Title :
High Performance Entanglement-Assisted Quantum LDPC Codes Need Little Entanglement
Author :
Hsieh, Min-Hsiu ; Yen, Wen-Tai ; Hsu, Li-Yi
Author_Institution :
ERATO-SORST Quantum Comput. & Inf. Project, Japan Sci. & Technol. Agency, Tokyo, Japan
fDate :
3/1/2011 12:00:00 AM
Abstract :
Though the entanglement-assisted formalism provides a universal connection between a classical linear code and an entanglement-assisted quantum error-correcting code (EAQECC), the issue of maintaining large amount of pure maximally entangled states in constructing EAQECCs is a practical obstacle to its use. It is also conjectured that the power of entanglement-assisted formalism to convert those good classical codes comes from massive consumption of maximally entangled states. We show that the above conjecture is wrong by providing families of EAQECCs with an entanglement consumption rate that diminishes linearly as a function of the code length. Notably, two families of EAQECCs constructed in the paper require only one copy of maximally entangled state no matter how large the code length is. These families of EAQECCs that are constructed from classical finite geometric LDPC codes perform very well according to our numerical simulations. Our work indicates that EAQECCs are not only theoretically interesting, but also physically implementable. Finally, these high performance entanglement-assisted LDPC codes with low entanglement consumption rates allow one to construct high-performance standard QECCs with very similar parameters.
Keywords :
geometric codes; parity check codes; quantum entanglement; entanglement-assisted formalism; high performance entanglement-assisted quantum LDPC codes; maximally entangled state; Decoding; Geometry; Linear code; Null space; Parity check codes; Quantum entanglement; Euclidean geometry; Low density parity check codes; cyclic code; entanglement-assisted code; projective geometry; quasi-cyclic code; stabilizer code;
Journal_Title :
Information Theory, IEEE Transactions on
DOI :
10.1109/TIT.2011.2104590