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X-WR-CALNAME:Biomedical Mathematics Group
X-ORIGINAL-URL:https://www.ibs.re.kr/bimag
X-WR-CALDESC:Events for Biomedical Mathematics Group
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BEGIN:VTIMEZONE
TZID:Asia/Seoul
BEGIN:STANDARD
TZOFFSETFROM:+0900
TZOFFSETTO:+0900
TZNAME:KST
DTSTART:20250101T000000
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BEGIN:VEVENT
DTSTART;TZID=Asia/Seoul:20261002T110000
DTEND;TZID=Asia/Seoul:20261002T120000
DTSTAMP:20260829T092354Z
CREATED:20260829T052114Z
LAST-MODIFIED:20260829T092354Z
UID:13001-1790938800-1790942400@www.ibs.re.kr
SUMMARY:Reservoir Computing: Machine Learning Meets Nonlinear Dynamics - Ying-Cheng Lai
DESCRIPTION:Reservoir computing has recently been exploited to solve a variety of challenging problems in complex nonlinear dynamical systems. The speaker will review some recent works from his group in this area: predicting tipping point and critical transitions\, digital twins of nonlinear dynamical systems\, parameter and trajectory tracking\, and associative memory for complex dynamical patterns. Some open questions will be discussed. \n  \nZoom : 997 8258 4700 (pw : 1234)
URL:https://www.ibs.re.kr/bimag/event/reservoir-computing-machine-learning-meets-nonlinear-dynamics-ying-cheng-lai/
LOCATION:B232 Seminar Room\, IBS\, 55 Expo-ro Yuseong-gu\, Daejeon\, Daejeon\, 34126\, Korea\, Republic of
CATEGORIES:Biomedical Mathematics Online Colloquium
ATTACH;FMTTYPE=image/jpeg:https://www.ibs.re.kr/bimag/cms/wp-content/uploads/2026/08/images-e1787995413852.jpeg
ORGANIZER;CN="Jae Kyoung Kim":MAILTO:jaekkim@kaist.ac.kr
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BEGIN:VEVENT
DTSTART;TZID=Asia/Seoul:20261007T160000
DTEND;TZID=Asia/Seoul:20261007T170000
DTSTAMP:20260829T092657Z
CREATED:20260829T052624Z
LAST-MODIFIED:20260829T092657Z
UID:13005-1791388800-1791392400@www.ibs.re.kr
SUMMARY:Physical reservoir computing and beyond - Kohei Nakajima
DESCRIPTION:Modern computing has been fundamentally built upon the separation of hardware and software. This separation has enabled programs to be replicated and executed on interchangeable hardware\, making computation effectively “immortal.” In contrast\, recent approaches to physical computing seek to exploit the intrinsic dynamics of physical systems as computational resources\, thereby crossing the abstraction layers that traditionally separate hardware from computation. Such computation is inherently tied to its physical substrate and can therefore be regarded as “mortal computation” (Hinton\, 2022). \nIn this talk\, I will introduce physical reservoir computing (PRC) as a representative framework for mortal computation\, in which the intrinsic dynamics of physical systems perform information processing (Nakajima 2020). I will discuss how diverse physical substrates—including soft robots\, neuromorphic devices\, and living systems—can serve as computational resources\, and how their embodiment can be exploited for sensing\, computation\, and control. I will then extend this perspective beyond reservoir computing to physicalizing deep learning\, where not only inference but also learning processes are implemented in physical substrates. In particular\, I will introduce a gradient-free approach to physical deep learning and discuss recent efforts to physicalize learning in neuromorphic devices and soft robots. \nThrough these examples\, I will argue that physicalizing computation is not merely a strategy for developing energy-efficient and task-specific computing systems. It also provides a new perspective on intelligence and learning in systems whose physical dynamics are intrinsically time-varying\, adaptive\, and ultimately mortal. \n  \nZoom : 997 8258 4700 (pw : 1234)
URL:https://www.ibs.re.kr/bimag/event/physical-reservoir-computing-and-beyond-kohei-nakajima/
LOCATION:B232 Seminar Room\, IBS\, 55 Expo-ro Yuseong-gu\, Daejeon\, Daejeon\, 34126\, Korea\, Republic of
CATEGORIES:Biomedical Mathematics Online Colloquium
ATTACH;FMTTYPE=image/jpeg:https://www.ibs.re.kr/bimag/cms/wp-content/uploads/2026/08/artworks-OxsgF0kW6Jd7athY-T73SEA-t500x500-e1787995608534.jpg
ORGANIZER;CN="Jae Kyoung Kim":MAILTO:jaekkim@kaist.ac.kr
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