Results for 'spin'

986 found
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  1. Vigier III.Spin Foam Spinors & Fundamental Space-Time Geometry - 2000 - Foundations of Physics 30 (1).
  2.  72
    Spin and Wind Directions I: Identifying Entanglement in Nature and Cognition.Diederik Aerts, Jonito Aerts Arguëlles, Lester Beltran, Suzette Geriente, Massimiliano Sassoli de Bianchi, Sandro Sozzo & Tomas Veloz - 2018 - Foundations of Science 23 (2):323-335.
    We present a cognitive psychology experiment where participants were asked to select pairs of spatial directions that they considered to be the best example of Two different wind directions. Data are shown to violate the CHSH version of Bell’s inequality with the same magnitude as in typical Bell-test experiments with entangled spins. Wind directions thus appear to be conceptual entities connected through meaning, in human cognition, in a similar way as spins appear to be entangled in experiments conducted in physics (...)
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  3. Spin as a Determinable.Johanna Wolff - 2015 - Topoi 34 (2):379-386.
    In this paper I aim to answer two questions: Can spin be treated as a determinable? Can a treatment of spin as a determinable be used to understand quantum indeterminacy? In response to the first question I show that the relations among spin number, spin components and spin values cannot be captured by a single determination relation; instead we need to look at spin number and spin value separately. In response to the second (...)
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  4.  85
    The Spin-Echo System Reconsidered.D. A. Lavis - 2004 - Foundations of Physics 34 (4):669-688.
    Simple models have played an important role in the discussion of foundational issues in statistical mechanics. Among them the spin-echo system is of particular interest since it can be realized experimentally. This has led to inferences being drawn about approaches to the foundations of statistical mechanics, particularly with respect to the use of coarse-graining. We examine these claims with the help of computer simulations.
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  5.  57
    Do Spin-Offs Make the Academics' Heads Spin?Arend H. Zomer, Ben W. A. Jongbloed & Jürgen Enders - 2010 - Minerva 48 (3):331-353.
    As public research organisations are increasingly driven by their national and regional governments to engage in knowledge transfer, they have started to support the creation of companies. These research based spin-off companies (RBSOs) often keep contacts with the research institutes they originate from. In this paper we present the results of a study of four research institutes within two universities and two non-university public research organisations (PROs) in the Netherlands. We show that research organisations have distinct motivations to support (...)
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  6.  31
    Spin and Wind Directions I: Identifying Entanglement in Nature and Cognition.Robrecht Vanderbeeken & Frederik Le Roy - 2018 - Foundations of Science 23 (2):323-335.
    We present a cognitive psychology experiment where participants were asked to select pairs of spatial directions that they considered to be the best example of Two different wind directions. Data are shown to violate the CHSH version of Bell’s inequality with the same magnitude as in typical Bell-test experiments with entangled spins. Wind directions thus appear to be conceptual entities connected through meaning, in human cognition, in a similar way as spins appear to be entangled in experiments conducted in physics (...)
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  7.  74
    Spin Path Integrals and Generations.Carl Brannen - 2010 - Foundations of Physics 40 (11):1681-1699.
    The spin of a free electron is stable but its position is not. Recent quantum information research by G. Svetlichny, J. Tolar, and G. Chadzitaskos have shown that the Feynman position path integral can be mathematically defined as a product of incompatible states; that is, as a product of mutually unbiased bases (MUBs). Since the more common use of MUBs is in finite dimensional Hilbert spaces, this raises the question “what happens when spin path integrals are computed over (...)
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  8.  8
    Spin in the reporting, interpretation, and extrapolation of adverse effects of orthodontic interventions: protocol for a cross-sectional study of systematic reviews.Reint A. Meursinge Reynders, Nicola Di Girolamo & Pauline A. J. Steegmans - 2019 - Research Integrity and Peer Review 4 (1).
    BackgroundTitles and abstracts are the most read sections of biomedical papers. It is therefore important that abstracts transparently report both the beneficial and adverse effects of health care interventions and do not mislead the reader. Misleading reporting, interpretation, or extrapolation of study results is called “spin”. In this study, we will assess whether adverse effects of orthodontic interventions were reported or considered in the abstracts of both Cochrane and non-Cochrane reviews and whether spin was identified and what type (...)
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  9.  42
    Spin-Statistics Transmutation in Quantum Field Theory.P. A. Marchetti - 2010 - Foundations of Physics 40 (7):746-764.
