Results for 'Quantum states'

999 found
Order:
  1. Quantum States of a Time-Asymmetric Universe: Wave Function, Density Matrix, and Empirical Equivalence.Eddy Keming Chen - 2019 - Dissertation, Rutgers University - New Brunswick
    What is the quantum state of the universe? Although there have been several interesting suggestions, the question remains open. In this paper, I consider a natural choice for the universal quantum state arising from the Past Hypothesis, a boundary condition that accounts for the time-asymmetry of the universe. The natural choice is given not by a wave function but by a density matrix. I begin by classifying quantum theories into two types: theories with a fundamental wave function (...)
    No categories
    Direct download (3 more)  
     
    Export citation  
     
    Bookmark   8 citations  
  2.  15
    Quantum States as Objective Informational Bridges.Richard Healey - 2017 - Foundations of Physics 47 (2):161-173.
    A quantum state represents neither properties of a physical system nor anyone’s knowledge of its properties. The important question is not what quantum states represent but how they are used—as informational bridges. Knowing about some physical situations, an agent may assign a quantum state to form expectations about other possible physical situations. Quantum states are objective: only expectations based on correct state assignments are generally reliable. If a quantum state represents anything, it is (...)
    Direct download (4 more)  
     
    Export citation  
     
    Bookmark   9 citations  
  3.  2
    Quantum states: an analysis via the orthogonality relation.Shengyang Zhong - 2021 - Synthese 199 (5-6):15015-15042.
    From the Hilbert space formalism we note that five simple conditions are satisfied by the orthogonality relation between the (pure) states of a quantum system. We argue, by proving a mathematical theorem, that they capture the essentials of this relation. Based on this, we investigate the rationale behind these conditions in the form of six physical hypotheses. Along the way, we reveal an implicit theoretical assumption in theories of physics and prove a theorem which formalizes the idea that (...)
    Direct download (2 more)  
     
    Export citation  
     
    Bookmark   1 citation  
  4. Quantum states for primitive ontologists: A case study.Gordon Belot - 2012 - European Journal for Philosophy of Science 2 (1):67-83.
    Under so-called primitive ontology approaches, in fully describing the history of a quantum system, one thereby attributes interesting properties to regions of spacetime. Primitive ontology approaches, which include some varieties of Bohmian mechanics and spontaneous collapse theories, are interesting in part because they hold out the hope that it should not be too difficult to make a connection between models of quantum mechanics and descriptions of histories of ordinary macroscopic bodies. But such approaches are dualistic, positing a (...) state as well as ordinary material degrees of freedom. This paper lays out and compares some options that primitive ontologists have for making sense of the quantum state. (shrink)
    Direct download (6 more)  
     
    Export citation  
     
    Bookmark   76 citations  
  5.  5
    From Quantum State Targeting to Bell Inequalities.H. Bechmann-Pasquinucci - 2005 - Foundations of Physics 35 (11):1787-1804.
    Quantum state targeting is a quantum game which results from combining traditional quantum state estimation with additional classical information. We consider a particular version of the game and show how it can be played with maximally entangled states. The optimal solution of the game is used to derive a Bell inequality for two entangled qutrits. We argue that the nice properties of the inequality are direct consequences of the method of construction.
    Direct download (9 more)  
     
    Export citation  
     
    Bookmark  
  6.  1
    Quantum State Teleportation Understood Through the Bohm Interpretation.O. Maroney & B. J. Hiley - 1999 - Foundations of Physics 29 (9):1403-1415.
    Quantum state teleportation has focused attention on the role of quantum information. Here we examine quantum teleportation through the Bohm interpretation. This interpretation introduced the notion of active information and we show that it is this information that is exchanged during teleportation. We discuss the relation between our notion of active information and the notion of quantum information introduced by Schumacher.
    Direct download (4 more)  
     
    Export citation  
     
    Bookmark   7 citations  
  7.  10
    Quantum state holism: a case for holistic causation.Tomasz Placek - 2004 - Studies in History and Philosophy of Science Part B: Studies in History and Philosophy of Modern Physics 35 (4):671-692.
  8.  7
    A quantum state model of consciousness.W. L. Miranker - 2002 - Journal of Consciousness Studies 9 (3):3-14.
    We introduce a quantum state representation of the information being processed in neuronal structures. The movement of information from one such structure to a second is characterized as a measurement of the first structure by the second. The value of such a measurement is an observable property of matter. The associated collapsed quantum state, a dual encoding of that measurement, is a non-observable property of matter. The quantum measurement collapse process itself is shown to be a form (...)
    Direct download  
     
