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A fast source-oriented image clustering method for digital forensics
by
Lin, Xufeng
, Li, Chang-Tsun
in
Biometrics
/ Clustering
/ Computer forensics
/ Digital cameras
/ Digital forensics
/ Digital imaging
/ Engineering
/ Fingerprints
/ Forensic computing
/ Image and Video Forensics for Social Media analysis
/ Image clustering
/ Image Processing and Computer Vision
/ Markov processes
/ Markov random fields
/ Multimedia forensics
/ Pattern Recognition
/ Random variables
/ Sensor pattern noise
/ Signal,Image and Speech Processing
2017
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A fast source-oriented image clustering method for digital forensics
by
Lin, Xufeng
, Li, Chang-Tsun
in
Biometrics
/ Clustering
/ Computer forensics
/ Digital cameras
/ Digital forensics
/ Digital imaging
/ Engineering
/ Fingerprints
/ Forensic computing
/ Image and Video Forensics for Social Media analysis
/ Image clustering
/ Image Processing and Computer Vision
/ Markov processes
/ Markov random fields
/ Multimedia forensics
/ Pattern Recognition
/ Random variables
/ Sensor pattern noise
/ Signal,Image and Speech Processing
2017
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Do you wish to request the book?
A fast source-oriented image clustering method for digital forensics
by
Lin, Xufeng
, Li, Chang-Tsun
in
Biometrics
/ Clustering
/ Computer forensics
/ Digital cameras
/ Digital forensics
/ Digital imaging
/ Engineering
/ Fingerprints
/ Forensic computing
/ Image and Video Forensics for Social Media analysis
/ Image clustering
/ Image Processing and Computer Vision
/ Markov processes
/ Markov random fields
/ Multimedia forensics
/ Pattern Recognition
/ Random variables
/ Sensor pattern noise
/ Signal,Image and Speech Processing
2017
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A fast source-oriented image clustering method for digital forensics
Journal Article
A fast source-oriented image clustering method for digital forensics
2017
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Overview
We present in this paper an algorithm that is capable of clustering images taken by an unknown number of unknown digital cameras into groups, such that each contains only images taken by the same source camera. It first extracts a sensor pattern noise (SPN) from each image, which serves as the
fingerprint
of the camera that has taken the image. The image clustering is performed based on the pairwise correlations between camera fingerprints extracted from images. During this process, each SPN is treated as a random variable and a Markov random field (MRF) approach is employed to iteratively assign a class label to each SPN (i.e., random variable). The clustering process requires no a priori knowledge about the dataset from the user. A concise yet effective cost function is formulated to allow different “neighbors” different voting power in determining the class label of the image in question depending on their similarities. Comparative experiments were carried out on the Dresden image database to demonstrate the advantages of the proposed clustering algorithm.
Publisher
Springer International Publishing,Springer Nature B.V,SpringerOpen
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