    Spin-statistics transmutation is the phenomenon occurring when a “dressing” transformation introduced for physical reasons (e.g. gauge invariance) modifies the “bare” spin and statistics of particles or fields. Historically, it first appeared in Quantum Mechanics and in semiclassical approximation to Quantum Field Theory. After a brief historical introduction, we sketch how to describe such phenomenon in Quantum Field Theory beyond the semiclassical approximation, using a path-integral formulation of euclidean correlation functions, exemplifying with anyons, dyons and skyrmions.
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  10.  18
    (1 other version)Connecting Spin and Statistics in Quantum Mechanics.Arthur Jabs - 2010 - Foundations of Physics 40 (7):776-792.
    The spin-statistics connection is derived in a simple manner under the postulates that the original and the exchange wave functions are simply added, and that the azimuthal phase angle, which defines the orientation of the spin part of each single-particle spin-component eigenfunction in the plane normal to the spin-quantization axis, is exchanged along with the other parameters. The spin factor 2s belongs to the exchange wave function when this function is constructed so as to get (...)
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  11.  45
    Spin-Statistics Connection for Relativistic Quantum Mechanics.A. F. Bennett - 2015 - Foundations of Physics 45 (4):370-381.
    The spin-statistics connection has been proved for nonrelativistic quantum mechanics . The proof is extended here to the relativistic regime using the parametrized Dirac equation. A causality condition is not required.
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  12.  33
    Identifying spin in health management evaluations.Ariel Linden - 2011 - Journal of Evaluation in Clinical Practice 17 (6):1223-1230.
  13.  4
    Academic Spin-offs through the Lens of Pragmatism and Mixed Methods.Alexander Romero-Sánchez, Geovanny Perdomo-Charry & Edy Lorena Burbano-Vallejo - forthcoming - Evolutionary Studies in Imaginative Culture:30-67.
    In conclusion, this paper explores the intricate dynamics of improper omission as an amplifying device within the Colombian legal context. A detailed analysis has demonstrated how improper omission allows the imputation and punishment of individuals who, without fulfilling the typical description of conduct, incur criminal liability when they abandon their role as guarantors in the absence of a nexus of avoidability. This occurs when they fail to prevent the typical results that, in the context of legal assets in their charge, (...)
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  14. Spinning Shadows.Roy Sorensen - 2006 - Philosophy and Phenomenological Research 72 (2):345 - 365.
    If a spinning sphere casts a shadow, does the shadow also spin? This riddle is the point of departure for an investigation into the nature of shadow movement. A general theory of motion will encompass all moving things, not just physical objects. Ultimately, I argue that round shadows do indeed spin. Shadows are followers of the objects that cast them. Parts of the shadow correspond to parts of the leader, so motion of the caster's parts accounts for motions (...)
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  15. Unified spin gauge model and the top quark mass.J. S. R. Chisholm & R. S. Farwell - 1995 - Foundations of Physics 25 (10):1511-1522.
    Spin gauge models use a real Clifford algebraic structure Rp,q associated with a real manifold of dimension p + q to describe the fundamental interactions of elementary particles. This review provides a comparison between those models and the standard model, indicating their similarities and differences. By contrast with the standard model, the spin gauge model based on R3,8 generates intermediate boson mass terms without the need to use the Higgs-Kibble mechanism and produces a precise prediction for the mass (...)
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  16.  38
    The spin of the electron according to stochastic electrodynamics.L. de la Peña & A. Jáuregui - 1982 - Foundations of Physics 12 (5):441-465.
    By making use of the method of moments we study some aspects of the statistical behavior of the nonrelativistic harmonic oscillator according to stochastic electrodynamics. We show that the random rotations induced on the particle by the zero-point field account for the magnitude of the spin of the electron, the result differing from the correct one(3/4)h 2 by a factor of2. Assuming that the measurement of a spin projection may be effectively taken into account by considering the action (...)
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  17.  10
    The Morality of Spin: Virtue and Vice in Political Rhetoric and the Christian Right.Nathaniel J. Klemp - 2012 - Rowman & Littlefield Publishers.
    The Morality of Spin explores the ethics of political rhetoric crafted to persuade and possibly manipulate potential voters. Based on extensive insider interviews with leaders of Focus on the Family, one of the most powerful Christian right organizations in America, Nathaniel Klemp asks whether the tactic of tailoring a message to a particular audience is politically legitimate or amounts to democratic malpractice. Klemp’s nuanced assessment, highlighting both democratic vices and virtues of the political rhetoric, provides a welcome contribution to (...)
