2015
DOI: 10.3390/s150717089
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Intensity Variation Normalization for Finger Vein Recognition Using Guided Filter Based Singe Scale Retinex

Abstract: Finger vein recognition has been considered one of the most promising biometrics for personal authentication. However, the capacities and percentages of finger tissues (e.g., bone, muscle, ligament, water, fat, etc.) vary person by person. This usually causes poor quality of finger vein images, therefore degrading the performance of finger vein recognition systems (FVRSs). In this paper, the intrinsic factors of finger tissue causing poor quality of finger vein images are analyzed, and an intensity variation (… Show more

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Cited by 58 publications
(31 citation statements)
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“…After extracting the ROI, the finger vein image is normalized in order to accommodate geometric changes and to get consistent image size [47]. In addition, normalization in the preprocessing stage eliminates the diverse variation problems of the image [48].…”
Section: Normalization and Enhancementmentioning
confidence: 99%
“…After extracting the ROI, the finger vein image is normalized in order to accommodate geometric changes and to get consistent image size [47]. In addition, normalization in the preprocessing stage eliminates the diverse variation problems of the image [48].…”
Section: Normalization and Enhancementmentioning
confidence: 99%
“…Alessandro Rizzi and his group have done much revolutionary research in the field of Retinex algorithms [11,12]. The fundamental of Retinex is to divide an image into two parts, the illumination image and the reflection image, and then to remove the illumination image to realize image enhancement [13,14]. Single-scale Retinex (SSR) and multi-scale Retinex (MSR) are two typical Retinex algorithms, and MSR is defined as a weighted sum of several SSRs [15].…”
Section: Introductionmentioning
confidence: 99%
“…In recent years, many researchers have focused on the Retinex algorithm carefully and proposed some improvement strategies. Xie et al [14] used guided filter to improve SSR and got good results in enhancing the image quality and finger vein recognition accuracy. Xiao et al [16] employed a fast mean filtering to improve the performance of SSR.…”
Section: Introductionmentioning
confidence: 99%
“…To the best of our knowledge, all the listed CE turned out enhancing the final SIFT based vein recognition system performance in terms of EER. Carried with the confidence that performance will be improved [1221] and with the reality that performance will be kept unchanged or declined [2225], it is necessary to conduct comprehensive experiment to find out the specific influence of CE on SIFT based vein recognition system.…”
Section: Introductionmentioning
confidence: 99%