{"id":80,"date":"2021-10-11T13:27:02","date_gmt":"2021-10-11T11:27:02","guid":{"rendered":"https:\/\/www.lirmm.fr\/ganesh-gowrishankar\/?page_id=80"},"modified":"2026-01-19T23:34:11","modified_gmt":"2026-01-19T22:34:11","slug":"motor-cognitive-neuroscience","status":"publish","type":"page","link":"https:\/\/www.lirmm.fr\/ganesh-gowrishankar\/motor-cognitive-neuroscience\/","title":{"rendered":"Motor\/cognitive neuroscience"},"content":{"rendered":"<p>[et_pb_section fb_built=\u00a0\u00bb1&Prime; custom_padding_last_edited=\u00a0\u00bbon|tablet\u00a0\u00bb admin_label=\u00a0\u00bbHeader\u00a0\u00bb _builder_version=\u00a0\u00bb4.9.10&Prime; use_background_color_gradient=\u00a0\u00bbon\u00a0\u00bb background_color_gradient_start=\u00a0\u00bb#1792a8&Prime; background_color_gradient_end=\u00a0\u00bb#001b56&Prime; background_color_gradient_direction=\u00a0\u00bb1deg\u00a0\u00bb background_color_gradient_end_position=\u00a0\u00bb65%\u00a0\u00bb background_image=\u00a0\u00bbhttps:\/\/www.lirmm.fr\/ganesh-gowrishankar\/wp-content\/uploads\/sites\/46\/2021\/10\/robotics-05-1.png\u00a0\u00bb background_size=\u00a0\u00bbinitial\u00a0\u00bb background_position=\u00a0\u00bbbottom_right\u00a0\u00bb width=\u00a0\u00bb100%\u00a0\u00bb min_height=\u00a0\u00bb674.8px\u00a0\u00bb custom_margin=\u00a0\u00bb||6vw||false|false\u00a0\u00bb custom_margin_last_edited=\u00a0\u00bboff|tablet\u00a0\u00bb custom_padding=\u00a0\u00bb8vw||0px||false|false\u00a0\u00bb custom_padding_tablet=\u00a0\u00bb|10vw||10vw|false|true\u00a0\u00bb custom_padding_phone=\u00a0\u00bb\u00a0\u00bb locked=\u00a0\u00bboff\u00a0\u00bb][et_pb_row column_structure=\u00a0\u00bb3_5,2_5&Prime; _builder_version=\u00a0\u00bb4.9.10&Prime; width=\u00a0\u00bb100%\u00a0\u00bb max_width=\u00a0\u00bb100%\u00a0\u00bb][et_pb_column type=\u00a0\u00bb3_5&Prime; _builder_version=\u00a0\u00bb4.9.10&Prime; custom_padding=\u00a0\u00bb|||12vw|false|false\u00a0\u00bb][et_pb_text _builder_version=\u00a0\u00bb4.9.10&Prime; text_font=\u00a0\u00bbRajdhani|||on|||||\u00a0\u00bb text_text_color=\u00a0\u00bb#AAD3F2&Prime; text_letter_spacing=\u00a0\u00bb1px\u00a0\u00bb header_font=\u00a0\u00bbRajdhani||||||||\u00a0\u00bb animation_style=\u00a0\u00bbslide\u00a0\u00bb animation_duration=\u00a0\u00bb600ms\u00a0\u00bb]<\/p>\n<p>Publications<\/p>\n<p>[\/et_pb_text][et_pb_text _builder_version=\u00a0\u00bb4.9.10&Prime; header_font=\u00a0\u00bbRajdhani|700|||||||\u00a0\u00bb header_font_size=\u00a0\u00bb72px\u00a0\u00bb background_layout=\u00a0\u00bbdark\u00a0\u00bb animation_style=\u00a0\u00bbslide\u00a0\u00bb animation_duration=\u00a0\u00bb600ms\u00a0\u00bb header_font_size_tablet=\u00a0\u00bb48px\u00a0\u00bb header_font_size_phone=\u00a0\u00bb28px\u00a0\u00bb header_font_size_last_edited=\u00a0\u00bbon|desktop\u00a0\u00bb]<\/p>\n<h1>MOTOR \/ COGNITIVE NEUROSCIENCE<\/h1>\n<p>[\/et_pb_text][et_pb_image src=\u00a0\u00bbhttps:\/\/www.lirmm.fr\/ganesh-gowrishankar\/wp-content\/uploads\/sites\/46\/2022\/01\/arrow-down-button.png\u00a0\u00bb alt=\u00a0\u00bbscroll down\u00a0\u00bb url=\u00a0\u00bbhttps:\/\/www.lirmm.fr\/ganesh-gowrishankar\/motor-cognitive-neuroscience\/#motor-cognitive-neuroscience\u00a0\u00bb _builder_version=\u00a0\u00bb4.9.10&Prime; _module_preset=\u00a0\u00bbdefault\u00a0\u00bb animation_style=\u00a0\u00bbfade\u00a0\u00bb animation_delay=\u00a0\u00bb300ms\u00a0\u00bb][\/et_pb_image][\/et_pb_column][et_pb_column type=\u00a0\u00bb2_5&Prime; _builder_version=\u00a0\u00bb4.4.7&Prime;][et_pb_image src=\u00a0\u00bbhttps:\/\/www.lirmm.fr\/ganesh-gowrishankar\/wp-content\/uploads\/sites\/46\/2022\/01\/skull-motor-cognitive-v3.png\u00a0\u00bb alt=\u00a0\u00bbMotor \/ Cognitive neuroscience\u00a0\u00bb _builder_version=\u00a0\u00bb4.9.10&Prime; transform_scale_tablet=\u00a0\u00bb75%|75%\u00a0\u00bb transform_scale_phone=\u00a0\u00bb69%|69%\u00a0\u00bb transform_scale_last_edited=\u00a0\u00bbon|phone\u00a0\u00bb transform_translate=\u00a0\u00bb114px|70px\u00a0\u00bb transform_translate_tablet=\u00a0\u00bb\u00a0\u00bb transform_translate_phone=\u00a0\u00bb\u00a0\u00bb transform_translate_last_edited=\u00a0\u00bbon|tablet\u00a0\u00bb transform_translate_linked=\u00a0\u00bboff\u00a0\u00bb transform_rotate_tablet=\u00a0\u00bb\u00a0\u00bb transform_rotate_phone=\u00a0\u00bb\u00a0\u00bb transform_rotate_last_edited=\u00a0\u00bbon|tablet\u00a0\u00bb transform_skew_tablet=\u00a0\u00bb\u00a0\u00bb transform_skew_phone=\u00a0\u00bb\u00a0\u00bb transform_skew_last_edited=\u00a0\u00bbon|tablet\u00a0\u00bb transform_origin_tablet=\u00a0\u00bb\u00a0\u00bb transform_origin_phone=\u00a0\u00bb\u00a0\u00bb transform_origin_last_edited=\u00a0\u00bbon|tablet\u00a0\u00bb transform_styles_last_edited=\u00a0\u00bbon|phone\u00a0\u00bb width=\u00a0\u00bb234.9%\u00a0\u00bb custom_margin=\u00a0\u00bb-170px||||false|false\u00a0\u00bb custom_margin_tablet=\u00a0\u00bb-170px|0vw||-150px|false|false\u00a0\u00bb custom_margin_phone=\u00a0\u00bb-204px||||false|false\u00a0\u00bb custom_margin_last_edited=\u00a0\u00bbon|phone\u00a0\u00bb custom_padding=\u00a0\u00bb|0px||||\u00a0\u00bb animation_style=\u00a0\u00bbslide\u00a0\u00bb animation_duration=\u00a0\u00bb600ms\u00a0\u00bb scroll_vertical_motion=\u00a0\u00bb0|50|50|100|-15|0|-5&Prime; transform_styles_tablet=\u00a0\u00bb\u00a0\u00bb transform_styles_phone=\u00a0\u00bb\u00a0\u00bb][\/et_pb_image][\/et_pb_column][\/et_pb_row][\/et_pb_section][et_pb_section fb_built=\u00a0\u00bb1&Prime; module_id=\u00a0\u00bbmotor-cognitive-neuroscience\u00a0\u00bb _builder_version=\u00a0\u00bb4.9.10&Prime; _module_preset=\u00a0\u00bbdefault\u00a0\u00bb width=\u00a0\u00bb100%\u00a0\u00bb max_width=\u00a0\u00bb100%\u00a0\u00bb module_alignment=\u00a0\u00bbcenter\u00a0\u00bb custom_margin=\u00a0\u00bb0px||||false|false\u00a0\u00bb custom_padding=\u00a0\u00bb0px||||false|false\u00a0\u00bb][et_pb_row