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Parameter-Free Bio-Inspired Channel Attention for Enhanced Cardiac MRI Reconstruction

Parameter-Free Bio-Inspired Channel Attention for Enhanced Cardiac MRI Reconstruction

来源:Arxiv_logoArxiv
英文摘要

Attention is a fundamental component of the human visual recognition system. The inclusion of attention in a convolutional neural network amplifies relevant visual features and suppresses the less important ones. Integrating attention mechanisms into convolutional neural networks enhances model performance and interpretability. Spatial and channel attention mechanisms have shown significant advantages across many downstream tasks in medical imaging. While existing attention modules have proven to be effective, their design often lacks a robust theoretical underpinning. In this study, we address this gap by proposing a non-linear attention architecture for cardiac MRI reconstruction and hypothesize that insights from ecological principles can guide the development of effective and efficient attention mechanisms. Specifically, we investigate a non-linear ecological difference equation that describes single-species population growth to devise a parameter-free attention module surpassing current state-of-the-art parameter-free methods.

Anam Hashmi、Julia Dietlmeier、Kathleen M. Curran、Noel E. O'Connor

医药卫生理论医学研究方法

Anam Hashmi,Julia Dietlmeier,Kathleen M. Curran,Noel E. O'Connor.Parameter-Free Bio-Inspired Channel Attention for Enhanced Cardiac MRI Reconstruction[EB/OL].(2025-05-29)[2025-07-16].https://arxiv.org/abs/2505.23872.点此复制

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