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Implement of face recognition system based on Hidden Markov Model

机译:基于隐马尔可夫模型的人脸识别系统的实现

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This paper achieves the face recognition systems based on Hidden Markov and the extraction of feature vectors which is based on PC. Hidden Markov Model is established according to the facial feature, and the image is preprocessed using the method of Wavelet Transform. After that, the original image is processed in overlap sampling and the method of multi-scale decomposition is applied to each sample block in the wavelet domain. Moreover, it gets dimensionality reduction by using PCA. Finally, the system traines Hidden Markov Model through taking advantage of the result of observation vector. In this way, the recognition rate of the target image will have a certain improvement.
机译:本文实现了基于隐马尔可夫算法的人脸识别系统和基于PC的特征向量提取。根据人脸特征建立隐马尔可夫模型,并利用小波变换对图像进行预处理。之后,将原始图像进行重叠采样处理,并将多尺度分解方法应用于小波域中的每个样本块。此外,通过使用PCA可以降低尺寸。最后,系统利用观测向量的结果训练隐马尔可夫模型。这样,目标图像的识别率将有一定的提高。

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