Comparison of immune and genetic algorithms for parameter optimization of plate color recognition

Feng Wang, Dexian Zhang, Lichun Man
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引用次数: 4

Abstract

To address the parameter optimization problem of plate color recognition, two approaches based on IA (immune algorithm) and GA (genetic algorithm) are proposed respectively. Theoretical comparison of IA and GA is first made. Then experimental comparison of the two algorithms is given by using them to perform the parameter optimization task for color recognition of license plates. For plate color recognition algorithm, color features are extracted in the HSV (hue, saturation, and value) color space and weighted fusion of the fuzzy maps on three components is utilized to perform color recognition. To improve the adaptability of recognition algorithm, weights of color feature components and thresholds of classification functions are optimized by immune and genetic algorithms respectively. Comparison experiments were conducted on three data sets. And the experimental results show that the immune-based approach achieves higher accuracy and smaller mean square deviation. From the theoretical and experimental comparisons, it is shown that many immune mechanisms, such as clonal explosion, immune supplementation, concentration adjustment, etc. can be used to solve the parameter optimization problem effectively and efficiently.
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免疫算法与遗传算法在车牌颜色识别参数优化中的比较
针对车牌颜色识别中的参数优化问题,分别提出了基于免疫算法(IA)和遗传算法(GA)的两种方法。首先对遗传算法和遗传算法进行了理论比较。然后对两种算法进行了实验比较,并将其用于车牌颜色识别的参数优化任务。车牌颜色识别算法在HSV(色调、饱和度和值)颜色空间中提取颜色特征,利用三分量模糊映射的加权融合进行颜色识别。为了提高识别算法的适应性,分别采用免疫算法和遗传算法优化颜色特征分量的权重和分类函数的阈值。在三个数据集上进行了对比实验。实验结果表明,基于免疫的方法具有较高的精度和较小的均方差。理论和实验对比表明,克隆爆炸、免疫补充、浓度调节等多种免疫机制可有效解决参数优化问题。
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