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DaLI: Deformation and Light Invariant Descriptor

机译:DaLI:变形和光不变描述符

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Recent advances in 3D shape analysis and recognition have shown that heat diffusion theory can be effectively used to describe local features of deforming and scaling surfaces. In this paper, we show how this description can be used to characterize 2D image patches, and introduce DaLI, a novel feature point descriptor with high resilience to non-rigid image transformations and illumination changes. In order to build the descriptor, 2D image patches are initially treated as 3D surfaces. Patches are then described in terms of a heat kernel signature, which captures both local and global information, and shows a high degree of invariance to non-linear image warps. In addition, by further applying a logarithmic sampling and a Fourier transform, invariance to photometric changes is achieved. Finally, the descriptor is compacted by mapping it onto a low dimensional subspace computed using Principal Component Analysis, allowing for an efficient matching. A thorough experimental validation demonstrates that DaLI is significantly more discriminative and robust to illuminations changes and image transformations than state of the art descriptors, even those specifically designed to describe non-rigid deformations.
机译:3D形状分析和识别的最新进展表明,热扩散理论可以有效地用于描述变形和缩放表面的局部特征。在本文中,我们展示了如何使用此描述来表征2D图像斑块,并介绍了DaLI,这是一种新颖的特征点描述符,对非刚性图像变换和照明变化具有很高的适应性。为了构建描述符,最初将2D图像块视为3D表面。然后根据热核特征描述补丁,该特征可捕获局部和全局信息,并显示出非线性图像扭曲的高度不变性。另外,通过进一步应用对数采样和傅立叶变换,实现了对光度变化的不变性。最后,通过将描述符映射到使用主成分分析计算的低维子空间来压缩它,从而实现高效匹配。全面的实验验证表明,DaLI对照明变化和图像变换的辨别力和鲁棒性远远超过最新的描述符,即使是专门为描述非刚性变形而设计的描述符。

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