column_structure=\u00a0\u00bb1_2,1_2&Prime; module_class=\u00a0\u00bbpublications-boutons\u00a0\u00bb _builder_version=\u00a0\u00bb4.9.10&Prime; _module_preset=\u00a0\u00bbdefault\u00a0\u00bb background_enable_image=\u00a0\u00bboff\u00a0\u00bb background_size=\u00a0\u00bbinitial\u00a0\u00bb width=\u00a0\u00bb50%\u00a0\u00bb max_width=\u00a0\u00bb50%\u00a0\u00bb][et_pb_column type=\u00a0\u00bb1_2&Prime; _builder_version=\u00a0\u00bb4.9.10&Prime; _module_preset=\u00a0\u00bbdefault\u00a0\u00bb][et_pb_image src=\u00a0\u00bbhttps:\/\/www.lirmm.fr\/ganesh-gowrishankar\/wp-content\/uploads\/sites\/46\/2021\/12\/robotics-w-txt.jpg\u00a0\u00bb alt=\u00a0\u00bbROBOTICS \/ ENGINEERING\u00a0\u00bb title_text=\u00a0\u00bbROBOTICS \/ ENGINEERING\u00a0\u00bb url=\u00a0\u00bbhttps:\/\/www.lirmm.fr\/ganesh-gowrishankar\/publications-in-robotics-engineering\/\u00a0\u00bb align=\u00a0\u00bbright\u00a0\u00bb _builder_version=\u00a0\u00bb4.9.10&Prime; _module_preset=\u00a0\u00bbdefault\u00a0\u00bb width=\u00a0\u00bb16vw\u00a0\u00bb max_width=\u00a0\u00bb16vw\u00a0\u00bb module_alignment=\u00a0\u00bbcenter\u00a0\u00bb custom_margin=\u00a0\u00bb|0px|50px||false|false\u00a0\u00bb custom_padding=\u00a0\u00bb||||false|false\u00a0\u00bb filter_opacity=\u00a0\u00bb60%\u00a0\u00bb border_radii=\u00a0\u00bbon|25px|25px|25px|25px\u00a0\u00bb border_width_all=\u00a0\u00bb3px\u00a0\u00bb border_color_all=\u00a0\u00bb#1C61AC\u00a0\u00bb border_style_all=\u00a0\u00bbdashed\u00a0\u00bb][\/et_pb_image][\/et_pb_column][et_pb_column type=\u00a0\u00bb1_2&Prime; _builder_version=\u00a0\u00bb4.9.10&Prime; _module_preset=\u00a0\u00bbdefault\u00a0\u00bb][et_pb_image src=\u00a0\u00bbhttps:\/\/www.lirmm.fr\/ganesh-gowrishankar\/wp-content\/uploads\/sites\/46\/2021\/12\/motor-w-txt.jpg\u00a0\u00bb alt=\u00a0\u00bbMOTOR \/ COGNITIVE NEUROSCIENCE\u00a0\u00bb title_text=\u00a0\u00bbMOTOR \/ COGNITIVE NEUROSCIENCE\u00a0\u00bb url=\u00a0\u00bbhttps:\/\/www.lirmm.fr\/ganesh-gowrishankar\/motor-cognitive-neuroscience\/\u00a0\u00bb align=\u00a0\u00bbcenter\u00a0\u00bb _builder_version=\u00a0\u00bb4.9.10&Prime; _module_preset=\u00a0\u00bbdefault\u00a0\u00bb width=\u00a0\u00bb16vw\u00a0\u00bb max_width=\u00a0\u00bb16vw\u00a0\u00bb module_alignment=\u00a0\u00bbcenter\u00a0\u00bb border_radii=\u00a0\u00bbon|25px|25px|25px|25px\u00a0\u00bb border_width_all=\u00a0\u00bb3px\u00a0\u00bb border_color_all=\u00a0\u00bb#1C61AC\u00a0\u00bb][\/et_pb_image][\/et_pb_column][\/et_pb_row][et_pb_row column_structure=\u00a0\u00bb1_4,1_4,1_4,1_4&Prime; _builder_version=\u00a0\u00bb4.9.10&Prime; _module_preset=\u00a0\u00bbdefault\u00a0\u00bb][et_pb_column type=\u00a0\u00bb1_4&Prime; _builder_version=\u00a0\u00bb4.9.10&Prime; _module_preset=\u00a0\u00bbdefault\u00a0\u00bb][et_pb_image src=\u00a0\u00bbhttps:\/\/www.lirmm.fr\/ganesh-gowrishankar\/wp-content\/uploads\/sites\/46\/2022\/06\/6-1-226&#215;300.png\u00a0\u00bb title_text=\u00a0\u00bb6&Prime; url=\u00a0\u00bbhttps:\/\/www.nature.com\/natmachintell\/volumes\/4\/issues\/6&Prime; _builder_version=\u00a0\u00bb4.9.10&Prime; _module_preset=\u00a0\u00bbdefault\u00a0\u00bb][\/et_pb_image][\/et_pb_column][et_pb_column type=\u00a0\u00bb1_4&Prime; _builder_version=\u00a0\u00bb4.9.10&Prime; _module_preset=\u00a0\u00bbdefault\u00a0\u00bb][et_pb_image src=\u00a0\u00bbhttps:\/\/www.lirmm.fr\/ganesh-gowrishankar\/wp-content\/uploads\/sites\/46\/2022\/06\/jizaibook.jpg\u00a0\u00bb title_text=\u00a0\u00bbjizaibook\u00a0\u00bb url=\u00a0\u00bbhttps:\/\/www.amazon.co.jp\/%E8%87%AA%E5%9C%A8%E5%8C%96%E8%BA%AB%E4%BD%93%E8%AB%96-%E2%80%95%E8%B6%85%E6%84%9F%E8%A6%9A%E3%83%BB%E8%B6%85%E8%BA%AB%E4%BD%93%E3%83%BB%E5%A4%89%E8%BA%AB%E3%83%BB%E5%88%86%E8%BA%AB%E3%83%BB%E5%90%88%E4%BD%93%E3%81%8C%E7%B9%94%E3%82%8A%E3%81%AA%E3%81%99%E4%BA%BA%E9%A1%9E%E3%81%AE%E6%9C%AA%E6%9D%A5-%E7%A8%B2%E8%A6%8B-%E6%98%8C%E5%BD%A6\/dp\/4860436857&Prime; _builder_version=\u00a0\u00bb4.9.10&Prime; _module_preset=\u00a0\u00bbdefault\u00a0\u00bb][\/et_pb_image][\/et_pb_column][et_pb_column type=\u00a0\u00bb1_4&Prime; _builder_version=\u00a0\u00bb4.9.10&Prime; _module_preset=\u00a0\u00bbdefault\u00a0\u00bb][et_pb_image src=\u00a0\u00bbhttps:\/\/www.lirmm.fr\/ganesh-gowrishankar\/wp-content\/uploads\/sites\/46\/2022\/06\/mitpress.jpg\u00a0\u00bb title_text=\u00a0\u00bbmitpress\u00a0\u00bb url=\u00a0\u00bbhttps:\/\/mitpress.mit.edu\/books\/handbook-embodied-cognition-and-sport-psychology\u00a0\u00bb _builder_version=\u00a0\u00bb4.9.10&Prime; _module_preset=\u00a0\u00bbdefault\u00a0\u00bb][\/et_pb_image][\/et_pb_column][et_pb_column type=\u00a0\u00bb1_4&Prime; _builder_version=\u00a0\u00bb4.9.10&Prime; _module_preset=\u00a0\u00bbdefault\u00a0\u00bb][et_pb_image src=\u00a0\u00bbhttps:\/\/www.lirmm.fr\/ganesh-gowrishankar\/wp-content\/uploads\/sites\/46\/2022\/06\/Gowrishankar_RATP__160720_2-189&#215;300.jpg\u00a0\u00bb title_text=\u00a0\u00bbGowrishankar_RATP__160720_2&Prime; url=\u00a0\u00bbhttps:\/\/drive.google.com\/file\/d\/1NjmPPjU4_zS-jvMODg8YaN61l63fQBAf\/view\u00a0\u00bb _builder_version=\u00a0\u00bb4.9.10&Prime; _module_preset=\u00a0\u00bbdefault\u00a0\u00bb][\/et_pb_image][\/et_pb_column][\/et_pb_row][et_pb_row _builder_version=\u00a0\u00bb4.9.10&Prime; _module_preset=\u00a0\u00bbdefault\u00a0\u00bb][et_pb_column type=\u00a0\u00bb4_4&Prime; _builder_version=\u00a0\u00bb4.9.10&Prime; _module_preset=\u00a0\u00bbdefault\u00a0\u00bb][et_pb_text _builder_version=\u00a0\u00bb4.9.10&Prime; _module_preset=\u00a0\u00bbdefault\u00a0\u00bb text_font=\u00a0\u00bbRoboto||||||||\u00a0\u00bb text_text_color=\u00a0\u00bb#001B56&Prime; link_font=\u00a0\u00bb||||on||||\u00a0\u00bb header_text_color=\u00a0\u00bb#001B56&Prime; header_4_font_size=\u00a0\u00bb30px\u00a0\u00bb custom_margin=\u00a0\u00bb0px|7vw||7vw|false|true\u00a0\u00bb custom_padding=\u00a0\u00bb0px|||||\u00a0\u00bb hover_enabled=\u00a0\u00bb0&Prime; sticky_enabled=\u00a0\u00bb0&Prime;]<\/p>\n<h4 style=\"text-align: center\"><span style=\"color: #001b56;font-size: x-large\"><strong>\u00a0Book Chapters<\/strong><\/span><\/h4>\n<ul>\n<li style=\"text-align: justify\">T. Ikegami, H. Nakamoto, <strong>G. Ganesh (2018).