Quantum Decimation in Hilbert Space: Coarse-Graining without Structure
arXiv:1709.01066 · doi:10.1103/PhysRevA.97.032111
Abstract
We present a technique to coarse-grain quantum states in a finite-dimensional Hilbert space. Our method is distinguished from other approaches by not relying on structures such as a preferred factorization of Hilbert space or a preferred set of operators (local or otherwise) in an associated algebra. Rather, we use the data corresponding to a given set of states, either specified independently or constructed from a single state evolving in time. Our technique is based on principle component analysis (PCA), and the resulting coarse-grained quantum states live in a lower dimensional Hilbert space whose basis is defined using the underlying (isometric embedding) transformation of the set of fine-grained states we wish to coarse-grain. Physically, the transformation can be interpreted to be an "entanglement coarse-graining" scheme that retains most of the global, useful entanglement structure of each state, while needing fewer degrees of freedom for its reconstruction. This scheme could be useful for efficiently describing collections of states whose number is much smaller than the dimension of Hilbert space, or a single state evolving over time.
16 pages, 1 figure. Comments welcome. v2 includes additions following reviewer's comments
References in corpus (7)
- A class of quantum many-body states that can be efficiently simulated
- Quantum Mereology: Factorizing Hilbert Space into Subsystems with Quasi-Classical Dynamics
- Quantum Data Compression of a Qubit Ensemble
- Overlapping qubits
- Quantum Coarse-Graining: An Information-Theoretic Approach to Thermodynamics
- Entanglement Entropy and The Density Matrix Renormalization Group
- Coarse graining the phase space of qubits
Cited by in corpus (5)
- Quantum Coarse-Graining, Symmetries and Reducibility of Dynamics
- Reductions in finite-dimensional quantum mechanics: from symmetries to operator algebras and beyond
- Quantum simulation of quantum mechanical system with spatial noncommutativity
- Does Quantum Mechanics Breed Larger, More Intricate Quantum Theories? The Case for Experience-Centric Quantum Theory and the Interactome of Quantum Theories
- Canonical Quantum Coarse-Graining and Surfaces of Ignorance