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Dual Advantage Fields

About

Offline goal-conditioned reinforcement learning requires both long-horizon reachability estimates and local action comparisons. Dual goal representations provide value fields that capture global goal reachability, but they do not directly specify which action should be preferred at a given state. We propose Dual Advantage Fields, a policy-extraction method that turns a bilinear dual value model into a local advantage signal. Under bilinear dual parameterization, the goal embedding is the gradient of the value field with respect to the state representation. DAF learns an action-effect model that predicts the discounted feature displacement induced by an action and scores actions by the alignment between this displacement and the goal direction. In the realizable case, this score equals the goal-conditioned Bellman advantage, yielding a standard local policy-improvement guarantee. On OGBench locomotion, manipulation, and puzzle tasks, DAF improves aggregate RLiable metrics and performs strongly in settings where locally correct actions differ from direct movement toward the final goal.

Alexey Zemtsov, Maxim Bobrin, Alexander Nikulin, Dmitry V. Dylov, Fakhri Karray, Vladislav Kurenkov, Martin Tak\'a\v{c}, Arip Asadulaev• 2026

Related benchmarks

TaskDatasetResultRank
Object ManipulationOGBench cube play (Double)
Success Rate41
39
Object ManipulationOGBench cube play (Quadruple)
Success Rate3
28
Goal-conditioned locomotionOGBench HumanoidMaze-Stitch Large
Success Rate48
19
Object ManipulationOGBench cube play (Triple)
Success Rate17
19
Goal-conditioned locomotionOGBench HumanoidMaze-Stitch Medium
Success Rate90
19
Goal Reachingantmaze teleport-navigate v0
Success Rate51
17
ManipulationOGBench cube-triple-noisy
Success Rate23
16
Manipulationscene-play v0
Success Rate81
16
Navigationhumanoidmaze medium-navigate v0 (test)
Success Rate93
16
Navigationhumanoidmaze-large-navigate v0 (test)
Success Rate66
16
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