<br \/><\/strong>Action imitative and Prediction-error induced contagions in human actions.<em><span style=\"color: #1792a8\"><strong style=\"font-size: inherit\">MIT Press Handbook of Embodied Cognition and Sport Psychology<\/strong><span style=\"font-size: inherit\">. ISBN:\u00a09780262038508<\/span><\/span><\/em><\/li>\n<li style=\"text-align: justify\"><strong>G. Ganesh<\/strong>, T Ikegami (2016).Beyond Watching: Action understanding by humans and its implications for interacting robots.<span style=\"color: #1792a8\"><em><strong>Book chapter in Dance Notations and Robot Motion<\/strong> \u00bb \u00a0in the Springer Tracts in Advanced Robotics (STAR) collection<\/em><\/span><span style=\"color: #800000\"><\/span><span style=\"color: #800000\"><\/span><span style=\"color: #800000\"><\/span><\/li>\n<\/ul>\n<p style=\"text-align: center\">\n<p style=\"text-align: center\"><span style=\"color: #001b56\"><strong><\/strong><\/span><\/p>\n<p style=\"text-align: center\"><span style=\"color: #001b56\"><strong><\/strong><\/span><\/p>\n<p style=\"text-align: center\"><span style=\"font-size: x-large;color: #001b56\"><strong>Articles in Peer Reviewed Journals and Conferences\u00a0 <span style=\"font-size: large\">(* indicates equal contribution)<\/span><\/strong><\/span><\/p>\n<ul>\n<li>Y. Iwasaki, C. Bernou, B. Gorda, S. Colomb, <strong>G. Ganesh<\/strong>, R. Gaudin (2024). Organotypic culture of post-mortem adult human brain explants exhibits synaptic plasticity. <span style=\"color: #1792a8\"><em><strong>Brain Stimul.<\/strong> 2024 Sep-Oct;17(5):1018-1023. doi: 10.1016\/j.brs.2024.08.010. Epub 2024 Aug 28. PMID: 39214185.<\/em><\/span><\/li>\n<\/ul>\n<ul>\n<li>H. Saito, K. Fukuchi, M. Inami, <strong>G. Ganesh<\/strong> (2024). Visual background information modulates motor contagions in humans. <span style=\"color: #1792a8\"><em><strong>Sci Rep.<\/strong> 2024 Aug 13;14(1):18789. doi: 10.1038\/s41598-024-69535-9. PMID: 39138248; PMCID: PMC11322384.<\/em><\/span><\/li>\n<\/ul>\n<ul>\n<li>Partiot, E., Hirschler, A., Colomb, S., Lutz, W., Claeys, T., Delalande, F., Deffieu, M. S., Bare, Y., Roels, J. R. E., Gorda, B., Bons, J., Callon, D., Andreoletti, L., Labrousse, M., Jacobs, F. M. J., Rigau, V., Charlot, B., Martens, L., Carapito, C., <strong>Ganesh, G.,<\/strong> Gaudin, R. (2024). Brain exposure to SARS-CoV-2 virions perturbs synaptic homeostasis. <span style=\"color: #1792a8\"><strong><i>Nature microbiology<\/i><\/strong>,\u00a0<i>9<\/i>(5), 1189\u20131206. <a href=\"https:\/\/doi.org\/10.1038\/s41564-024-01657-2\" style=\"color: #1792a8\">https:\/\/doi.org\/10.1038\/s41564-024-01657-2<\/a>.<\/span><\/li>\n<\/ul>\n<ul>\n<li>Partiot, E., Gorda, B., Lutz, W., Lebrun, S., Khalfi, P., Mora, S., Charlot, B., Majzoub, K., Desagher, S., <strong>Ganesh, G.<\/strong>, Colomb, S., &amp; Gaudin, R. (2024). Organotypic culture of human brain explants as a preclinical model for AI-driven antiviral studies.\u00a0<span style=\"color: #1792a8\"><strong><i>EMBO molecular medicine<\/i><\/strong>,\u00a0<i>16<\/i>(4), 1004\u20131026.<\/span> <a href=\"https:\/\/doi.org\/10.1038\/s44321-024-00039-9\">https:\/\/doi.org\/10.1038\/s44321-024-00039-9<\/a>.<\/li>\n<\/ul>\n<ul>\n<li><span>C. Colomer, M. Dhamala, <strong>G. Ganesh<\/strong>, J. Lagarde (2023). Interacting humans use forces in specific frequencies to exchange information by touch. <span style=\"color: #1792a8\"><em><strong>Nature Scientific Reports.<\/strong> 24;12(1):15752. doi: 10.1038\/s41598-022-19500-1.<\/em><\/span><\/span><\/li>\n<\/ul>\n<ul>\n<li>H. Hapuarachichi, T. Hagiwara<strong>, G. Ganesh<\/strong>, M. Kitazaki (2023). <span>Effect of connection induced upper body movements on embodiment towards a limb controlled by another during virtual co-embodiment<\/span>. <span><span style=\"color: #1792a8\"><em><strong>PLOS one <\/strong>5;18(1):e0278022. doi: 10.1371\/journal.pone.0278022.<\/em><\/span><\/span><\/li>\n<\/ul>\n<ul>\n<li>A. Dechaux, M. Mahsoub, M. Kitazaki, J. Lagarde, <strong>G.Ganesh<\/strong> (2022). <span>Multi-sensory feedback improves spatially compatible sensori-motor responses. <\/span><span><span style=\"color: #1792a8\"><em><strong>Nature Scientific Reports.<\/strong> 24;12(1):20253. doi: 10.1038\/s41598-022-24028-5.<\/em><\/span><\/span><\/li>\n<\/ul>\n<ul>\n<li style=\"text-align: justify\">C. Colomer, M. Dhamala, <strong>G. Ganesh<\/strong>, J. Lagarde (2022)<i>.<\/i>\u00a0Interacting humans use forces in specific frequencies to exchange information by touch. <span><span style=\"color: #1792a8\"><em><strong>Nature Scientific Reports.<\/strong> 12;15752<\/em><\/span><\/span>. <span><span style=\"color: #1792a8\"><em>doi: 10.1038\/s41598-022-19500-1.<\/em><\/span>\u00a0<\/span><em><a href=\"https:\/\/doi.org\/10.1038\/s41598-022-19500-1\"><\/a><\/em><\/li>\n<\/ul>\n<ul>\n<li style=\"text-align: justify\">Umezawa, Y. Suzuki, <strong>G. Ganesh<\/strong>, Y. Miyawaki (2022). Changes in body representation induced by an independent supernumerary limb. <span><span style=\"color: #1792a8\"><em><strong>Nature Scientific Reports.<\/strong> 14;12(1):2339. doi: 10.1038\/s41598-022-06040-x.