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Quantum Resistant Authenticated Key Exchange from Ideal Lattices

Snook, Michael

Abstract Details

2016, PhD, University of Cincinnati, Arts and Sciences: Mathematical Sciences.
We examine a collection of key exchange protocols based on the ring learning with errors lattice problem. The main protocol we present achieves higher efficiency than its immediate predecessor, as well as a security proof that avoids the random oracle model used by the previous protocol. This key exchange protocol looks to be a promising tool for secure communication in a post-quantum world.
Jintai Ding, Ph.D. (Committee Chair)
Chris Christensen, Ph.D. (Committee Member)
Daniel Smith-Tone, PH.D. (Committee Member)
Yizao Wang, Ph.D. (Committee Member)
Ning Zhong, Ph.D. (Committee Member)
96 p.

Recommended Citations

Citations

  • Snook, M. (2016). Quantum Resistant Authenticated Key Exchange from Ideal Lattices [Doctoral dissertation, University of Cincinnati]. OhioLINK Electronic Theses and Dissertations Center. http://rave.ohiolink.edu/etdc/view?acc_num=ucin1470757378

    APA Style (7th edition)

  • Snook, Michael. Quantum Resistant Authenticated Key Exchange from Ideal Lattices. 2016. University of Cincinnati, Doctoral dissertation. OhioLINK Electronic Theses and Dissertations Center, http://rave.ohiolink.edu/etdc/view?acc_num=ucin1470757378.

    MLA Style (8th edition)

  • Snook, Michael. "Quantum Resistant Authenticated Key Exchange from Ideal Lattices." Doctoral dissertation, University of Cincinnati, 2016. http://rave.ohiolink.edu/etdc/view?acc_num=ucin1470757378

    Chicago Manual of Style (17th edition)