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A Novel Representation of Artificial Neural Netwoks with Dynamic Synapses / (Record no. 39555)

MARC details
000 -LEADER
fixed length control field 036940000a22003370004500
003 - CONTROL NUMBER IDENTIFIER
control field EG-GICUC
005 - DATE AND TIME OF LATEST TRANSACTION
control field 20250223030655.0
008 - FIXED-LENGTH DATA ELEMENTS--GENERAL INFORMATION
fixed length control field 060917s2006 ua a f m 000 0 eng d
040 ## - CATALOGING SOURCE
Original cataloging agency EG-GICUC
Language of cataloging eng
Transcribing agency EG-GICUC
041 0# - LANGUAGE CODE
Language code of text/sound track or separate title Eng
049 ## - LOCAL HOLDINGS (OCLC)
Holding library Deposite
097 ## - Thesis Degree
Thesis Level M.Sc
099 ## - LOCAL FREE-TEXT CALL NUMBER (OCLC)
Classification number Cai01.13.03.M.Sc.2006.Ka.N.
100 0# - MAIN ENTRY--PERSONAL NAME
Personal name Karim Ahmed Youssry Mohamed ElLaithy
245 12 - TITLE STATEMENT
Title A Novel Representation of Artificial Neural Netwoks with Dynamic Synapses /
Statement of responsibility, etc. Karim Ahmed Youssry Mohamed ElLaithy ; Supervised Bassel Tawfeek , Mohamed Saad El Shereif , Magda Fayek
246 15 - VARYING FORM OF TITLE
Title proper/short title اسلوب جديد للتعبير عن الشبكات العصبية الصناعية المزودة بالوصلات العصبية الديناميكية
260 ## - PUBLICATION, DISTRIBUTION, ETC.
Place of publication, distribution, etc. Cairo :
Name of publisher, distributor, etc. Karim Ahmed Youssry Mohamed ElLaithy ,
Date of publication, distribution, etc. 2006
300 ## - PHYSICAL DESCRIPTION
Extent 97P :
Other physical details ill ;
Dimensions 30cm
502 ## - DISSERTATION NOTE
Dissertation note Thesis (M.Sc.) - Cairo University - Faculty Of Engineering - Department Of Biomedical Engineering
520 ## - SUMMARY, ETC.
Summary, etc. Artificial Neural Networks (ANN) has proved to be a useful tool for information processingThe problem with conventional ANN is that it assumes that the synapses are staticIn human nervous system , however , synapses are dynamicThese dynamics arise from the influence of pre - synaptic mechanisms on the release from an axon terminalThese mechanisms are facilitation and pre - synaptic feedback inhibition which are fundamental features of biological neuronsConsequently , the probability of release becomes a function of the temporal pattern of action potential occurrenceHence , the strength of a given synapse varies upon the arrival of each action potential invading the terminal regionWe developed an implementation for a stochastic model as computational tool for pattern recognitionWe use the computational capacity of the dynamic synapses for transforming the temporal pattern of spikes into a spatial - temporal pattern of synaptic eventsIn this implementation , the system is learned to extract a short statistically significant sub - pattern in the spike trainSuch a capability for extracting invariant temporal features allows the transmission of information contained within noisy and variable spike trainsThe computational performance is evaluated qualitatively and quantitatively in comparison with the traditional artificial neural networks and a basic version of the stochastic modelAfter training , the network generates high correlated signals when the input signals are similar in there temporal and statistical featuresThe network is tested also for different temporal but same statistical features in input signalsAnother configuration is used for speech signal recognitionThe speech recognition was to differ between two spoken words without any control on the ambient noiseThe results are ensuring that despite how small is the network , the performance is higher than another approach utilizing the same concept of dynamic synapses but in different integrationThe results ensure the enhanced performance of the proposed approach over the other mentioned techniquesMoreover , the embedded encoding within the neural configurations is analyzed by the relative entropy , Kullback - Leibler distanceThis measurement ensured that the network is dealing with the different input signals with statistically dependant manner
530 ## - ADDITIONAL PHYSICAL FORM AVAILABLE NOTE
Additional physical form available note Issued also as CD
653 #4 - INDEX TERM--UNCONTROLLED
Uncontrolled term Artificial Neural Netwroks
653 #4 - INDEX TERM--UNCONTROLLED
Uncontrolled term Synapses
700 0# - ADDED ENTRY--PERSONAL NAME
Personal name Bassel Tawfeek ,
Relator term
700 0# - ADDED ENTRY--PERSONAL NAME
Personal name Magda Fayek ,
Relator term
700 0# - ADDED ENTRY--PERSONAL NAME
Personal name Mohamed Saad El Shereif ,
Relator term
856 ## - ELECTRONIC LOCATION AND ACCESS
Uniform Resource Identifier <a href="http://172.23.153.220/th.pdf">http://172.23.153.220/th.pdf</a>
905 ## - LOCAL DATA ELEMENT E, LDE (RLIN)
Cataloger Amira
Reviser Cataloger
905 ## - LOCAL DATA ELEMENT E, LDE (RLIN)
Cataloger Mustafa
Reviser Revisor
942 ## - ADDED ENTRY ELEMENTS (KOHA)
Source of classification or shelving scheme Dewey Decimal Classification
Koha item type Thesis
Holdings
Source of classification or shelving scheme Not for loan Home library Current library Date acquired Full call number Barcode Date last seen Koha item type
Dewey Decimal Classification   المكتبة المركزبة الجديدة - جامعة القاهرة قاعة الرسائل الجامعية - الدور الاول 11.02.2024 Cai01.13.03.M.Sc.2006.Ka.N. 01010110045211000 22.09.2023 Thesis
Dewey Decimal Classification   المكتبة المركزبة الجديدة - جامعة القاهرة مخـــزن الرســائل الجـــامعية - البدروم 11.02.2024 Cai01.13.03.M.Sc.2006.Ka.N. 01020110045211000 22.09.2023 CD - Rom
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