Linked from
The 55 pages that link to Quantum measurement, each with the reason it gives.
Quantum mechanicsRelated: It connects quantum probabilities with observed results.
Quantum computingRelated: Measurement turns a computation’s quantum state into a readable result.
Born ruleRelated: The rule specifies the probabilities of the outcomes it can produce.
Max BornRelated: Born’s rule predicts the statistical outcomes associated with quantum measurements.
Wave–particle dualityRelated: The measurement setup determines which properties become observable.
Quantum nonlocalityRelated: Bell correlations are inferred from statistics of measurement outcomes.
QubitRelated: Measuring a qubit yields a basis outcome, with probabilities set by its amplitudes.
Wave function collapseRelated: Collapse is the state update associated with a measurement outcome.
Bell stateRelated: Measuring the two qubits in matching bases exposes Bell-state correlations.
BQPRelated: A BQP computation returns its decision by measuring a final quantum state.
Atomic systemRelated: Measurements expose particular properties of atomic systems and their states.
Bra–ket notationRelated: Bras and kets express outcome amplitudes and measurement probabilities.
Foundations of quantum mechanicsRelated: Its status in the formalism raises the measurement problem.