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Continuous A-Mode Ultrasound-Based Prediction of Transfemoral Amputee Prosthesis Kinematics Across Different Ambulation Tasks

  • Joel Mendez*
  • , Rosemarie Murray
  • , Lukas Gabert
  • , Nicholas P. Fey
  • , Honghai Liu
  • , Tommaso Lenzi
  • *Corresponding author for this work
  • University of Utah
  • University of Texas at Austin
  • University of Portsmouth

Research output: Contribution to journalArticlepeer-review

Abstract

—Objective: Volitional control systems for powered prostheses require the detection of user intent to operate in real life scenarios. Ambulation mode classification has been proposed to address this issue. However, these approaches introduce discrete labels to the otherwise continuous task that is ambulation. An alternative approach is to provide users with direct, voluntary control of the powered prosthesis motion. Surface electromyography (EMG) sensors have been proposed for this task, but poor signal-to-noise ratios and crosstalk from neighboring muscles limit performance. B-mode ultrasound can address some of these issues at the cost of reduced clinical viability due to the substantial increase in size, weight, and cost. Thus, there is an unmet need for a lightweight, portable neural system that can effectively detect the movement intention of individuals with lower-limb amputation. Methods: In this study, we show that a small and lightweight A-mode ultrasound system can continuously predict prosthesis joint kinematics in seven individuals with transfemoral amputation across different ambulation tasks. Features from the A-mode ultrasound signals were mapped to the user’s prosthesis kinematics via an artificial neural network. Results: Predictions on testing ambulation circuit trials resulted in a mean normalized RMSE across different ambulation modes of 8.7 ± 3.1%, 4.6 ± 2.5%, 7.2 ± 1.8%, and 4.6 ± 2.4% for knee position, knee velocity, ankle position, and ankle velocity, respectively. Conclusion and Significance: This study lays the foundation for future applications of A-mode ultrasound for volitional control of powered prostheses during a variety of daily ambulation tasks.

Original languageEnglish
Pages (from-to)56-67
Number of pages12
JournalIEEE Transactions on Biomedical Engineering
Volume71
Issue number1
DOIs
StatePublished - 1 Jan 2024

Keywords

  • A-mode ultrasound
  • intent recognition
  • joint kinematics prediction
  • lower-limb prosthesis
  • transfemoral amputation

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