception: stratification, transparency, and neon color spreading. Vision Research. v45. 1725-1743.
[196]
How does binocular rivalry emerge from cortical mechanisms of 3-D vision?. Vision Research. v48. 2232-2250.
[197]
Speech sound acquisition, coarticulation, and rate effects in a neural network model of speech production. Psychological Review. v102. 594-621.
[198]
Neural representations for sensory-motor control, III: learning a body-centered representation of 3-D target position. Journal of Cognitive Neuroscience. v6. 341-358.
[199]
Neural modeling and imaging of the cortical interactions underlying syllable production. Brain and Language. v96. 280-301.
[200]
Microstructure of a spatial map in the entorhinal cortex. Nature. v436. 801-806.
[201]
Hippocampal acetylcholine efflux increases during negative patterning and elemental discrimination in rats. Neuroscience Letters. v418. 127-132.
[202]
Application of adaptive resonance theory neural networks to monitor solar hot water systems and detect existing or developing faults. Solar Energy. v86. 2318-2333.
[203]
Attentional resolution and the locus of visual awareness. Nature. v383. 334-337.
[204]
He, J., Tan, A.-H., & Tan, C.-L. (2000). A comparative study on Chinese text categorization methods. In Proceedings of PRICAI'2000.
[205]
A neural architecture for pattern sequence verification through inferencing. IEEE Transactions on Neural Networks. v4. 9-20.
[206]
Counterpropagation networks. Applied Optics. v26. 4979-4983.
[207]
Normalization of cell responses in cat striate cortex. Visual Neuroscience. v9. 181-197.
[208]
Short-term memory for serial order: the start-end model of serial recall. Cognitive Psychology. v36. 73-137.
[209]
Microstimulation of frontal cortex can reorder a remembered spatial sequence. Public Library of Science: Biology. v4 i5. e134
[210]
Analogue circuit design and implementation of an adaptive resonance theory (ART) network architecture. International Journal of Electronics. v76. 271-291.
[211]
Dopamine neurons report an error in the temporal prediction of reward during learning. Nature Neuroscience. v1. 304-309.
[212]
The problem of serial order: a neural network model of sequence learning and recall. In: Dale, R., Mellish, C., Zock, M. (Eds.), Current research in natural language generation, Academic Press, London. pp. 287-319.
[213]
The application of clustering analysis for the critical areas on TFT-LCD panel. Expert Systems with Applications. v34. 952-957.
[214]
Incorporating PCA and fuzzy-ART techniques into achieve organism classification based on codon usage consideration. Computers in Biology and Medicine. v38. 886-893.
[215]
Hybrid data mining approach for pattern extraction from wafer bin map to improve yield in semiconductor manufacturing. International Journal of Production Economics. v107. 88-103.
[216]
Cortical dynamics of contextually cued attentive visual learning and search: spatial and object evidence accumulation. Psychological Review. v117. 1080-1112.
[217]
What causes the isolation effect?. Journal of Experimental Psychology: Learning, Memory and Cognition. v27 i6. 1359-1366.
[218]
Feedback connections from V2 modulate intrinsic connectivity within V1. Society for Neuroscience Abstracts. v406 i15. 1031
[219]
Impaired spatial working memory across saccades contributes to abnormal search in parietal neglect. Brain. v124. 941-952.
[220]
Independent component analysis: algorithms and application. Neural Networks. v13. 411-430.
[221]
mGluR1 in cerebellar Purkinje cells essential for long-term depression, synapse elimination, and motor coordination. Science. v288. 1832-1835.
[222]
Prefrontal activity during serial probe reproduction task: encoding, mnemonic and retrieval processes. Journal of Neurophysiology. v95. 1008-1041.
[223]
The spatial resolution of visual attention. Cognitive Psychology. v43. 171-216.
[224]
The functional equivalence of verbal and spatial memory in serial short-term memory. Journal of Experimental Psychology: Learning Memory and Cognition. v21. 1008-1018.
[225]
Is most of neural plasticity in the thalamus cortical?. Proceedings of the National Academy of Sciences USA. v96. 7622-7623.
[226]
Predictability, surprise, attention and conditioning. In: Campbell, B.A., Church, R.M. (Eds.), Punishment and aversive behavior, Appleton-Century-Crofts, New York.
[227]
The neural basis of biased competition in human visual cortex. Neuropsychologia. v39. 1263-1276.
