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Aplysia Californica as a Novel Source of Material for Biohybrid Robots and Organic Machines.

, , , , , , и . Living Machines, том 9793 из Lecture Notes in Computer Science, стр. 365-374. Springer, (2016)

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Design and Control of a Tunable Compliance Actuator., , , , и . Living Machines, том 8608 из Lecture Notes in Computer Science, стр. 344-355. Springer, (2014)Mechanical Improvements to TCERA, a Tunable Compliant Energy Return Actuator., , , и . Living Machines, том 9222 из Lecture Notes in Computer Science, стр. 410-414. Springer, (2015)Fabrication of Electrocompacted Aligned Collagen Morphs for Cardiomyocyte Powered Living Machines., , , , и . Living Machines, том 9222 из Lecture Notes in Computer Science, стр. 429-440. Springer, (2015)3D-Printed Biohybrid Robots Powered by Neuromuscular Tissue Circuits from Aplysia californica., , , , , , , и . Living Machines, том 10384 из Lecture Notes in Computer Science, стр. 475-486. Springer, (2017)A stochastic algorithm for explorative goal seeking extracted from cockroach walking data., , , , , , , и . ICRA, стр. 2261-2268. IEEE, (2012)A segmental mobile robot with active tensegrity bending and noise-driven oscillators., , , , , и . AIM, стр. 1373-1380. IEEE, (2013)Aplysia Californica as a Novel Source of Material for Biohybrid Robots and Organic Machines., , , , , , и . Living Machines, том 9793 из Lecture Notes in Computer Science, стр. 365-374. Springer, (2016)A Magnetorheological Fluid-based Damper Towards Increased Biomimetism in Soft Robotic Actuators., , и . ICRA, стр. 11445-11451. IEEE, (2022)Synthetic Nervous System Control of a Bioinspired Soft Grasper for Pick-and-Place Manipulation., , , , , , , , и . Living Machines (1), том 14157 из Lecture Notes in Computer Science, стр. 300-321. Springer, (2023)A computational neural model that incorporates both intrinsic dynamics and sensory feedback in the Aplysia feeding network., , , , , и . Biol. Cybern., 118 (3-4): 187-213 (августа 2024)