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IBM C1000-112 Exam Syllabus Topics:
| Section | Weight | Objectives |
|---|---|---|
| Topic 1: Implement QASM | 1% | - Read/write and validate QASM files |
| Topic 2: Implement BasicAer Simulators | 3% | - Use Python-based simulator backend |
| Topic 3: Construct Visualizations | 19% | - Plot circuits, Bloch spheres, histograms |
| Topic 4: Return and Interpret Experiment Results | 7% | - Extract statevector and unitary data - Analyze histogram counts |
| Topic 5: Use Qiskit Tools | 1% | - Monitor job status and retrieve results |
| Topic 6: Perform Operations on Quantum Circuits | 47% | - Apply single-qubit and multi-qubit gates - Return circuit depth and OpenQASM strings - Add barriers and measure operations - Construct quantum registers and circuits |
| Topic 7: Access Aer Provider | 6% | - Configure and use Aer simulators |
| Topic 8: Display and Use System Information | 3% | - Check Qiskit version and backend details |
| Topic 9: Executing Experiments | 3% | - Execute circuits on simulators and backends |
| Topic 10: Compare and Contrast Quantum Information | 10% | - Statevectors, unitaries, density matrices - Fidelity and quantum state analysis |
IBM Fundamentals of Quantum Computation Using Qiskit v0.2X Developer Sample Questions:
1. What advantage does the Aer provider's simulators offer for researchers and developers?
A) Execution of algorithms with quantum error correction codes
B) Direct access to quantum cloud services
C) High-level abstraction from the quantum algorithms
D) Cost-effective and faster testing of quantum algorithms
2. What does a Qasm file typically contain?
A) Classical programming instructions
B) Classical binary data
C) Digital images representing qubit states
D) Quantum circuit descriptions and quantum operations
3. What type of simulations can be accessed using the Aer provider's simulators?
A) Ideal and non-ideal simulations of quantum circuits
B) Only error-corrected simulations
C) Simulations exclusively focused on gate optimization
D) Noisy simulations resembling real hardware behavior
4. What is the purpose of applying the Hadamard gate in a quantum circuit?
A) Transform basis states to superposition states
B) Measure the qubits in the circuit
C) Create entanglement between qubits
D) Perform a controlled NOT operation
5. For the given quantum circuit, what is missing barrier instruction statements 1 & 2 below?
qc = QuantumCircuit(3)
qc.h(0)
qc.z(1)
qc.x(2)
# missing_statement_1
qc.cx(0,1)
qc.h(2)
# missing_statement_2
qc.draw(output='mpl')
A) missing_statement_1: qc.barrier(0,1)
missing_statement_2: qc.barrier_all()
B) missing_statement_1: qc.barrier(0,1)
missing_statement_2: qc.barrier()
C) missing_statement_1: qc.barrier(1,2)
missing_statement_2: qc.barrier_all()
D) missing_statement_1: qc.barrier(:1)
missing_statement_2: qc.barrier()
Solutions:
| Question # 1 Answer: D | Question # 2 Answer: D | Question # 3 Answer: A | Question # 4 Answer: A | Question # 5 Answer: B |