    Export citation  
     
    Bookmark  
  9. Quantum Mechanics in a Time-Asymmetric Universe: On the Nature of the Initial Quantum State.Eddy Keming Chen - 2021 - British Journal for the Philosophy of Science 72 (4):1155–1183.
    In a quantum universe with a strong arrow of time, we postulate a low-entropy boundary condition to account for the temporal asymmetry. In this paper, I show that the Past Hypothesis also contains enough information to simplify the quantum ontology and define a unique initial condition in such a world. First, I introduce Density Matrix Realism, the thesis that the quantum universe is described by a fundamental density matrix that represents something objective. This stands in sharp contrast (...)
    Direct download (4 more)  
     
    Export citation  
     
    Bookmark   30 citations  
  10.  17
    Primitive ontology and quantum state in the GRW matter density theory.Matthias Egg & Michael Esfeld - 2015 - Synthese 192 (10):3229-3245.
    The paper explains in what sense the GRW matter density theory is a primitive ontology theory of quantum mechanics and why, thus conceived, the standard objections against the GRW formalism do not apply to GRWm. We consider the different options for conceiving the quantum state in GRWm and argue that dispositionalism is the most attractive one.
    Direct download (7 more)  
     
    Export citation  
     
    Bookmark   23 citations  
  11.  10
    Random quantum states.William K. Wootters - 1990 - Foundations of Physics 20 (11):1365-1378.
    This paper examines the statistical properties of random quantum states, for four different kinds of random state:(1) a pure state chosen at random with respect to the uniform measure on the unit sphere in a finite-dimensional Hilbert space;(2) a random pure state in a real space;(3) a pure state chosen at random except that a certain expectation value is fixed;(4) a random mixed state with fixed eigenvalues. For the first two of these, we give examples of simple (...) of a model system, the kicked top, which have the statistical properties of random states. Interestingly, examples of both kinds of randomness can be found in the same system. In studying the last two kinds of random state, we obtain new results concerning the application of information theory to quantum systems. (shrink)
    Direct download (3 more)  
     
    Export citation  
     
    Bookmark   2 citations  
  12.  3
    Quantum States as Informational Bridges.Richard A. Healey - unknown
    A quantum state represents neither properties of a physical system nor anyone's knowledge of its properties. The important question is not what quantum states represent but how they are used as informational bridges. Knowing about some physical situations, an agent may assign a quantum state to form expectations about other possible physical situations. Quantum states are objective: only expectations based on correct state assignments are generally reliable. If a quantum state represents anything, it (...)
    Direct download (2 more)  
     
    Export citation  
     
    Bookmark  
  13.  5
    Representation of Quantum States as Points in a Probability Simplex Associated to a SIC-POVM.José Ignacio Rosado - 2011 - Foundations of Physics 41 (7):1200-1213.
    The quantum state of a d-dimensional system can be represented by a probability distribution over the d 2 outcomes of a Symmetric Informationally Complete Positive Operator Valued Measure (SIC-POVM), and then this probability distribution can be represented by a vector of $\mathbb {R}^{d^{2}-1}$ in a (d 2−1)-dimensional simplex, we will call this set of vectors $\mathcal{Q}$ . Other way of represent a d-dimensional system is by the corresponding Bloch vector also in $\mathbb {R}^{d^{2}-1}$ , we will call this set (...)
    Direct download (5 more)  
     
    Export citation  
     
    Bookmark  
  14.  8
    Do Quantum States Evolve? Apropos of Marchildon's Remarks.Ulrich Mohrhoff - 2004 - Foundations of Physics 34 (1):75-97.
    Marchildon’s (favorable) assessment (quant-ph/0303170, to appear in Found. Phys.) of the Pondicherry interpretation of quantum mechanics raises several issues, which are addressed. Proceeding from the assumption that quantum mechanics is fundamentally a probability algorithm, this interpretation determines the nature of a world that is irreducibly described by this probability algorithm. Such a world features an objective fuzziness, which implies that its spatiotemporal differentiation does not “go all the way down”. This result is inconsistent with the existence of an (...)
    Direct download (7 more)  
     
