Title:
Methods for universal fault-tolerant quantum computation in small devices

dc.contributor.advisor Sherrill, C. David
dc.contributor.author Trout, Colin
dc.contributor.committeeMember Perry, Joseph W.
dc.contributor.committeeMember Kennedy, T. A. Brian
dc.contributor.committeeMember Orlando, Thomas M.
dc.contributor.department Chemistry and Biochemistry
dc.date.accessioned 2018-05-31T18:12:16Z
dc.date.available 2018-05-31T18:12:16Z
dc.date.created 2018-05
dc.date.issued 2018-01-22
dc.date.submitted May 2018
dc.date.updated 2018-05-31T18:12:16Z
dc.description.abstract A reliable large-scale quantum computer would be able to solve problems in physics and chemistry exponentially faster than current classical processors. A large-scale quantum device has not been built because quantum systems are naturally sensitive to environmental influences which manifest as errors in memory and operations during computation. For a large-scale device to become a reality, protocols must be developed that reduce the influence of errors during computation in a manner that maintains scalability of the device. This scalability criteria requires the protocols developed to handle errors must be implemented in a way such that the size of the quantum system and number of operations grows in a tractable manner. Furthermore, the sources of errors must be modeled accurately for true assessments of the viability of these protocols. In this dissertation, we present an investigation into methods of performing reliable quantum computation in the presence of errors in small quantum systems (< 50 qubits). These methods should be considered as software primitives used to built reliable large-scale quantum algorithms and quantum memories. These methods occur in two flavors: quantum error correction and fault-tolerant operations. For quantum error correction, we perform assessments of error correction in the presence of error sources indicative of ion trap quantum computers. For fault-tolerant operations, we investigate the quantum resource cost and efficacy of implementing various techniques for performing reliable operations that would allow for a quantum advantange in a large-scale device.
dc.description.degree Ph.D.
dc.format.mimetype application/pdf
dc.identifier.uri http://hdl.handle.net/1853/59837
dc.language.iso en_US
dc.publisher Georgia Institute of Technology
dc.subject Quantum error correction
dc.title Methods for universal fault-tolerant quantum computation in small devices
dc.type Text
dc.type.genre Dissertation
dspace.entity.type Publication
local.contributor.advisor Sherrill, C. David
local.contributor.corporatename School of Chemistry and Biochemistry
local.contributor.corporatename College of Sciences
relation.isAdvisorOfPublication 771cfa30-1ff7-4a12-b4c7-4f8e93b4860a
relation.isOrgUnitOfPublication f1725b93-3ab8-4c47-a4c3-3596c03d6f1e
relation.isOrgUnitOfPublication 85042be6-2d68-4e07-b384-e1f908fae48a
thesis.degree.level Doctoral
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