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[ARTICLE · art-118714] src=machinebrief.com ↗ pub= topic=robotics verified=true sentiment=· neutral

Dual Process Motion Planning

A new arXiv preprint (2609.01260v1) introduces a dual-process motion planning framework that combines symbolic solvers with learning-based modules, inspired by the 'Thinking Fast and Slow' paradigm. The architecture, featuring a metacognitive controller to switch between fast intuition and precise reasoning, reports consistent gains in planning efficiency, accuracy, and generalization across nonlinear benchmark environments.

read1 min views1 publishedSep 2, 2026

arXiv:2609.01260v1 Announce Type: new Abstract: Robotic systems are deeply embedded in both industry and everyday life, where they are expected to act with speed, precision, and reliability. Classical control and planning methods have long delivered strong guarantees, but often at the cost of computational efficiency and adaptability. More recently, learning-based approaches have shown promise in overcoming these limitations, enabling agents to leverage experience to accelerate decision-making and address previously intractable problems. In this work, we bridge these two approaches through a neuro-symbolic perspective on nonlinear motion planning. Inspired by the Thinking Fast and Slow paradigm, we introduce a dual-process architecture that combines the strengths of robust reasoning and learning. Our framework integrates state-of-the-art symbolic solvers as a System-2'' component with experience-driven System-1'' modules. A metacognitive controller dynamically orchestrates their interaction, selecting when to rely on fast intuition versus slower, more precise reasoning. By evaluating the framework across diverse nonlinear benchmark environments, we demonstrate that this architecture yields consistent gains in planning efficiency, accuracy, and generalization, while promoting reuse across tasks. The results suggest that tightly coupling learning with structured reasoning offers a scalable path toward more capable and adaptive robotic systems.

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