    Export citation  
     
    Bookmark   3 citations  
  15.  6
    Quantum states and potentialities of quantum systems.Shimon Malin - 1986 - Foundations of Physics 16 (12):1297-1305.
    In a previous article it was shown that in general quantum states represent perspectives on the potentialities of quantum systems, rather than the potentialities themselves. In the present paper the following questions are investigated in the context of this result: (1) How do quantum states which undergo collapse transform under pure translations? (2) Under what conditions do quantum states represent the potentialities themselves? Two alternatives are presented in response to the first question: (1) (...)
    Direct download (3 more)  
     
    Export citation  
     
    Bookmark   1 citation  
  16.  3
    Testing quantum state reduction via cosmogenic neutrinos.Joy Christian - unknown
    It is pointed out that the Diosi-Penrose ansatz for gravity-induced quantum state reduction can be tested by observing oscillations in the flavor ratios of neutrinos originated at cosmological distances. Since such a test would be almost free of environmental decoherence, testing the ansatz by means of a next generation neutrino detector such as IceCube would be much cleaner than by experiments proposed so far involving superpositions of macroscopic systems. The proposed microscopic test would also examine the universality of superposition (...)
    Direct download (3 more)  
     
    Export citation  
     
    Bookmark  
  17.  2
    Distinct Quantum States Cannot Be Compatible with a Single State of Reality.Shan Gao - unknown
    Recently Lewis et al. [Phys. Rev. Lett. 109, 150404 ] demonstrated that additional assumptions such as preparation independence are always necessary to rule out a psi-epistemic model, in which the quantum state is not uniquely determined by the underlying physical state. Their conclusion is based on an analysis of conventional projective measurements. Here we demonstrate that protective measurements, which are distinct from projective measurements, already shows that distinct quantum states cannot be compatible with a single state of (...)
    Direct download (2 more)  
     
    Export citation  
     
    Bookmark  
  18.  13
    Measurements and quantum states: Part I.Henry Margenau - 1963 - Philosophy of Science 30 (1):1-16.
    Although there is a complete consensus among working physicists with respect to the practical and operational meanings of quantum states, and also a rather loosely formulated general philosophic view called the Copenhagen interpretation, a great deal of confusion and divergence of opinions exist as to the details of the measurement process and its effects upon quantum states. This paper reviews the current expositions of the measurement problem, limiting itself for lack of space primarily to the writings (...)
    Direct download (10 more)  
     
    Export citation  
     
    Bookmark   27 citations  
  19.  5
    Fundamental weight systems are quantum states.David Corfield, Hisham Sati & Urs Schreiber - unknown
    Weight systems on chord diagrams play a central role in knot theory and Chern-Simons theory; and more recently in stringy quantum gravity. We highlight that the noncommutative algebra of horizontal chord diagrams is canonically a star-algebra, and ask which weight systems are positive with respect to this structure; hence we ask: Which weight systems are quantum states, if horizontal chord diagrams are quantum observables? We observe that the fundamental gl(n)-weight systems on horizontal chord diagrams with N (...)
    Direct download  
     
    Export citation  
     
    Bookmark  
  20.  21
    Measurements and quantum states: Part II.Henry Margenau - 1963 - Philosophy of Science 30 (2):138-157.
    This is the second, mathematically more detailed part of a paper consisting of two articles, the first having appeared in the immediately preceding issue of this Journal. It shows that a measurement converts a pure case into a mixture with reducible probabilities. The measurement as such permits no inference whatever as to the state of the physical system subjected to measurement after the measurement has been performed. But because the probabilities after the act are classical and therefore reducible, it is (...)
    Direct download (10 more)  
     
