Hybrid Analog Teleportation-Direct Transmission in Noisy Bosonic Channels
arXiv:2603.11941 · doi:10.1103/5jzq-tjpp
Abstract
Quantum teleportation uses a shared entangled resource, local operations, and a digitally error-corrected classical channel to transfer quantum states between distant parties. We introduce a hybrid teleportation-direct transmission protocol for state transfer that still exploits entanglement, but replaces classical communication and digital error correction with an analog feedforward through a noisy quantum channel. We show that quantum teleportation outperforms this protocol if the communication channel reduces the entanglement of all bipartite states having the same amount of entanglement as the resource; otherwise, the hybrid protocol is optimal. We apply our result to the state transfer of a uniformly distributed coherent-states codebook, highlighting experimentally relevant scenarios where our protocol is most effective. Our findings are directly relevant to both optical and superconducting microwave channels, where analog feedforward techniques have been recently implemented.
9 pages, 5 figures. arXiv admin note: substantial text overlap with arXiv:2502.10253
References in corpus (9)
- The Future of Quantum Computing with Superconducting Qubits
- Symplectic invariants, entropic measures and correlations of Gaussian states
- Generating Entangled Microwave Radiation Over Two Transmission Lines
- Microwave Quantum Link between Superconducting Circuits Housed in Spatially Separated Cryogenic Systems
- Path Entanglement of Continuous-Variable Quantum Microwaves
- Secure quantum remote state preparation of squeezed microwave states
- Experimental quantum teleportation of propagating microwaves
- Cryogenic microwave link for quantum local area networks
- Teleportation and Entanglement Swapping of Continuous Quantum Variables of Microwave Radiation