Classical simulation of non-Gaussian fermionic circuits
We propose efficient algorithms for classically simulating fermionic linear optics operations applied to non-Gaussian initial states. By gadget constructions, this provides algorithms for fermionic linear optics with non-Gaussian operations. We argue that this problem is analogous to that of simulat...
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          | Published in | arXiv.org | 
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| Main Authors | , | 
| Format | Paper Journal Article | 
| Language | English | 
| Published | 
        Ithaca
          Cornell University Library, arXiv.org
    
        06.05.2024
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| Online Access | Get full text | 
| ISSN | 2331-8422 | 
| DOI | 10.48550/arxiv.2307.12912 | 
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| Abstract | We propose efficient algorithms for classically simulating fermionic linear optics operations applied to non-Gaussian initial states. By gadget constructions, this provides algorithms for fermionic linear optics with non-Gaussian operations. We argue that this problem is analogous to that of simulating Clifford circuits with non-stabilizer initial states: Algorithms for the latter problem immediately translate to the fermionic setting. Our construction is based on an extension of the covariance matrix formalism which permits to efficiently track relative phases in superpositions of Gaussian states. It yields simulation algorithms with polynomial complexity in the number of fermions, the desired accuracy, and certain quantities capturing the degree of non-Gaussianity of the initial state. We study one such quantity, the fermionic Gaussian extent, and show that it is multiplicative on tensor products when the so-called fermionic Gaussian fidelity is. We establish this property for the tensor product of two arbitrary pure states of four fermions with positive parity. | 
    
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| AbstractList | Quantum 8, 1350 (2024) We propose efficient algorithms for classically simulating fermionic linear
optics operations applied to non-Gaussian initial states. By gadget
constructions, this provides algorithms for fermionic linear optics with
non-Gaussian operations. We argue that this problem is analogous to that of
simulating Clifford circuits with non-stabilizer initial states: Algorithms for
the latter problem immediately translate to the fermionic setting. Our
construction is based on an extension of the covariance matrix formalism which
permits to efficiently track relative phases in superpositions of Gaussian
states. It yields simulation algorithms with polynomial complexity in the
number of fermions, the desired accuracy, and certain quantities capturing the
degree of non-Gaussianity of the initial state. We study one such quantity, the
fermionic Gaussian extent, and show that it is multiplicative on tensor
products when the so-called fermionic Gaussian fidelity is. We establish this
property for the tensor product of two arbitrary pure states of four fermions
with positive parity. We propose efficient algorithms for classically simulating fermionic linear optics operations applied to non-Gaussian initial states. By gadget constructions, this provides algorithms for fermionic linear optics with non-Gaussian operations. We argue that this problem is analogous to that of simulating Clifford circuits with non-stabilizer initial states: Algorithms for the latter problem immediately translate to the fermionic setting. Our construction is based on an extension of the covariance matrix formalism which permits to efficiently track relative phases in superpositions of Gaussian states. It yields simulation algorithms with polynomial complexity in the number of fermions, the desired accuracy, and certain quantities capturing the degree of non-Gaussianity of the initial state. We study one such quantity, the fermionic Gaussian extent, and show that it is multiplicative on tensor products when the so-called fermionic Gaussian fidelity is. We establish this property for the tensor product of two arbitrary pure states of four fermions with positive parity.  | 
    
| Author | Dias, Beatriz Koenig, Robert  | 
    
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| BackLink | https://doi.org/10.48550/arXiv.2307.12912$$DView paper in arXiv https://doi.org/10.22331/q-2024-05-21-1350$$DView published paper (Access to full text may be restricted)  | 
    
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| Snippet | We propose efficient algorithms for classically simulating fermionic linear optics operations applied to non-Gaussian initial states. By gadget constructions,... Quantum 8, 1350 (2024) We propose efficient algorithms for classically simulating fermionic linear optics operations applied to non-Gaussian initial states. By...  | 
    
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| Title | Classical simulation of non-Gaussian fermionic circuits | 
    
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