Difference between revisions of "BSTE:IntroductionToQuantumProgramming"

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=== Key concepts of the class ===
 
=== Key concepts of the class ===
   
  +
* Quantum computer
* TODO
 
  +
* Quantum circuit
* TODO
 
  +
* Quantum optimization
   
 
=== What is the purpose of this course? ===
 
=== What is the purpose of this course? ===
   
  +
The goal of the course is to equip students with the skills to develop quantum algorithms using modern development tools for simulators and real computing systems. These skills include, but are not limited to, the qiskit programming language and its libraries, and universal quantum notation.
TODO
 
  +
  +
After mastering the course the student should be aware of ways to develop quantum algorithms, should be able to develop simple quantum circuits from scratch and integrate them into classical software, should be able to compose sequences of quantum circuits that solve computational and machine learning problems.
   
 
=== Course objectives based on Bloom’s taxonomy ===
 
=== Course objectives based on Bloom’s taxonomy ===

Revision as of 12:18, 11 October 2021

Introduction to Quantum Programming

  • Course name: Introduction to Quantum Programming
  • Course number: N/A

Course Characteristics

What subject area does your course (discipline) belong to?

Quantum computing

Key concepts of the class

  • Quantum computer
  • Quantum circuit
  • Quantum optimization

What is the purpose of this course?

The goal of the course is to equip students with the skills to develop quantum algorithms using modern development tools for simulators and real computing systems. These skills include, but are not limited to, the qiskit programming language and its libraries, and universal quantum notation.

After mastering the course the student should be aware of ways to develop quantum algorithms, should be able to develop simple quantum circuits from scratch and integrate them into classical software, should be able to compose sequences of quantum circuits that solve computational and machine learning problems.

Course objectives based on Bloom’s taxonomy

- What should a student remember at the end of the course?

By the end of the course, the students should be able to remember and recognize

  • TODO

- What should a student be able to understand at the end of the course?

By the end of the course, the students should be able to describe and explain

  • TODO

- What should a student be able to apply at the end of the course?

By the end of the course, the students should be able to

  • TODO

Course evaluation

Course grade breakdown
Proposed points
Labs/seminar classes 20 0
Interim performance assessment 30 0
Assessments 0 60
Exams 50 40

If necessary, please indicate freely your course’s features in terms of students’ performance assessment:

TODO

Grades range

Course grading range
Proposed range
A. Excellent 90-100 80-100
B. Good 75-89 60-79
C. Satisfactory 60-74 40-59
D. Poor 0-59 0-39

Resources and reference material

Main textbook:

  • TODO
  • TODO

Other reference material:

  • TODO

Course Sections

The main sections of the course and approximate hour distribution between them is as follows:

Course Sections
Section Section Title Teaching Hours
1 S1 12
2 S2 16
3 S3 12
4 S4 20

Section 1

Section title:

S1

Topics covered in this section:

  • TODO

What forms of evaluation were used to test students’ performance in this section?

Yes/No
Development of individual parts of software product code 1
Homework and group projects 1
Midterm evaluation 0
Testing (written or computer based) 0
Reports 0
Essays 1
Oral polls 0
Discussions 0

Typical questions for ongoing performance evaluation within this section

  1. TODO
  2. TODO

Typical questions for seminar classes (labs) within this section

  1. TODO

Test questions for final assessment in this section

  1. TODO

Section 2

Section title:

S2

Topics covered in this section:

  • TODO

What forms of evaluation were used to test students’ performance in this section?

Yes/No
Development of individual parts of software product code 1
Homework and group projects 1
Midterm evaluation 0
Testing (written or computer based) 0
Reports 0
Essays 0
Oral polls 0
Discussions 0

Typical questions for ongoing performance evaluation within this section

  1. TODO
  2. TODO

Typical questions for seminar classes (labs) within this section

  1. TODO

Test questions for final assessment in this section

  1. TODO
  2. TODO

Section 3

Section title:

S3

Topics covered in this section:

  • TODO

What forms of evaluation were used to test students’ performance in this section?

Yes/No
Development of individual parts of software product code 1
Homework and group projects 1
Midterm evaluation 0
Testing (written or computer based) 0
Reports 0
Essays 0
Oral polls 0
Discussions 0

Typical questions for ongoing performance evaluation within this section

  1. TODO

Typical questions for seminar classes (labs) within this section

  1. TODO

Test questions for final assessment in this section

  1. TODO

Section 4

Section title:

S4

Topics covered in this section:

  • TODO

What forms of evaluation were used to test students’ performance in this section?

Yes/No
Development of individual parts of software product code 1
Homework and group projects 1
Midterm evaluation 0
Testing (written or computer based) 0
Reports 0
Essays 0
Oral polls 0
Discussions 0

Typical questions for ongoing performance evaluation within this section

  1. TODO

Typical questions for seminar classes (labs) within this section

  1. TODO

Test questions for final assessment in this section

  1. TODO