人脸识别算法作为人脸处理的模型

A. O’Toole, Y. Cheng, B. Ross, Heather A. Wild, P. Phillips
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引用次数: 15

摘要

我们通过观察算法和人类如何处理单个面孔来评估计算算法作为人脸处理模型的充分性。通过比较模型和人类生成的面部对之间的相似性度量,我们能够评估几种自动面部识别算法与人类感知器之间的一致性。多维尺度(MDS)被试反应模式的空间表征。然后,将模型响应模式投影到该空间中。结果显示,受试者和大多数模型都有一个共同的双峰结构。双峰主语结构反映了相似决策的策略差异。对于模型,双峰结构与实现中使用的表示和距离度量的组合方面相关。
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Face recognition algorithms as models of human face processing
We evaluated the adequacy of computational algorithms as models of human face processing by looking at how the algorithms and humans process individual faces. By comparing model- and human-generated measures of the similarity between pairs of faces, we were able to assess the accord between several automatic face recognition algorithms and human perceivers. Multidimensional scaling (MDS) was used to create a spatial representation of the subject response patterns. Next, the model response patterns were projected into this space. The results revealed a common bimodal structure for both the subjects and for most of the models. The bimodal subject structure reflected strategy differences in making similarity decisions. For the models, the bimodal structure was related to combined aspects of the representations and the distance metrics used in the implementations.
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