Abstract A new paradigm called physical reservoir computing has recently emerged, where the nonlinear dynamics of high-dimensional and fixed physical systems are harnessed as a computational resource to achieve complex tasks. Via extensive simulations based on a dynamic truss-frame model, this study shows that an origami structure can perform as a dynamic reservoir with sufficient computing power to emulate high-order nonlinear systems, generate stable limit cycles, and modulate outputs according to dynamic inputs. This study also uncovers the linkages between the origami reservoir’s physical designs and its computing power, offering a guideline to optimize the computing performance. Comprehensive parametric studies show that selecting opti...
Nowadays, origami folding in combination with actuation mechanisms can offer deployable structure de...
Origami, the ancient art of paper folding, has found lots of different applications in various branc...
We present an approach to overcoming challenges in dynamical dexterity for robots through programmab...
Origami robots are machines whose morphologies and functions are created by folding locally flat she...
The recent advances in the field of soft robotics have made autonomous soft robots working in unstru...
Origami shape transformation is dictated by predefined folding patterns and their folding sequence. ...
Multiphysics simulation of magnetically actuated origami robots promises a range of applications suc...
Soft robotics can solve many unique engineering problems. The ancient art of origami has inspired de...
Abstract—This paper presents an origami-inspired technique which allows the application of 2-D fabri...
Origami can turn a sheet of paper into complex three-dimensional shapes, and similar folding techniq...
The integration of soft actuating materials within origami-based mechanisms is a novel method to amp...
Origami has unfolded engineering applications in various fields, such as electrical, civil, aerospac...
International audienceThis work investigates the technical requirement for the actuation of the bi-d...
Origami, a traditional Japanese art, is an example of superior handwork produced by human hands. Ach...
While origami is an ancient art form, its application in engineering science has only been populariz...
Nowadays, origami folding in combination with actuation mechanisms can offer deployable structure de...
Origami, the ancient art of paper folding, has found lots of different applications in various branc...
We present an approach to overcoming challenges in dynamical dexterity for robots through programmab...
Origami robots are machines whose morphologies and functions are created by folding locally flat she...
The recent advances in the field of soft robotics have made autonomous soft robots working in unstru...
Origami shape transformation is dictated by predefined folding patterns and their folding sequence. ...
Multiphysics simulation of magnetically actuated origami robots promises a range of applications suc...
Soft robotics can solve many unique engineering problems. The ancient art of origami has inspired de...
Abstract—This paper presents an origami-inspired technique which allows the application of 2-D fabri...
Origami can turn a sheet of paper into complex three-dimensional shapes, and similar folding techniq...
The integration of soft actuating materials within origami-based mechanisms is a novel method to amp...
Origami has unfolded engineering applications in various fields, such as electrical, civil, aerospac...
International audienceThis work investigates the technical requirement for the actuation of the bi-d...
Origami, a traditional Japanese art, is an example of superior handwork produced by human hands. Ach...
While origami is an ancient art form, its application in engineering science has only been populariz...
Nowadays, origami folding in combination with actuation mechanisms can offer deployable structure de...
Origami, the ancient art of paper folding, has found lots of different applications in various branc...
We present an approach to overcoming challenges in dynamical dexterity for robots through programmab...