Facial Image Retrieval on Semantic Features Using Adaptive Genetic Algorithm

Marwan Ali Shnan, Taha H. Rassem
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引用次数: 1

Abstract

The emergence of larger databases has made image retrieval techniques an essential component, and has led to the development of more efficient image retrieval systems. Retrieval can be either content or text-based. In this paper, the focus is on the content-based image retrieval from the FGNET database. Input query images are subjected to several processing techniques in the database before computing the squared Euclidean distance (SED) between them. The images with the shortest Euclidean distance are considered as a match and are retrieved. The processing techniques involve the application of the median modified Weiner filter (MMWF), extraction of the low-level features using histogram-oriented gradients (HOG), discrete wavelet transform (DWT), GIST, and Local tetra pattern (LTrP). Finally, the features are selected using Viola-Jones algorithm. In this study, the average PSNR value obtained after applying Wiener filter was 45.29. The performance of the AGA was evaluated based on its precision, F-measure, and recall, and the obtained average values were respectively 0.75, 0.692, and 0.66. The performance matrix of the AGA was compared to those of particle swarm optimization algorithm (PSO) and genetic algorithm (GA) and found to perform better; thus, proving its effi-ciency.
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基于自适应遗传算法的语义特征面部图像检索
大型数据库的出现使图像检索技术成为必不可少的组成部分,并导致了更有效的图像检索系统的发展。检索可以是基于内容的,也可以是基于文本的。本文的研究重点是基于内容的FGNET数据库图像检索。在计算输入查询图像之间的平方欧氏距离(SED)之前,数据库对输入查询图像进行了几种处理技术。将欧几里得距离最短的图像视为匹配并进行检索。处理技术包括应用中值修正韦纳滤波器(MMWF)、使用直方图导向梯度(HOG)、离散小波变换(DWT)、GIST和局部四元模式(ltp)提取底层特征。最后,采用Viola-Jones算法对特征进行选择。在本研究中,应用维纳滤波后得到的平均PSNR值为45.29。对遗传算法的精密度、F-measure和召回率进行评价,得到的平均值分别为0.75、0.692和0.66。将该算法的性能矩阵与粒子群优化算法(PSO)和遗传算法(GA)的性能矩阵进行比较,发现其性能更好;从而证明了其效率。
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审稿时长
8 weeks
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