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IBM C1000-112 Exam Syllabus Topics:
| Section | Objectives |
|---|---|
| Qiskit Programming | - Building and executing circuits - Simulators and Aer backend usage - Qiskit Terra basics |
| Quantum Computing Fundamentals | - Superposition and entanglement - Measurement and collapse - Qubits and quantum states |
| Noise and Real Hardware | - Quantum noise and error sources - IBM Quantum hardware execution |
| Quantum Algorithms | - Basic algorithmic complexity concepts - Deutsch-Jozsa algorithm - Grover's search algorithm |
| Quantum Gates and Circuits | - Quantum circuit construction - Single-qubit gates (X, Y, Z, H) - Multi-qubit gates (CNOT, controlled operations) |
IBM Fundamentals of Quantum Computation Using Qiskit v0.2X Developer Sample Questions:
1. Which code fragment will produce a maximally entangled, or Bell, state?
A) bell = QuantumCircuit(2)
bell.h(0)
bell.x(1)
bell.cz(0, 1)
B) bell = QuantumCircuit(2)
bell.h(0)
bell.x(1)
bell.cx(0, 1)
C) bell = QuantumCircuit(2)
bell.cx(0, 1)
bell.h(0)
bell.x(1)
D) bell = QuantumCircuit(2)
bell.h(0)
bell.h(0)
2. Which technique is commonly used to extract meaningful information from the measurement outcomes in quantum experiments?
A) Quantum error correction
B) Statistical analysis
C) Quantum entanglement mapping
D) Quantum gate optimization
3. Which of the below option will implement an operator that represents single qubit Z-gate?
A) op = Operator([[j,0,0,-j]])
B) op = Operator([[0,-1]])
C)
D) op = Operator([[1,0,0,1]])
4. Which gate is typically used to reset a qubit's state to |0> in a quantum circuit?
A) Hadamard gate
B) Pauli-Z gate
C) T gate
D) Reset gate
5. What Qiskit component enables simulation of quantum systems, including noise models and backends?
A) Qiskit Ignis
B) Qiskit Aer
C) Qiskit Aqua
D) Qiskit Terra
Solutions:
| Question # 1 Answer: B | Question # 2 Answer: B | Question # 3 Answer: C | Question # 4 Answer: B | Question # 5 Answer: B |
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