Adaptive Temporal Difference Learning with Linear Function Approximation
arXiv:2002.08537
Abstract
This paper revisits the temporal difference (TD) learning algorithm for the policy evaluation tasks in reinforcement learning. Typically, the performance of TD(0) and TD() is very sensitive to the choice of stepsizes. Oftentimes, TD(0) suffers from slow convergence. Motivated by the tight link between the TD(0) learning algorithm and the stochastic gradient methods, we develop a provably convergent adaptive projected variant of the TD(0) learning algorithm with linear function approximation that we term AdaTD(0). In contrast to the TD(0), AdaTD(0) is robust or less sensitive to the choice of stepsizes. Analytically, we establish that to reach an accuracy, the number of iterations needed is in the general case, where represents the speed of the underlying Markov chain converges to the stationary distribution. This implies that the iteration complexity of AdaTD(0) is no worse than that of TD(0) in the worst case. When the stochastic semi-gradients are sparse, we provide theoretical acceleration of AdaTD(0). Going beyond TD(0), we develop an adaptive variant of TD(), which is referred to as AdaTD(). Empirically, we evaluate the performance of AdaTD(0) and AdaTD() on several standard reinforcement learning tasks, which demonstrate the effectiveness of our new approaches.
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Cited by in corpus (4)
- Byzantine-Resilient Decentralized TD Learning with Linear Function Approximation
- Spectral Normalisation for Deep Reinforcement Learning: an Optimisation Perspective
- Non-asymptotic Convergence of Adam-type Reinforcement Learning Algorithms under Markovian Sampling
- Correcting Momentum in Temporal Difference Learning