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October 1, 2025Machine Learning and Knowledge Extraction8 citationsOpen Access

Attention-Guided Differentiable Channel Pruning for Efficient Deep Networks

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ACAnouar ChahbouniKMKhaoula El ManaaYAYassine Abouch

Key Points

  • Dynamic attention-guided pruning achieves up to 98.82% reduction in FLOPs while enhancing accuracy.
  • Using CIFAR-10 and PlantVillage datasets, the method provides significant efficiency gains for embedded systems.
  • Joint optimization of classification and sparsity ensures stable convergence in deep learning models.
  • DAGP is retraining-free, minimizing architectural overhead while supporting hard pruning for deployment.

Abstract

Deploying deep learning (DL) models in real-world environments remains a major challenge, particularly under resource-constrained conditions where achieving both high accuracy and compact architectures is essential. While effective, Conventional pruning methods often suffer from high computational overhead, accuracy degradation, or disruption of the end-to-end training process, limiting their practicality for embedded and real-time applications. We present Dynamic Attention-Guided Pruning (DAGP), a Dynamic Attention-Guided Soft Channel Pruning framework that overcomes these limitations by embedding learnable, differentiable pruning masks directly within convolutional neural networks (CNNs). These masks act as implicit attention mechanisms, adaptively suppressing non-informative channels during training. A progressively scheduled L1 regularization, activated after a warm-up phase, enables gradual sparsity while preserving early learning capacity. Unlike prior methods, DAGP is retraining-free, introduces minimal architectural overhead, and supports optional hard pruning for deployment efficiency. Joint optimization of classification and sparsity objectives ensures stable convergence and task-adaptive channel selection. Experiments on CIFAR-10 (VGG16, ResNet56) and PlantVillage (custom CNN) achieve up to 98.82% FLOPs reduction with accuracy gains over baselines. Real-world validation on an enhanced PlantDoc dataset for agricultural monitoring achieves 60 ms inference with only 2.00 MB RAM on a Raspberry Pi 4, confirming efficiency under field conditions. These results illustrate DAGP’s potential to scale beyond agriculture to diverse edge-intelligent systems requiring lightweight, accurate, and deployable models.

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Cite This Study

Chahbouni et al. (2025) studied this question.

synapsesocial.com/papers/68dd89d7fe798ba2fc497a3ehttps://doi.org/10.3390/make7040110
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