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Quantum Information Science II, Part 2 - Efficient Quantum Computing - fault tolerance and complexity

(93 Lectures Available)

S# Lecture Course Institute Instructor Discipline
26
  • Computational capacity - computation with noisy gates
Quantum Information Science II, Part 2 - Efficient Quantum Computing - fault tolerance and complexity MIT Prof. Isaac Chuang, Dr. Aram Harrow Basic and Health Sciences
27
  • Constructing the magic state for the T gate
Quantum Information Science II, Part 2 - Efficient Quantum Computing - fault tolerance and complexity MIT Prof. Isaac Chuang, Dr. Aram Harrow Basic and Health Sciences
28
  • Crude estimate of the threshold for reliable quantum computation
Quantum Information Science II, Part 2 - Efficient Quantum Computing - fault tolerance and complexity MIT Prof. Isaac Chuang, Dr. Aram Harrow Basic and Health Sciences
29
  • Efficient quantum computing - codes and fault tolerance
Quantum Information Science II, Part 2 - Efficient Quantum Computing - fault tolerance and complexity MIT Prof. Isaac Chuang, Dr. Aram Harrow Basic and Health Sciences
30
  • Exact Counting is contained in PostBQP
Quantum Information Science II, Part 2 - Efficient Quantum Computing - fault tolerance and complexity MIT Prof. Isaac Chuang, Dr. Aram Harrow Basic and Health Sciences
31
  • Examples of fault-tolerant and non-fault-tolerant procedures
Quantum Information Science II, Part 2 - Efficient Quantum Computing - fault tolerance and complexity MIT Prof. Isaac Chuang, Dr. Aram Harrow Basic and Health Sciences
32
  • Fault-tolerant construction of a general element in C3
Quantum Information Science II, Part 2 - Efficient Quantum Computing - fault tolerance and complexity MIT Prof. Isaac Chuang, Dr. Aram Harrow Basic and Health Sciences
33
  • Fault-tolerant measurements - scheme with error
Quantum Information Science II, Part 2 - Efficient Quantum Computing - fault tolerance and complexity MIT Prof. Isaac Chuang, Dr. Aram Harrow Basic and Health Sciences
34
  • Fault-tolerant non-clifford gates
Quantum Information Science II, Part 2 - Efficient Quantum Computing - fault tolerance and complexity MIT Prof. Isaac Chuang, Dr. Aram Harrow Basic and Health Sciences
35
  • Fault-tolerant quantum circuit construction example
Quantum Information Science II, Part 2 - Efficient Quantum Computing - fault tolerance and complexity MIT Prof. Isaac Chuang, Dr. Aram Harrow Basic and Health Sciences
36
  • Fault-tolerant quantum computation - ingredients I
Quantum Information Science II, Part 2 - Efficient Quantum Computing - fault tolerance and complexity MIT Prof. Isaac Chuang, Dr. Aram Harrow Basic and Health Sciences
37
  • Fault-tolerant quantum computation - ingredients II
Quantum Information Science II, Part 2 - Efficient Quantum Computing - fault tolerance and complexity MIT Prof. Isaac Chuang, Dr. Aram Harrow Basic and Health Sciences
38
  • Fault-tolerant quantum computation - introduction
Quantum Information Science II, Part 2 - Efficient Quantum Computing - fault tolerance and complexity MIT Prof. Isaac Chuang, Dr. Aram Harrow Basic and Health Sciences
39
  • Fault-tolerant quantum computation - theorem idea
Quantum Information Science II, Part 2 - Efficient Quantum Computing - fault tolerance and complexity MIT Prof. Isaac Chuang, Dr. Aram Harrow Basic and Health Sciences
40
  • Fault-tolerant quantum computation - theorem overview
Quantum Information Science II, Part 2 - Efficient Quantum Computing - fault tolerance and complexity MIT Prof. Isaac Chuang, Dr. Aram Harrow Basic and Health Sciences
41
  • Fault-tolerant quantum gates on 5-qubit and 7-qubit codes
Quantum Information Science II, Part 2 - Efficient Quantum Computing - fault tolerance and complexity MIT Prof. Isaac Chuang, Dr. Aram Harrow Basic and Health Sciences
42
  • Fault-tolerant quantum measurement of error syndromes
Quantum Information Science II, Part 2 - Efficient Quantum Computing - fault tolerance and complexity MIT Prof. Isaac Chuang, Dr. Aram Harrow Basic and Health Sciences
43
  • Fault-tolerant recovery from error - DiVincenzo-Shor method
Quantum Information Science II, Part 2 - Efficient Quantum Computing - fault tolerance and complexity MIT Prof. Isaac Chuang, Dr. Aram Harrow Basic and Health Sciences
44
  • Fault-tolerant recovery from error - non-demolition measurement
Quantum Information Science II, Part 2 - Efficient Quantum Computing - fault tolerance and complexity MIT Prof. Isaac Chuang, Dr. Aram Harrow Basic and Health Sciences
45
  • Fault-tolerant recovery from error - Steane method
Quantum Information Science II, Part 2 - Efficient Quantum Computing - fault tolerance and complexity MIT Prof. Isaac Chuang, Dr. Aram Harrow Basic and Health Sciences
46
  • Magic state distillation - briefly
Quantum Information Science II, Part 2 - Efficient Quantum Computing - fault tolerance and complexity MIT Prof. Isaac Chuang, Dr. Aram Harrow Basic and Health Sciences
47
  • Model equivalence theorems
Quantum Information Science II, Part 2 - Efficient Quantum Computing - fault tolerance and complexity MIT Prof. Isaac Chuang, Dr. Aram Harrow Basic and Health Sciences
48
  • Models of computing - circuits I
Quantum Information Science II, Part 2 - Efficient Quantum Computing - fault tolerance and complexity MIT Prof. Isaac Chuang, Dr. Aram Harrow Basic and Health Sciences
49
  • Models of computing - circuits II
Quantum Information Science II, Part 2 - Efficient Quantum Computing - fault tolerance and complexity MIT Prof. Isaac Chuang, Dr. Aram Harrow Basic and Health Sciences
50
  • Models of computing - non-determinism
Quantum Information Science II, Part 2 - Efficient Quantum Computing - fault tolerance and complexity MIT Prof. Isaac Chuang, Dr. Aram Harrow Basic and Health Sciences