SVM Parameter Optimization based on Immune Memory Clone Strategy and Application in Bus Passenger Flow Counting

SVM Parameter Optimization based on Immune Memory Clone Strategy and Application in Bus Passenger Flow Counting

Zhu Fang, Wei Junfang
Copyright: © 2012 |Volume: 4 |Issue: 4 |Pages: 7
ISSN: 1937-965X|EISSN: 1937-9668|EISBN13: 9781466610606|DOI: 10.4018/japuc.2012100108
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MLA

Fang, Zhu, and Wei Junfang. "SVM Parameter Optimization based on Immune Memory Clone Strategy and Application in Bus Passenger Flow Counting." IJAPUC vol.4, no.4 2012: pp.74-80. http://doi.org/10.4018/japuc.2012100108

APA

Fang, Z. & Junfang, W. (2012). SVM Parameter Optimization based on Immune Memory Clone Strategy and Application in Bus Passenger Flow Counting. International Journal of Advanced Pervasive and Ubiquitous Computing (IJAPUC), 4(4), 74-80. http://doi.org/10.4018/japuc.2012100108

Chicago

Fang, Zhu, and Wei Junfang. "SVM Parameter Optimization based on Immune Memory Clone Strategy and Application in Bus Passenger Flow Counting," International Journal of Advanced Pervasive and Ubiquitous Computing (IJAPUC) 4, no.4: 74-80. http://doi.org/10.4018/japuc.2012100108

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Abstract

The performance of support vector mchine (SVM) depends on the selection of model parameters, however, the selection of SVM model parameters more depends on the empirical value. According to the above deficiency, this paper proposed a parameters optimization method of support vector machine based on immune memory clone strategy (IMC). This method can solve the multi-peak model parameters selection problem better which is introduced by n-folded cross-verification. Tests on standard datasets show that this method has higher precision and faster optimization speed compared with other four methods. Then the proposed method was applied to bus passenger flow counting. The experimental results show that the method reposed in this paper obtains higher classification accuracy.

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