4 resultados para quantum-state diffusion
em AMS Tesi di Dottorato - Alm@DL - Università di Bologna
Resumo:
The aim of this thesis is to investigate the nature of quantum computation and the question of the quantum speed-up over classical computation by comparing two different quantum computational frameworks, the traditional quantum circuit model and the cluster-state quantum computer. After an introductory survey of the theoretical and epistemological questions concerning quantum computation, the first part of this thesis provides a presentation of cluster-state computation suitable for a philosophical audience. In spite of the computational equivalence between the two frameworks, their differences can be considered as structural. Entanglement is shown to play a fundamental role in both quantum circuits and cluster-state computers; this supports, from a new perspective, the argument that entanglement can reasonably explain the quantum speed-up over classical computation. However, quantum circuits and cluster-state computers diverge with regard to one of the explanations of quantum computation that actually accords a central role to entanglement, i.e. the Everett interpretation. It is argued that, while cluster-state quantum computation does not show an Everettian failure in accounting for the computational processes, it threatens that interpretation of being not-explanatory. This analysis presented here should be integrated in a more general work in order to include also further frameworks of quantum computation, e.g. topological quantum computation. However, what is revealed by this work is that the speed-up question does not capture all that is at stake: both quantum circuits and cluster-state computers achieve the speed-up, but the challenges that they posit go besides that specific question. Then, the existence of alternative equivalent quantum computational models suggests that the ultimate question should be moved from the speed-up to a sort of “representation theorem” for quantum computation, to be meant as the general goal of identifying the physical features underlying these alternative frameworks that allow for labelling those frameworks as “quantum computation”.
Resumo:
Scopo del nostro studio è quello di valutare i disturbi cognitivi in relazione al tasso di microembolia cerebrale in due gruppi di pazienti trattati per lesione carotidea asintomatica con endoarterectomia (CEA) o stenting (CAS). Comparando le due metodiche mediante l’utilizzo di risonanza magnetica in diffusione (DW-MRI), neuromarkers (NSE e S100β) e test neuropsicometrici. MATERIALE E METODI: 60 pazienti sono stati sottoposti a rivascolarizzazione carotidea (CEA n=32 e CAS n=28). Sono stati tutti valutati con DW-MRI e Mini-Mental State Examination (MMSE) test nel preoperatorio, a 24 ore, a 6 ed a 12 mesi dall’intervento. In tutti sono stati dosati i livelli sierici di NSE e S100β mediante 5 prelievi seriati nel tempo, quello basale nel preoperatorio, l’ultimo a 24 ore. L’ananlisi statistica è stata effettuata con test t di Student per confronti multipli per valori continui e con test χ2 quadro e Fisher per le variabili categoriche. Significatività P <0,05. RISULTATI: Non vi è stato alcun decesso. Un paziente del gruppo CAS ha presentato un ictus ischemico. In 6 pazienti CAS ed in 1 paziente CEA si sono osservate nuove lesioni subcliniche alla RMN-DWI post-operatoria (21,4% vs 3% p=0,03). Nel gruppo CAS le nuove lesioni presenti alla RMN sono risultate significativamente associate ad un declino del punteggio del MMSE (p=0,001). L’analisi dei livelli di NSE e S100β ha mostrato un significativo aumento a 24 ore nei pazienti CAS (P = .02). A 12 mesi i pazienti che avevano presentato nuove lesioni ischemiche nel post-operatorio hanno mostrato minor punteggio al MMSE, non statisticamente significativo. CONCLUSIONI: I neuromarkers in combinazione con MMSE e RMN-DWI possono essere utilizzati nella valutazione del declino cognitivo correlato a lesioni silenti nell’immediato postoperatorio di rivascolarizzazione carotidea. Quest’ultime dovrebbero essere valutate quindi non solo rispetto al tasso di mortalità e ictus, ma anche rispetto al tasso di microembolia.
Resumo:
The purpose of this thesis is the atomic-scale simulation of the crystal-chemical and physical (phonon, energetic) properties of some strategically important minerals for structural ceramics, biomedical and petrological applications. These properties affect the thermodynamic stability and rule the mineral-environment interface phenomena, with important economical, (bio)technological, petrological and environmental implications. The minerals of interest belong to the family of phyllosilicates (talc, pyrophyllite and muscovite) and apatite (OHAp), chosen for their importance in industrial and biomedical applications (structural ceramics) and petrophysics. In this thesis work we have applicated quantum mechanics methods, formulas and knowledge to the resolution of mineralogical problems ("Quantum Mineralogy”). The chosen theoretical approach is the Density Functional Theory (DFT), along with periodic boundary conditions to limit the portion of the mineral in analysis to the crystallographic cell and the hybrid functional B3LYP. The crystalline orbitals were simulated by linear combination of Gaussian functions (GTO). The dispersive forces, which are important for the structural determination of phyllosilicates and not properly con-sidered in pure DFT method, have been included by means of a semi-empirical correction. The phonon and the mechanical properties were also calculated. The equation of state, both in athermal conditions and in a wide temperature range, has been obtained by means of variations in the volume of the cell and quasi-harmonic approximation. Some thermo-chemical properties of the minerals (isochoric and isobaric thermal capacity) were calculated, because of their considerable applicative importance. For the first time three-dimensional charts related to these properties at different pressures and temperatures were provided. The hydroxylapatite has been studied from the standpoint of structural and phonon properties for its biotechnological role. In fact, biological apatite represents the inorganic phase of vertebrate hard tissues. Numerous carbonated (hydroxyl)apatite structures were modelled by QM to cover the broadest spectrum of possible biological structural variations to fulfil bioceramics applications.
Resumo:
In the first part of the thesis, we propose an exactly-solvable one-dimensional model for fermions with long-range p-wave pairing decaying with distance as a power law. We studied the phase diagram by analyzing the critical lines, the decay of correlation functions and the scaling of the von Neumann entropy with the system size. We found two gapped regimes, where correlation functions decay (i) exponentially at short range and algebraically at long range, (ii) purely algebraically. In the latter the entanglement entropy is found to diverge logarithmically. Most interestingly, along the critical lines, long-range pairing breaks also the conformal symmetry. This can be detected via the dynamics of entanglement following a quench. In the second part of the thesis we studied the evolution in time of the entanglement entropy for the Ising model in a transverse field varying linearly in time with different velocities. We found different regimes: an adiabatic one (small velocities) when the system evolves according the instantaneous ground state; a sudden quench (large velocities) when the system is essentially frozen to its initial state; and an intermediate one, where the entropy starts growing linearly but then displays oscillations (also as a function of the velocity). Finally, we discussed the Kibble-Zurek mechanism for the transition between the paramagnetic and the ordered phase.