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Quantum Gate Pattern Recognition and Circuit Optimization for Scientific Applications
<!--HTML-->There is no unique way to encode a quantum algorithm into a quantum circuit. With limited qubit counts, connectivities, and coherence times, circuit optimization is essential to make the best use of near-term quantum devices. We introduce two separate ideas for circuit optimization...
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Lenguaje: | eng |
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2021
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Acceso en línea: | http://cds.cern.ch/record/2767237 |
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author | Terashi, Koji |
author_facet | Terashi, Koji |
author_sort | Terashi, Koji |
collection | CERN |
description | <!--HTML-->There is no unique way to encode a quantum algorithm into a quantum circuit. With limited qubit counts, connectivities, and coherence times, circuit optimization is essential to make the best use of near-term quantum devices. We introduce two separate ideas for circuit optimization and combine them in a multi-tiered quantum circuit optimization protocol called AQCEL. The first ingredient is a technique to recognize repeated patterns of quantum gates, opening up the possibility of future hardware co-optimization. The second ingredient is an approach to reduce circuit complexity by identifying zero- or low-amplitude computational basis states and redundant gates. As a demonstration, AQCEL is deployed on an iterative and efficient quantum algorithm designed to model final state radiation in high energy physics. For this algorithm, our optimization scheme brings a significant reduction in the gate count without losing any accuracy compared to the original circuit. Additionally, we have investigated whether this can be demonstrated on a quantum computer using polynomial resources. Our technique is generic and can be useful for a wide variety of quantum algorithms. |
id | cern-2767237 |
institution | Organización Europea para la Investigación Nuclear |
language | eng |
publishDate | 2021 |
record_format | invenio |
spelling | cern-27672372022-11-02T22:25:38Zhttp://cds.cern.ch/record/2767237engTerashi, KojiQuantum Gate Pattern Recognition and Circuit Optimization for Scientific Applications25th International Conference on Computing in High Energy & Nuclear PhysicsConferences<!--HTML-->There is no unique way to encode a quantum algorithm into a quantum circuit. With limited qubit counts, connectivities, and coherence times, circuit optimization is essential to make the best use of near-term quantum devices. We introduce two separate ideas for circuit optimization and combine them in a multi-tiered quantum circuit optimization protocol called AQCEL. The first ingredient is a technique to recognize repeated patterns of quantum gates, opening up the possibility of future hardware co-optimization. The second ingredient is an approach to reduce circuit complexity by identifying zero- or low-amplitude computational basis states and redundant gates. As a demonstration, AQCEL is deployed on an iterative and efficient quantum algorithm designed to model final state radiation in high energy physics. For this algorithm, our optimization scheme brings a significant reduction in the gate count without losing any accuracy compared to the original circuit. Additionally, we have investigated whether this can be demonstrated on a quantum computer using polynomial resources. Our technique is generic and can be useful for a wide variety of quantum algorithms.oai:cds.cern.ch:27672372021 |
spellingShingle | Conferences Terashi, Koji Quantum Gate Pattern Recognition and Circuit Optimization for Scientific Applications |
title | Quantum Gate Pattern Recognition and Circuit Optimization for Scientific Applications |
title_full | Quantum Gate Pattern Recognition and Circuit Optimization for Scientific Applications |
title_fullStr | Quantum Gate Pattern Recognition and Circuit Optimization for Scientific Applications |
title_full_unstemmed | Quantum Gate Pattern Recognition and Circuit Optimization for Scientific Applications |
title_short | Quantum Gate Pattern Recognition and Circuit Optimization for Scientific Applications |
title_sort | quantum gate pattern recognition and circuit optimization for scientific applications |
topic | Conferences |
url | http://cds.cern.ch/record/2767237 |
work_keys_str_mv | AT terashikoji quantumgatepatternrecognitionandcircuitoptimizationforscientificapplications AT terashikoji 25thinternationalconferenceoncomputinginhighenergynuclearphysics |