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Human action recognition based on improved CoHOG-LQC

机译:基于改进的CoHOG-LQC的人类动作识别

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In accordance with the miscalculation over the recognition of resemble objects in the process of human action recognition, and strong correlations between detection precision and description capability that local texture feature descriptors can achieve when acquiring the characteristics of image edge and direction, considering the defects that the low space efficiency as well as high spectral information loss of the pedestrian tracking algorithm which based on fusion among Local Binary Pattern (LBP) and Histograms of Oriented Gradient (HOG), we proposed a novel algorithm based on the fusion among Local Quantization Code (LQC) feature and Co-occurrence Histogram Oriented Gradient (CoHOG) feature for detecting passenger. Firstly, the spectral property of the image were extracted efficiently using LQC feature descriptor from image. Next, the calculation using integral image was established to withdraw edge characteristic and CoHOG features based on LQC character spectrums from the original image. For further procedure, the CoHOG edge feature are fused with them, then the fusion feature image is acquired. At last, Histogram Intersection Kernel Support Vector Machine (HIKSVM) classifiers were performed for detection and recognition. To validate the effectiveness of the algorithm, experiments are carried out on 3 public human action dataset including Weizmann, KTH and Hollywood2. The results demonstrate that the method is effective to raise accuracy and efficiency of clustering process.
机译:考虑到人类动作识别过程中对相似物体的识别计算错误,考虑到图像边缘和方向的特征,在获取图像边缘和方向特征时,局部纹理特征描述子的检测精度与描述能力之间存在很强的相关性。基于局部二值模式(LBP)和定向梯度直方图(HOG)融合的行人跟踪算法的空间效率低以及频谱信息丢失率高,提出了一种基于局部量化码(LQC)融合的行人跟踪算法)功能和用于检测乘客的同现直方图梯度(CoHOG)功能。首先,使用LQC特征描述符从图像中有效地提取图像的光谱特性。接下来,建立使用积分图像的计算,以从原始图像中提取基于LQC字符谱的边缘特征和CoHOG特征。对于进一步的过程,将CoHOG边缘特征与其融合,然后获取融合特征图像。最后,对直方图相交核支持向量机(HIKSVM)进行分类。为了验证该算法的有效性,对3个公众人类行为数据集(包括Weizmann,KTH和Hollywood2)进行了实验。结果表明,该方法有效地提高了聚类过程的准确性和效率。

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