[228]
Proposal of new gene filtering method, BagPART, for gene expression analysis with small sample. Journal of Bioscience and Bioengineering. v105. 81-84.
[229]
AG-ART: an adaptive approach to evolving ART architectures. Neurocomputing. v72. 2079-2092.
[230]
Kazerounian, S., & Grossberg, S. (2012). Real-time learning of predictive recognition categories that chunk sequences of items stored in working memory (submitted for publication).
[231]
Topographical organization of efferent projections from the cat substantia nigra pars reticulata. Brain Research. v455. 307-323.
[232]
Increased attention to spatial context increases both place field stability and spatial memory. Neuron. v42. 283-295.
[233]
Abolition of long-term stability of new hippocampal place cell maps by NMDA receptor blockade. Science. v280. 2121-2126.
[234]
An alternative evaluation of FMEA: fuzzy ART algorithm. Quality and Reliability Engineering International. v25. 647-661.
[235]
Cortical map reorganization enabled by nucleus basalis activity. Science. v279. 1714-1718.
[236]
The Bayesian brain: the role of uncertainty in neural coding and computation. Trends in Neurosciences. v12. 712-719.
[237]
The shift from recency to primacy with increasing delay. Journal of Experimental Psychology: Learning, Memory and Cognition. v25. 474-487.
[238]
The learning of categories: parallel brain systems for item memory and category knowledge. Science. v262. 1747-1749.
[239]
Self-organization and associative memory. Springer-Verlag, New York.
[240]
Nonprimary auditory thalamic representation of acoustic change. Journal of Neurophysiology. v72. 1270-1277.
[241]
Immediate thalamic sensory plasticity depends on corticothalamic feedback. Proceedings of the National Academy of Sciences USA. v96. 8200-8205.
[242]
Development of the spatial representation system in the rat. Science. v328. 1576-1580.
[243]
Emotional memory systems in the brain. Behavioral Brain Reseach. v58. 69-79.
[244]
Crowding-an essential bottleneck for object recognition: a mini-review. Vision Research. v48. 635-654.
[245]
Temporal contiguity requirements for long-term associative potentiation/depression in the hippocampus. Neuroscience. v8. 791-797.
[246]
Unsupervised natural experience rapidly alters invariant object representation in visual cortex. Science. v321. 1502-1507.
[247]
Unsupervised natural visual experience rapidly reshapes size invariant object represent in inferior temporal cortex. Neuron. v67. 1062-1075.
[248]
Projective ART with buffers for the high dimensional space clustering and an application to discover stock associations. Neurocomputing. v72. 1283-1295.
[249]
A neural network method for detection of obstructive sleep apnea and narcolepsy based on pupil size and EEG. IEEE Transactions on Neural Networks. v19. 308-318.
[250]
Responses of monkey dopamine neurons during learning of behavioral reactions. Journal of Neurophysiology. v67. 145-163.
[251]
Electric load forecasting using a fuzzy ART & ARTMAP neural network. Applied Soft Computing. v5. 235-244.
[252]
Spoken word recognition: the challenge of variation. In: Pisoni, D.B., Remez, R.E. (Eds.), The handbook of speech perception, Wiley Online Library.
[253]
Neural mechanisms of spatial selective attention in areas V1, V2, and V4 of macaque visual cortex. Journal of Neurophysiology. v77. 24-42.
[254]
Neural dynamics in a model of the thalamocortical system I, layers, loops and the emergence of fast synchronous rhythms. Cerebral Cortex. v7. 207-227.
[255]
Local circuit neurons of macaque monkey striate cortex: IV, neurons of laminae 1-3A. Journal of Comparative Neurology. v384. 109-126.
[256]
Neural network based on adaptive resonance theory with continuous training for multi-configuration transient stability analysis of electric power systems. Applied Soft Computing. v11. 706-715.
[257]
Regulation of synaptic efficacy by coincidence of postsynaptic APs and EPSPs. Science. v275. 213-215.
[258]
An approach based on the adaptive resonance theory for analyzing the viability of recommender systems in a citizen web portal. Expert Systems with Applications. v33. 743-753.
[259]
Discovery of hierarchical thematic structure in text collections with adaptive resonance theory. Neural Computation & Applications. v18. 261-273.
