DocumentCode :
3070812
Title :
A new neural network approach to spatiotemporal pattern recognition
Author :
Filin, N.N. ; Sukhov, A.G. ; Efimov, V.N. ; Arojan, E.V.
Author_Institution :
A.B. Kogan Res. Inst. for Neurocybern., Rostov State Univ., Russia
fYear :
1995
fDate :
20-23 Sep 1995
Firstpage :
393
Lastpage :
397
Abstract :
Concerns dynamic pattern recognition by neural net. There are several research currents: 1. Static network use together with effective technical methods of preprocessing signals; 2. Basic architecture modification in order to cause the network state dependence on prehistory; 3. Setting up of dynamic networks with internal capacity of context information comprehension and the use of the well-known neuroparadigms only as net elements of complex architecture. The approach of our research is based on the biological prototype´s principles. They are: three-level functioning; series-parallel analysis and synthesis of ascending and descending information; afferent and efferent matching. A receptive field environment and its structure are defined, and a theoretical aspect description of dynamic neural network set-up for spatiotemporal pattern processing and computer simulation, ABCnet, is given
Keywords :
neural nets; pattern recognition; ABCnet; afferent matching; basic architecture modification; computer simulation; context information comprehension; dynamic networks; efferent matching; network state dependence; neural network approach; receptive field environment; series-parallel analysis; series-parallel synthesis; signal preprocessing; spatiotemporal pattern recognition; static network; three-level functioning; Computer simulation; Detectors; Impedance matching; Network synthesis; Neural networks; Neurons; Pattern recognition; Prototypes; Radio frequency; Spatiotemporal phenomena;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Neuroinformatics and Neurocomputers, 1995., Second International Symposium on
Conference_Location :
Rostov on Don
Print_ISBN :
0-7803-2512-5
Type :
conf
DOI :
10.1109/ISNINC.1995.480887
Filename :
480887
Link To Document :
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