    Export citation  
     
    Bookmark   14 citations  
  21.  19
    In defence of non-ontic accounts of quantum states.Simon Friederich - 2013 - Studies in History and Philosophy of Science Part B: Studies in History and Philosophy of Modern Physics 44 (2):77-92.
    The paper discusses objections against non-hidden variable versions of the epistemic conception of quantum states—the view that quantum states do not describe the properties of quantum systems but reflect, in some way to be specified, the epistemic conditions of agents assigning them. In the first half of the paper, the main motivation for the epistemic conception of quantum states is sketched, and a version of it is outlined, which combines ideas from an earlier (...)
    Direct download (8 more)  
     
    Export citation  
     
    Bookmark   4 citations  
  22.  82
    How to spell out the epistemic conception of quantum states.Simon Friederich - 2011 - Studies in History and Philosophy of Science Part B: Studies in History and Philosophy of Modern Physics 42 (3):149-157.
    The paper investigates the epistemic conception of quantum states---the view that quantum states are not descriptions of quantum systems but rather reflect the assigning agents' epistemic relations to the systems. This idea, which can be found already in the works of Copenhagen adherents Heisenberg and Peierls, has received increasing attention in recent years because it promises an understanding of quantum theory in which neither the measurement problem nor a conflict between quantum non-locality and (...)
    Direct download (6 more)  
     
    Export citation  
     
    Bookmark   9 citations  
  23.  7
    How Real are Quantum States in ψ\documentclass[12pt]{minimal} \usepackage{amsmath} \usepackage{wasysym} \usepackage{amsfonts} \usepackage{amssymb} \usepackage{amsbsy} \usepackage{mathrsfs} \usepackage{upgreek} \setlength{\oddsidemargin}{-69pt} \begin{document}$$\psi$$\end{document}-Ontic Models? [REVIEW]R. Hermens - 2021 - Foundations of Physics 51 (2):1-26.
    There is a longstanding debate on the metaphysical relation between quantum states and the systems they describe. A series of relatively recent ψ\documentclass[12pt]{minimal} \usepackage{amsmath} \usepackage{wasysym} \usepackage{amsfonts} \usepackage{amssymb} \usepackage{amsbsy} \usepackage{mathrsfs} \usepackage{upgreek} \setlength{\oddsidemargin}{-69pt} \begin{document}$$\psi$$\end{document}-ontology theorems have been taken to show that, provided one accepts certain assumptions, “quantum states are real”. In this paper I investigate the question of what that claim might be taken to mean in light of these theorems. It is argued that, even if one accepts (...)
    No categories
    Direct download (3 more)  
     
    Export citation  
     
    Bookmark   2 citations  
  24.  10
    Mutually exclusive and exhaustive quantum states.James L. Park & William Band - 1976 - Foundations of Physics 6 (2):157-172.
    The identification of a set of mutually exclusive and exhaustive propositions concerning the states of quantum systems is a corner stone of the information-theoretic foundations of quantum statistics; but the set which is conventionally adopted is in fact incomplete, and is customarily deduced from numerous misconceptions of basic quantum mechanical principles. This paper exposes and corrects these common misstatements. It then identifies a new set of quantum state propositions which is truly exhaustive and mutually exclusive, (...)
    Direct download (3 more)  
     
    Export citation  
     
    Bookmark   7 citations  
  25.  7
    Quantum State Reduction and the Repeatability Hypothesis.Masanao Ozawa - 2003 - Annals of the Japan Association for Philosophy of Science 11 (2):107-121.
  26. Quantum State Engineering in.Pump-Coupled High-Q. Micromasersa - 1995 - In John Archibald Wheeler, Daniel M. Greenberger & Anton Zeilinger (eds.), Fundamental problems in quantum theory: a conference held in honor of Professor John A. Wheeler. New York: New York Academy of Sciences.
     
    Export citation  
     
    Bookmark  
  27.  7
    The empirical determination of quantum states.William Band & James L. Park - 1970 - Foundations of Physics 1 (2):133-144.
    A common approach to quantum physics is enshrouded in a jargon which treats state vectors as attributes of physical systems and the concept of state preparation as a filtration scheme wherein a process involving measurement selects from a primordial assembly of systems those bearing some prescribed vector of interest. By contrast, the empirical experiences with which quantum theory is actually concerned relate measurement and preparation in quite an opposite manner. Reproducible preparation schemes are logically and temporally anterior to (...)
    Direct download (3 more)  
     