[260]
Anatomical connections of the middle temporal visual area in the macaque monkey and their relationship to a hierarchy of cortical areas. Journal of Neuroscience. v3. 2563-2586.
[261]
Examining the time course of indexical specificity effects in spoken word recognition. Journal of Experimental Psychology: Learning, Memory, and Cognition. v31. 306-321.
[262]
. Journal of Experimental Psychology: Learning, Memory, and Cognition. v29. 539-553.
[263]
Predictive remapping of visual features precedes saccadic eye movements. Nature Neuroscience. v10. 903-907.
[264]
Spatial attention and neglect: parietal, frontal and cingulate contributions to the mental representation and attentional targeting of salient extrapersonal events. Philosophical Transactions of the Royal Society B. v354. 1325-1346.
[265]
Grid cell hexagonal patterns formed by fast self-organized learning within entorhinal cortex. Hippocampus. v22. 320-334.
[266]
The magical number seven, plus or minus two: some limits on our capacity for processing information. Psychological Review. v63 i2. 81-97.
[267]
The intelligibility of interrupted speech. Journal of the Acoustical Society of America. v22. 167-173.
[268]
Importance of unpredictability for reward responses in primate dopamine neurons. Journal of Neurophysiology. v72. 1024-1027.
[269]
An analysis of short-term visual memory in the monkey. Journal of Experimental Psychology: Animal Behavior Processes. v1. 326-334.
[270]
Local calcium release in dendritic spines required for long-term synaptic depression. Neuron. v28. 233-244.
[271]
Hippocampal synaptic plasticity: role in spatial learning or the automatic recording of attended experience?. Philosophical Transactions of the Royal Society of London B: Biological Sciences. v1360. 1469-1503.
[272]
Evidence for suppressive mechanisms in attentional selection: feature singletons produce inhibitory surrounds. Perception and Psychophysics. v62. 969-983.
[273]
Million city traveling salesman problem solution by divide and conquer clustering with adaptive resonance neural networks. Neural Networks. v16. 827-832.
[274]
A quarter of a century of place cells. Neuron. v17. 813-822.
[275]
On the computational architecture of the neocortex, II, the role of corticocortical loops. Biological Cybernetics. v66. 241-251.
[276]
The serial position effect of free recall. Journal of Experimental Psychology. v64. 482-488.
[277]
Coding of cognitive magnitude: compressed scaling of numerical information in the primate prefrontal cortex. Neuron. v37. 149-157.
[278]
A parieto-frontal network for visual numerical information in the monkey. Proceedings of the National Academy of Sciences. v101. 7457-7462.
[279]
Identification of long-range aerosol transport patterns to Toronto via classication of back trajectories by cluster analysis and neural network techniques. Chemometrics and Intelligent Laboratory Systems. v83. 26-33.
[280]
The primacy model: a new model of immediate serial recall. Psychological Review. v105. 761-781.
[281]
Palma, J., Grossberg, S., & Versace, M. (2012). Persistence and storage of activity patterns in spiking recurrent cortical networks: modulation of sigmoid signals by after-hyperpolarization currents and acetylcholine. Frontiers in Computational Neuroscience (in press).
[282]
Architecture and connections of cortical association areas. In: Peters, A., Jones, E.G. (Eds.), Cerebral cortex 10, Plenum Press, New York.
[283]
Cortical involvement in the induction, but not expression, of thalamic plasticity. The Journal of Neuroscience. v19. 8623-8629.
[284]
ARTMAP neural networks for information fusion and data mining: map production and target recognition methodologies. Neural Networks. v16. 1075-1089.
[285]
Different time courses of learning-related activity in the prefrontal cortex and striatum. Nature. v433. 873-876.
[286]
Conditioned reflexes. Oxford University Press.
[287]
Cerebellar cortex lesions disrupt learning-dependent timing of conditioned eyelid responses. Journal of Neuroscience. v13. 1708-1718.
[288]
Cholinergic activity in autism: abnormalities in the cerebral cortex and basal forebrain. The American Journal of Psychiatry. v158. 1058-1066.
[289]
Control methods used in a study of the vowels. Journal of the Acoustical Society of America. v24. 175-184.
[290]
Lateral prefrontal cortex: architectonic and functional organization. Philosophical Transactions of the Society of London B Biological Science. v360. 781-795.
[291]
The origins of intelligence in children. Norton, New York.
