quantum-state
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| + | # Quantum state | ||
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| + | **Quantum states** describe the complete information content of a quantum system. Like classical bits, qubits occupy definite states; unlike classical bits, qubits can exist in superposition—a linear combination of basis states. A quantum state of $n$ qubits is represented as a vector $|\psi\rangle$ in a complex Hilbert space $\mathbb{C}^{2^n}$, | ||
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| + | A single-qubit state can be written $|\psi\rangle = \alpha|0\rangle + \beta|1\rangle$ where $|\alpha|^2 + |\beta|^2 = 1$. Multi-qubit states live in tensor products of qubit spaces. Entangled states cannot be factored into independent qubits—they exhibit non-local correlations measured by entropy or purity. | ||
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| + | States can be pure (perfect knowledge, represented by a state vector) or mixed (statistical mixture, represented by a density matrix). Measurement collapses a superposition to a definite basis state with probability determined by the state' | ||
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| + | ## Concepts | ||
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| + | 1. [[quantum-state-bloch-sphere|Bloch sphere representation]] | ||
| + | 2. [[quantum-state-superposition|Superposition]] | ||
| + | 3. [[quantum-state-entanglement|Entanglement]] | ||
| + | 4. [[quantum-state-basis|Basis states and measurement]] | ||
| + | 5. [[quantum-state-density-matrix|Density matrices and mixed states]] | ||
| + | 6. [[quantum-state-stabilizer|Stabilizer states]] | ||
| + | 7. [[quantum-state-tomography|State tomography]] | ||
| + | 8. [[quantum-state-fidelity|Fidelity and purity]] | ||
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| + | ## States | ||
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| + | - [[quantum-state-single-qubit|Single-qubit states]] | ||
| + | - [[quantum-state-computational|Computational basis]] | ||
| + | - [[quantum-state-0|Zero state (|0⟩)]] | ||
| + | - [[quantum-state-1|One state (|1⟩)]] | ||
| + | - [[quantum-state-pauli-eigenstates|Pauli eigenstates]] | ||
| + | - [[quantum-state-plus|Plus state (|+⟩)]] | ||
| + | - [[quantum-state-minus|Minus state (|-⟩)]] | ||
| + | - [[quantum-state-plus-i|Plus-i state (|+i⟩)]] | ||
| + | - [[quantum-state-minus-i|Minus-i state (|-i⟩)]] | ||
| + | - [[quantum-state-two-qubit|Two-qubit states]] | ||
| + | - [[quantum-state-computational-two-qubit|Two-qubit computational basis]] | ||
| + | - [[quantum-state-computational-00|Computational 00 (|00⟩)]] | ||
| + | - [[quantum-state-computational-01|Computational 01 (|01⟩)]] | ||
| + | - [[quantum-state-computational-10|Computational 10 (|10⟩)]] | ||
| + | - [[quantum-state-computational-11|Computational 11 (|11⟩)]] | ||
| + | - [[quantum-state-bell|Bell states]] | ||
| + | - [[quantum-state-bell-00|Bell 00 (|Φ⁺⟩)]] | ||
| + | - [[quantum-state-bell-01|Bell 01 (|Ψ⁺⟩)]] | ||
| + | - [[quantum-state-bell-10|Bell 10 (|Ψ⁻⟩)]] | ||
| + | - [[quantum-state-bell-11|Bell 11 (|Φ⁻⟩)]] | ||
| + | - [[quantum-state-three-qubit|Three-qubit entangled states]] | ||
| + | - [[quantum-state-ghz|GHZ state]] | ||
| + | - [[quantum-state-w|W state]] | ||
| + | - [[quantum-state-multiqubit|Multi-qubit states (n-qubit general)]] | ||
| + | - [[quantum-state-dicke|Dicke state]] | ||
| + | - [[quantum-state-graph|Graph state]] | ||
| + | - [[quantum-state-cluster|Cluster state]] | ||
| + | - [[quantum-state-maximally-entangled|Maximally entangled state]] | ||
| + | - [[quantum-state-choi|Choi state]] | ||
quantum-state.1787425664.md.gz · Last modified: by Ivan Janevski
