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Embedding classical inputs into quantum states can separate classes because placing data into a much larger Hilbert space with parameterized angles and gates exposes correlations that become linearly separable in that representation.
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See all →Entangling gates in feature maps can encode classical data into an exponentially larger joint Hilbert space because they create nonlocal correlations across qubits that boost representational capacity and can improve class separability.
Instead of reconstructing the full quantum state, practitioners estimate specific observables because full state tomography needs an impractical number of measurements, while targeted measurements give task-relevant information with far fewer shots.