[292]
Pilly, P.K., & Grossberg, S. (2012). How do spatial learning and memory occur in the brain? Coordinated learning of entorhinal grid cells and hippocampal place cells. Journal of Cognitive Neuroscience (in press).
[293]
Low-level sensory plasticity during task-irrelevant perceptual learning: evidence from conventional and double training procedures. Vision Research. v50. 424-432.
[294]
On the neural correlates of visual perception. Cerebral Cortex. v9. 4-19.
[295]
Orienting of attention. Quarterly Journal of Experimental Psychology. v32. 3-25.
[296]
On the genesis of abstract ideas. Journal of Experimental Psychology. v77. 353-363.
[297]
Photometric clustering of regenerated plants of gladiolus by neural networks and its biological validataion. Computers and Electronics in Agriculture. v60. 8-17.
[298]
Context-sensitive bindings by the laminar circuits of V1 and V2: a unified model of perceptual grouping, attention, and orientation contrast. Visual Cognition. v8. 431-466.
[299]
Towards a theory of the laminar architecture of cerebral cortex: computational clues from the visual system. Cerebral Cortex. v13. 100-113.
[300]
Interactions between motion, depth, color and form: the utilitarian theory of perception. In: Blakemore, C. (Ed.), Vision: coding and efficiency, Cambridge University Press, Cambridge, England.
[301]
Directing the mind's eye: prefrontal, inferior and medial temporal mechanisms for visual working memory. Current Opinion in Neurobiology. v15. 175-182.
[302]
Predictive coding in the visual cortex: a functional interpretation of some extra-classical receptive field effects. Nature Neuroscience. v2. 79-87.
[303]
Establishing and maintaining perceptual coherence: unimodal and multimodal evidence. Journal of Phonetics. v31. 293-304.
[304]
On the bistability of sine wave analogues of speech. Psychological Science. v12. 24-29.
[305]
On the peceptual organization of speech. Psychological Review. v101. 129-156.
[306]
Perceptual integration of acoustic cues for stop, fricative, and affricate manner. Journal of Experimental Psychology: Human Perception and Performance. v4. 621-637.
[307]
Competitive mechanisms subserve attention in macaque areas V2 and V4. The Journal of Neuroscience. v19. 1736-1753.
[308]
Interacting roles of attention and visual salience in V4. Neuron. v37. 853-863.
[309]
The normalization model of attention. Neuron. v61. 168-185.
[310]
The organization of feedback connections from area V1(18) to V1(17). In: Peters, A., Rockland, K.S. (Eds.), Cerebral cortex, vol. 4, Plenum Press, New York.
[311]
Single axon analysis of pulvinocortical connections to several visual areas in the macaque. Journal of Comparative Neurology. v406. 221-250.
[312]
Terminal arbors of individual 'feedback' axons projecting from area V2 to V1 in the macaque monkey: a study using immunohistochemistry of anterogradely transported phaseolus vulgaris-leucoagglutinin. Journal of Comparative Neurology. v285. 54-72.
[313]
Object-based attention in the primary visual cortex of the macaque monkey. Nature. v395. 376-381.
[314]
Individual differences in object based attention. Journal of Vision. v9. 143
[315]
A comparative analysis of the morphology of corticothalamic projections in mammals. Brain Research Bulletin. v53. 727-741.
[316]
Long-llasting cholinergic modulation underlies rule learning in rats. Journal of Neuroscience. v21. 1385-1392.
[317]
Corticocortical connections in the visual system: structure and function. Physiological Reviews. v75. 107-154.
[318]
The role of bottom-up confirmation in the phonemic restoration illusion. Journal of Experimental Psychology: Human Perception and Performance. v7. 1124-1131.
[319]
Effect of cooling area 18 on striate cortex cells in the squirrel monkey. Journal of Neurophysiology. v48. 38-48.
[320]
Encoding predicted outcome and acquired value in orbitofrontal cortex during cue sampling depends upon input from basolateral amygdala. Neuron. v39. 855-867.
[321]
Predictive reward signal of dopamine neurons. Journal of Neurophysiology. v80. 1-27.
[322]
Responses of monkey dopamine neurons to reward and conditioned stimuli during successive steps of learning a delayed response task. Journal of Neuroscience. v13. 900-913.
