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export results for "Quantum Expander Codes."
@article{DBLP:journals/cacm/FawziGL21, author = {Omar Fawzi and Antoine Grospellier and Anthony Leverrier}, title = {Constant overhead quantum fault tolerance with quantum expander codes}, journal = {Commun. {ACM}}, volume = {64}, number = {1}, pages = {106--114}, year = {2021} }
@inproceedings{DBLP:conf/stoc/KaufmanT21, author = {Tali Kaufman and Ran J. Tessler}, title = {New cosystolic expanders from tensors imply explicit Quantum {LDPC} codes with {\(\Omega\)}({\(\surd\)}\emph{n} log\({}^{\mbox{\emph{k}}}\) \emph{n}) distance}, booktitle = {{STOC}}, pages = {1317--1329}, publisher = {{ACM}}, year = {2021} }
@inproceedings{DBLP:conf/focs/EvraKZ20, author = {Shai Evra and Tali Kaufman and Gilles Z{\'{e}}mor}, title = {Decodable quantum {LDPC} codes beyond the square root distance barrier using high dimensional expanders}, booktitle = {{FOCS}}, pages = {218--227}, publisher = {{IEEE}}, year = {2020} }
@article{DBLP:journals/corr/abs-2004-07935, author = {Shai Evra and Tali Kaufman and Gilles Z{\'{e}}mor}, title = {Decodable quantum {LDPC} codes beyond the {\(\surd\)}n distance barrier using high dimensional expanders}, journal = {CoRR}, volume = {abs/2004.07935}, year = {2020} }
@phdthesis{DBLP:phd/hal/Grospellier19, author = {Antoine Grospellier}, title = {Constant time decoding of quantum expander codes and application to fault-tolerant quantum computation. (D{\'{e}}codage des codes expanseurs quantiques et application au calcul quantique tol{\'{e}}rant aux fautes)}, school = {Sorbonne University, France}, year = {2019} }
@article{DBLP:journals/corr/abs-1909-02945, author = {Sathwik Chadaga and Mridul Agarwal and Vaneet Aggarwal}, title = {Encoders and Decoders for Quantum Expander Codes Using Machine Learning}, journal = {CoRR}, volume = {abs/1909.02945}, year = {2019} }
@inproceedings{DBLP:conf/focs/FawziGL18, author = {Omar Fawzi and Antoine Grospellier and Anthony Leverrier}, title = {Constant Overhead Quantum Fault-Tolerance with Quantum Expander Codes}, booktitle = {{FOCS}}, pages = {743--754}, publisher = {{IEEE} Computer Society}, year = {2018} }
@inproceedings{DBLP:conf/stoc/FawziGL18, author = {Omar Fawzi and Antoine Grospellier and Anthony Leverrier}, title = {Efficient decoding of random errors for quantum expander codes}, booktitle = {{STOC}}, pages = {521--534}, publisher = {{ACM}}, year = {2018} }
@article{DBLP:journals/corr/abs-1808-03821, author = {Omar Fawzi and Antoine Grospellier and Anthony Leverrier}, title = {Constant overhead quantum fault-tolerance with quantum expander codes}, journal = {CoRR}, volume = {abs/1808.03821}, year = {2018} }
@article{DBLP:journals/corr/abs-1711-08351, author = {Omar Fawzi and Antoine Grospellier and Anthony Leverrier}, title = {Efficient decoding of random errors for quantum expander codes}, journal = {CoRR}, volume = {abs/1711.08351}, year = {2017} }
@inproceedings{DBLP:conf/focs/LeverrierTZ15, author = {Anthony Leverrier and Jean{-}Pierre Tillich and Gilles Z{\'{e}}mor}, title = {Quantum Expander Codes}, booktitle = {{FOCS}}, pages = {810--824}, publisher = {{IEEE} Computer Society}, year = {2015} }
@article{DBLP:journals/corr/LeverrierTZ15, author = {Anthony Leverrier and Jean{-}Pierre Tillich and Gilles Z{\'{e}}mor}, title = {Quantum Expander Codes}, journal = {CoRR}, volume = {abs/1504.00822}, year = {2015} }
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