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SPICER: Self-supervised learning for MRI with automatic coil sensitivity estimation and reconstruction.

Yuyang HuWeijie GanChunwei YingTongyao WangCihat EldenizJiaming LiuYasheng ChenHongyu AnUlugbek S Kamilov
Published in: Magnetic resonance in medicine (2024)
Despite being trained on noisy undersampled data, SPICER can reconstruct high-quality images and CSMs in highly undersampled settings, which outperforms other self-supervised learning methods and matches the performance of the well-known E2E-VarNet trained on fully sampled ground-truth data.
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