Search engine for discovering works of Art, research articles, and books related to Art and Culture
ShareThis
Javascript must be enabled to continue!

Stable Heteroclinic Channel-based Movement Primitives: Tuning Trajectories using Saddle Parameters

View through CrossRef
Dynamic systems which underly controlled systems are expected to increase in complexity as robots, devices, and connected networks become more intelligent. While classical stable systems converge to a stable point (a sink), another type of stability is to consider a stable path rather than a single point. Such stable paths can be made of saddles which draw in trajectories from certain regions, and then push the trajectory toward the next saddle point. These are chains of saddles are called stable heteroclinic channels (SHCs), and can be used in robotic control to represent time sequences. While we have previously shown that each saddle is visualizable as a trajectory waypoint in phase space, how to increase the fidelity of the trajectory was unclear. In this paper, we hypothesized that the waypoints can be individually modified to locally vary fidelity. Specifically, we expected that increasing the saddle value (ratio of saddle eigenvalues) causes the trajectory to slow to more closely approach a particular saddle. Combined with other parameters that control speed and magnitude, a system expressed with an SHC can be modified locally, point by point, without disrupting the rest of the path, supporting their use in motion primitives. However, even more complex trajectory shape modifications are possible. While some combinations can enable a trajectory to better reach into corners, other combinations can rotate, distort and round the trajectory in the region of a corner. In our example, modifying select saddle values produced a 32% decrease in the trajectory error of a complex trajectory produced using this system. This is an effect not visible in previous 1D studies, that can lead to different learnable and tunable representations of dynamic systems.
Title: Stable Heteroclinic Channel-based Movement Primitives: Tuning Trajectories using Saddle Parameters
Description:
Dynamic systems which underly controlled systems are expected to increase in complexity as robots, devices, and connected networks become more intelligent.
While classical stable systems converge to a stable point (a sink), another type of stability is to consider a stable path rather than a single point.
Such stable paths can be made of saddles which draw in trajectories from certain regions, and then push the trajectory toward the next saddle point.
These are chains of saddles are called stable heteroclinic channels (SHCs), and can be used in robotic control to represent time sequences.
While we have previously shown that each saddle is visualizable as a trajectory waypoint in phase space, how to increase the fidelity of the trajectory was unclear.
In this paper, we hypothesized that the waypoints can be individually modified to locally vary fidelity.
Specifically, we expected that increasing the saddle value (ratio of saddle eigenvalues) causes the trajectory to slow to more closely approach a particular saddle.
Combined with other parameters that control speed and magnitude, a system expressed with an SHC can be modified locally, point by point, without disrupting the rest of the path, supporting their use in motion primitives.
However, even more complex trajectory shape modifications are possible.
While some combinations can enable a trajectory to better reach into corners, other combinations can rotate, distort and round the trajectory in the region of a corner.
In our example, modifying select saddle values produced a 32% decrease in the trajectory error of a complex trajectory produced using this system.
This is an effect not visible in previous 1D studies, that can lead to different learnable and tunable representations of dynamic systems.

Related Results

Stable Heteroclinic Channel-Based Movement Primitives: Tuning Trajectories Using Saddle Parameters
Stable Heteroclinic Channel-Based Movement Primitives: Tuning Trajectories Using Saddle Parameters
Dynamic systems which underlie controlled systems are expected to increase in complexity as robots, devices, and connected networks become more intelligent. While classical stable ...
En skvatmølle i Ljørring
En skvatmølle i Ljørring
A Horizontal Mill at Ljørring, Jutland.Horizontal water-mills have been in use in Jutland since the beginning of the Christian era 2). But the one here described shows so close a c...
Electric field tuning characteristic of multiple optical parametric oscillator based on MgO:QPLN
Electric field tuning characteristic of multiple optical parametric oscillator based on MgO:QPLN
The quasi-phase matching optical parametric oscillator tuning methods, i.e. grating period tuning, temperature tuning, pumping wavelength tuning, and angle tuning are more simple a...
Disciplined Saddle Programming
Disciplined Saddle Programming
We consider convex-concave saddle point problems, and more generally convex optimization problems we refer to as saddle problems,which include the partial supremum or infimum of co...
An Overview of DRAM-Based Security Primitives
An Overview of DRAM-Based Security Primitives
Recent developments have increased the demand for adequate security solutions, based on primitives that cannot be easily manipulated or altered, such as hardware-based primitives. ...
Vers une cryptographie non-clonable dans le modèle standard
Vers une cryptographie non-clonable dans le modèle standard
Towards unclonable cryptography in the plain model La mécanique quantique génère de nouvelles menaces pour la cryptographie, mais elle offre également de nouveaux o...
Enhanced performance of automatic tuning in isotope separation online systems through Bayesian optimization
Enhanced performance of automatic tuning in isotope separation online systems through Bayesian optimization
The Multi-purpose hYbrid Research Reactor for High-tech Applications (MYRRHA) is a subcritical nuclear reactor driven by a linear proton accelerator, currently under development at...

Back to Top