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Face similarity space as perceived by humans and artificial systems

机译:人类和人工系统所感知的面部相似空间

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The performance of a local feature based system, using Gabor filters, and a global template matching based system, using a combination of PCA (principal component analysis) and LDA (linear discriminant analysis) was correlated with human performance on a recognition task involving 32 face images. Both systems showed qualitative similarities to human performance in that all but one of the calculated correlation coefficients were very or moderately high. The Gabor filter model seemed to capture human performance better than the PCA-LDA model since the coefficients for this model were higher for all examined conditions. These results indicate that the preservation of local feature based representation might be necessary to achieve recognition performance similar to that of humans.
机译:使用Gabor滤波器和基于全局模板匹配的系统的本地特征系统的性能使用PCA(主成分分析)和LDA(Linear Collectimant分析)的组合与人类性能相关,涉及32个面部的识别任务图片。两种系统都显示出与人类性能的定性相似之处,除了计算出的相关系数之一非常高或中等高。由于该模型的系数对于所有检查条件更高,因此Gabor滤波器模型似乎比PCA-LDA模型更好地捕获人类性能。这些结果表明,可能需要保存本地特征的表示,以实现与人类类似的识别性能。

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