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The Effect of tDCS on EEG-Based Functional Connectivity in Gait Motor Imagery., , , , , и . IWINAC (1), том 11486 из Lecture Notes in Computer Science, стр. 3-10. Springer, (2019)Mental tasks selection method for a SVM-based BCI system., , , и . SysCon, стр. 767-771. IEEE, (2013)Study of the Functional Brain Connectivity and Lower-Limb Motor Imagery Performance After Transcranial Direct Current Stimulation., , , , и . Int. J. Neural Syst., 30 (8): 2050038:1-2050038:15 (2020)Frequency band selection for a lower-limb MI BCI to control a treadmill., , , , , , и . SMC, стр. 3170-3175. IEEE, (2021)Selection of the best mental tasks for a SVM-based BCI system., , , , , и . SMC, стр. 1483-1488. IEEE, (2014)Joint Stiffness Tuning of Exoskeleton Robot H2 by Tacit Learning., , , , , , , , и . Symbiotic, том 9359 из Lecture Notes in Computer Science, стр. 138-144. Springer, (2015)Analysis of Different Stimulus for Evoking the ErrP Potential in a MI-BMI for Starting the Gait with a Lower-Limb Exoskeleton., , , , , и . SMC, стр. 3653-3658. IEEE, (2023)Analysis of EEG Mapping Images to Differentiate Mental Tasks in Brain-Computer Interfaces., , , и . IWINAC (1), том 6686 из Lecture Notes in Computer Science, стр. 246-255. Springer, (2011)Empirical Analysis of the Integration of a BCI and an EOG Interface to Control a Robot Arm., , , , и . IWINAC (1), том 7930 из Lecture Notes in Computer Science, стр. 151-160. Springer, (2013)Usability and acceptance of using a lower-limb exoskeleton controlled by a BMI in incomplete spinal cord injury patients: a case study., , , , , , , и . EMBC, стр. 4737-4740. IEEE, (2020)