发明名称 Reduced complexity correlation filters
摘要 A methodology is described to reduce the complexity of filters for face recognition by reducing the memory requirement to, for example, 2 bits/pixel in the frequency domain. Reduced-complexity correlations are achieved by having quantized MACE, UMACE, OTSDF, UOTSDF, MACH, and other filters, in conjunction with a quantized Fourier transform of the input image. This reduces complexity in comparison to the advanced correlation filters using full-phase correlation. However, the verification performance of the reduced complexity filters is comparable to that of full-complexity filters. A special case of using 4-phases to represent both the filter and training/test images in the Fourier domain leads to further reductions in the computational formulations. This also enables the storage and synthesis of filters in limited-memory and limited-computational power platforms such as PDAs, cell phones, etc. An online training algorithm implemented on a face verification system is described for synthesizing correlation filters to handle pose/scale variations. A way to perform efficient face localization is also discussed. Because of the rules governing abstracts, this abstract should not be used to construe the claims.
申请公布号 US7483569(B2) 申请公布日期 2009.01.27
申请号 US20040857072 申请日期 2004.05.28
申请人 CARNEGIE MELLON UNIVERSITY 发明人 BHAGAVATULA VIJAYAKUMAR;SAVVIDES MARIOS
分类号 G06K9/00;G06K9/36;G06K9/52 主分类号 G06K9/00
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