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RAD-LAD: Rule and Language Grounded Autonomous Driving in Real-Time

About

We present LAD, a real-time language--action planner with an interruptible architecture that produces a motion plan in a single forward pass (~20 Hz) or generates textual reasoning alongside a motion plan (~10 Hz). LAD is fast enough for real-time closed-loop deployment, achieving ~3x lower latency than prior driving language models while setting a new learning-based state of the art on nuPlan Test14-Hard and InterPlan. We also introduce RAD, a rule-based planner designed to address structural limitations of PDM-Closed. RAD achieves state-of-the-art performance among rule-based planners on nuPlan Test14-Hard and InterPlan. Finally, we show that combining RAD and LAD enables hybrid planning that captures the strengths of both approaches. This hybrid system demonstrates that rules and learning provide complementary capabilities: rules support reliable maneuvering, while language enables adaptive and explainable decision-making.

Anurag Ghosh, Srinivasa Narasimhan, Manmohan Chandraker, Francesco Pittaluga• 2026

Related benchmarks

TaskDatasetResultRank
Trajectory PlanninginterPlan
interPlan Score74
20
Autonomous Driving PlanningnuPlan Test14-Hard 1.0 (Reactive)
Reactive Score81.36
15
Autonomous Driving PlanningnuPlan Reactive 14 (val)
Val14 (R)92.35
14
Language-based PlanningLanguage-based Planning closed-loop
Latency (ms)43
10
Autonomous Driving PlanningnuPlan 14 Hard (test)
Score80.53
3
Autonomous Driving PlanningnuPlan (val14)
Score92.31
3
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