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UltraTimTrack: a Kalman-filter-based Algorithm to Track Muscle Fascicles in Ultrasound Image Sequences

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Date 2025 Feb 3
PMID 39896012
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Abstract

Background: Brightness-mode (B-mode) ultrasound is a valuable tool to non-invasively image skeletal muscle architectural changes during movement, but automatically tracking muscle fascicles remains a major challenge. Existing fascicle tracking algorithms either require time-consuming drift corrections or yield noisy estimates that require post-processing. We therefore aimed to develop an algorithm that tracks fascicles without drift and with low noise across a range of experimental conditions and image acquisition settings.

Methods: We applied a Kalman filter to combine fascicle length and fascicle angle estimates from existing and openly-available UltraTrack and TimTrack algorithms into a hybrid algorithm called UltraTimTrack. We applied the hybrid algorithm to ultrasound image sequences collected from the human medial gastrocnemius of healthy individuals ( = 8, four women), who performed cyclical submaximal plantar flexion contractions or remained at rest during passive ankle joint rotations at given frequencies and amplitudes whilst seated in a dynamometer chair. We quantified the algorithm's tracking accuracy, noise, and drift as the respective mean, cycle-to-cycle variability, and accumulated between-contraction variability in fascicle length and fascicle angle. We expected UltraTimTrack's estimates to be less noisy than TimTrack's estimates and to drift less than UltraTrack's estimates across a range of conditions and image acquisition settings.

Results: The proposed algorithm yielded low-noise estimates like UltraTrack and was drift-free like TimTrack across the broad range of conditions we tested. Over 120 cyclical contractions, fascicle length and fascicle angle deviations of UltraTimTrack accumulated to 2.1 ± 1.3 mm (mean ± sd) and 0.8 ± 0.7 deg, respectively. This was considerably less than UltraTrack (67.0 ± 59.3 mm, 9.3 ± 8.6 deg) and similar to TimTrack (1.9 ± 2.2 mm, 0.9 ± 1.0 deg). Average cycle-to-cycle variability of UltraTimTrack was 1.4 ± 0.4 mm and 0.6 ± 0.3 deg, which was similar to UltraTrack (1.1 ± 0.3 mm, 0.5 ± 0.1 deg) and less than TimTrack (3.5 ± 1.0 mm, 1.4 ± 0.5 deg). UltraTimTrack was less affected by experimental conditions and image acquisition settings than its parent algorithms. It also yielded similar or lower root-mean-square deviations from manual tracking for previously published image sequences (fascicle length: 2.3-2.6 mm, fascicle angle: 0.8-0.9 deg) compared with a recently-proposed hybrid algorithm (4.7 mm, 0.9 deg), and the recently-proposed DL_Track algorithm (3.8 mm, 3.9 deg). Furthermore, UltraTimTrack's processing time (0.2 s per image) was at least five times shorter than that of these recently-proposed algorithms.

Conclusion: We developed a Kalman-filter-based algorithm to improve fascicle tracking from B-mode ultrasound image sequences. The proposed algorithm provides low-noise, drift-free estimates of muscle architectural changes that may better inform muscle function interpretations.

References
1.
Bakenecker P, Weingarten T, Hahn D, Raiteri B . Residual force enhancement is affected more by quadriceps muscle length than stretch amplitude. Elife. 2022; 11. PMC: 9129877. DOI: 10.7554/eLife.77553. View

2.
Van Hooren B, Teratsias P, Hodson-Tole E . Ultrasound imaging to assess skeletal muscle architecture during movements: a systematic review of methods, reliability, and challenges. J Appl Physiol (1985). 2020; 128(4):978-999. DOI: 10.1152/japplphysiol.00835.2019. View

3.
Rana M, Hamarneh G, Wakeling J . Automated tracking of muscle fascicle orientation in B-mode ultrasound images. J Biomech. 2009; 42(13):2068-73. DOI: 10.1016/j.jbiomech.2009.06.003. View

4.
Day J, Bent L, Birznieks I, Macefield V, Cresswell A . Muscle spindles in human tibialis anterior encode muscle fascicle length changes. J Neurophysiol. 2017; 117(4):1489-1498. PMC: 5376612. DOI: 10.1152/jn.00374.2016. View

5.
Beck O, Trejo L, Schroeder J, Franz J, Sawicki G . Shorter muscle fascicle operating lengths increase the metabolic cost of cyclic force production. J Appl Physiol (1985). 2022; 133(3):524-533. PMC: 9558570. DOI: 10.1152/japplphysiol.00720.2021. View