[323]
Reward-related signals carried by dopamine neurons. In: Houk, J., Davis, J., Beiser, D. (Eds.), Models of information processing in the Basal Ganglia, MIT Press, Cambridge. pp. 11-27.
[324]
Abnormal classical eye-blink conditioning in autism. Journal of Autism and Developmental Disorders. v24. 737-751.
[325]
Is subliminal learning really passive?. Nature. v422. 6927
[326]
The variable discharge of cortical neurons: implications for connectivity, computation, and information coding. The Journal of Neuroscience. v18. 3870-3896.
[327]
Exploring the thalamus. Academic Press, San Diego.
[328]
The role of the thalamus in the flow of information to the cortex. Philosophical Transactions of the Royal Society London B. v357. 1695-1708.
[329]
Soliciting customer requirements for product redesign based on picture sorts and ART2 neural network. Expert Systems with Applications. v34. 194-204.
[330]
The functional logic of cortico-pulvinar connections. Philosophical Transactions of the Royal Society London B. v358. 1605-1624.
[331]
Integrating top-down and bottom-up sensory processing by Somato-Dendritic interactions. Journal of Computational Neuroscience. v8. 161-173.
[332]
Visual categorization shapes feature selectivity in the primate temporal cortex. Nature. v415. 318-320.
[333]
Feature-linked synchronization of thalamic relay cell firing induced by feedback from the visual cortex. Nature. v369. 479-482.
[334]
A neural model of sequential movement planning and control of eye movements: item-order-rank working memory and saccade selection by the supplementary eye fields. Neural Networks. v26. 29-58.
[335]
Cholinergic enhancement reduces spatial spread of visual responses in human early visual cortex. Neuron. v60. 904-914.
[336]
CS-US interval and US intensity in classical conditioning of the rabbit's nictitating membrane response. Journal of Comparative and Physiological Psychology. v3. 679-687.
[337]
Functional MRI reveals spatially specific attentional modulation in human primary visual cortex. Proceedings of the National Academy of Sciences USA. v96. 1663-1668.
[338]
Adaptive behavior and learning. Cambridge University Press, New York.
[339]
Detection of intermodal numerical correspondences by human infants. Science. v222. 179-181.
[340]
Visual attention mechanisms show a canter-surround organization. Vision Research. v35. 1859-1869.
[341]
Manufacturing cell formation with production data using neural networks. Computers & Industrial Engineering. v56. 1340-1347.
[342]
New cancer diagnosis modeling using boosting and projective adaptive resonance theory with improved reliable index. Biochemical Engineering Journal. v33. 100-109.
[343]
A new class of synaptic response involving calcium release in dendritic spines. Nature. v396. 757-760.
[344]
Cascade ARTMAP: integrating neural computation and symbolic knowledge processing. IEEE Transactions on Neural Networks. v8. 237-250.
[345]
Ovarian cancer diagnosis with complementary learning fuzzy neural network. Artificial Intelligence in Medicine. v43. 207-222.
[346]
Learning user profiles for personalized information dissemination. IEEE World Congress on Computational Intelligence. v1. 183-188.
[347]
Coding visual images of objects in the inferotemporal cortex of the macaque monkey. Journal of Neurophysiology. v66. 170-189.
[348]
Topographic specificity in the functional effects of corticofugal feedback in the whisker/barrel system. Society for Neuroscience Abstracts. v393. 6
[349]
Object-based eye movements: the eyes prefer to stay within the same object. Attention, Perception & Psychophysics. v72. 597-601.
[350]
Long-term stability of the place-field activity of single units recorded from the dorsal hippocampus of freely behaving rats. Brain Research. v509. 299-308.
[351]
Neuronal substrates of discrete, defensive conditioned reflexes, conditioned fear states, and their interactions in the rabbit. In: Gormenzano, I., Prokasy, W.F., Thompson, R.F. (Eds.), Classical conditioning, Erlbaum Associates, Hillsdale, NJ. pp. 371-399.
[352]
Speed of processing in the human visual system. Nature. v381. 520-522.
[353]
Gamma-frequency oscillations: a neuronal population phenomenon, regulated by synaptic and intrinsic cellular processes, and inducing synaptic plasticity. Progress in Neurobiology. v55. 563-575.
[354]
Mechanisms of stereoscopic processing: stereoattention and surface perception in depth reconstruction. Perception. v24. 127-153.
