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Herausgeber: 
  • Qiang Yang
  • Chee Seng Chan
  • Lixin Fan
  • Digital Watermarking for Machine Learning Model: Techniques, Protocols and Applications 
     

    (Buch)
    Dieser Artikel gilt, aufgrund seiner Grösse, beim Versand als 3 Artikel!


    Übersicht

    Auf mobile öffnen
     
    Lieferstatus:   i.d.R. innert 7-14 Tagen versandfertig
    Veröffentlichung:  Mai 2023  
    Genre:  EDV / Informatik 
     
    Bildverarbeitung / Computersicherheit / deeplearningmodelprotection / Elektronik / IntellectualProperty / Machinelearningmodelprotection / modelfingerprinting / modelownerhsipverification
    ISBN:  9789811975530 
    EAN-Code: 
    9789811975530 
    Verlag:  Springer 
    Einband:  Gebunden  
    Sprache:  English  
    Dimensionen:  H 241 mm / B 160 mm / D 19 mm 
    Gewicht:  535 gr 
    Seiten:  244 
    Bewertung: Titel bewerten / Meinung schreiben
    Inhalt:
    Machine learning (ML) models, especially large pretrained deep learning (DL) models, are of high economic value and must be properly protected with regard to intellectual property rights (IPR). Model watermarking methods are proposed to embed watermarks into the target model, so that, in the event it is stolen, the model's owner can extract the pre-defined watermarks to assert ownership. Model watermarking methods adopt frequently used techniques like backdoor training, multi-task learning, decision boundary analysis etc. to generate secret conditions that constitute model watermarks or fingerprints only known to model owners. These methods have little or no effect on model performance, which makes them applicable to a wide variety of contexts. In terms of robustness, embedded watermarks must be robustly detectable against varying adversarial attacks that attempt to remove the watermarks. The efficacy of model watermarking methods is showcased in diverse applications including image classification, image generation, image captions, natural language processing and reinforcement learning. This book covers the motivations, fundamentals, techniques and protocols for protecting ML models using watermarking. Furthermore, it showcases cutting-edge work in e.g. model watermarking, signature and passport embedding and their use cases in distributed federated learning settings.

      



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