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Main Authors: Liang, Zhiding, Cheng, Jinglei, Song, Zhixin, Ren, Hang, Yang, Rui, Liu, Kecheng, Kogge, Peter, Li, Tongyang, Ding, Yongshan, Shi, Yiyu
Format: Preprint
Published: 2023
Subjects:
Online Access:https://arxiv.org/abs/2304.09253
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author Liang, Zhiding
Cheng, Jinglei
Song, Zhixin
Ren, Hang
Yang, Rui
Liu, Kecheng
Kogge, Peter
Li, Tongyang
Ding, Yongshan
Shi, Yiyu
author_facet Liang, Zhiding
Cheng, Jinglei
Song, Zhixin
Ren, Hang
Yang, Rui
Liu, Kecheng
Kogge, Peter
Li, Tongyang
Ding, Yongshan
Shi, Yiyu
contents The advantages of quantum pulses over quantum gates have attracted increasing attention from researchers. Quantum pulses offer benefits such as flexibility, high fidelity, scalability, and real-time tuning. However, while there are established workflows and processes to evaluate the performance of quantum gates, there has been limited research on profiling parameterized pulses and providing guidance for pulse circuit design. To address this gap, our study proposes a set of design spaces for parameterized pulses, evaluating these pulses based on metrics such as expressivity, entanglement capability, and effective parameter dimension. Using these design spaces, we demonstrate the advantages of parameterized pulses over gate circuits in the aspect of duration and performance at the same time thus enabling high-performance quantum computing. Our proposed design space for parameterized pulse circuits has shown promising results in quantum chemistry benchmarks.
format Preprint
id arxiv_https___arxiv_org_abs_2304_09253
institution arXiv
publishDate 2023
record_format arxiv
spellingShingle Towards Advantages of Parameterized Quantum Pulses
Liang, Zhiding
Cheng, Jinglei
Song, Zhixin
Ren, Hang
Yang, Rui
Liu, Kecheng
Kogge, Peter
Li, Tongyang
Ding, Yongshan
Shi, Yiyu
Quantum Physics
The advantages of quantum pulses over quantum gates have attracted increasing attention from researchers. Quantum pulses offer benefits such as flexibility, high fidelity, scalability, and real-time tuning. However, while there are established workflows and processes to evaluate the performance of quantum gates, there has been limited research on profiling parameterized pulses and providing guidance for pulse circuit design. To address this gap, our study proposes a set of design spaces for parameterized pulses, evaluating these pulses based on metrics such as expressivity, entanglement capability, and effective parameter dimension. Using these design spaces, we demonstrate the advantages of parameterized pulses over gate circuits in the aspect of duration and performance at the same time thus enabling high-performance quantum computing. Our proposed design space for parameterized pulse circuits has shown promising results in quantum chemistry benchmarks.
title Towards Advantages of Parameterized Quantum Pulses
topic Quantum Physics
url https://arxiv.org/abs/2304.09253