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IBM C1000-112 Exam Syllabus Topics:
| Section | Weight | Objectives |
|---|---|---|
| Use Qiskit Tools | 1% | - Monitor job status and retrieve results |
| Perform Operations on Quantum Circuits | 47% | - Return circuit depth and OpenQASM strings - Add barriers and measure operations - Construct quantum registers and circuits - Apply single-qubit and multi-qubit gates |
| Implement BasicAer Simulators | 3% | - Use Python-based simulator backend |
| Executing Experiments | 3% | - Execute circuits on simulators and backends |
| Construct Visualizations | 19% | - Plot circuits, Bloch spheres, histograms |
| Return and Interpret Experiment Results | 7% | - Analyze histogram counts - Extract statevector and unitary data |
| Display and Use System Information | 3% | - Check Qiskit version and backend details |
| Access Aer Provider | 6% | - Configure and use Aer simulators |
| Implement QASM | 1% | - Read/write and validate QASM files |
| Compare and Contrast Quantum Information | 10% | - Fidelity and quantum state analysis - Statevectors, unitaries, density matrices |
IBM Fundamentals of Quantum Computation Using Qiskit v0.2X Developer Sample Questions:
1. Which of the following qsphere plot options given below is the correct one for the given bell quantum circuit?
bell = QuantumCircuit(2)
bell.h(0)
bell.cx(0,1)
A)
B)
C)
D) 
2. What is the role of the Toffoli gate in a quantum circuit?
A) Implements a phase shift on qubits
B) Reverses the state of a qubit
C) Acts as a controlled-controlled-NOT gate
D) Creates entanglement between qubits
3. In classical information theory, information is stored in bits.
What is the quantum analogue to a bit?
A) Quark
B) Quantum gate
C) Qubit
D) Quantum byte
4. Which two code fragments, when inserted into the code below, will produce the statevector shown in the output?
from qiskit import QuantumCircuit, Aer, execute
from math import sqrt
qc = QuantumCircuit(2)
# Insert fragment here
simulator = Aer.get_backend('statevector_simulator')
result = execute(qc, simulator).result()
statevector = result.get_statevector()
print(statevector)
Output:
[0.707+0.j 0.+0.j 0.+0.j 0.707+0.j]
A) qc.h(0)
qc.h(1)
qc.measure_all()
B) qc.cx(0,1)
qc.measure_all()
C) qc.h(0)
qc.cx(0,1)
D) v1, v2 = [1,0], [0,1]
qc.initialize(v1,0)
qc.initialize(v2,1)
E) v = [1/sqrt(2), 0, 0, 1/sqrt(2)]
qc.initialize(v,[0,1])
5. Given the state vector represented by this Bloch sphere of single bit quantum circuitqc, please choose the operations.
Which would lead to this state by assuming the quantum circuit is initialized to |0> (select any 3)
A) qc.h(0)
qc.x(0)
B) qc.h(0)
C) qc.rx(math.pi, 0)
qc.rz(math.pi, 0)
D) qc.ry(math.pi / 2, 0)
qc.x(0)
E) qc.rx(math.pi, 0)
Solutions:
| Question # 1 Answer: C | Question # 2 Answer: C | Question # 3 Answer: C | Question # 4 Answer: C,E | Question # 5 Answer: A,B,D |








