自动发现用于量子纠错的逻辑门

Hongxiang Chen, M. Vasmer, N. P. Breuckmann, Edward Grant
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引用次数: 3

摘要

量子纠错码保护量子计算免受退相干和其他噪声引起的误差。本文研究了量子纠错码的逻辑运算设计问题。我们提出了一个自动程序,在给定已知编码和纠错程序的情况下生成逻辑运算。我们的技术是使用变分电路来学习逻辑门和实现它们的物理操作。该程序可以通过量子过程断层扫描在近期量子计算机上实现。它可以从解析设计的纠错码中自动发现逻辑门,并可以扩展到通过数值优化找到的纠错码。我们通过模拟4到15个量子比特的小量子代码来测试该程序,结果表明我们的程序找到了当前文献中已知的大多数逻辑门。此外,它还为[[5,1,2]]代码、[[6,3,2]]代码、[[8,3,2]]代码和[[10,1,2]]代码生成当前文献中没有的逻辑门。
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Automated discovery of logical gates for quantum error correction
Quantum error correcting codes protect quantum computation from errors caused by decoherence and other noise. Here we study the problem of designing logical operations for quantum error correcting codes. We present an automated procedure that generates logical operations given known encoding and correcting procedures. Our technique is to use variational circuits for learning both the logical gates and the physical operations implementing them. This procedure can be implemented on near-term quantum computers via quantum process tomography. It enables automatic discovery of logical gates from analytically designed error correcting codes and can be extended to error correcting codes found by numerical optimization. We test the procedure by simulating small quantum codes of four to fifteen qubits showing that our procedure finds most logical gates known in the current literature. Additionally, it generates logical gates not found in the current literature for the [[5,1,2]] code, the [[6,3,2]] code, the [[8,3,2]] code, and the [[10,1,2]] code.
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