BIOMARKERS

Molecular Biopsy of Human Tumors

- a resource for Precision Medicine *

265 related articles for article (PubMed ID: 30711342)

  • 1. Proportional myoelectric and compensating control of a cable-conduit mechanism-driven upper limb exoskeleton.
    Xiao F
    ISA Trans; 2019 Jun; 89():245-255. PubMed ID: 30711342
    [TBL] [Abstract][Full Text] [Related]  

  • 2. Effect of velocity and acceleration in joint angle estimation for an EMG-Based upper-limb exoskeleton control.
    Tang Z; Yu H; Yang H; Zhang L; Zhang L
    Comput Biol Med; 2022 Feb; 141():105156. PubMed ID: 34942392
    [TBL] [Abstract][Full Text] [Related]  

  • 3. A real-time stable-control gait switching strategy for lower-limb rehabilitation exoskeleton.
    Guo Z; Wang C; Song C
    PLoS One; 2020; 15(8):e0238247. PubMed ID: 32853239
    [TBL] [Abstract][Full Text] [Related]  

  • 4. A passively safe cable driven upper limb rehabilitation exoskeleton.
    Chen Y; Fan J; Zhu Y; Zhao J; Cai H
    Technol Health Care; 2015; 23 Suppl 2():S197-202. PubMed ID: 26410484
    [TBL] [Abstract][Full Text] [Related]  

  • 5. Mechanical Design and Kinematic Modeling of a Cable-Driven Arm Exoskeleton Incorporating Inaccurate Human Limb Anthropomorphic Parameters.
    Chen W; Li Z; Cui X; Zhang J; Bai S
    Sensors (Basel); 2019 Oct; 19(20):. PubMed ID: 31618848
    [TBL] [Abstract][Full Text] [Related]  

  • 6. Continuous Estimation of Human Knee Joint Angles by Fusing Kinematic and Myoelectric Signals.
    Sun N; Cao M; Chen Y; Chen Y; Wang J; Wang Q; Chen X; Liu T
    IEEE Trans Neural Syst Rehabil Eng; 2022; 30():2446-2455. PubMed ID: 35994557
    [TBL] [Abstract][Full Text] [Related]  

  • 7. Detection of movement onset using EMG signals for upper-limb exoskeletons in reaching tasks.
    Trigili E; Grazi L; Crea S; Accogli A; Carpaneto J; Micera S; Vitiello N; Panarese A
    J Neuroeng Rehabil; 2019 Mar; 16(1):45. PubMed ID: 30922326
    [TBL] [Abstract][Full Text] [Related]  

  • 8. Mechatronics design and testing of a cable-driven upper limb rehabilitation exoskeleton with variable stiffness.
    Li Z; Li W; Chen WH; Zhang J; Wang J; Fang Z; Yang G
    Rev Sci Instrum; 2021 Feb; 92(2):024101. PubMed ID: 33648137
    [TBL] [Abstract][Full Text] [Related]  

  • 9. Lower Limb Motion Recognition with Improved SVM Based on Surface Electromyography.
    Tu P; Li J; Wang H
    Sensors (Basel); 2024 May; 24(10):. PubMed ID: 38793951
    [TBL] [Abstract][Full Text] [Related]  

  • 10. [A pace recognition method for exoskeleton wearers based on support vector machine-hidden Markov model].
    Hu D; Liu Z; Chen L; Wang Q
    Sheng Wu Yi Xue Gong Cheng Xue Za Zhi; 2022 Feb; 39(1):84-91. PubMed ID: 35231969
    [TBL] [Abstract][Full Text] [Related]  

  • 11. Online Adaptive Prediction of Human Motion Intention Based on sEMG.
    Ding Z; Yang C; Wang Z; Yin X; Jiang F
    Sensors (Basel); 2021 Apr; 21(8):. PubMed ID: 33924152
    [TBL] [Abstract][Full Text] [Related]  

  • 12. Real-time modeling and feature extraction method of surface electromyography signal for hand movement classification based on oscillatory theory.
    Xiao F; Mu J; Lu J; Dong G; Wang Y
    J Neural Eng; 2022 Mar; 19(2):. PubMed ID: 35172291
    [No Abstract]   [Full Text] [Related]  

  • 13. A High-Level Control Algorithm Based on sEMG Signalling for an Elbow Joint SMA Exoskeleton.
    Copaci D; Serrano D; Moreno L; Blanco D
    Sensors (Basel); 2018 Aug; 18(8):. PubMed ID: 30072609
    [TBL] [Abstract][Full Text] [Related]  

  • 14. Characterization of surface electromyography patterns of healthy and incomplete spinal cord injury subjects interacting with an upper-extremity exoskeleton.
    McDonald CG; Dennis TA; O'Malley MK
    IEEE Int Conf Rehabil Robot; 2017 Jul; 2017():164-169. PubMed ID: 28813812
    [TBL] [Abstract][Full Text] [Related]  

  • 15. An upper-limb power-assist exoskeleton using proportional myoelectric control.
    Tang Z; Zhang K; Sun S; Gao Z; Zhang L; Yang Z
    Sensors (Basel); 2014 Apr; 14(4):6677-94. PubMed ID: 24727501
    [TBL] [Abstract][Full Text] [Related]  

  • 16. Real-time upper limb motion estimation from surface electromyography and joint angular velocities using an artificial neural network for human-machine cooperation.
    Kwon S; Kim J
    IEEE Trans Inf Technol Biomed; 2011 Jul; 15(4):522-30. PubMed ID: 21558060
    [TBL] [Abstract][Full Text] [Related]  

  • 17. Comparison of sEMG-Based Feature Extraction and Motion Classification Methods for Upper-Limb Movement.
    Guo S; Pang M; Gao B; Hirata H; Ishihara H
    Sensors (Basel); 2015 Apr; 15(4):9022-38. PubMed ID: 25894941
    [TBL] [Abstract][Full Text] [Related]  

  • 18. sEMG-angle estimation using feature engineering techniques for least square support vector machine.
    Gao Y; Luo Y; Zhao J; Li Q
    Technol Health Care; 2019; 27(S1):31-46. PubMed ID: 31045525
    [TBL] [Abstract][Full Text] [Related]  

  • 19. Improving the Transparency of an Exoskeleton Knee Joint Based on the Understanding of Motor Intent Using Energy Kernel Method of EMG.
    Chen X; Zeng Y; Yin Y
    IEEE Trans Neural Syst Rehabil Eng; 2017 Jun; 25(6):577-588. PubMed ID: 27333607
    [TBL] [Abstract][Full Text] [Related]  

  • 20. Bio-inspired upper limb soft exoskeleton to reduce stroke-induced complications.
    Li N; Yang T; Yu P; Chang J; Zhao L; Zhao X; Elhajj IH; Xi N; Liu L
    Bioinspir Biomim; 2018 Aug; 13(6):066001. PubMed ID: 30088477
    [TBL] [Abstract][Full Text] [Related]  

    [Next]    [New Search]
    of 14.