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A Face Recognition Algorithm Based on LLE-SIFT Feature Descriptors

机译:一种基于LLE-SIFT特征描述符的人脸识别算法

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Scale Invariant Feature Transform(SIFT) could influence the real time due to a higher dimension calculation and a longer computation time in large-scale data storage and computing. This paper presents a concept about LLE-SIFT feature descriptors with LLE algorithm. The first step is to calculate feature points of all train images by the standard SIFT algorithm, and searching the neighbor area of these points in the original image, then calculating the gradient of the horizontal direction and the vertical direction to form a vector matrix, whose dimension is reduced by LLE algorithm to obtain a projection matrix. The second step is to obtain the neighbor area using the critical information of points in the scale image, and calculating the horizontal direction and the vertical direction of the neighbors area to form a vector matrix, then the LLE-SIFT feature descriptor is the multiplied of the vector matrix and the projection matrix. Experiments shows that LLE-SIFT is effective.
机译:尺度不变特征变换(SIFT)可能会影响由于更高的尺寸计算和大规模数据存储和计算中的计算时间更高的计算时间。本文介绍了带有LLE算法的LLE-SIFT功能描述符的概念。第一步是通过标准SIFT算法计算所有列车图像的特征点,并在原始图像中搜索这些点的邻居区域,然后计算水平方向的梯度和垂直方向以形成矢量矩阵,其通过LLE算法减少了尺寸以获得投影矩阵。第二步骤是使用刻度图像中的点的关键信息获得邻居区域,并计算邻居区域的水平方向和垂直方向以形成矢量矩阵,然后LLE-SIFT特征描述符是乘以矢量矩阵和投影矩阵。实验表明LLE-SIFT是有效的。

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