Transferring skills from a biological organism to a hyper-redundant system is a challenging task, especially when the two agents have very different structure/embodiment and evolve in different environments. In this article we propose to address this problem by designing motion primitives in the form of probabilistic dynamical systems. We take inspiration from invertebrate systems in nature to seek for versatile representations of motion/behavior primitives in continuum robots. We take the perspective that the incredibly varied skills achieved by the octopus can guide roboticists toward the design of robust motor skill encoding schemes, and present our ongoing work that aims at combining statistical machine learning, dynamical systems and s...
The octopus is a marine animal whose body has no rigid structures. It has eight arms mainly composed...
The co-adaptation of robots has been a long-standing research endeavour with the goal of adapting bo...
AbstractThis paper proposes a dynamic model for a multiple continuum arm robot inspired by live octo...
The complex motion abilities of the Octopus vulgaris have been an intriguing research topic for biol...
Abstract-Learning by imitation in humanoids is challeng ing due to the unpredictable environments th...
The soft capabilities of biological appendages like the arms of Octopus vulgaris and elephants' trun...
Learning by imitation represents an important mechanism for rapid acquisition of new behaviors in hu...
Efficient skill acquisition is crucial for creating versatile robots. One intuitive way to teach a r...
The behaviors of the animals or embodied agents are characterized by the dynamic coupling between th...
Soft robotics is a challenging and promising branch of robotics. It can drive significant improvement...
In this paper, we describe our recent results in the development of a new class of soft, continuous ...
In this paper a locomotion strategy for a six-limb robot inspired by the octopus is shown. A tight r...
This article presents the results of a multidisciplinary project where mechatronic engineers worked ...
The octopus is a marine animal whose body has no rigid structures. It has eight arms mainly composed...
The co-adaptation of robots has been a long-standing research endeavour with the goal of adapting bo...
AbstractThis paper proposes a dynamic model for a multiple continuum arm robot inspired by live octo...
The complex motion abilities of the Octopus vulgaris have been an intriguing research topic for biol...
Abstract-Learning by imitation in humanoids is challeng ing due to the unpredictable environments th...
The soft capabilities of biological appendages like the arms of Octopus vulgaris and elephants' trun...
Learning by imitation represents an important mechanism for rapid acquisition of new behaviors in hu...
Efficient skill acquisition is crucial for creating versatile robots. One intuitive way to teach a r...
The behaviors of the animals or embodied agents are characterized by the dynamic coupling between th...
Soft robotics is a challenging and promising branch of robotics. It can drive significant improvement...
In this paper, we describe our recent results in the development of a new class of soft, continuous ...
In this paper a locomotion strategy for a six-limb robot inspired by the octopus is shown. A tight r...
This article presents the results of a multidisciplinary project where mechatronic engineers worked ...
The octopus is a marine animal whose body has no rigid structures. It has eight arms mainly composed...
The co-adaptation of robots has been a long-standing research endeavour with the goal of adapting bo...
AbstractThis paper proposes a dynamic model for a multiple continuum arm robot inspired by live octo...