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Local image descriptors using linear discriminant embedding

机译:使用线性判别嵌入的局部图像描述符

摘要

To render the comparison of image patches more efficient, the data of an image patch can be projected into a smaller-dimensioned subspace, resulting in a descriptor of the image patch. The projection into the descriptor subspace is known as a linear discriminant embedding, and can be performed with reference to a linear discriminant embedding matrix. The linear discriminant embedding matrix can be constructed from projection vectors that maximize those elements that are shared by matching image patches or that are used to distinguish non-matching image patches, while also minimizing those elements that are common to non-matching image patches or that distinguish matching image patches. The determination of such projection vectors can be limited such that only orthogonal vectors comprise the linear discriminant embedding matrix. The determination of the linear discriminant embedding matrix can likewise be constrained to avoid overfitting to training data.
机译:为了使图像补丁的比较更加有效,可以将图像补丁的数据投影到较小尺寸的子空间中,从而生成图像补丁的描述符。到描述符子空间的投影被称为线性判别嵌入,并且可以参考线性判别嵌入矩阵来执行。线性判别嵌入矩阵可以从投影向量构造,该向量最大化匹配图像块共享的那些元素或用于区分不匹配图像块的元素,同时还最小化不匹配图像块或元素的公共元素。区分匹配的图像补丁。可以限制这样的投影矢量的确定,使得仅正交矢量包括线性判别嵌入矩阵。线性判别式嵌入矩阵的确定同样可以受到约束,以避免过度拟合训练数据。

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