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1
Optimizing Exoskeleton Assistance for Faster Self-Selected Walking.
IEEE Trans Neural Syst Rehabil Eng. 2021;29:786-795. doi: 10.1109/TNSRE.2021.3074154. Epub 2021 May 3.
2
Optimizing exoskeleton assistance to improve walking speed and energy economy for older adults.
J Neuroeng Rehabil. 2024 Jan 2;21(1):1. doi: 10.1186/s12984-023-01287-5.
3
Optimized hip-knee-ankle exoskeleton assistance at a range of walking speeds.
J Neuroeng Rehabil. 2021 Oct 18;18(1):152. doi: 10.1186/s12984-021-00943-y.
6
Optimized hip-knee-ankle exoskeleton assistance reduces the metabolic cost of walking with worn loads.
J Neuroeng Rehabil. 2021 Nov 7;18(1):161. doi: 10.1186/s12984-021-00955-8.
7
Human-in-the-loop optimization of exoskeleton assistance during walking.
Science. 2017 Jun 23;356(6344):1280-1284. doi: 10.1126/science.aal5054.
8
Exoskeleton plantarflexion assistance for elderly.
Gait Posture. 2017 Feb;52:183-188. doi: 10.1016/j.gaitpost.2016.11.040. Epub 2016 Nov 28.
9
The Effects of Incline Level on Optimized Lower-Limb Exoskeleton Assistance: A Case Series.
IEEE Trans Neural Syst Rehabil Eng. 2022;30:2494-2505. doi: 10.1109/TNSRE.2022.3196665. Epub 2022 Sep 5.
10
Heuristic-Based Ankle Exoskeleton Control for Co-Adaptive Assistance of Human Locomotion.
IEEE Trans Neural Syst Rehabil Eng. 2019 Oct;27(10):2059-2069. doi: 10.1109/TNSRE.2019.2936383. Epub 2019 Aug 19.

引用本文的文献

1
Understanding the perspectives of older adults and physiotherapists on home-based lower-limb exoskeletons.
Wearable Technol. 2025 Jul 14;6:e31. doi: 10.1017/wtc.2025.10015. eCollection 2025.
2
Biomechanical models in the lower-limb exoskeletons development: a review.
J Neuroeng Rehabil. 2025 Jan 24;22(1):12. doi: 10.1186/s12984-025-01556-5.
4
On human-in-the-loop optimization of human-robot interaction.
Nature. 2024 Sep;633(8031):779-788. doi: 10.1038/s41586-024-07697-2. Epub 2024 Sep 25.
5
Human-in-the-Loop Trajectory Optimization Based on sEMG Biofeedback for Lower-Limb Exoskeleton.
Sensors (Basel). 2024 Aug 31;24(17):5684. doi: 10.3390/s24175684.
6
Walking on Real-world Terrain with an Ankle Exoskeleton in Cerebral Palsy.
IEEE Trans Med Robot Bionics. 2024 Feb;6(1):202-212. doi: 10.1109/tmrb.2023.3328649. Epub 2023 Oct 31.
8
Current developments of robotic hip exoskeleton toward sensing, decision, and actuation: A review.
Wearable Technol. 2022 Jul 15;3:e15. doi: 10.1017/wtc.2022.11. eCollection 2022.
9
Optimizing exoskeleton assistance to improve walking speed and energy economy for older adults.
J Neuroeng Rehabil. 2024 Jan 2;21(1):1. doi: 10.1186/s12984-023-01287-5.
10
Effects of Personalization on Gait-State Tracking Performance Using Extended Kalman Filters.
Rep U S. 2023 Oct;2023:6068-6074. doi: 10.1109/iros55552.2023.10342498. Epub 2023 Dec 13.

本文引用的文献

1
Walking faster and farther with a soft robotic exosuit: Implications for post-stroke gait assistance and rehabilitation.
IEEE Open J Eng Med Biol. 2020;1:108-115. doi: 10.1109/ojemb.2020.2984429. Epub 2020 Apr 2.
2
Human-in-the-loop optimization of hip assistance with a soft exosuit during walking.
Sci Robot. 2018 Feb 28;3(15). doi: 10.1126/scirobotics.aar5438.
4
Using force data to self-pace an instrumented treadmill and measure self-selected walking speed.
J Neuroeng Rehabil. 2020 Jun 3;17(1):68. doi: 10.1186/s12984-020-00683-5.
6
The exoskeleton expansion: improving walking and running economy.
J Neuroeng Rehabil. 2020 Feb 19;17(1):25. doi: 10.1186/s12984-020-00663-9.
7
Training for Walking Efficiency With a Wearable Hip-Assist Robot in Patients With Stroke: A Pilot Randomized Controlled Trial.
Stroke. 2019 Dec;50(12):3545-3552. doi: 10.1161/STROKEAHA.119.025950. Epub 2019 Oct 18.
9
Words matter: instructions dictate "self-selected" walking speed in young adults.
Gait Posture. 2022 Jun;95:223-226. doi: 10.1016/j.gaitpost.2019.07.379. Epub 2019 Jul 29.
10
Predictive neuromechanical simulations indicate why walking performance declines with ageing.
J Physiol. 2018 Apr 1;596(7):1199-1210. doi: 10.1113/JP275166. Epub 2018 Mar 2.

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