<\/em><\/span>\u00a0<\/span><\/li>\n<\/ul>\n<ul style=\"text-align: justify\">\n<li style=\"text-align: justify\">Y. Iwasaki, B. Navarro, H. Iwata, <strong>G. Ganesh<\/strong> (2022) Embodiment improves attention allotment for the benefit of dual 1 task performance. <span style=\"color: #1792a8\"><em><strong><b><i>Commun<\/i><\/b> <b><i>Biol<\/i><\/b>\u00a0<b>5<\/b>, 701. <\/strong><\/em><\/span><span style=\"color: #1792a8\"><span style=\"color: #1792a8\"><em>preprint on<\/em><\/span>\u00a0<em><a href=\"https:\/\/hal.archives-ouvertes.fr\/hal-03341908\" data-auth=\"NotApplicable\" data-linkindex=\"0\" style=\"color: #1792a8\">https:\/\/hal.archives-ouvertes.fr\/hal-03341908<\/a><\/em><\/span><\/li>\n<\/ul>\n<ul style=\"text-align: justify\">\n<li style=\"text-align: justify\">T.Ikegami,<strong style=\"font-size: 1rem\"><strong> G. Ganesh<\/strong><\/strong>, T. Gibo, T. Yoshioka, R. Osu, M. Kawato (2021). Hierarchical motor adaptations negotiate failures during force field learning. <strong><span style=\"color: #1792a8\"><em>PLOS Computational Biology. Comput Biol <\/em><\/span><\/strong><span style=\"color: #1792a8\"><strong><span style=\"color: #1792a8\"><em>17(4): e1008481. <\/em><\/span><\/strong><span style=\"color: #1792a8\"><em>doi: https:\/\/doi.org\/10.1371\/journal.pcbi.1008481<\/em><\/span> \u00a0<\/span><\/li>\n<\/ul>\n<ul style=\"text-align: justify\">\n<li style=\"text-align: justify\">T. Hagiwara<strong style=\"font-size: 1rem\"><strong>, <\/strong>G. Ganesh, <\/strong>M. Sugimoto, M. Inami, M. Kitazaki (2020). Individuals prioritize the reach straightness and hand jerk of a shared avatar over their own. <span style=\"color: #800000\"><em><span style=\"color: #1792a8\"><strong>iScience.<\/strong> https:\/\/doi.org\/10.1016\/j.isci.2020.101732. {press pick up by AAAS\u2019s Eurekalert, https:\/\/www.eurekalert.org\/pub_releases\/2020-11\/tuot-cso110820.php}<\/span><\/em><\/span><\/li>\n<\/ul>\n<ul style=\"text-align: justify\">\n<li style=\"text-align: justify\"><strong>G. Ganesh, <\/strong>T. Minamoto, M. Haruno (2019). Activity in dACC causes motor performance\u00a0 \u00a0deterioration due to anxiety. <span style=\"color: #800000\"><em><span style=\"color: #1792a8\"><strong>Nature Communication.\u00a0 <\/strong>https:\/\/www.nature.com\/articles\/s41467-019-12205-6. {press pick up by CNRS Journal, NHK Japan, Yomiuri shinbun Japan}<\/span><\/em><\/span><\/li>\n<\/ul>\n<ul style=\"text-align: justify\">\n<li style=\"text-align: justify\">S Kato, N. Yamanobe, G. Venture, <strong>G. Ganesh<\/strong>(2019).The where of handovers by humans: Effect of partner characteristics, distance and visual feedback.<span style=\"color: #800000\"><em>\u00a0<span style=\"color: #1792a8\"><strong>PLOS one <span>21;14(6):e0217129. <\/span><\/strong>doi:<\/span><span style=\"color: #800000\">\u00a0 <a href=\"https:\/\/doi.org\/10.1371\/journal.pone.0217129\" style=\"color: #1792a8\">https:\/\/doi.org\/10.1371\/journal.pone.0217129<\/a><\/span><\/em><\/span><\/li>\n<\/ul>\n<ul style=\"text-align: justify\">\n<li style=\"text-align: justify\"><strong>G. Ganesh,<\/strong> K. Nakamura, S. Saetia, AM. Tobar, E. Yoshida, H. Ando, N. Yoshimura, Y. Koike (2018).Utilizing sensory prediction errors for movement intention decoding: a new methodology.<span style=\"color: #800000\"><span style=\"color: #1792a8\"><strong><em>Science Advances<\/em><\/strong>\u00a0Vol. 4, no. 5,<\/span><em> <a href=\"http:\/\/eaaq0183 DOI: 10.1126\/sciadv.aaq0183\" data-wplink-url-error=\"true\">eaaq0183 DOI: 10.1126\/sciadv.aaq0183<\/a><\/em><\/span><\/li>\n<\/ul>\n<ul style=\"text-align: justify\">\n<li style=\"text-align: justify\">T. Ikegami*, <strong>G. Ganesh*<\/strong>, T. Takeuchi, H. Nakamoto (2018).Prediction error induced motor contagions in human behaviors.<span style=\"color: #1792a8\"><strong><em>Elife<\/em>\u00a0<\/strong>2018;7:e33392\u00a0DOI:<span style=\"color: #800000\">\u00a0<em><a style=\"color: #1792a8\" href=\"https:\/\/doi.org\/10.7554\/eLife.33392\">10.7554\/ELIFE.33392<\/a>.<\/em><\/span><\/span><\/li>\n<\/ul>\n<ul style=\"text-align: justify\">\n<li style=\"text-align: justify\">Takagi, F. Usai, <strong>G. Ganesh<\/strong>, V. Sanguineti, E. Burdet (2018).Haptic communication between humans is tuned by the hard or soft mechanics of interaction.\u00a0<strong><br \/><span style=\"color: #1792a8\"><em>PLOS computational Biology<\/em><\/span><\/strong><span style=\"color: #1792a8\"><em>, https:\/\/doi.org\/10.1371\/journal.pcbi.1005971.<\/em><\/span><\/li>\n<\/ul>\n<ul style=\"text-align: justify\">\n<li style=\"text-align: justify\">T. Ikegami<strong>, G. Ganesh<\/strong>\u00a0(2017).Shared Mechanisms in the Estimation of Self-Generated Actions and the Prediction of Other\u2019s Actions by Humans.<span style=\"color: #800000\"><span style=\"color: #1792a8\"><strong><em>ENEURO<\/em>.<\/strong>0341-17.2017; doi:<\/span> <em><a href=\"https:\/\/doi.org\/10.1523\/ENEURO.0341-17.2017\">https:\/\/doi.org\/10.1523\/ENEURO.0341-17.2017<\/a>.<\/em><\/span><\/li>\n<\/ul>\n<ul style=\"text-align: justify\">\n<li style=\"text-align: justify\">L. Aymerich-Franch, D. Petit, <strong>G. Ganesh,\u00a0<\/strong>A. Kheddar (2017).Object touch by a humanoid robot avatar induces haptic sensation in the real hand.<span style=\"color: #1792a8\"><em><strong>Journal of Computer Mediated Communication<\/strong>. 22(4):215:230.<\/em><\/span><span style=\"color: #1792a8\"><em><\/em><\/span><\/li>\n<\/ul>\n<ul style=\"text-align: justify\">\n<li style=\"text-align: justify\">A. Takagi*, <strong>G. Ganesh*,<\/strong>T. Yoshioka, M. Kawato, E. Burdet (2017).Physically interacting individuals estimate the partner\u2019s goal to enhance their movements<em>.<br \/><span style=\"color: #1792a8\"><strong>Nature Human Behavior.<\/strong><\/span><\/em><span style=\"color: #800000\"><span style=\"color: #1792a8\"><em> doi:10.1038\/s41562-017-0054. <\/em><strong><em>{press pick up by CNRS Journal}<\/em><\/strong><\/span><\/span><\/li>\n<\/ul>\n<ul style=\"text-align: justify\">\n<li style=\"text-align: justify\">L. Aymerich-Franch, D. Petit, <strong>G. Ganesh, <\/strong>A. Kheddar (2016).The second me: seeing the real body during humanoid embodiment produces an illusion of bi-location.