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Learning Model Predictive Controllers with Real-Time Attention for Real-World Navigation

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arxiv 2209.10780 v2 pith:KGROFZKH submitted 2022-09-22 cs.RO cs.AIcs.LG

Learning Model Predictive Controllers with Real-Time Attention for Real-World Navigation

classification cs.RO cs.AIcs.LG
keywords navigationreal-worldbetterclutteredcontrolcostenvironmentsfunction
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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Despite decades of research, existing navigation systems still face real-world challenges when deployed in the wild, e.g., in cluttered home environments or in human-occupied public spaces. To address this, we present a new class of implicit control policies combining the benefits of imitation learning with the robust handling of system constraints from Model Predictive Control (MPC). Our approach, called Performer-MPC, uses a learned cost function parameterized by vision context embeddings provided by Performers -- a low-rank implicit-attention Transformer. We jointly train the cost function and construct the controller relying on it, effectively solving end-to-end the corresponding bi-level optimization problem. We show that the resulting policy improves standard MPC performance by leveraging a few expert demonstrations of the desired navigation behavior in different challenging real-world scenarios. Compared with a standard MPC policy, Performer-MPC achieves >40% better goal reached in cluttered environments and >65% better on social metrics when navigating around humans.

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Cited by 2 Pith papers

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score.

  1. AutoPath: Learning Transferable Goal-Conditioned Stochastic Path Prior for Safe Navigation Without Human Demonstrations

    cs.RO 2026-07 conditional novelty 6.0

    A goal-aligned stochastic local-path prior learned without human demos yields high navigation success and transfers from differential-drive robots to quadrupeds without retraining.

  2. RAY-TOLD: Ray-Based Latent Dynamics for Dense Dynamic Obstacle Avoidance with TDMPC

    cs.RO 2026-04 unverdicted novelty 6.0

    RAY-TOLD combines ray-based latent dynamics from LiDAR with MPPI control and a learned policy prior via mixture sampling to lower collision rates in high-density dynamic obstacle environments compared to standard MPPI.