Ashutosh Goswami

dblp:258/6259 · DBLP profile ↗
← Back
4ranked-venue papers
1as first author
3since 2021 · last 2026
0000-0002-3227-9216ORCID · corroborated

Domains — the database's venue-derived domains; a paper can count in several

Theory of computation · 3 · 2 since 2021Applied, interdisciplinary, general and emerging computing · 1 · 1 first-author · 1 since 2021
YearPublicationVenuePosition
2026 Fault-Tolerant Quantum Input/Output
Matthias Christandl, Omar Fawzi, Ashutosh Goswami
IEEE Trans. Inf. Theory3
2021 Quantum Polarization of Qudit Channels
abstract
We provide a generalization of quantum polar codes to quantum channels with qudit-input, achieving the symmetric coherent information of the channel. Our scheme relies on a channel combining and splitting construction, where a two-qudit unitary randomly chosen from a unitary 2-design is used to combine two instances of a qudit-input channel. The inputs to the synthesized bad channels are frozen by sharing EPR pairs between the sender and the receiver, so our scheme is entanglement assisted. Using the fact that the generalized two-qudit Clifford group forms a unitary 2-design, we conclude that the channel combining operation can be chosen from this set. Moreover, we show that polarization also happens for a much smaller subset of two-qudit Cliffords, which is not a unitary 2-design. Finally, we show how to decode the proposed quantum polar codes on Pauli qudit channels.
Ashutosh Goswami, Mehdi Mhalla, Valentin Savin
ISIT1
2021 Polarization of Quantum Channels Using Clifford-Based Channel Combining
abstract
36 pages, 7 figures, second version extending [v1] Submitted to IEEE Transactions on Informations Theory
Frédéric Dupuis, Ashutosh Goswami, Mehdi Mhalla, Valentin Savin
IEEE Trans. Inf. Theory2
2019 Purely Quantum Polar Codes
abstract
We provide a purely quantum version of polar codes, achieving the coherent information of any quantum channel. Our scheme relies on a recursive channel combining and splitting construction, where random two-qubit Clifford gates are used to combine two single-qubit channels. The inputs to the synthesized bad channels are frozen by sharing EPR pairs between the sender and the receiver, so our scheme is entanglement assisted. We further show that a Pauli channel polarizes if and only if a specific classical channel over a four-symbol input set polarizes. We exploit this equivalence to prove fast polarization for Pauli channels, and to devise an efficient successive cancellation based decoding algorithm for such channels.
Frédéric Dupuis, Ashutosh Goswami, Mehdi Mhalla, Valentin Savin
ITW2