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Title:Analysis of neural network responses in calibration of microsimulation traffic model
Authors:ID Ištoka Otković, Irena (Author)
ID Varevac, Damir (Author)
ID Šraml, Matjaž (Author)
Files:.pdf Elektronicki_casopis_gradevinskog_fakulteta_Osijek_2015_Istoka_Otkovic,_Varevac,_Sraml_ANALYSIS_OF_NEURAL_NETWORK_RESPONSES_IN_CALIBRATI.pdf (1,07 MB)
MD5: EAD7720469F7D89A50D4C79FCEC26C59
PID: 20.500.12556/dkum/2a29976a-1c73-4d52-86cb-aecbfc5f80cb
 
URL http://e-gfos.gfos.hr/images/stories/clanci/broj10/Paper-8-Istoka-Otkovic/Paper-8-Istoka-Otkovic.pdf
 
Language:English
Work type:Scientific work
Typology:1.01 - Original Scientific Article
Organization:FGPA - Faculty of Civil Engineering, Transportation Engineering and Architecture
Abstract:Microsimulation models are frequently used in traffic analysis. Various optimization methods are used in calibration, and the one method that has shown success is neural networks. This paper shows the responses of neural networks during calibration of a microsimulation traffic model. We analyzed two calibration methods by applying neural networks and comparing their neural network learning (according to their achieved correlation and the mean error of prediction) and their generalization ability (comparison of generalization results was analyzed in two steps). The best correlation between the microsimulation results and neural network prediction was 88.3%, achieved for the traveling time prediction, on which the first calibration method is based.
Keywords:microsimulation traffic models, calibration, response of neural networks, traveling time, queue parameters
Publication status:Published
Publication version:Version of Record
Year of publishing:2015
Number of pages:str. 67-76
Numbering:Letn. 6, št. 10
PID:20.500.12556/DKUM-67110 New window
ISSN:1847-8948
UDC:656.1:004.8
ISSN on article:1847-8948
COBISS.SI-ID:18813718 New window
NUK URN:URN:SI:UM:DK:9R77GYVQ
Publication date in DKUM:02.08.2017
Views:1497
Downloads:412
Metadata:XML DC-XML DC-RDF
Categories:Misc.
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Record is a part of a journal

Title:E-GFOS
Publisher:Sveučilište Josipa Jurja Strossmayera u Osijeku, Građevinski fakultet
ISSN:1847-8948
COBISS.SI-ID:5703009 New window

Licences

License:CC BY-NC-ND 4.0, Creative Commons Attribution-NonCommercial-NoDerivatives 4.0 International
Link:http://creativecommons.org/licenses/by-nc-nd/4.0/
Description:The most restrictive Creative Commons license. This only allows people to download and share the work for no commercial gain and for no other purposes.
Licensing start date:02.08.2017

Secondary language

Language:Croatian
Title:Analiza odziva neuronskih mreža u postupku kalibracije mikrosimulacijskog prometnog modela
Abstract:Učestala je primjena mikrosimulacijskih modela u prometnim analizama, a realnost dobivenih rezultata simulacije u funkciji je uspješnosti postupka kalibracije. Različite metode optimiranja primjenjuju se u postupku kalibracije, a jedna od metoda koja se pokazala uspješnom u postupku kalibracije je metoda koja primjenjuje neuralne mreže. U ovom radu prikazana je analiza odziva neuralnih mreža u kalibraciji mikrosimulacijskog prometnog modela. U radu su razmatrane dvije metode kalibracije primjenom neuralnih mreža koje su uspoređene prema rezultatima učenja neuralnih mreža (prema kriterijima postignute korelacije i srednje pogreške predikcije) i prema sposobnosti generalizacije (usporedba rezultata generalizacije analizirana je u dva koraka). Najbolja korelacija između rezultata mikrosimulacije i predikcije neuralne mreže (88,3%) dobivena je za parametar vrijeme putovanja, a na navedenom parametru bazirana je prva metoda kalibracije.
Keywords:promet, kalibracija, nevronske mreže, inteligentni transportni sistemi


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