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Wenliang Liu

3 accepted papers

2025

Reliable and Efficient Multi-Agent Coordination via Graph Neural Network Variational Autoencoders

ICRA 2025

Multi-agent coordination is crucial for reliable multi-robot navigation in shared spaces such as automated warehouses. In regions of dense robot traffic, local coordination methods may fail to find a deadlock-free solution. In these scenarios, it is appropriate to let a central unit generate a globa

Cited by 4SourceScholar
2025

Scalable Multi-Robot Task Allocation and Coordination Under Signal Temporal Logic Specifications

ICRA 2025

Motion planning with simple objectives, such as collision-avoidance and goal-reaching, can be solved efficiently using modern planners. However, the complexity of the allowed tasks for these planners is limited. On the other hand, signal temporal logic (STL) can specify complex requirements, but STL

Cited by 0SourceScholar
2023

Safe Model-based Control from Signal Temporal Logic Specifications Using Recurrent Neural Networks

ICRA 2023poster

We propose a policy search approach to learn controllers from specifications given as Signal Temporal Logic (STL) formulae. The system model, which is unknown but assumed to be an affine control system, is learned together with the control policy. The model is implemented as two feedforward neural n…

Cited by 6SourceScholar