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Restoring blood vessel patterns from JPEG compressed skin images for forensic analysis

机译:从JPEG压缩皮肤图像恢复血管模式以进行法医分析

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摘要

The recent development of forensic methods makes criminal and victim identification based on blood vessel patterns hidden in color images possible. The performance of these methods highly depends on the quality of input images. The JPEG method, being the most popular image compression method, generates blocking artifacts, which seriously degrade image quality and make uncovering blood vessels difficult. This paper proposes an algorithm to restore blood vessel patterns hidden in JPEG compressed skin images. An analysis is first performed to identify critical discrete cosine transform (DCT) coefficients that control the quality of blood vessel patterns. According to the analysis, an algorithm is designed to restore these coefficients by exploiting DCT coefficients in different blocks and channels of JPEG compressed images. A blood vessel pattern matching method and a database with 978 images are employed to evaluate the effectiveness of the proposed algorithm. The experimental results demonstrate that the proposed algorithm can effectively alleviate blocking artifacts and restore blood vessel patterns for matching and that it outperforms the knowledge-based deblocking method, which is specially designed to restore skin images.
机译:基于可能的彩色图像中隐藏的血管模式,最近的法医方法发展使犯罪和受害者识别成为可能的血管模式。这些方法的性能高度取决于输入图像的质量。 JPEG方法是最受欢迎的图像压缩方法,产生阻塞伪像,这严重降低了图像质量并使揭示血管困难。本文提出了一种估算隐藏在JPEG压缩皮肤图像中的血管模式的算法。首先进行分析以识别控制血管模式质量的临界离散余弦变换(DCT)系数。根据分析,算法旨在通过利用JPEG压缩图像的不同块和通道中的DCT系数来恢复这些系数。采用血管模式匹配方法和具有978个图像的数据库来评估所提出的算法的有效性。实验结果表明,所提出的算法可以有效缓解阻断伪像和恢复血管模式以匹配,并且它优于基于知识的去块块方法,该方法专门设计用于恢复皮肤图像。

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