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Synapse
May 6, 20240 citationsOpen Access

Motion Planning under Uncertainty: Integrating Learning-Based Multi-Modal Predictors into Branch Model Predictive Control

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MBMohamed-Khalil BouzidiBDBojan DerajićDGDaniel Goehring

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Abstract

In complex traffic environments, autonomous vehicles face multi-modal uncertainty about other agents' future behavior. To address this, recent advancements in learningbased motion predictors output multi-modal predictions. We present our novel framework that leverages Branch Model Predictive Control(BMPC) to account for these predictions. The framework includes an online scenario-selection process guided by topology and collision risk criteria. This efficiently selects a minimal set of predictions, rendering the BMPC realtime capable. Additionally, we introduce an adaptive decision postponing strategy that delays the planner's commitment to a single scenario until the uncertainty is resolved. Our comprehensive evaluations in traffic intersection and random highway merging scenarios demonstrate enhanced comfort and safety through our method.

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Cite This Study

Bouzidi et al. (2024) studied this question.

synapsesocial.com/papers/68e6b6eab6db643587638619https://doi.org/10.48550/arxiv.2405.03470
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Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1An Efficient Risk-aware Branch MPC for Automated Driving that is Robust to Uncertain Vehicle Behaviors2024
  2. 2RACP: Risk-Aware Contingency Planning with Multi-Modal Predictions2024 · 21 citations
  3. 3RACP: Risk-Aware Contingency Planning with Multi-Modal Predictions2024 · 2 citations
  4. 4Motion Planning for Autonomous Driving in Unsignalized Intersections Using Combined Multi-Modal GNN Predictor and MPC Planner2025 · 2 citations
  5. 5Combining Belief Function Theory and Stochastic Model Predictive Control for Multi-Modal Uncertainty in Autonomous Driving2024