CaRBM: A Fixed-Depth Quantum Algorithm with Partial Correction for Thermal State Preparation

Alsheikh O, Kemper AF, Rrapaj E, Rule EJ, Toga GC
arXiv:2603.17971
arXiv
funding
DE-SC0025623, STAQII

Abstract

We introduce the CaRBM algorithm for fixed-depth thermal state preparation. Our algorithm is based on thermal state purification and uses the Restricted Boltzmann Machine (RBM) block-encoding scheme to implement the imaginary-time propagator e^{-\beta H}, which is implemented in the quantum circuit in a fixed-depth manner via Cartan decomposition. Our algorithm performs best at high temperatures, with the success probability of the block encoding decreasing as the temperature decreases. To increase the success probability, we have devised a correction scheme for the block-encoding that increases the temperature range our algorithm reliably probes. We demonstrate our algorithm by calculating the partition function zeros of the XXZ model and the phase diagram of the Gross-Neveu model, which is a model of strongly interacting relativistic fermions.