    Export citation  
     
    Bookmark   8 citations  
  28. A Quantum-Bayesian Route to Quantum-State Space.Christopher A. Fuchs & Rüdiger Schack - 2011 - Foundations of Physics 41 (3):345-356.
    In the quantum-Bayesian approach to quantum foundations, a quantum state is viewed as an expression of an agent’s personalist Bayesian degrees of belief, or probabilities, concerning the results of measurements. These probabilities obey the usual probability rules as required by Dutch-book coherence, but quantum mechanics imposes additional constraints upon them. In this paper, we explore the question of deriving the structure of quantum-state space from a set of assumptions in the spirit of quantum Bayesianism. (...)
    Direct download (7 more)  
     
    Export citation  
     
    Bookmark   16 citations  
  29.  35
    Einstein, Incompleteness, and the Epistemic View of Quantum States.Nicholas Harrigan & Robert W. Spekkens - 2010 - Foundations of Physics 40 (2):125-157.
    Does the quantum state represent reality or our knowledge of reality? In making this distinction precise, we are led to a novel classification of hidden variable models of quantum theory. We show that representatives of each class can be found among existing constructions for two-dimensional Hilbert spaces. Our approach also provides a fruitful new perspective on arguments for the nonlocality and incompleteness of quantum theory. Specifically, we show that for models wherein the quantum state has the (...)
    Direct download (7 more)  
     
    Export citation  
     
    Bookmark   79 citations  
  30.  11
    Interpreting Heisenberg interpreting quantum states.Simon Friederich - 2012 - Philosophia Naturalis 50 (1):85-114.
    The paper investigates possible readings of the later Heisenberg's remarks on the nature of quantum states. It discusses, in particular, whether Heisenberg should be seen as a proponent of the epistemic conception of states – the view that quantum states are not descriptions of quantum systems but rather reflect the state assigning observers' epistemic relations to these systems. On the one hand, it seems plausible that Heisenberg subscribes to that view, given how he defends (...)
    Direct download (4 more)  
     
    Export citation  
     
    Bookmark   2 citations  
  31.  60
    Review. Quantum state diffusion. I Percival.Adam Brocklehurst & Mauricio Suárez - 2000 - British Journal for the Philosophy of Science 51 (3):527-530.
  32.  10
    Revisiting Consistency Conditions for Quantum States of Systems on Closed Timelike Curves: An Epistemic Perspective.Joel J. Wallman & Stephen D. Bartlett - 2012 - Foundations of Physics 42 (5):656-673.
    There has been considerable recent interest in the consequences of closed timelike curves (CTCs) for the dynamics of quantum mechanical systems. A vast majority of research into this area makes use of the dynamical equations developed by Deutsch, which were developed from a consistency condition that assumes that mixed quantum states uniquely describe the physical state of a system. We criticize this choice of consistency condition from an epistemic perspective, i.e., a perspective in which the quantum (...)
    Direct download (4 more)  
     
    Export citation  
     
    Bookmark   1 citation  
  33. On the status of quantum state realism.Wayne C. Myrvold - 2020 - In Steven French & Juha Saatsi (eds.), Scientific Realism and the Quantum. Oxford: Oxford University Press.
     
    Export citation  
     
    Bookmark   1 citation  
  34.  1
    Trigonometry of Quantum States.Karl Gustafson - 2011 - Foundations of Physics 41 (3):450-465.
    Recently the geometry of quantum states has been under considerable development. Every good geometry deserves, if possible, an accompanying trigonometry. I will here introduce such a trigonometry to accompany the geometry of quantum states.
    Direct download (3 more)  
     
    Export citation  
     
    Bookmark  
  35.  4
    Insufficiency of the quantum state for deducing observational probabilities.Don Page - unknown
    It is usually assumed that the quantum state is sufficient for deducing all probabilities for a system. This may be true when there is a single observer, but it is not true in a universe large enough that there are many copies of an observer. Then the probability of an observation cannot be deduced simply from the quantum state (say as the expectation value of the projection operator for the observation, as in traditional quantum theory). One needs (...)
    Direct download (2 more)  
     
