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Optimizing Latent Variables in Integrating Transfer and Query Based Attack Framework.

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    This study introduces a novel framework for black-box adversarial attacks, enhancing transferability and reducing query needs. The proposed method achieves superior performance on ImageNet compared to existing techniques.

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    Area of Science:

    • Computer Science
    • Artificial Intelligence
    • Machine Learning Security

    Background:

    • Black-box adversarial attacks face limitations: transfer-based attacks suffer from poor performance due to model architecture mismatches, while query-based attacks demand extensive queries and high-dimensional optimization.
    • Existing methods struggle to balance attack efficacy with computational efficiency and adaptability in adversarial machine learning.

    Purpose of the Study:

    • To propose a novel, integrated framework for black-box adversarial attacks that combines the strengths of transfer-based and query-based approaches.
    • To address the limitations of poor transferability and high query requirements in current adversarial attack methodologies.

    Main Methods:

    • A two-phase framework: first, training an adversarial generator using an adversarial loss function to output adversarial perturbations.
    • Latent variables are introduced as generator inputs to reduce optimization dimensionality.
    • Second phase utilizes particle swarm optimization on latent variables to refine perturbations for successful attacks, demonstrated on ImageNet.

    Main Results:

    • The proposed framework significantly outperforms several state-of-the-art black-box adversarial attack methods in terms of attack performance.
    • Experiments on the ImageNet dataset validate the framework's effectiveness.
    • The framework demonstrates flexibility through successful extension to few-pixel attack scenarios.

    Conclusions:

    • The novel integrated framework effectively overcomes the limitations of traditional transfer-based and query-based black-box attacks.
    • The method offers improved attack performance and efficiency, with potential for broader applications in adversarial machine learning and robustness testing.