2018 26th European Signal Processing Conference (EUSIPCO) 2018
DOI: 10.23919/eusipco.2018.8553160
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PRNU-based Image Classification of Origin Social Network with CNN

Abstract: A huge amount of images are continuously shared on social networks (SNs) daily and, in most of cases, it is very difficult to reliably establish the SN of provenance of an image when it is recovered from a hard disk, a SD card or a smartphone memory. During an investigation, it could be crucial to be able to distinguish images coming directly from a photo-camera with respect to those downloaded from a social network and possibly, in this last circumstance, determining which is the SN among a defined group. It … Show more

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Cited by 26 publications
(28 citation statements)
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“…As it is widely known in multimedia forensics, such operations can be detected and characterized by analyzing the image signal (i.e., the values in the pixel domain or in transformed domains), where distinctive patterns can be exposed. This approach is followed in [32,[34][35][36] for platform provenance analysis, where the image signal is pre-processed to extract a feature representation (see Section 4.3).…”
Section: Cue Selectionmentioning
confidence: 99%
See 1 more Smart Citation
“…As it is widely known in multimedia forensics, such operations can be detected and characterized by analyzing the image signal (i.e., the values in the pixel domain or in transformed domains), where distinctive patterns can be exposed. This approach is followed in [32,[34][35][36] for platform provenance analysis, where the image signal is pre-processed to extract a feature representation (see Section 4.3).…”
Section: Cue Selectionmentioning
confidence: 99%
“…Alternatively, the approach in [36] explores the use of the PRNU noise as a carrier of traces left by different platforms. To this purpose, a wavelet-based denoising filter is applied to each image patch to obtain a noise residual, that is then fed to the ML classifier.…”
Section: Signal Preprocessingmentioning
confidence: 99%
“…In addition, it allows us to make a simple but crucial observation. Without loss of generality, we consider only the numerator in (8). Since the two terms are expected to be zero-mean, it corresponds to the inner product between K N and K d k , i.e.…”
Section: Conditioning Of Cross-correlationmentioning
confidence: 99%
“…Several methods have been proposed in the literature in the last years and they mainly depend on the application purpose. In fact, the working scenario can often change, requiring different operative procedures to get the final result with the expected/required accuracy [8,12,14,21,25,36,37]. The most common working scenarios are:…”
Section: Introductionmentioning
confidence: 99%
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