    Export citation  
     
    Bookmark   2 citations  
  36.  7
    Quantum state diffusion.Timothy P. Spiller - 2002 - Studies in History and Philosophy of Science Part B: Studies in History and Philosophy of Modern Physics 33 (4):707-716.
  37.  3
    Comment on "Distinct Quantum States Can Be Compatible with a Single State of Reality".Shan Gao - unknown
    Lewis et al. recently demonstrated that additional assumptions such as preparation independence are always necessary to rule out a psi-epistemic model, in which the quantum state is not uniquely determined by the underlying physical state. Here we point out that these authors ignored the important work of Aharonov, Anandan and Vaidman on protective measurements, and their conclusion, which is based only on an analysis of conventional projective measurements, is not true.
    Direct download (2 more)  
     
    Export citation  
     
    Bookmark  
  38.  3
    Explanation and the quantum state.John Forge - 1996 - International Studies in the Philosophy of Science 10 (3):203 – 215.
    Abstract This paper argues that there are good reasons to adopt a non-reductive account of states when it comes to quantum mechanics. That is to say, it is argued that there are advantages to thinking about states as sui generis, as reducible to classes of values of quantities, when it comes to the quantum domain. One reason for holding this view is that it seems to improve the prospects for explanation. In more detail, it is argued (...)
    Direct download (3 more)  
     
    Export citation  
     
    Bookmark   1 citation  
  39.  72
    Notes on the reality of the quantum state.Shan Gao - 2014
    Based on an analysis of protective measurements, we show that the quantum state represents the physical state of a single quantum system. This result is more definite than the PBR theorem [Pusey, Barrett, and Rudolph, Nature Phys. 8, 475 (2012)].
    Direct download (3 more)  
     
    Export citation  
     
    Bookmark  
  40.  2
    Quantum Bit Commitment and the Reality of the Quantum State.R. Srikanth - 2018 - Foundations of Physics 48 (1):92-109.
    Quantum bit commitment is insecure in the standard non-relativistic quantum cryptographic framework, essentially because Alice can exploit quantum steering to defer making her commitment. Two assumptions in this framework are that: Alice knows the ensembles of evidence E corresponding to either commitment; and system E is quantum rather than classical. Here, we show how relaxing assumption or can render her malicious steering operation indeterminable or inexistent, respectively. Finally, we present a secure protocol that relaxes both assumptions (...)
    Direct download (4 more)  
     
    Export citation  
     
    Bookmark  
  41.  6
    Measurement of quantum states and the Wigner function.Antoine Royer - 1989 - Foundations of Physics 19 (1):3-32.
    In quantum mechanics, the state of an individual particle (or system) is unobservable, i.e., it cannot be determined experimentally, even in principle. However, the notion of “measuring a state” is meaningful if it refers to anensemble of similarly prepared particles, i.e., the question may be addressed: Is it possible to determine experimentally the state operator (density matrix) into which a given preparation procedure puts particles. After reviewing the previous work on this problem, we give simple procedures, in the line (...)
    Direct download (3 more)  
     
    Export citation  
     
    Bookmark   1 citation  
  42.  8
    Separability of Quantum States vs. Original Bell (1964) Inequalities.Marek Żukowski - 2006 - Foundations of Physics 36 (4):541-545.
    All separable states satisfy all Bell-type inequalities, which involve as their assumption only existence of local realistic (local hidden variable) models of the correlations of spatially separated systems, observed by two or more observers making independent decisions on what to measure (free will). The recent observation by Loubenets, that some separable states do not satisfy the original Bell inequality (1964) has no consequences whatsoever for the studies of the relation of separability with local realism. The original Bell inequality (...)
    Direct download (3 more)  
     
    Export citation  
     
    Bookmark   1 citation  
  43.  10
    Reality of the quantum state: A new proof in terms of protective measurements.Shan Gao - unknown
    The ontological model framework provides a rigorous approach to address the question of whether the quantum state is ontic or epistemic. When considering only conventional projective measurements, auxiliary assumptions are always needed to prove the reality of the quantum state in the framework. For example, the Pusey-Barrett-Rudolph theorem is based on an additional preparation independence assumption. In this paper, we give a new proof of psi-ontology in terms of protective measurements in the ontological model framework. It is argued (...)
    Direct download (5 more)  
     
