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Wyderka, Nikolai: Learning from correlations: what parts of quantum states tell about the whole. 2020
Inhalt
Abstract
Zusammenfassung
Table of contents
1 Introduction
2 Mathematical toolbox
2.1 Introduction
2.2 Quantum mechanics and quantum states
2.3 Qubits and the Bloch basis
2.4 Marginal states
2.4.1 The marginal problem
2.4.2 Mathematical description
2.4.3 Previous results
2.5 Entanglement
2.5.1 Bipartite entanglement
2.5.2 Multipartite entanglement
2.5.3 Entanglement measures
2.5.4 Monogamy of entanglement
2.5.5 Witnesses
2.6 Quantum channels
2.6.1 The Kraus representation
2.6.2 The Choi-Jamiołkowski isomorphism
2.7 Entropy
2.7.1 The von Neumann entropy
2.7.2 The linear entropy
2.8 Coherence
2.8.1 Coherence measures
2.8.2 The l1-norm of coherence and robustness of coherence
2.9 Semidefinite programs
3 The marginal problem
3.1 Introduction
3.2 Motivation
3.3 Unique ground states and uniquely determined states
3.4 The four particle case
3.4.1 Generic states
3.4.2 The case of qubits
3.4.3 The case of higher-dimensional systems
3.5 States of n particles
3.6 States that are not UDP
3.7 Conclusions
4 Even and odd correlations
4.1 Introduction
4.2 The even-odd decomposition
4.3 Results for an odd number of qubits
4.4 Results for an even number of qubits
4.5 Applications
4.5.1 Ground states of Hamiltonians
4.5.2 Unitary time evolution
4.5.3 Entanglement detection
4.6 Generalizations
4.6.1 Mixed states
4.6.2 Higher dimensional systems
4.6.3 Generalized inversions
4.7 Conclusions
5 Sector lengths
5.1 Introduction
5.2 Basic definitions
5.3 Bounds on individual sector lengths
5.3.1 Bounds on A2
5.3.2 Bounds on A3 and higher sectors
5.3.3 Bounds on An
5.3.4 Application to entanglement detection
5.4 Bounds on linear combinations of sector lengths
5.4.1 Translation into entropy inequalities
5.4.2 Characterization of two-qubit states
5.4.3 Characterization of three-qubit states
5.4.4 Connection to strong subadditivity
5.4.5 A list of pure four-qubit states
5.5 Conclusions
6 Learning about entanglement from higher moments
6.1 Introduction
6.2 Moments of random correlation measurements
6.3 Spherical designs
6.4 The two-qubit case
6.4.1 The landscape of all two-qubit states
6.4.2 The subset of separable two-qubit states
6.5 Boundary states
6.6 Multipartite entanglement
6.7 Conclusions
7 Detecting entanglement using product observables
7.1 Introduction
7.2 The setting
7.3 Relation to entanglement witnesses
7.4 Systems of two qubits
7.5 Systems of higher dimensions
7.6 Connection to joint measurability
7.7 Conclusions
8 Certifying quantum memories
8.1 Introduction
8.2 Sources of errors in quantum memories
8.3 Existing quantum memory quality measures
8.4 Criteria for quality measures
8.5 A coherence based quality measure
8.6 Properties of the measures
8.7 Experimental estimation
8.8 Conclusions
Concluding remarks
Acknowledgments
List of publications
List of Figures and Tables
List of Figures
List of Tables
A A Sudoku-like game to prove sector length inequalities
B Sector length inequalities from projectors onto symmetric and antisymmetric subspaces
Bibliography