<span style=\"color: #1792a8\"><em><strong>Consciousness and Cognition.<\/strong> 46:99-109. doi:10.1016\/j.concog.2016.09.017.<\/em><\/span><\/li>\n<\/ul>\n<ul style=\"text-align: justify\">\n<li style=\"text-align: justify\">L. Aymerich-Franch, D. Petit, A. Kheddar, <strong>G. Ganesh <\/strong>(2016).Forward modelling the rubber hand: illusion of ownership reorganizes the motor-sensory predictions by the brain.<span style=\"color: #1792a8\"><strong><em>Open Science<\/em>.<\/strong><em> DOI: 10.1098\/rsos.160407<\/em><\/span><\/li>\n<\/ul>\n<ul style=\"text-align: justify\">\n<li style=\"text-align: justify\">S. Zhang, H Mano, <strong>G Ganesh<\/strong>, T Robbins, B Seymour (2015). Multiple learning processes underlie human pain conditioning.<span style=\"color: #1792a8\"><em><strong>Current Biology<\/strong>, 21(1), p52\u201358.<\/em><\/span><\/li>\n<\/ul>\n<ul style=\"text-align: justify\">\n<li style=\"text-align: justify\">L. Aymerich-Franch, <strong>G. Ganesh <\/strong>(2015).The role of functionality in the body model for self-attribution.<span style=\"color: #1792a8\"><em><strong>Review in Neuroscience Research. doi:10.1016\/j.neures.2015.11.001.<\/strong><\/em><\/span><\/li>\n<\/ul>\n<ul style=\"text-align: justify\">\n<li style=\"text-align: justify\">Sport : \u00eatre mauvais est-il contagieux? By Martin Kopp on T. Ikegami, <strong>G. Ganesh<\/strong> (2014)<span style=\"color: #1792a8\"><em><strong>CNRS le Journal<\/strong><\/em><em>, online CNRS magazine<\/em>.<\/span><\/li>\n<\/ul>\n<ul style=\"text-align: justify\">\n<li style=\"text-align: justify\">Don\u2019t Watch That Clumsy Player Too Closely:Expert Athletes May Perform Worse After Watching Novice Actions By Tori Rodrigues on T. Ikegami, <strong>G. Ganesh<\/strong> (2014).<em><span style=\"color: #1792a8\"><strong>Scientific American Magazine<\/strong>. https:\/\/www.scientificamerican.com\/article\/dont-watch-that-clumsy-player-too-closely\/<\/span><\/em><\/li>\n<\/ul>\n<ul style=\"text-align: justify\">\n<li style=\"text-align: justify\">T. Ikegami, <strong>G. Ganesh<\/strong> (2014).Watching novice action degrades expert\u2019s performance- Evidence that the motor system is involved in action understanding by humans.<em><span style=\"color: #1792a8\"><strong>Nature Scientific Reports.<\/strong> Doi:\u00a010.1038\/srep06989.<\/span><\/em><span style=\"color: #1792a8\"><em>{press pick up by leading media outlets in Japan \u2013 \u2018Scientific American\u2019,\u2018Asahi shinbun\u2019, \u2018Mainishi-shinbun\u2019, Yahoo Japan, TBS television \u2018asachan\u2019, TBS radio}<\/em><\/span><\/li>\n<\/ul>\n<ul style=\"text-align: justify\">\n<li style=\"text-align: justify\"><strong>G. Ganesh<\/strong>, T. Yoshioka, R. Osu, T. Ikegami (2014).Immediate tool incorporation processes determine human motor planning with tools.<span style=\"color: #1792a8\"><em><strong>Nature Communications.<\/strong> Doi: 10.1038\/ncomms5524.<\/em><\/span><\/li>\n<\/ul>\n<ul style=\"text-align: justify\">\n<li style=\"text-align: justify\"><strong>G. Ganesh<\/strong>, A. Takagi, R. Osu, T. Yoshioka, M. Kawato, E. Burdet (2014).Two is better than one: Physical interactions improve motor performance in humans.<em><span style=\"color: #1792a8\"><strong>Nature Scientific Reports<\/strong> 4.doi10.1038\/srep03824.<\/span><\/em><span style=\"color: #1792a8\"><em>{press pick CNRS magazine, Dainik Jagran, India, Medical news}<\/em><\/span><\/li>\n<\/ul>\n<ul style=\"text-align: justify\">\n<li style=\"text-align: justify\"><strong>G. Ganesh<\/strong>, R. Osu, E. Naito (2013).Feeling the force: Returning sensory signals determine effort expenditure during motor coordination.<em><span style=\"color: #1792a8\"><strong>Nature Scientific Reports<\/strong>. Doi10.1038\/srep02648.<\/span><\/em><\/li>\n<\/ul>\n<ul style=\"text-align: justify\">\n<li style=\"text-align: justify\"><strong>G.Ganesh<\/strong>, E. Burdet (2012).Motor planning explains human behavior in tasks with multiple solutions.<em><strong><span style=\"color: #1792a8\">Special Issue of Elsevier Robotics and Autonomous Systems: Models and technologies for multi-modal skill training. 61-ISSN:0921-8890 :362-368.<\/span><\/strong><\/em><\/li>\n<\/ul>\n<ul style=\"text-align: justify\">\n<li style=\"text-align: justify\">M. Haruno, <strong>G. Ganesh<\/strong>, E. Burdet, M. Kawato (2012).Differential Correlates of force and co-contraction in the human premotor cortex.<span style=\"color: #1792a8\"><em><strong>J. Neurophysiology.<\/strong> 107(1): 126-33.<\/em><\/span><\/li>\n<\/ul>\n<ul style=\"text-align: justify\">\n<li style=\"text-align: justify\">J. Kodl*, <strong>G. Ganesh*<\/strong>, E. Burdet (2011).The CNS stochastically selects motor plan utilizing extrinsic and intrinsic representations.<span style=\"color: #1792a8\"><em><strong>PloS ONE, <\/strong>6(9): e24229.<\/em><\/span><\/li>\n<\/ul>\n<ul style=\"text-align: justify\">\n<li style=\"text-align: justify\"><strong>G. Ganesh<\/strong>, M. Haruno, M. Kawato, E. Burdet (2010).Motor memory and local minimization of error and effort, not global optimization, determine motor behavior.<span style=\"color: #1792a8\"><em><strong>J. Neurophysiology. <\/strong>104(1): 382-90.<\/em><\/span><\/li>\n<\/ul>\n<ul style=\"text-align: justify\">\n<li style=\"text-align: justify\"><strong>G. Ganesh<\/strong>, E. Burdet, M. Haruno, M. Kawato (2008).Sparse linear regression for reconstructing muscle activity from human cortical fMRI.<span style=\"color: #1792a8\"><em><strong>Neuroimage,<\/strong> 42(4): 1463-72.<\/em><\/span><\/li>\n<\/ul>\n<ul style=\"text-align: justify\">\n<li style=\"text-align: justify\">L. Burztyn*, <strong>G. Ganesh*<\/strong>, H. Imamizu, M. Kawato, R. Flanagan (2006).Neural Correlates of internal model loading.