Goto Hayato
Frontier Research Laboratory, Corporate Research &Development Center, Toshiba Corporation, 1, Komukai Toshiba-cho, Saiwai-ku, Kawasaki-shi, 212-8582, Japan.
Sci Rep. 2016 Jan 27;6:19578. doi: 10.1038/srep19578.
The seven-qubit quantum error-correcting code originally proposed by Steane is one of the best known quantum codes. The Steane code has a desirable property that most basic operations can be performed easily in a fault-tolerant manner. A major obstacle to fault-tolerant quantum computation with the Steane code is fault-tolerant preparation of encoded states, which requires large computational resources. Here we propose efficient state preparation methods for zero and magic states encoded with the Steane code, where the zero state is one of the computational basis states and the magic state allows us to achieve universality in fault-tolerant quantum computation. The methods minimize resource overheads for the fault-tolerant state preparation, and therefore reduce necessary resources for quantum computation with the Steane code. Thus, the present results will open a new possibility for efficient fault-tolerant quantum computation.
最初由斯特恩提出的七量子比特量子纠错码是最著名的量子码之一。斯特恩码具有一个理想的特性,即大多数基本操作都可以以容错的方式轻松执行。使用斯特恩码进行容错量子计算的一个主要障碍是编码态的容错制备,这需要大量的计算资源。在此,我们提出了用斯特恩码编码的零态和魔态的高效态制备方法,其中零态是计算基态之一,而魔态使我们能够在容错量子计算中实现通用性。这些方法将容错态制备的资源开销降至最低,从而减少了使用斯特恩码进行量子计算所需的资源。因此,目前的结果将为高效容错量子计算开辟新的可能性。