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A Low-Cost Image Encryption Method to Prevent Model Stealing of Deep Neural Network

机译:一种低成本的图像加密方法,防止深度神经网络模型窃取

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摘要

Model stealing attack may happen by stealing useful data transmitted from embedded end to server end for an artificial intelligent systems. In this paper, we are interested in preventing model stealing of neural network for resource-constrained systems. We propose an Image Encryption based on Class Activation Map (IECAM) to encrypt information before transmitting in embedded end. According to class activation map, IECAM chooses certain key areas of the image to be encrypted with the purpose of reducing the model stealing risk of neural network. With partly encrypted information, IECAM can greatly reduce the time overheads of encryption/decryption in both embedded and server ends, especially for big size images. The experimental results demonstrate that our method can significantly reduce time overheads of encryption/decryption and the risk of model stealing compared with traditional methods.
机译:模型窃取攻击可能会通过窃取从嵌入端传输到人工智能系统的服务器端传输的有用数据而发生的。 在本文中,我们有兴趣预防神经网络模型窃取资源受限系统。 我们提出了一种基于类激活地图(IECAM)的图像加密,以在嵌入端发送之前加密信息。 根据类激活图,IECAM选择要加密图像的某些关键区域,以减少神经网络的模型窃取风险。 通过部分加密的信息,Iecam可以大大减少嵌入式和服务器结束中加密/解密的时间开销,特别是对于大尺寸图像。 实验结果表明,与传统方法相比,我们的方法可以显着降低加密/解密的时间开销和模型窃取的风险。

著录项

  • 来源
    《Journal of circuits, systems and computers》 |2020年第16期|2050252.1-2050252.20|共20页
  • 作者单位

    Univ Elect Sci & Technol China Sch Informat & Software Engn Chengdu 610054 Peoples R China;

    Univ Elect Sci & Technol China Sch Informat & Software Engn Chengdu 610054 Peoples R China;

    Univ Elect Sci & Technol China Sch Informat & Software Engn Chengdu 610054 Peoples R China;

    Univ Elect Sci & Technol China Sch Informat & Software Engn Chengdu 610054 Peoples R China;

    Univ Elect Sci & Technol China Sch Informat & Software Engn Chengdu 610054 Peoples R China;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Model stealing; encryption; decryption; neural network; embedded;

    机译:模型窃取;加密;解密;神经网络;嵌入式;

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