Constant-Soundness Interactive Proofs for Local Hamiltonians
- Creators
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Natarajan, Anand
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Vidick, Thomas
Abstract
We give a quantum multiprover interactive proof system for the local Hamiltonian problem in which there is a constant number of provers, questions are classical of length polynomial in the number of qubits, and answers are of constant length. The main novelty of our protocol is that the gap between completeness and soundness is directly proportional to the promise gap on the (normalized) ground state energy of the Hamiltonian. This result can be interpreted as a concrete step towards a quantum PCP theorem giving entangled-prover interactive proof systems for QMA-complete problems. The key ingredient is a quantum version of the classical linearity test of Blum, Luby, and Rubinfeld, where the function f : {0,1}^n → {0,1} is replaced by a pair of functions X,Z : {0,1}^n → Obs_d(C), the set of d-dimensional Hermitian matrices that square to identity. The test enforces that (i) each function is exactly linear, X(a)X(b) = X(a+b) and Z(a)Z(b) = Z(a+b), and (ii) the two functions are approximately complementary, X(a)Z(b) ≈ (−1)^(a⋅b)Z(b)X(a).
Additional Information
AN was supported by the ARO grant Contract Number W911NF-12-0486. Parts of this work was completed while the second author was visiting the Institute for Quantum Information and Matter (IQIM) at Caltech, and both authors acknowledge funding provided by the IQIM, an NSF Physics Frontiers Center (NFS Grant PHY-1125565) with support of the Gordon and Betty Moore Foundation (GBMF-12500028).Attached Files
Submitted - 1512.02090.pdf
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Additional details
- Eprint ID
- 65495
- Resolver ID
- CaltechAUTHORS:20160318-160143988
- Army Research Office (ARO)
- W911NF-12-0486
- Institute for Quantum Information and Matter (IQIM)
- NSF
- PHY-1125565
- Gordon and Betty Moore Foundation
- GBMF-12500028
- Created
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2016-03-18Created from EPrint's datestamp field
- Updated
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2023-06-02Created from EPrint's last_modified field
- Caltech groups
- Institute for Quantum Information and Matter