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Known strategies for sending bits at the capacity rate over a general channel with classical input and quantum output (a cq channel) require the decoder to implement impractically complicated collective measurements.
Quantum detection and estimation theory
Carl W. Helstrom · 1969
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Bounds for the quantity of information transmitted by a quantum communication channel
Alexander S. Holevo · 1973
Earlier work this paper cites.
Quantum Detection and Estimation Theory
Carl W. Helstrom · 1976
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The “transition probability” in the state space of a *-algebra
Armin Uhlmann · 1976
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Fidelity for mixed quantum states
Richard Jozsa · 1994
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Mathematical techniques for quantum communication theory
Christopher A. Fuchs and Carlton M. Caves · 1995
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Sending classical information via noisy quantum channels
Benjamin Schumacher and Michael D. Westmoreland · 1997
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The capacity of the quantum channel with general signal states
Alexander S. Holevo · 1998
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Binary discretization for quantum continuous channels
Masaki Sohma and Osamu Hirota · 2000
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Classical capacity of the lossy bosonic channel: The exact solution
Vittorio Giovannetti, Saikat Guha, Seth Lloyd, Lorenzo Maccone, Jeffrey H. Shapiro, and Horace P. Yuen · 2004
Cited alongside, same era.
Applications of coherent classical communication and the Schur transform to quantum information theory
Aram W. Harrow · 2005
Cited alongside, same era.
The Structure of Bipartite Quantum States - Insights from Group Theory and Cryptography
Matthias Christandl · 2006
Cited alongside, same era.
Quantum Information: An Introduction
Masahito Hayashi · 2006
Cited alongside, same era.
Channel polarization: A method for constructing capacity-achieving codes for symmetric binary-input memoryless channels
Erdal Arikan · 2009
Cited alongside, same era.
Achieving the Holevo bound via sequential measurements
Vittorio Giovannetti, Seth Lloyd, and Lorenzo Maccone · 2012
Later among the works it cites.
Polar coding to achieve the holevo capacity of a pure-loss optical channel
Saikat Guha and Mark M. Wilde · 2012
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Daniel K. L. Oi, Vaclav Potocek, and John Jeffers · 2012
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Efficient polar coding of quantum information
Joseph M. Renes, Frédéric Dupuis, and Renato Renner · 2012
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Explicit capacity-achieving receivers for optical communication and quantum reading
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Erdal Arikan and Emre Telatar · 2009
Cited alongside, same era.
Structured optical receivers to attain superadditive capacity and the holevo limit
Saikat Guha · 2011
Cited alongside, same era.
Achieving the Han-Kobayashi inner bound for the quantum interference channel by sequential decoding
Pranab Sen · 2011
Cited alongside, same era.
Ideal state discrimination with an O(1)-qubit quantum computer
Robin Blume-Kohout, Sarah Croke, and Michael Zwolak
Cited in the paper.
Mark M. Wilde, Saikat Guha, Si-Hui Tan, and Seth Lloyd · 2012
Later among the works it cites.
Polar codes for private classical communication
Mark M. Wilde and Joseph M. Renes · 2012
Later among the works it cites.
Quantum polar codes for arbitrary channels
Mark M. Wilde and Joseph M. Renes · 2012
Later among the works it cites.
Polar codes for classical-quantum channels
Mark M. Wilde and Saikat Guha · 2013
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