<span style=\"color: #1792a8\"><em><strong>Current Biology<\/strong>, 16: 2440\u20132445.<\/em><\/span><\/li>\n<\/ul>\n<p><span style=\"color: #800000\"><\/span><\/p>\n<p><span style=\"color: #800000\"><\/span><\/p>\n<p><span style=\"color: #800000;font-family: Rajdhani\"><\/span><\/p>\n<p style=\"text-align: center\"><span style=\"color: #001b56;font-family: Rajdhani\"><strong>Conference Presentations<\/strong><\/span><\/p>\n<p><strong><\/strong><\/p>\n<ul>\n<li>Y. Iwasaki, C. Bernou, B. Gouda, R. Gaudin, G. Ganesh (2025),Robot imitation powered by unsupervised sensory-motor learning by in vitro-brain slice (2025). <span style=\"color: #1792a8\"><em><strong>Oral presentation at Japanes Society for Neuroscience (SFN), Sendai, Japan.<\/strong><\/em><\/span><\/li>\n<\/ul>\n<p><strong><\/strong><\/p>\n<ul>\n<li>T. Kuwayama, G. Shen, N. Hayashi, <strong>G. Ganesh<\/strong>, Y. Miyawaki (2025). Phase-dependent suppressive perception of visual stimuli synthesized from non-encoding subspace neural activity. <span style=\"color: #1792a8\"><em><strong>Poster at Society for Neuroscience (SFN), San Diego, US<\/strong><\/em><\/span>.<\/li>\n<\/ul>\n<ul>\n<li>R. Yasuda, K. Arai, Y. Takahara, D. Ueda, M. Fukunaga, <strong>G. Ganesh<\/strong>, Y. Miyawaki (2024). Neural differences induced by the location of an embodied independent supernumerary finger. <span style=\"color: #1792a8\"><em><strong>Poster at Society for Neuroscience (SFN), Chicago, US<\/strong><\/em><\/span>.<\/li>\n<\/ul>\n<ul>\n<li>H. Saito, K. Fukuchi, M. Inami,<span>\u00a0<\/span><strong>G. Ganesh <\/strong>(2023).\u00a0 Background induced prediction error modulatesmotor contagions in humans. <span><strong><em>Poster at Motor control Symposium,\u00a0 Japan, August 2023<\/em>.<\/strong><\/span><\/li>\n<\/ul>\n<ul>\n<li style=\"text-align: justify\">K. Arai, Y. Takahara, D. Ueda, M. Fukunaga, <strong>G. Ganesh<\/strong>, Y. Miyawaki (2022). Neural correlates of independent <em>sixth<\/em> finger embodiment. <span style=\"color: #1792a8\"><em><strong>Poster at Society for Neuroscience (SFN), Chicago, US<\/strong><\/em><\/span>.<\/li>\n<\/ul>\n<ul>\n<li style=\"text-align: justify\">Y. Takahara, K. Arai, K. Kawata, M. Fukunaga, N. Sadato, <strong>G. Ganesh<\/strong>, Y. Miyawaki. (2022). Neural correlates of embodiment of an <em>independent<\/em> supernumerary limb by humans: a functional magnetic resonance imaging study. <span style=\"color: #1792a8\"><em><strong>Poster at Neuro.\u00a0Okinawa, Japan.<\/strong><\/em><\/span><\/li>\n<\/ul>\n<ul style=\"text-align: justify\">\n<li style=\"text-align: justify\">G. Shen, <strong>G. Ganesh<\/strong>, Y. Miyawaki (2022), Attenuated perception of visual stimuli synthesized from subspace neural activity. <span style=\"color: #1792a8\"><strong><em>Presentation at the Vision Science Society (VSS) meeting, Pete Beach, Florida.<\/em><\/strong><\/span><\/li>\n<\/ul>\n<ul style=\"text-align: justify\">\n<li style=\"text-align: justify\">N. Nishida, Y. Iwasaki, T. Takeshi, T. Handa, K. Ando, S. Izuka, F. Kato, <strong>G. Ganesh<\/strong>, H. Iwata (2021). \u8ffd\u52a0\u578b\u62e1 \u5f35\u8eab\u4f53\u306b\u5bfe\u3059\u308bAgency, Ownership\u8a98\u767a\u306e\u305f\u3081\u306e\u7b4b\u96fb\u5236\u5fa1\u30b7\u30b9\u30c6\u30e0\u30fb\u529b\u89e6\u899aFB\u30c7\u30d0\u30a4\u30b9\u306e\u958b\u767a (To induce agency and ownership for additional body parts development by EMG control and force-tactile feedback). <span style=\"color: #1792a8\"><strong><em>The Robotics and Mechatronics Conference, Japan, Osaka<\/em><\/strong><\/span>.<\/li>\n<\/ul>\n<ul style=\"text-align: justify\">\n<li style=\"text-align: justify\">K. Umezawa, Y. Suzuki, <strong>G. Ganesh<\/strong>, Y. Miyawaki.\u00a0 Investigation of the change in body representation with a actuated sixth finger.<span style=\"color: #1792a8\"><strong> <em>Poster at Motor control Symposium,\u00a0 Japan, August 2019<\/em>.<\/strong><\/span><span style=\"color: #1792a8\"><strong><\/strong><\/span><\/li>\n<\/ul>\n<ul style=\"text-align: justify\">\n<li style=\"text-align: justify\">Suzuki, <strong>G. Ganesh<\/strong>, Y. Miyawaki. Investigation of the change in body representation due to a sixth finger. <strong><span style=\"color: #1792a8\"><em>17th Winter workshop on the mechanisms of brain and mind, January 2018.<\/em><\/span><\/strong><\/li>\n<\/ul>\n<ul style=\"text-align: justify\">\n<li style=\"text-align: justify\">T. Ikegami, <strong>G. Ganesh,\u00a0<\/strong>H. Nakamoto. Presence and absence of prediction errors during action observation induce distinct motor contagions.<span style=\"color: #89b1cd\">\u00a0<span style=\"color: #1792a8\"><strong><em>Poster at Society for Neuroscience SFN meeting, November 2017<\/em>.<\/strong><\/span><\/span><\/li>\n<\/ul>\n<ul style=\"text-align: justify\">\n<li style=\"text-align: justify\">K. Nakamura, <strong>G. Ganesh<\/strong>, AM Tobar, S. Suetia, N. Yoshimura, E. Yoshida, H. Ando, Y. Koike. Utilizing prediction errors to decode movement intention: a new technique. <span style=\"color: #1792a8\"><strong><em>17th Winter workshop on the mechanisms of brain and mind, January 2017.<\/em><\/strong><\/span><\/li>\n<\/ul>\n<ul style=\"text-align: justify\">\n<li style=\"text-align: justify\">K. Nakamura, <strong>G. Ganesh<\/strong>, AM Tobar, S. Suetia, N. Yoshimura, E. Yoshida, H. Ando, Y. Koike. Utilizing prediction errors to decode movement intention: a new technique. <span style=\"color: #1792a8\"><em><strong>Poster at Motor control symposium, June 2016.<\/strong><\/em><\/span><\/li>\n<\/ul>\n<ul style=\"text-align: justify\">\n<li style=\"text-align: justify\">H. Nakamoto, T. Ikegami, <strong>G. Ganesh.<\/strong> \u904b\u52d5\u89b3\u5bdf\u6642\u306e\u4e88\u6e2c\u8aa4\u5dee\u306e\u6709\u7121\u304c\u81ea\u5df1\u306e\u904b\u52d5\u5236\u5fa1\u6a5f\u69cb\u306b\u53ca\u307c\u3059\u5f71.