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    This study introduces filter replacement (FR) for convolutional neural network (CNN) pruning, improving accuracy and efficiency. The novel data-free method enhances resource efficiency in CNN models.

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    Area of Science:

    • Computer Science
    • Artificial Intelligence
    • Machine Learning

    Background:

    • Traditional convolutional neural network (CNN) pruning methods often use heuristic criteria, leading to inconsistent performance and limited generalizability.
    • Existing pruning techniques may lack efficiency and adaptability for modern deep learning models.

    Purpose of the Study:

    • To introduce a novel filter replacement (FR) framework for CNN pruning, treating pruning as replacing filters with zero filters.
    • To develop an efficient, data-free pruning algorithm with low complexity by deriving an error bound and defining a submodular importance function.
    • To extend the FR framework with optimal nonzero filter replacements and introduce a resource efficiency (RE) metric.

    Main Methods:

    • Proposed a filter replacement (FR) framework for CNN pruning.
    • Derived an upper bound on the absolute error to define an efficient, $\gamma $-weakly submodular importance function.
    • Developed a data-free oblivious algorithm for filter selection and extended FR with best-approximation techniques for filter replacements.
    • Introduced a resource efficiency (RE) metric to evaluate pruning methods.

    Main Results:

    • Achieved state-of-the-art results on benchmark networks and datasets.
    • Demonstrated a 25.5% reduction in network parameters for ResNet-50 on ImageNet, improving accuracy from 75.15% to 76.52%.
    • The layer interdependence-aware pruning (LIAP) method showed up to $10^{11}$ times greater efficiency compared to existing techniques.

    Conclusions:

    • The proposed filter replacement (FR) framework offers an effective and efficient approach to CNN pruning.
    • The data-free, low-complexity algorithm and optimized filter replacements achieve superior performance and resource efficiency.
    • This work sets a new standard for resource-aware CNN pruning, balancing accuracy and model compression.