[1] آهنینجان فاطمه، مالکی علی، "توسعه یک واسط مغز-کامپیوتر مبتنی بر پتانسیل برانگیختهی بینایی حالت ماندگار برای تایپ متون فارسی"، مجله دانشکده پزشکی اصفهان، دورهی 34، شمارهی 393، صفحات 914-918، 1395.
[2] Ahn, S., et al., Achieving a hybrid brain–computer interface with tactile selective attention and motor imagery. Journal of neural engineering, 2014. 11(6): p. 066004.
[3] Ahn, S. and S.C. Jun. Feasibility of hybrid BCI using ERD-and SSSEP-BCI. in Control, Automation and Systems (ICCAS), 2012 12th International Conference on. 2012. IEEE
[4] 4. Breitwieser, C., C. Pokorny, and G.R. Müller-Putz, A hybrid three-class brain–computer interface system utilizing SSSEPs and transient ERPs. Journal of neural engineering, 2016. 13(6): p. 066015.
[5] Yao, L., et al., Combining motor imagery with selective sensation toward a hybrid-modality BCI. IEEE Transactions on Biomedical Engineering, 2014. 61(8): p. 2304-2312.
[6] Sadeghi, Sahar, and Ali Maleki. "Recent advances in hybrid brain-computer interface systems: a technological and quantitative review." Basic and Clinical Neuroscience (2017): 0-0 (impress)
[7] Nam, Y., Koo, B., & Choi, S. (2014, February). Spatial patterns of SSSEP under the selective attention to tactile stimuli in each hand. In Brain-Computer Interface (BCI), 2014 International Winter Workshop on (pp. 1-4). IEEE.
[8] Kim, K. T., & Lee, S. W. (2014, February). Steady-state somatosensory evoked potentials for brain-controlled wheelchair. In Brain-Computer Interface (BCI), 2014 International Winter Workshop on (pp. 1-2). IEEE.
[9] Giabbiconi, C. M., Dancer, C., Zopf, R., Gruber, T., & Müller, M. M. (2004). Selective spatial attention to left or right hand flutter sensation modulates the steady-state somatosensory evoked potential. Cognitive brain research, 20(1), 58-66.
[10] Adler, J., Giabbiconi, C. M., & Müller, M. M. (2009). Shift of attention to the body location of distracters is mediated by perceptual load in sustained somatosensory attention. Biological psychology, 81(2), 77-85.
[11] Homma, T., Ino, S., Kuroki, H., Izumi, T., & Ifukube, T. (2004, September). Development of a piezoelectric actuator for presentation of various tactile stimulation patterns to fingerpad skin. In Engineering in Medicine and Biology Society, 2004. IEMBS'04. 26th Annual International Conference of the IEEE (Vol. 2, pp. 4960-4963). IEEE.
[12] Choi, S., & Kuchenbecker, K. J. (2013). Vibrotactile display: Perception, technology, and applications. Proceedings of the IEEE, 101(9), 2093-2104.
[13] C2 Tactor-Data sheet, Engineering Acoustics, Inc. Casselberry, FL, USA [Online]. Available:
http://www.eaiinfo.com/(accessed jul 24 ,2017).
[14] Smith, D. J., Varghese, L. A., Stepp, C. E., & Guenther, F. H. (2014, August). Comparison of steady-state visual and somatosensory evoked potentials for brain-computer interface control. In Engineering in Medicine and Biology Society (EMBC), 2014 36th Annual International Conference of the IEEE (pp. 1234-1237). IEEE.
[15] Pokorny, C., Breitwieser, C., & Muller-Putz, G. R. (2014). A tactile stimulation device for EEG measurements in clinical use. IEEE transactions on biomedical circuits and systems, 8(3), 305-312.
[17] Snyder, Abraham Z. "Steady-state vibration evoked potentials: description of technique and characterization of responses. " Electro-encephalo-graphy and Clinical Neurophysiology/Evoked potentials Section 84.3 (1992): 257-268.
[18] http://www.atmel.com/Images/Atmel-8155-8-bit-Microcontroller-AVR-A-Tmega32A-_Datasheet.pdf/(accessed Jul 24, 2017).