Lossy Quantum Source Coding with a Global Error Criterion based on a Posterior Reference Map
Touheed Anwar Atif, Mohammad Aamir Sohail, S. Sandeep Pradhan

TL;DR
This paper introduces a new formulation for lossy quantum source coding that uses a global error criterion and a posterior reference map, providing a single-letter characterization of the asymptotic limit and a practical encoding-decoding protocol.
Contribution
It proposes a novel quantum source coding framework with a global error constraint and posterior reference maps, extending classical duality concepts to the quantum setting.
Findings
Characterizes the asymptotic performance limit using single-letter coherent information.
Develops a protocol achieving the performance limit with a global error criterion.
Extends the formulation to quantum-classical and classical variants with mutual information expressions.
Abstract
We consider the lossy quantum source coding problem where the task is to compress a given quantum source below its von Neumann entropy. Inspired by the duality connections between the rate-distortion and channel coding problems in the classical setting, we propose a new formulation for the lossy quantum source coding problem. This formulation differs from the existing quantum rate-distortion theory in two aspects. Firstly, we require that the reconstruction of the compressed quantum source fulfill a global error constraint as opposed to the sample-wise local error criterion used in the standard rate-distortion setting. Secondly, instead of a distortion observable, we employ the notion of a backward quantum channel, which we refer to as a "posterior reference map", to measure the reconstruction error. Using these, we characterize the asymptotic performance limit of the lossy quantum…
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Taxonomy
TopicsQuantum Computing Algorithms and Architecture · Quantum Information and Cryptography · Analog and Mixed-Signal Circuit Design
