Deep Sylvester Posterior Inference for Adaptive Compressed Sensing in Ultrasound Imaging

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Samenvatting

Ultrasound images are commonly formed by sequential acquisition of beam-steered scan-lines. Minimizing the number of required scan-lines can significantly enhance frame rate, field of view, energy efficiency, and data transfer speeds. Existing approaches typically use static subsampling schemes in combination with sparsity-based or, more recently, deep-learning-based recovery. In this work, we introduce an adaptive subsampling method that maximizes intrinsic information gain in-situ, employing a Sylvester Normalizing Flow encoder to infer an approximate Bayesian posterior under partial observation in real-time. Using the Bayesian posterior and a deep generative model for future observations, we determine the subsampling scheme that maximizes the mutual information between the subsampled observations, and the next frame of the video. We evaluate our approach using the EchoNet cardiac ultrasound video dataset and demonstrate that our active sampling method outperforms competitive baselines, including uniform and variable-density random sampling, as well as equidistantly spaced scan-lines, improving mean absolute reconstruction error by 15%. Moreover, posterior inference and the sampling scheme generation are performed in just 0.015 seconds (66Hz), making it fast enough for real-time 2D ultrasound imaging applications.
Originele taal-2Engels
TitelICASSP 2025 - 2025 IEEE International Conference on Acoustics, Speech and Signal Processing
RedacteurenBhaskar D. Rao, Isabel Trancoso, Gaurav Sharma, Neelesh B. Mehta
UitgeverijInstitute of Electrical and Electronics Engineers
Aantal pagina's5
ISBN van elektronische versie979-8-3503-6874-1
DOI's
StatusGepubliceerd - 7 mrt. 2025
Evenement2025 IEEE International Conference on Acoustics, Speech, and Signal Processing, ICASSP 2025 - Hyderabad, India
Duur: 6 apr. 202511 apr. 2025
https://2025.ieeeicassp.org/

Congres

Congres2025 IEEE International Conference on Acoustics, Speech, and Signal Processing, ICASSP 2025
Verkorte titelICASSP 2025
Land/RegioIndia
StadHyderabad
Periode6/04/2511/04/25
Internet adres

Financiering

This work was supported by the European Research Council (ERC) under the ERC starting grant nr. 101077368 (US-ACT). We thank SURF (www.surf.nl) for their support in using the Dutch National Supercomputer Snellius.

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