    Export citation  
     
    Bookmark  
  44.  4
    Evidence for the Epistemic View of Quantum States: A Toy Theory.Robert W. Spekkens - 2007 - Physical Review A 75:032110.
    We present a toy theory that is based on a simple principle: the number of questions about the physical state of a system that are answered must always be equal to the number that are unanswered in a state of maximal knowledge. Many quantum phenomena are found to have analogues within this toy theory. These include the noncommutativity of measurements, interference, the multiplicity of convex decompositions of a mixed state, the impossibility of discriminating nonorthogonal states, the impossibility of (...)
    Direct download  
     
    Export citation  
     
    Bookmark   77 citations  
  45.  5
    On the Possibility That the Present Quantum State of the Universe is the Vacuum.David Z. Albert - 1988 - PSA: Proceedings of the Biennial Meeting of the Philosophy of Science Association 1988:127 - 133.
    It is inquired how much an observer can ascertain of the quantum state of a system of which he and his measuring apparatus form a part; how much, for example, observers like ourselves can ascertain of the quantum state of the Universe. It turns out that no practicable experiment (and: perhaps, no experiment whatever) can establish that that state is not the vacuum. Some of the implications of this curious result are discussed.
    Direct download  
     
    Export citation  
     
    Bookmark   2 citations  
  46.  6
    Optically Engineered Quantum States in Ultrafast and Ultracold Systems.Kenji Ohmori - 2014 - Foundations of Physics 44 (8):813-818.
    This short account summarizes our recent achievements in ultrafast coherent control of isolated molecules in the gas phase, and its ongoing applications to an ensemble of ultracold Rydberg atoms to explore quantum many-body dynamics.
    Direct download (2 more)  
     
    Export citation  
     
    Bookmark  
  47. Sensitivity of entanglement measures in bipartite pure quantum states.Danko D. Georgiev & Stanley P. Gudder - 2022 - Modern Physics Letters B 36 (22):2250101.
    Entanglement measures quantify the amount of quantum entanglement that is contained in quantum states. Typically, different entanglement measures do not have to be partially ordered. The presence of a definite partial order between two entanglement measures for all quantum states, however, allows for meaningful conceptualization of sensitivity to entanglement, which will be greater for the entanglement measure that produces the larger numerical values. Here, we have investigated the partial order between the normalized versions of four (...)
    Direct download (3 more)  
     
    Export citation  
     
    Bookmark  
  48.  5
    Normalized Observational Probabilities from Unnormalizable Quantum States or Phase-Space Distributions.Don N. Page - 2018 - Foundations of Physics 48 (7):827-836.
    Often it is assumed that a quantum state or a phase-space distribution must be normalizable. Here it is shown that even if it is not normalizable, one may be able to extract normalized observational probabilities from it.
    Direct download (2 more)  
     
    Export citation  
     
    Bookmark  
  49.  18
    On the Gravitization of Quantum Mechanics 1: Quantum State Reduction.Roger Penrose - 2014 - Foundations of Physics 44 (5):557-575.
    This paper argues that the case for “gravitizing” quantum theory is at least as strong as that for quantizing gravity. Accordingly, the principles of general relativity must influence, and actually change, the very formalism of quantum mechanics. Most particularly, an “Einsteinian”, rather than a “Newtonian” treatment of the gravitational field should be adopted, in a quantum system, in order that the principle of equivalence be fully respected. This leads to an expectation that quantum superpositions of (...) involving a significant mass displacement should have a finite lifetime, in accordance with a proposal previously put forward by Diósi and the author. (shrink)
    Direct download (3 more)  
     
    Export citation  
     
    Bookmark   11 citations  
  50.  16
    A topos perspective on the kochen-Specker theorem: I. Quantum states as generalised valuations.Chris Isham & Jeremy Butterfield - unknown
    Any attempt to construct a realist interpretation of quantum theory founders on the Kochen-Specker theorem, which asserts the impossibility of assigning values to quantum quantities in a way that preserves functional relations between them. We construct a new type of valuation which is defined on all operators, and which respects an appropriate version of the functional composition principle. The truth-values assigned to propositions are (i) contextual; and (ii) multi-valued, where the space of contexts and the multi-valued logic for (...)
    Direct download (4 more)  
     
    Export citation  
     
    Bookmark   26 citations  
1 — 50 / 999