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Spatiotemporal Representation Learning for Short and Long Medical Image Time Series

About

Analyzing temporal developments is crucial for the accurate prognosis of many medical conditions. Temporal changes that occur over short time scales are key to assessing the health of physiological functions, such as the cardiac cycle. Moreover, tracking longer term developments that occur over months or years in evolving processes, such as age-related macular degeneration (AMD), is essential for accurate prognosis. Despite the importance of both short and long term analysis to clinical decision making, they remain understudied in medical deep learning. State of the art methods for spatiotemporal representation learning, developed for short natural videos, prioritize the detection of temporal constants rather than temporal developments. Moreover, they do not account for varying time intervals between acquisitions, which are essential for contextualizing observed changes. To address these issues, we propose two approaches. First, we combine clip-level contrastive learning with a novel temporal embedding to adapt to irregular time series. Second, we propose masking and predicting latent frame representations of the temporal sequence. Our two approaches outperform all prior methods on temporally-dependent tasks including cardiac output estimation and three prognostic AMD tasks. Overall, this enables the automated analysis of temporal patterns which are typically overlooked in applications of deep learning to medicine.

Chengzhi Shen, Martin J. Menten, Hrvoje Bogunovi\'c, Ursula Schmidt-Erfurth, Hendrik Scholl, Sobha Sivaprasad, Andrew Lotery, Daniel Rueckert, Paul Hager, Robbie Holland• 2024

Related benchmarks

TaskDatasetResultRank
Cardiac Output estimationShort-term cardiac video
MAE1.63
16
Late Dry AMD PrognosisLongitudinal retinal OCT (test)
AUC0.802
16
Late vs. Early AMD DiagnosisLongitudinal retinal OCT (test)
AUC88.6
16
Late Wet AMD PrognosisLongitudinal retinal OCT (test)
AUC0.678
16
Scarring and Fibrosis PrognosisLongitudinal retinal OCT (test)
AUC77.4
16
Fibrillation diagnosisShort-term cardiac video
AUC0.704
16
CAD diagnosisShort-term cardiac video
AUC0.694
16
LVEF estimationShort-term cardiac video
MAE3.89
16
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