Constant-depth preparation of matrix product states with adaptive quantum circuits
Kevin C. Smith, Abid Khan, Bryan K. Clark, S.M. Girvin, Tzu-Chieh Wei

TL;DR
This paper demonstrates that a broad class of matrix product states can be exactly prepared using constant-depth adaptive quantum circuits, significantly advancing efficient state preparation on near-term quantum devices.
Contribution
It extends the class of MPS that can be prepared with constant-depth adaptive circuits, including various entangled and symmetry-protected states, outperforming previous unitary-only protocols.
Findings
Exact preparation of diverse MPS with constant-depth adaptive circuits
Outperforms optimal unitary-only preparation protocols
Provides explicit algorithms and conditions for efficient state preparation
Abstract
Adaptive quantum circuits, which combine local unitary gates, midcircuit measurements, and feedforward operations, have recently emerged as a promising avenue for efficient state preparation, particularly on near-term quantum devices limited to shallow-depth circuits. Matrix product states (MPS) comprise a significant class of many-body entangled states, efficiently describing the ground states of one-dimensional gapped local Hamiltonians and finding applications in a number of recent quantum algorithms. Recently, it was shown that the AKLT state -- a paradigmatic example of an MPS -- can be exactly prepared with an adaptive quantum circuit of constant-depth, an impossible feat with local unitary gates due to its nonzero correlation length [Smith et al., PRX Quantum 4, 020315 (2023)]. In this work, we broaden the scope of this approach and demonstrate that a diverse class of MPS can be…
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Taxonomy
TopicsQuantum Computing Algorithms and Architecture