<span style=\"color: #1792a8\"><strong> <em>Poster at Motor control symposium, June 2016.<\/em><\/strong><\/span><\/li>\n<\/ul>\n<ul style=\"text-align: justify\">\n<li style=\"text-align: justify\">T. Ikegami, <strong>G. Ganesh<\/strong>. Outcome prediction of observed actions affects one\u2019s own outcome estimation but not action correction. <span style=\"color: #1792a8\"><strong><em>Poster at Society for Neuroscience SFN meeting, November 2015<\/em>.<\/strong><\/span><\/li>\n<\/ul>\n<ul style=\"text-align: justify\">\n<li style=\"text-align: justify\">N. Takemura, T. Yoshioka, T. Ikegami, D. Korhammer, Hannes Hoepner, P. van der Smagt, <strong>G. Ganesh<\/strong>. Towards measurement and understanding of human impedance control during voluntary impacts. <span style=\"color: #1792a8\"><strong><em>Poster at Motor control Symposium, September 2015<\/em>.<\/strong><\/span><\/li>\n<\/ul>\n<ul style=\"text-align: justify\">\n<li style=\"text-align: justify\">N. Takemura, T. Yoshioka, T. Ikegami, D. Korhammer, Hannes Hoepner, P. van der Smagt, <strong>G. Ganesh<\/strong>. Towards measurement and understanding of human impedance control during voluntary impacts. <span style=\"color: #1792a8\"><strong><em>Poster at Neural Control of Movement, NCM, April 2015<\/em>.<\/strong><\/span><\/li>\n<\/ul>\n<ul style=\"text-align: justify\">\n<li style=\"text-align: justify\">D. Korhammer N. Takemura, <strong>G. Ganesh,<\/strong> P. van der Smagt. Decoding arm stiffness form Electromyography during voluntary impacts. <span style=\"color: #1792a8\"><strong><em>Poster at Neural Control of Movement, NCM, April 2015<\/em>.<\/strong><\/span><\/li>\n<\/ul>\n<ul style=\"text-align: justify\">\n<li style=\"text-align: justify\">T. Ikegami, <strong>G. Ganesh<\/strong>. Outcome prediction of observed actions affects one\u2019s own outcome estimation but not action correction.<span style=\"color: #1792a8\"><strong> <em>Poster at Society for Neuroscience SFN meeting, November 2014<\/em>.<\/strong><\/span><\/li>\n<\/ul>\n<ul style=\"text-align: justify\">\n<li style=\"text-align: justify\">T. Ikegami, <strong>G. Ganesh<\/strong>. Watching novice action degrades darts expert\u2019s skill: Evidence that the motor system is involved in action understanding. <span style=\"color: #1792a8\"><strong><em>Poster at Society for Neuroscience SFN meeting, November 2013<\/em>.<\/strong><\/span><\/li>\n<\/ul>\n<ul style=\"text-align: justify\">\n<li style=\"text-align: justify\"><strong>G. Ganesh, <\/strong>R. Osu, E. Naito. Feeling the load: Returning haptic signals influence effort inference during motor coordination.<span style=\"color: #1792a8\"><em><strong> Poster at Motor control symposium, June 2013.<\/strong><\/em><\/span><\/li>\n<\/ul>\n<ul style=\"text-align: justify\">\n<li style=\"text-align: justify\">T. Ikegami, <strong>G. Ganesh<\/strong>. Darts expert\u2019s forward model degraded by watching novice darts throwing. <span style=\"color: #1792a8\"><strong><em>Poster at Motor control symposium, June 2013<\/em>.<\/strong><\/span><\/li>\n<\/ul>\n<ul style=\"text-align: justify\">\n<li style=\"text-align: justify\"><strong>G. Ganesh, <\/strong>T. Ikegami. Tool kinematics mis-planning in humans. <span style=\"color: #1792a8\"><strong><em>Poster at Motor control symposium, June 2012<\/em>.<\/strong><\/span><\/li>\n<\/ul>\n<ul style=\"text-align: justify\">\n<li style=\"text-align: justify\">T. Ikegami, <strong>G. Ganesh<\/strong>. How observation affects motor action. <span style=\"color: #1792a8\"><strong><em>Poster at Motor control symposium, June 2012<\/em>.<\/strong><\/span><\/li>\n<\/ul>\n<ul style=\"text-align: justify\">\n<li style=\"text-align: justify\">T. Ikegami, <strong>G. Ganesh<\/strong>. Tool kinematics mis-planning in humans. <span style=\"color: #1792a8\"><strong><em>Poster at Neural Control of Movement, NCM, April 2012<\/em>.<\/strong><\/span><\/li>\n<\/ul>\n<ul style=\"text-align: justify\">\n<li style=\"text-align: justify\"><strong>G. Ganesh<\/strong>, R. Osu, T. Yoshioka, M. Kawato, E. Burdet. Symbiosis of motor interaction. <span style=\"color: #1792a8\"><strong><em>Poster at Japanese Society for Neuroscience meeting, JSFN, September 2011<\/em>.<\/strong><\/span><\/li>\n<\/ul>\n<ul style=\"text-align: justify\">\n<li style=\"text-align: justify\">T. Ikegami, <strong>G. Ganesh<\/strong>, T. Gibo, T. Yoshioka, M. Kawato, R. Osu. Multiple motor plans for the same environment modulated by history of endpoint error.<span style=\"color: #1792a8\"><strong> <em>Poster at Japanese Society for Neuroscience meeting, JSFN, September 2011<\/em>.<\/strong><\/span><\/li>\n<\/ul>\n<ul style=\"text-align: justify\">\n<li style=\"text-align: justify\"><strong>G. Ganesh<\/strong>, T. Ikegami, T. Gibo, E. Burdet, T. Yoshioka, M. Kawato, R. Osu. Effect of end-point error on trajectory adaptation during force field learning: Model. <span style=\"color: #1792a8\"><strong><em>Poster at Motor control symposium, June 2011.<\/em><\/strong><\/span><\/li>\n<\/ul>\n<ul style=\"text-align: justify\">\n<li style=\"text-align: justify\">T. Ikegami, <strong>G. Ganesh<\/strong>, T. Gibo, T. Yoshioka, M. Kawato, R. Osu. Effect of end-point error on trajectory adaptation during force field learning: Experiment. <span style=\"color: #1792a8\"><strong><em>Poster at Neural Control of Movement, NCM, April 2011<\/em>.<\/strong><\/span><\/li>\n<\/ul>\n<ul style=\"text-align: justify\">\n<li style=\"text-align: justify\"><strong>G. Ganesh<\/strong>, M. Haruno, M. Kawato, E. Burdet. Motor optimization in the presence of multiple error-effort minima. <span style=\"color: #1792a8\"><strong><em>Poster at Neural Control of Movement, NCM, April 2010<\/em>.<\/strong><\/span><\/li>\n<li style=\"text-align: justify\">J. Kodl*, <strong>G. Ganesh*<\/strong>, E. Burdet. Multiple solutions in movement planning. <span style=\"color: #1792a8\"><strong><em>Poster at Brain and Mind Conference- Rusutsu, January 2010<\/em>.