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May 18, 2026Medical Image Analysis0 citationsOpen Access

Simultaneous multi-slice Cardiac Diffusion Tensor imaging with variable CAIPIRINHA shifts and artefact-aware AI

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MTMichael TänzerELEun Ji LimHQHuaqi Harvey Qiu

Key Points

  • To develop a framework that enhances Cardiac Diffusion Tensor Imaging (cDTI) by reducing scan times and artefacts.
  • Introduced ORCAS combining variable CAIPIRINHA acquisition and artefact-aware AI reconstruction.
  • Validated on ex-vivo hearts with anomalies, assessing performance on fractional anisotropy and other biomarkers.
  • Achieved over 18-fold acceleration in whole-heart scans from over two hours to under 7 minutes.
  • Reduced DTI errors in key biomarkers by up to 64% compared to traditional methods.
  • Successfully suppressed SMS artefacts while preserving anatomical details and microstructural properties.
  • Enabled rapid acquisition without losing the ability to delineate abnormalities.

Abstract

Cardiac Diffusion Tensor Imaging (cDTI) provides unique insights into myocardial microstructure in-vivo but requires averaging multiple repetitions for adequate signal quality, leading to prohibitively long acquisition times. Standard acceleration strategies, such as reducing repetitions and employing simultaneous multi-slice (SMS) imaging, are limited by low signal-to-noise ratio (SNR) and inter-slice leakage artefacts, respectively. We introduce ORCAS, a unified framework that synergistically combines a novel variable CAIPIRINHA acquisition with an artefact-aware AI reconstruction to overcome these challenges. The variable CAIPIRINHA scheme decoheres SMS artefacts across repetitions, while our dual-domain deep learning model simultaneously suppresses these artefacts and combats the low SNR from fewer repetitions. The model is guided by patient-specific single-band auxiliary data to preserve anatomical fidelity. Validated on ex-vivo hearts with and without anomalies, ORCAS achieves an over 18-fold acceleration by combining these strategies, reducing a whole-heart scan from over two hours to under 7 min. This is accomplished while reducing errors in key biomarkers, such as Fractional Anisotropy, by up to 64%. The framework preserves essential microstructural properties and the delineation of abnormalities, representing a significant step towards the clinical translation of whole-heart cDTI. • Novel variable CAIPIRINHA reduces SMS artefacts in cardiac DTI. • AI framework achieves 18×acceleration while preserving biomarkers. • Reduces DTI errors by 64% compared to conventional reconstruction. • Enables whole-heart cDTI in under 7 min vs over 2 h. • Preserves abnormalities even at extreme acceleration factors.

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Cite This Study

Tänzer et al. (2026) studied this question.

synapsesocial.com/papers/6a0aac6d5ba8ef6d83b6fdcchttps://doi.org/10.1016/j.media.2026.104115
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