Reinforcement Learning Using Quantum Boltzmann Machines
December 17, 2016 Β· Declared Dead Β· π Quantum information & computation
"No code URL or promise found in abstract"
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Authors
Daniel Crawford, Anna Levit, Navid Ghadermarzy, Jaspreet S. Oberoi, Pooya Ronagh
arXiv ID
1612.05695
Category
quant-ph: Quantum Computing
Cross-listed
cs.AI,
cs.LG,
cs.NE,
math.OC
Citations
117
Venue
Quantum information & computation
Last Checked
3 months ago
Abstract
We investigate whether quantum annealers with select chip layouts can outperform classical computers in reinforcement learning tasks. We associate a transverse field Ising spin Hamiltonian with a layout of qubits similar to that of a deep Boltzmann machine (DBM) and use simulated quantum annealing (SQA) to numerically simulate quantum sampling from this system. We design a reinforcement learning algorithm in which the set of visible nodes representing the states and actions of an optimal policy are the first and last layers of the deep network. In absence of a transverse field, our simulations show that DBMs are trained more effectively than restricted Boltzmann machines (RBM) with the same number of nodes. We then develop a framework for training the network as a quantum Boltzmann machine (QBM) in the presence of a significant transverse field for reinforcement learning. This method also outperforms the reinforcement learning method that uses RBMs.
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