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Wavelet-based face verification for constrained platforms

机译:基于小波的人脸验证平台

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Human Identification based on facial images is one of the most challenging tasks in comparison to identification based on other biometric features such as fingerprints, palm prints or iris. Facial recognition is the most natural and suitable method of identification for security related applications. This paper is concerned with wavelet-based schemes for efficient face verification suitable for implementation on devices that are constrained in memory size and computational power such as PDA's and smartcards. Beside minimal storage requirements we should apply as few as possible pre-processing procedures that are often needed to deal with variation in recoding conditions. We propose the LL-coefficients wavelet-transformed face images as the feature vectors for face verification, and compare its performance of PCA applied in the LL-subband at levels 3,4 and 5. We shall also compare the performance of various versions of our scheme, with those of well-established PCA face verification schemes on the BANCA database as well as the ORL database. In many cases, the wavelet-only feature vector scheme has the best performance while maintaining efficacy and requiring minimal pre-processing steps. The significance of these results is their efficiency and suitability for platforms of constrained computational power and storage capacity (e.g. smartcards). Moreover, working at or beyond level 3 LL-subband results in robustness against high rate compression and noise interference.
机译:与基于其他生物特征(例如指纹,掌纹或虹膜)的识别相比,基于面部图像的人类识别是最具挑战性的任务之一。面部识别是用于安全相关应用程序的最自然,最合适的身份识别方法。本文关注的是基于小波的高效人脸验证方案,该方案适用于受内存大小和计算能力限制的设备(如PDA和智能卡)上的实现。除了最低的存储要求,我们应该应用尽可能少的预处理程序,以应对记录条件的变化。我们提出将LL系数小波变换的人脸图像作为用于人脸验证的特征向量,并比较其在LL子带中以3,4和5级使用的PCA的性能。我们还将比较我们各种版本的性能方案,以及在BANCA数据库和ORL数据库上建立的PCA人脸验证方案。在许多情况下,仅小波特征向量方案在保持功效且需要最少的预处理步骤的同时具有最佳性能。这些结果的重要意义在于它们对于受限的计算能力和存储容量(例如智能卡)的平台的效率和适用性。此外,在3级LL子带或更高级别上工作会增强抵抗高速率压缩和噪声干扰的能力。

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