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IBM Fundamentals of Quantum Computation Using Qiskit v0.2X Developer Sample Questions:
1. 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)
missing_statement_2: qc.barrier()
D) missing_statement_1: qc.barrier(1,2)
missing_statement_2: qc.barrier_all()
2. What is the output of the given state in qiskit after applying CNOT to it?
1/√2|00> + 1/2|10> - 1/2|11>
A) 1/√2|00>
B) 1/√2|00> + 1/2|10> - 1/2|11>
C) 1/√2|01> + 1/2|01> - 1/2|11>
D) 1/√2|00> + 1/2|11> - 1/2|10>
3. What advantage does the Aer provider's simulators offer for researchers and developers?
A) Cost-effective and faster testing of quantum algorithms
B) Execution of algorithms with quantum error correction codes
C) High-level abstraction from the quantum algorithms
D) Direct access to quantum cloud services
4. Which Qiskit function is commonly used to visualize the structure of a quantum circuit?
A) plot_quantum_circuit()
B) visualize_circuit_structure()
C) display_quantum_circuit()
D) draw_circuit()
5. What feature differentiates the Aer provider's simulators from other backends in Qiskit?
A) The ability to execute directly on IBM Quantum Experience
B) Specialized quantum error correction capabilities
C) Access to classical computing resources
D) Tailored, high-performance quantum simulations
Solutions:
| Question # 1 Answer: B | Question # 2 Answer: D | Question # 3 Answer: A | Question # 4 Answer: D | Question # 5 Answer: D |

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