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Cellular automaton decoders of topological quantum memories in the fault tolerant setting

机译:容错设置中拓扑量子存储器的元胞自动机解码器

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摘要

Active error decoding and correction of topological quantum codes—in particular the toric code—remains one of the most viable routes to large scale quantum information processing. In contrast, passive error correction relies on the natural physical dynamics of a system to protect encoded quantum information. However, the search is ongoing for a completely satisfactory passive scheme applicable to locally interacting two-dimensional systems. Here, we investigate dynamical decoders that provide passive error correction by embedding the decoding process into local dynamics. We propose a specific discrete time cellular-automaton decoder in the fault tolerant setting and provide numerical evidence showing that the logical qubit has a survival time extended by several orders of magnitude over that of a bare unencoded qubit. We stress that (asynchronous) dynamical decoding gives rise to a Markovian dissipative process. We hence equate cellular-automaton decoding to a fully dissipative topological quantum memory, which removes errors continuously. In this sense, uncontrolled and unwanted local noise can be corrected for by a controlled local dissipative process. We analyze the required resources, commenting on additional polylogarithmic factors beyond those incurred by an ideal constant resource dynamical decoder.
机译:对拓扑量子代码(尤其是复曲面代码)的主动错误解码和纠正仍然是进行大规模量子信息处理的最可行途径之一。相反,无源纠错依赖于系统的自然物理动力学来保护编码的量子信息。但是,正在寻找适用于局部相互作用的二维系统的完全令人满意的无源方案。在这里,我们研究了动态解码器,该解码器通过将解码过程嵌入到本地动态中来提供被动错误校正。我们在容错设置中提出了一种特定的离散时间元胞自动机解码器,并提供了数字证据,表明该逻辑量子位的生存时间比未编码的量子位延长了几个数量级。我们强调,(异步)动态解码会引起马尔可夫耗散过程。因此,我们将细胞自动机解码等同于完全耗散的拓扑量子内存,该内存不断消除错误。从这个意义上讲,可以通过受控的局部耗散过程来纠正不受控制的和不需要的局部噪声。我们分析了所需的资源,并评论了理想的恒定资源动态解码器所产生的那些之外的其他多对数因素。

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