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20212026
most citedHiFT: Hierarchical Feature Transformer for Aerial Tracking

11 citations · 26 across the 11 of their papers we have counts for

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10 papers · 1 filter

cs.RO2026

Recover, Discover, Plan: Learning Skills and Concepts from Robot Failures

Bowen Li, Mayank Mishra, Y. Isabel Liu +7

Intelligent robots should not only recover from failures, but also acquire the abstract knowledge needed to avoid them in the future. While reinforcement learning (RL) can learn re…

cs.RO2026

Neuro-Symbolic Learning for Long-Horizon Task Planning Under Complex Logical Constraints

Qiwei Du, Zitong Zhan, Shaoshu Su +7

Task planning often suffers from severe efficiency bottlenecks when robots must reason over long-horizon action sequences under complex logical constraints, including object afford…

cs.RO2026

KinDER: A Physical Reasoning Benchmark for Robot Learning and Planning

Yixuan Huang, Bowen Li, Vaibhav Saxena +9

Robotic systems that interact with the physical world must reason about kinematic and dynamic constraints imposed by their own embodiment, their environment, and the task at hand.…

cs.RO2025

Unifying Deep Predicate Invention with Pre-trained Foundation Models

Qianwei Wang, Bowen Li, Zhanpeng Luo +6

Long-horizon robotic tasks are hard due to continuous state-action spaces and sparse feedback. Symbolic world models help by decomposing tasks into discrete predicates that capture…

cs.RO2025

SLAP: Shortcut Learning for Abstract Planning

Y. Isabel Liu, Bowen Li, Benjamin Eysenbach +1

Long-horizon decision-making with sparse rewards and continuous states and actions remains a fundamental challenge in AI and robotics. Task and motion planning (TAMP) is a model-ba…

cs.RO2025

Fast Task Planning with Neuro-Symbolic Relaxation

Qiwei Du, Bowen Li, Yi Du +5

Real-world task planning requires long-horizon reasoning over large sets of objects with complex relationships and attributes, leading to a combinatorial explosion for classical sy…