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Abstract #1995

High fidelity, distortion-free brain diffusion-weighed imaging through Compressed SENSE combined Deep Learning reconstruction

Yajing Zhang1, Yiming Wang2, Wengu Su3, Guangyu Jiang3, Zhongping Zhang2, ZhongChang Ren1, and Yan Zhao1
1MR R&D, Philips Healthcare, Suzhou, China, 2Philips Healthcare (China), Shanghai, China, 3MR Application, Philips Healthcare, Suzhou, China

Synopsis

Keywords: Head & Neck/ENT, Head & Neck/ENT

Motivation: Distortion-free brain diffusion-weighted imaging (DWI) remains a challenge due to susceptibility artifacts and low signal-to-noise ratio (SNR).

Goal(s): Assess the effectiveness of Compressed SENSE (CS) combined with deep learning (CS-DL) in improving brain DWI image quality.

Approach: We compared various acceleration schemes and reconstruction methods on TSE-DWI brain images.

Results: CS-DL with a factor of 4 improved image quality and SNR, while reducing scan time by 22%.

Impact: Implementation of CS-DL in TSE-DWI holds promise for high-fidelity, distortion-free imaging, facilitating detailed analysis of small brain abnormalities in regions affected by magnetic field inhomogeneity and susceptibility.

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Keywords