Circuit-to-Hamiltonian from tensor networks and fault tolerance

Fuente: arXiv
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Main Authors: Anshu, Anurag, Breuckmann, Nikolas P., Nguyen, Quynh T.
Format: Preprint
Published: 2023
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author Anshu, Anurag
Breuckmann, Nikolas P.
Nguyen, Quynh T.
author_facet Anshu, Anurag
Breuckmann, Nikolas P.
Nguyen, Quynh T.
contents We define a map from an arbitrary quantum circuit to a local Hamiltonian whose ground state encodes the quantum computation. All previous maps relied on the Feynman-Kitaev construction, which introduces an ancillary `clock register' to track the computational steps. Our construction, on the other hand, relies on injective tensor networks with associated parent Hamiltonians, avoiding the introduction of a clock register. This comes at the cost of the ground state containing only a noisy version of the quantum computation, with independent stochastic noise. We can remedy this - making our construction robust - by using quantum fault tolerance. In addition to the stochastic noise, we show that any state with energy density exponentially small in the circuit depth encodes a noisy version of the quantum computation with adversarial noise. We also show that any `combinatorial state' with energy density polynomially small in depth encodes the quantum computation with adversarial noise. This serves as evidence that any state with energy density polynomially small in depth has a similar property. As applications, we give a new proof of the QMA-completeness of the local Hamiltonian problem (with logarithmic locality) and show that contracting injective tensor networks to additive error is BQP-hard. We also discuss the implication of our construction to the quantum PCP conjecture, combining with an observation that QMA verification can be done in logarithmic depth.
format Preprint
id arxiv_https___arxiv_org_abs_2309_16475
institution arXiv
publishDate 2023
record_format arxiv
spellingShingle Circuit-to-Hamiltonian from tensor networks and fault tolerance
Anshu, Anurag
Breuckmann, Nikolas P.
Nguyen, Quynh T.
Quantum Physics
Computational Complexity
We define a map from an arbitrary quantum circuit to a local Hamiltonian whose ground state encodes the quantum computation. All previous maps relied on the Feynman-Kitaev construction, which introduces an ancillary `clock register' to track the computational steps. Our construction, on the other hand, relies on injective tensor networks with associated parent Hamiltonians, avoiding the introduction of a clock register. This comes at the cost of the ground state containing only a noisy version of the quantum computation, with independent stochastic noise. We can remedy this - making our construction robust - by using quantum fault tolerance. In addition to the stochastic noise, we show that any state with energy density exponentially small in the circuit depth encodes a noisy version of the quantum computation with adversarial noise. We also show that any `combinatorial state' with energy density polynomially small in depth encodes the quantum computation with adversarial noise. This serves as evidence that any state with energy density polynomially small in depth has a similar property. As applications, we give a new proof of the QMA-completeness of the local Hamiltonian problem (with logarithmic locality) and show that contracting injective tensor networks to additive error is BQP-hard. We also discuss the implication of our construction to the quantum PCP conjecture, combining with an observation that QMA verification can be done in logarithmic depth.
title Circuit-to-Hamiltonian from tensor networks and fault tolerance
topic Quantum Physics
Computational Complexity
url https://arxiv.org/abs/2309.16475