The necessary and sufficient condition for perfect teleportation and superdense coding and all the suitable states for teleportation and superdense coding
Dafa Li

TL;DR
This paper establishes conditions under which quantum states are suitable for perfect teleportation and superdense coding, demonstrating LU invariance for some protocols and characterizing the entanglement needed for these tasks.
Contribution
It provides a necessary and sufficient condition for states to be suitable for specific quantum information protocols and analyzes LU invariance properties of these protocols.
Findings
PTP and PSDC-2 are LU invariant protocols.
Suitable states for PTP and PSDC-2 have exactly 1 ebit of entanglement.
States in the W SLOCC class are not suitable for PSDC-3.
Abstract
It is known that two local unitaries (LU) equivalent states possess the same amount of entanglement and can be used to perform the same tasks in quantum information theory (QIT). For a protocol for a task in QIT, we call a protocol LU invariant if two LU-equivalent states are either both suitable for the protocol or neither is. So far, no one has discussed whether a protocol for a task in QIT is LU invariant. In [Phys. Rev. A, 74, 062320 (2006)], Agrawal and Pati proposed the perfect teleportation protocol (PTP) and the protocol for superdense coding to transmit 2-bit classical information by sending one qubit (PSDC-2) and 3-bit classical information by sending two qubits (PSDC-3). In this paper, we show that PTP and PSDC-2 are LU invariant. That is, two LU equivalent states are suitable for PTP and PSDC-2 or neither of them is. We show that PSDC-3 is not LU invariant. We also indicate…
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Taxonomy
TopicsQuantum Information and Cryptography · Quantum Mechanics and Applications · Quantum Computing Algorithms and Architecture
