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Extended IMD2020: a large‐scale annotated dataset tailored for detecting manipulated images

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    0541341 - ÚTIA 2022 RIV GB eng J - Článek v odborném periodiku
    Novozámský, Adam - Mahdian, Babak - Saic, Stanislav
    Extended IMD2020: a large‐scale annotated dataset tailored for detecting manipulated images.
    IET Biometrics. Roč. 10, č. 4 (2021), s. 392-407. ISSN 2047-4938. E-ISSN 2047-4946
    GRANT EU: European Commission(XE) 825227
    Institucionální podpora: RVO:67985556
    Klíčová slova: image manipulation * image forensics * database * tampering
    Obor OECD: Computer sciences, information science, bioinformathics (hardware development to be 2.2, social aspect to be 5.8)
    Impakt faktor: 2.716, rok: 2021
    Způsob publikování: Open access
    http://library.utia.cas.cz/separaty/2021/ZOI/novozamsky-0541341.pdf https://ieeexplore.ieee.org/document/9096940

    Image forensic datasets need to accommodate a complex diversity of systematic noise and intrinsic image artefacts to prevent any overfitting of learning methods to a small set of camera types or manipulation techniques. Such artefacts are created during the image acquisition as well as the manipulating process itself (e.g., noise due to sensors, interpolation artefacts, etc.). Here, the authors introduce three datasets. First, we identified the majority of camera models on the market. Then, we collected a dataset of 35,000 real images captured by these cameras. We also created the same number of digitally manipulated images. Additionally, we also collected a dataset of 2,000 ‘real‐life’ (uncontrolled) manipulated images. They are made by unknown people and downloaded from the Internet. The real versions of these images are also provided. We also manually created binary masks localising the exact manipulated areas of these images. Moreover, we captured a set of 2,759 real images formed by 32 unique cameras (19 different camera models) in a controlled way by ourselves. Here, the processing history of all images is guaranteed. This set includes categorised images of uniform areas as well as natural images that can be used effectively for analysis of the sensor noise.
    Trvalý link: http://hdl.handle.net/11104/0319273

     
     
Počet záznamů: 1  

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