TY - THES AB - At the heart of the curious phenomenon of quantum entanglement lies the relation between the whole and its parts. In my thesis, I explore different aspects of this theme in the multipartite setting by drawing connections to concepts from statistics, graph theory, and quantum error-correcting codes: first, I address the case when joint quantum states are determined by their few-body parts and by Jaynes’ maximum entropy principle. This can be seen as an extension of the notion of entanglement, with less complex states already being determined by their few-body marginals. Second, I address the conditions for certain highly entangled multipartite states to exist. In particular, I present the solution of a long-standing open problem concerning the existence of an absolutely maximally entangled state on seven qubits. This sheds light on the algebraic properties of pure quantum states, and on the conditions that constrain the sharing of entanglement amongst multiple particles. Third, I investigate Ulam’s graph reconstruction problems in the quantum setting, and obtain legitimacy conditions of a set of states to be the reductions of a joint graph state. Lastly, I apply and extend the weight enumerator machinery from quantum error correction to investigate the existence of codes and highly entangled states in higher dimensions. This clarifies the physical interpretation of the weight enumerators and of the quantum MacWilliams identity, leading to novel applications in multipartite entanglement. AU - Huber, Felix Michael DA - 2017 KW - Verschränkter Zustand KW - Multipartite Verschränkung KW - Fehlerkorrigierende Quantencodes KW - Quanten Marginalien Problem KW - Multipartite entanglement KW - Quantum error-correcting codes KW - Quantum marginal problem LA - eng PY - 2017 TI - Quantum states and their marginals : from multipartite entanglement to quantum error-correcting codes UR - https://nbn-resolving.org/urn:nbn:de:hbz:467-12725 Y2 - 2024-12-26T21:18:39 ER -