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Off-Policy Primal-Dual Safe Reinforcement Learning

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arxiv 2401.14758 v2 pith:E6MQLNG7 submitted 2024-01-26 cs.LG

Off-Policy Primal-Dual Safe Reinforcement Learning

classification cs.LG
keywords estimationpolicyconstraintcostmethodsupdatedualoff-policy
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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Primal-dual safe RL methods commonly perform iterations between the primal update of the policy and the dual update of the Lagrange Multiplier. Such a training paradigm is highly susceptible to the error in cumulative cost estimation since this estimation serves as the key bond connecting the primal and dual update processes. We show that this problem causes significant underestimation of cost when using off-policy methods, leading to the failure to satisfy the safety constraint. To address this issue, we propose conservative policy optimization, which learns a policy in a constraint-satisfying area by considering the uncertainty in cost estimation. This improves constraint satisfaction but also potentially hinders reward maximization. We then introduce local policy convexification to help eliminate such suboptimality by gradually reducing the estimation uncertainty. We provide theoretical interpretations of the joint coupling effect of these two ingredients and further verify them by extensive experiments. Results on benchmark tasks show that our method not only achieves an asymptotic performance comparable to state-of-the-art on-policy methods while using much fewer samples, but also significantly reduces constraint violation during training. Our code is available at https://github.com/ZifanWu/CAL.

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Cited by 2 Pith papers

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  1. How Does the Lagrangian Guide Safe Reinforcement Learning through Diffusion Models?

    cs.LG 2026-02 unverdicted novelty 6.0

    ALGD augments the Lagrangian to locally convexify the energy landscape in diffusion models, stabilizing safe RL training and generation without changing optimal policies.

  2. PREFINE: Preference-Based Implicit Reward and Cost Fine-Tuning for Safety Alignment

    cs.LG 2026-05 unverdicted novelty 5.0

    PREFINE adapts Direct Preference Optimization to trajectory-level preferences in RL for joint reward retention and safety alignment in continuous domains.