<\/strong><\/span><\/li>\n<\/ul>\n<ul style=\"text-align: justify\">\n<li style=\"text-align: justify\">\u7fbd\u5009\u4fe1\u5b8f\u3001\u756a\u6d69\u5fd7\u3001<strong>G. Ganesh<\/strong>\u3001\u5c71\u672c\u6d0b\u7d00\u3001\u6625\u91ce\u96c5\u5f66\uff1a\u624b\u4f4d\u7f6e\u306e\u7a7a\u9593\u8868\u73fe.\u65e5\u672c\u795e\u7d4c\u79d1\u5b66\u4f1a\u6284\u9332\u96c6. <span style=\"color: #1792a8\"><strong><em>Japanese Neuroscience\u00a0Society<\/em>, <em>September 2009<\/em>.<\/strong><\/span><\/li>\n<\/ul>\n<ul style=\"text-align: justify\">\n<li style=\"text-align: justify\">\u7fbd\u5009\u4fe1\u5b8f\uff0c\u756a\u6d69\u5fd7\uff0c<strong>G. Ganesh<\/strong>\uff0c\u5c71\u672c\u6d0b\u7d00\uff0c\u6625\u91ce\u96c5\u5f66\uff1a\u624b\u4f4d\u7f6e\u306e\u8133\u5185\u8868\u73fe No.24. <span style=\"color: #1792a8\"><strong><em>Motor Control \u7814\u7a76\u4f1a, June 2009.<\/em><\/strong><\/span><\/li>\n<li style=\"text-align: justify\"><strong>G. Ganesh<\/strong>, M. Haruno, E. Burdet. A Hypothesis analysis of the neural correlates of motor learning. <span style=\"color: #1792a8\"><strong><em>Poster at Neural Control of Movement, NCM, April 2009<\/em>.<\/strong><\/span><\/li>\n<\/ul>\n<ul style=\"text-align: justify\">\n<li style=\"text-align: justify\"><strong>G. Ganesh<\/strong>, M. Haruno, E. Burdet. Transitions between reciprocal activation and co-contraction during posture control. <span style=\"color: #1792a8\"><strong><em>Poster at Neural Control of Movement, NCM, April 2008<\/em>.<\/strong><\/span><\/li>\n<\/ul>\n<ul style=\"text-align: justify\">\n<li style=\"text-align: justify\"><strong>G. Ganesh<\/strong>, M. Haruno, E. Burdet, M. Kawato. Neural Correlates of Force and Impedance Learning.<span style=\"color: #1792a8\"><strong> <em>Poster at Japanese Society for Neuroscience meeting, JSFN, October 2008<\/em>.<\/strong><\/span><\/li>\n<\/ul>\n<ul style=\"text-align: justify\">\n<li style=\"text-align: justify\">M. Haruno, <strong>G. Ganesh<\/strong>. Differential neural correlates of force control and muscle co-contraction control revealed by fMRI with on-line EMG feedback.<span style=\"color: #1792a8\"><strong><em> Poster at Society for Neuroscience meeting, SFN, December 2006.<\/em><\/strong><\/span><\/li>\n<\/ul>\n<ul style=\"text-align: justify\">\n<li style=\"text-align: justify\">DW. Franklin, <strong>G. Ganesh<\/strong>, R. Osu, H. Imamizu, TE. Milner and M. Kawato. Neural correlates of the control of muscle impedance. <span style=\"color: #1792a8\"><strong><em>Poster at Human Brain Mapping, HBM, June 2006.<\/em><\/strong><\/span><\/li>\n<\/ul>\n<p>[\/et_pb_text][\/et_pb_column][\/et_pb_row][\/et_pb_section]<\/p>\n","protected":false},"excerpt":{"rendered":"<p>Publications MOTOR \/ COGNITIVE NEUROSCIENCE \u00a0Book Chapters T. Ikegami, H. Nakamoto, G. Ganesh (2018).Action imitative and Prediction-error induced contagions in human actions.MIT Press Handbook of Embodied Cognition and Sport Psychology. ISBN:\u00a09780262038508 G. Ganesh, T Ikegami (2016).Beyond Watching: Action understanding by humans and its implications for interacting robots.Book chapter in Dance Notations and Robot Motion \u00bb [&hellip;]<\/p>\n","protected":false},"author":46,"featured_media":0,"parent":0,"menu_order":0,"comment_status":"closed","ping_status":"closed","template":"","meta":{"_et_pb_use_builder":"on","_et_pb_old_content":"<!-- wp:divi\/placeholder \/-->","_et_gb_content_width":"","_crdt_document":"","_uag_custom_page_level_css":"","footnotes":""},"class_list":["post-80","page","type-page","status-publish","hentry"],"uagb_featured_image_src":{"full":false,"thumbnail":false,"medium":false,"medium_large":false,"large":false,"1536x1536":false,"2048x2048":false,"et-pb-post-main-image":false,"et-pb-post-main-image-fullwidth":false,"et-pb-portfolio-image":false,"et-pb-portfolio-module-image":false,"et-pb-portfolio-image-single":false,"et-pb-gallery-module-image-portrait":false,"et-pb-post-main-image-fullwidth-large":false,"et-pb-image--responsive--desktop":false,"et-pb-image--responsive--tablet":false,"et-pb-image--responsive--phone":false},"uagb_author_info":{"display_name":"dlavaysse","author_link":"https:\/\/www.lirmm.fr\/ganesh-gowrishankar\/author\/dlavaysse\/"},"uagb_comment_info":0,"uagb_excerpt":"Publications MOTOR \/ COGNITIVE NEUROSCIENCE \u00a0Book Chapters T. Ikegami, H. Nakamoto, G. Ganesh (2018).Action imitative and Prediction-error induced contagions in human actions.MIT Press Handbook of Embodied Cognition and Sport Psychology. ISBN:\u00a09780262038508 G. Ganesh, T Ikegami (2016).Beyond Watching: Action understanding by humans and its implications for interacting robots.Book chapter in Dance Notations and Robot Motion \u00bb\u2026","_links":{"self":[{"href":"https:\/\/www.lirmm.fr\/ganesh-gowrishankar\/wp-json\/wp\/v2\/pages\/80","targetHints":{"allow":["GET"]}}],"collection":[{"href":"https:\/\/www.lirmm.fr\/ganesh-gowrishankar\/wp-json\/wp\/v2\/pages"}],"about":[{"href":"https:\/\/www.lirmm.fr\/ganesh-gowrishankar\/wp-json\/wp\/v2\/types\/page"}],"author":[{"embeddable":true,"href":"https:\/\/www.lirmm.fr\/ganesh-gowrishankar\/wp-json\/wp\/v2\/users\/46"}],"replies":[{"embeddable":true,"href":"https:\/\/www.lirmm.fr\/ganesh-gowrishankar\/wp-json\/wp\/v2\/comments?post=80"}],"version-history":[{"count":3,"href":"https:\/\/www.lirmm.fr\/ganesh-gowrishankar\/wp-json\/wp\/v2\/pages\/80\/revisions"}],"predecessor-version":[{"id":2524,"href":"https:\/\/www.lirmm.fr\/ganesh-gowrishankar\/wp-json\/wp\/v2\/pages\/80\/revisions\/2524"}],"wp:attachment":[{"href":"https:\/\/www.lirmm.fr\/ganesh-gowrishankar\/wp-json\/wp\/v2\/media?parent=80"}],"curies":[{"name":"wp","href":"https:\/\/api.w.org\/{rel}","templated":true}]}}