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A 3D algorithm for unsupervised face identification

机译:一种无监督人脸识别的3D算法

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With the increasing availability of low-cost 3D data acquisition devices, the use of 3D face data for the recognition of individuals is becoming more appealing and computationally feasible. This paper proposes a completely automatic algorithm for face registration and matching. The algorithm is based on the extraction of stable 3D facial features characterizing the face and the subsequent construction of a signature manifold. The facial features are extracted by performing a continuous-to-discrete scale-space analysis. Registration is driven from the matching of triplets of feature points and the registration error is computed as shape matching score. Conversely to most techniques in the literature, a major advantage of the proposed method is that no data pre-processing is required. Therefore all presented results have been obtained exclusively from the raw data available from the 3D acquisition device. The method has been tested on the Bosphorus 3D face database and the performances compared to the ICP baseline algorithm. Even in presence of noise in the data, the algorithm proved to be very robust and reported identification performances which are aligned to the current state of the art, but without requiring any pre-processing of the raw data.
机译:随着低成本3D数据采集设备可用性的提高,使用3D人脸数据来识别个人变得越来越有吸引力,并且在计算上也变得可行。本文提出了一种全自动的人脸配准和匹配算法。该算法基于提取表征面部特征的稳定3D面部特征以及签名集的后续构造。通过执行连续到离散的比例空间分析来提取面部特征。从特征点的三元组的匹配驱动配准,并且将配准误差计算为形状匹配分数。与文献中的大多数技术相反,提出的方法的主要优点是不需要数据预处理。因此,所有呈现的结果都是从可从3D采集设备获得的原始数据中唯一获得的。该方法已在Bosphorus 3D人脸数据库上进行了测试,并将其性能与ICP基线算法进行了比较。即使在数据中存在噪声,该算法也被证明是非常健壮的,并且报告的识别性能与现有技术水平保持一致,但是不需要对原始数据进行任何预处理。

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