Robust Electromagnetic Interference (EMI) Elimination via Simultaneous Sensing and Deep Learning Prediction for RF Shielding-free MRI
Yujiao Zhao, Linfang Xiao, Vick Lau, Yilong Liu, Alex T. Leong, and Ed, X. Wu

TL;DR
This paper introduces a deep learning-based EMI cancellation method for MRI that eliminates the need for RF shielding, improving installation flexibility and patient comfort while maintaining image quality.
Contribution
It presents a novel simultaneous sensing and deep learning approach to model, predict, and remove EMI signals in MRI without full RF shielding.
Findings
Effective EMI removal across different MRI scanners
Maintains high image SNR comparable to fully shielded MRI
Robust performance against various external and internal EMI sources
Abstract
At present, MRI scans are performed inside a fully-enclosed RF shielding room, posing stringent installation requirement and unnecessary patient discomfort. We aim to develop an electromagnetic interference (EMI) cancellation strategy for MRI with no or incomplete RF shielding. In this study, a simultaneous sensing and deep learning driven EMI cancellation strategy is presented to model, predict and remove EMI signals from acquired MRI signals. Specifically, during each MRI scan, separate EMI sensing coils placed in various spatial locations are utilized to simultaneously sample environmental and internal EMI signals within two windows (for both conventional MRI signal acquisition and EMI characterization acquisition). Then a CNN model is trained using the EMI characterization data to relate EMI signals detected by EMI sensing coils to EMI signals in MRI receive coil. This model is…
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Taxonomy
TopicsAdvanced MRI Techniques and Applications · Non-Destructive Testing Techniques · Atomic and Subatomic Physics Research