[355]
The intralaminar and midline nuclei of the thalamus, anatomical and functional evidence for participation in processes of arousal and awareness. Brain Research. v39. 107-140.
[356]
Attention-dependent suppression of meta-bolic activity in the early stages of the macaque visual system. Cerebral Cortex. v10. 109-126.
[357]
Chaotic balanced state in a model of cortical circuits. Neural Computation. v10. 1321-1371.
[358]
Probabilistic phonotactics and neighborhood activation in spoken word recognition. Journal of Memory and Language. v40. 374-408.
[359]
Prototypical category learning in high-functioning autism. Autism Research. v3. 226-236.
[360]
íber die Wirkung von Bereichsbildungen im Spurenfeld (the effects of field formation in the trace field). Psychologie Forschung. v18. 299-334.
[361]
Automatic spread of attentional response modulation along Gestalt criteria in primary visual cortex. Nature Neuroscience. v14. 1243-1244.
[362]
Perceptual restoration of missing speech sounds. Science. v167. 392-393.
[363]
Speech perception and phonemic restorations. Perception & Psychophysics. v9. 358-362.
[364]
Phonemic restorations based on subsequent context. Perception & Psychophysics. v16. 150-156.
[365]
Auditory illusions and confusions. Scientific American. v223. 30-36.
[366]
Ordinal judgments of numerical symbols by macaques (Macaca mulatta). Psychological Science. v2. 190-193.
[367]
Perceptual learning without perception. Nature. v413. 844-848.
[368]
Synaptic connections between corticogeniculate axons and interneurons in the dorsal lateral geniculate nucleus of the cat. Journal of Comparative Neurology. v289. 156-164.
[369]
Phase sensitivity of synaptic modifications in oscillating cells of rat visual cortex. Journal of Neuroscience. v24. 9067-9075.
[370]
Adaptive resonance theory based neural networks-the "ART" of real-time pattern recognition in chemical process monitoring. Trends in Analytical Chemistry. v14. 398-406.
[371]
Development of the hippocampal cognitive map in preweanling rats. Science. v328. 1573-1576.
[372]
Dynamics of the hippocampal ensemble code for space. Science. v261. 1055-1058.
[373]
Scopolamine infused into perirhinal cortex improves object recognition memory by blocking the acquisition of interfering object information. Learning & Memory. v14. 590-596.
[374]
Reciprocal interactions between layers 4 and 6 cells in ferret visual cortex. Society for Neuroscience Abstracts. v651 i5. 1668
[375]
An optoelectronic implementation of the adaptive resonance neural network. IEEE Transactions on Neural Networks. v4. 673-684.
[376]
Pattern recognition for sensor array signals using fuzzy ARTMAP. Sensors and Acuators B: Chemical. v141. 458-464.
[377]
The effects of microstimulation of the dorsomedial frontal cortex on saccade latency. Journal of Neurophysiology. v99 i4. 1857-1870.
[378]
Fast synchronization of perceptual grouping in laminar visual cortical circuits. Neural Networks. v17. 707-718.
[379]
Categorization and recognition performance of a memory impaired group: evidence for single-system models. Journal of the International Neuropsychological Society. v9. 394-406.
[380]
The functional logic of cortical connections. Nature. v335. 311-317.
[381]
A real time fault analysis tool for monitoring operation of transmission line protective relay. Electric Power Systems Research. v77. 361-370.
[382]
Corticofugal modulation of frequency processing in bat auditory system. Nature. v387. 900-903.
[383]
Trade-off between object selectivity and tolerance in monkey inferotemporal cortex. Journal of Neuroscience. v27. 12292-12307.

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    cover image Neural Networks
    Neural Networks  Volume 37, Issue
    January, 2013
    200 pages

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    Elsevier Science Ltd.

    United Kingdom

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    Published: 01 January 2013

    Author Tags

    1. Adaptive Resonance Theory
    2. Adaptive timing
    3. Amygdala
    4. Attention
    5. Basal ganglia
    6. Consciousness
    7. Entorhinal cortex
    8. Expectation
    9. Gamma and beta oscillations
    10. Hippocampal cortex
    11. Inferotemporal cortex
    12. Learning
    13. Parietal cortex
    14. Prefrontal cortex
    15. Recognition
    16. Reinforcement learning
    17. Speech perception
    18. Synchrony
    19. Working memory

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