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IBM C1000-112 Exam Syllabus Topics:
| Section | Weight | Objectives |
|---|---|---|
| Fundamentals of Quantum Information | 36% | - Describe common quantum gates and their matrix representations - Explain the basics of quantum computing - Describe the concepts of reversibility and unitarity - Explain the concepts of entanglement and superposition - Describe the Bloch sphere representation |
| Quantum Circuits | 24% | - Simulate quantum circuits - Visualize circuit execution results - Build quantum circuits using Qiskit - Execute quantum circuits on IBM Quantum backends |
| Qiskit SDK Features | 40% | - Use qiskit.quantum_info - Use the qiskit.circuit library - Use qiskit.providers and qiskit.execute - Use qiskit.tools and qiskit.visualization - Identify the core elements of Qiskit |
IBM Fundamentals of Quantum Computation Using Qiskit v0.2X Developer Sample Questions:
When running experiments on quantum hardware, what is "calibration" in quantum computing?
- A. Measuring the speed of a quantum algorithm
- B. Performing preliminary tests on simulators before using actual hardware
- C. Ensuring that quantum circuits have error-free computations
- D. Adjusting quantum gates for specific qubits to account for hardware imperfections
Correct Answer: D 🗳️
Given an empty QuantumCircuit object, qc, with three qubits and three classical bits, which one of these code fragments would create this circuit?
- A. qc.measure_all()
- B. qc.measure([0,0], [1,1], [2,2])
- C. qc.measure([0,1,2], [0,1,2])
- D. qc.measure(0,1,2)
Correct Answer: C 🗳️
Which statement will combine the two given quantum circuits and result will be the final output?
q = QuantumRegister(2,'q')
qc1 = QuantumCircuit(q)
qc1.h(q[0:2])
qc1.s(q[0:2])
qc1.draw(output='mpl')
Quantum Circuit 1
q = QuantumRegister(2,'q')
qc2 = QuantumCircuit(q)
qc2.h(q[0:2])
qc2.x(q[0:2])
Quantum Circuit 2
Final output
- A. add(qc1+qc2). draw(output='mpl')
- B. (qc1+qc2). draw(output='mpl')
- C. combine (qc1, qc2). draw(output='mpl')
- D. add (qc1, qc2). draw(output='mpl')
Correct Answer: B 🗳️
In Qasm, what is the fundamental unit of operation in a quantum circuit called?
- A. Bit
- B. Gate
- C. Qubit
- D. Byte
Correct Answer: B 🗳️
How is the controlled-RX gate different from the CNOT gate in a quantum circuit?
- A. Controlled-RX gate is a single qubit gate, while CNOT gate is a two-qubit gate
- B. Controlled-RX gate applies a rotation around the X-axis, while CNOT gate flips the target qubit
- C. Controlled-RX gate applies a Pauli-X operation, while CNOT gate applies a Hadamard operation
- D. They are equivalent gates with different notations
Correct Answer: B 🗳️





