Performance of Dense Coding and Teleportation for Random States --Augmentation via Pre-processing
Rivu Gupta, Shashank Gupta, Shiladitya Mal, Aditi Sen De

TL;DR
This paper investigates the dense coding capacity and teleportation fidelity of random quantum states, demonstrating that local pre-processing can enhance communication performance regardless of state rank.
Contribution
It introduces a method of local pre-processing using POVMs and classical communication to improve dense coding and teleportation for random states of various ranks.
Findings
Performance decreases with increasing state rank.
Local pre-processing enhances dense coding and teleportation capabilities.
Upper bounds are established for specific multipartite states.
Abstract
In order to understand the resourcefulness of a natural quantum system in quantum communication tasks, we study the dense coding capacity (DCC) and teleportation fidelity (TF) of Haar uniformly generated random multipartite states of various ranks. We prove that when a rank-2 two-qubit state, a Werner state, and a pure state possess the same amount of entanglement, the DCC of a rank-2 state belongs to the envelope made by pure and Werner states. In a similar way, we obtain an upper bound via the generalized Greenberger-Horne-Zeilinger state for rank-2 three-qubit states when the dense coding with two senders and a single receiver is performed and entanglement is measured in the senders:receiver bipartition. The normalized frequency distribution of DCC for randomly generated two-, three- and four-qubit density matrices with global as well as local decodings at the receiver's end are…
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