Everything You Always Wanted to Know About LOCC (But Were Afraid to Ask)

被引:0
作者
Eric Chitambar
Debbie Leung
Laura Mančinska
Maris Ozols
Andreas Winter
机构
[1] Southern Illinois University,Department of Physics
[2] The Perimeter Institute for Theoretical Physics,Department of Combinatorics and Optimization, Institute for Quantum Computing
[3] University of Waterloo,Física Teòrica: Informació i Fenomens Quàntics
[4] IBM TJ Watson Research Center,Department of Mathematics
[5] Institució Catalana de Recerca i Estudis Avançats (ICREA),Centre for Quantum Technologies
[6] Universitat Autònoma de Barcelona,undefined
[7] University of Bristol,undefined
[8] National University of Singapore,undefined
来源
Communications in Mathematical Physics | 2014年 / 328卷
关键词
State Discrimination; Completely Positive; Kraus Operator; Bipartite Entanglement; Communication Round;
D O I
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学科分类号
摘要
In this paper we study the subset of generalized quantum measurements on finite dimensional systems known as local operations and classical communication (LOCC). While LOCC emerges as the natural class of operations in many important quantum information tasks, its mathematical structure is complex and difficult to characterize. Here we provide a precise description of LOCC and related operational classes in terms of quantum instruments. Our formalism captures both finite round protocols as well as those that utilize an unbounded number of communication rounds. While the set of LOCC is not topologically closed, we show that finite round LOCC constitutes a compact subset of quantum operations. Additionally we show the existence of an open ball around the completely depolarizing map that consists entirely of LOCC implementable maps. Finally, we demonstrate a two-qubit map whose action can be approached arbitrarily close using LOCC, but nevertheless cannot be implemented perfectly.
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页码:303 / 326
页数:23
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