
A statistical model M is a family of probability distributions, characterised by a set of continuous parameters known as the parameter space. This possesses natural geometrical properties induced by the embedding of the family of probability distributions into the Hilbert space H. By consideration of the square-root density function we can regard M as a submanifold of the unit sphere in H. Therefore, H embodies the `state space' of the probability distributions, and the geometry of M can be described in terms of the embedding of in H. The geometry in question is characterised by a natural Riemannian metric (the Fisher-Rao metric), thus allowing us to formulate the principles of classical statistical inference in a natural geometric setting. In particular, we focus attention on the variance lower bounds for statistical estimation, and establish generalisations of the classical Cramer-Rao and Bhattacharyya inequalities. The statistical model M is then specialised to the case of a submanifold of the state space of a quantum mechanical system. This is pursued by introducing a compatible complex structure on the underlying real Hilbert space, which allows the operations of ordinary quantum mechanics to be reinterpreted in the language of real Hilbert space geometry. The application of generalised variance bounds in the case of quantum statistical estimation leads to a set of higher order corrections to the Heisenberg uncertainty relations for canonically conjugate observables.
32 pages, LaTex file, Extended version to include quantum measurement theory
quantum statistical inference, Foundations, quantum information and its processing, quantum axioms, and philosophy, Point estimation, Foundations and philosophical topics in statistics, FOS: Physical sciences, Hilbert space geometry, General Relativity and Quantum Cosmology (gr-qc), Applications of functional analysis in probability theory and statistics, uncertainty relations, parametric estimation, General Relativity and Quantum Cosmology
quantum statistical inference, Foundations, quantum information and its processing, quantum axioms, and philosophy, Point estimation, Foundations and philosophical topics in statistics, FOS: Physical sciences, Hilbert space geometry, General Relativity and Quantum Cosmology (gr-qc), Applications of functional analysis in probability theory and statistics, uncertainty relations, parametric estimation, General Relativity and Quantum Cosmology
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