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AgileNet: A Rapid and Efficient Breast Lesion Segmentation Method for Medical Image Analysis

  • Jiaming Liang,
  • Teng Huang,
  • Dan Li,
  • Ziyu Ding,
  • Yunhao Li,
  • Lin Huang,
  • Qiong Wang,
  • Xi Zhang

摘要

Current medical image segmentation approaches have shown promising results in the field of medical image analysis. However, their high computational demands pose significant challenges for resource-constrained medical applications. We propose AgileNet, an efficient breast lesion segmentation that achieves a balance between accuracy and efficiency by leveraging the strengths of both convolutional neural networks and transformers. The proposed Agile block facilitates efficient information exchange by aggregating representations in a cost-effective manner, incorporating both global and local contexts. Through extensive experiments, we demonstrate that AgileNet outperforms state-of-the-art models in terms of accuracy, model size, and throughput when deployed on resource-constrained devices. Our framework offers a promising solution for achieving accurate and efficient medical image segmentation in resource-constrained settings.