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  18.  68
    High-spin yrast states in the gamma-soft nuclei Pr-135 and Ce-134.E. S. Paul, C. Fox, A. J. Boston, H. J. Chantler, C. J. Chiara, R. M. Clark, M. Cromaz, M. Descovich, P. Fallon, D. B. Fossan, A. A. Hecht, T. Koike, I. Y. Lee, A. O. Macchiavelli, P. J. Nolan, K. Starosta, R. Wadsworth, I. Ragnarsson & Bob Wadsworth - unknown
    High-spin states have been studied in Pr-135(59), populated through the Cd-116(Na-23,4n) reaction at 115 MeV, using the Gammasphere gamma-ray spectrometer. The negative-parity yrast band has been significantly extended to spin similar to 45 (h) over bar and excitation energy 21.5 MeV, showing evidence for several rotational alignments. The positive-parity yrast band of Ce-135(58), populated through the p4n channel of this reaction, was also populated to spin similar to 38 (h) over bar and excitation energy 18 MeV. Cranking (...)
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  19. Magnets, spins, and neurons: The dissemination of model templates across disciplines.Tarja Knuuttila & Andrea Loettgers - 2014 - The Monist 97 (3):280-300.
    One of the most conspicuous features of contemporary modeling practices is the dissemination of mathematical and computational methods across disciplinary boundaries. We study this process through two applications of the Ising model: the Sherrington-Kirkpatrick model of spin glasses and the Hopfield model of associative memory. The Hopfield model successfully transferred some basic ideas and mathematical methods originally developed within the study of magnetic systems to the field of neuroscience. As an analytical resource we use Paul Humphreys's discussion of computational (...)
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  20.  49
    Spin-Dependent Bohmian Electronic Trajectories for Helium.J. A. Timko & E. R. Vrscay - 2009 - Foundations of Physics 39 (9):1055-1071.
    We examine “de Broglie-Bohm” causal trajectories for the two electrons in a nonrelativistic helium atom, taking into account the spin-dependent momentum terms that arise from the Pauli current. Given that this many-body problem is not exactly solvable, we examine approximations to various helium eigenstates provided by a low-dimensional basis comprised of tensor products of one-particle hydrogenic eigenstates.First to be considered are the simplest approximations to the ground and first-excited electronic states found in every introductory quantum mechanics textbook. For example, (...)
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  21. The Spin-Echo Experiments and the Second Law of Thermodynamics.T. M. Ridderbos & M. L. G. Redhead - 1998 - Foundations of Physics 28 (8):1237-1270.
    We introduce a simple model for so-called spin-echo experiments. We show that the model is a mincing system. On the basis of this model we study fine-grained entropy and coarse-grained entropy descriptions of these experiments. The coarse-grained description is shown to be unable to provide an explanation of the echo signals, as a result of the way in which it ignores dynamically generated correlations. This conclusion is extended to the general debate on the foundations of statistical mechanics. We emphasize (...)
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  22.  95
    Spin and Wind Directions II: A Bell State Quantum Model.Diederik Aerts, Jonito Aerts Arguëlles, Lester Beltran, Suzette Geriente, Massimiliano Sassoli de Bianchi, Sandro Sozzo & Tomas Veloz - 2018 - Foundations of Science 23 (2):337-365.
    In the first half of this two-part article, we analyzed a cognitive psychology experiment where participants were asked to select pairs of directions that they considered to be the best example of Two Different Wind Directions, and showed that the data violate the CHSH version of Bell’s inequality, with same magnitude as in typical Bell-test experiments in physics. In this second part, we complete our analysis by presenting a symmetrized version of the experiment, still violating the CHSH inequality but now (...)
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  23.  37
    SUSY, Spin-Statistics, and all that... On the contrast between Spin-Statistics and Wigner’s Theorem.Marco Sanchioni & Enrico Cinti - Manuscript, 2023 - British Journal for the Philosophy of Science.
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  24. Higher Spin Fields and Non-Holonomic Constraints.E. C. G. Sudarshan - 2003 - Foundations of Physics 33 (5):707-717.
    I review theories and problems of inconsistencies in the description of higher spin wave equations.
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  25. Nucleon spin structure studies at COMPASS.Claude Marchand - 2006 - Hermes 143:E155.
  26. GR as a classical spin-2 theory?Niels Linnemann, Chris Smeenk & Mark Robert Baker - forthcoming - Philosophy of Science.
    The self-interaction spin-2 approach to GR has been extremely influential in the particle physics community. Leaving no doubt regarding its heuristic value, we argue that any view of the metric field of GR as nothing but a stand-in for a self-coupling field in at spacetime runs into a dilemma: either the view is physically incomplete in so far as it requires recourse to GR after all, or it leads to an absurd multiplication of alternative viewpoints on GR rendering any (...)
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  27.  13
    Spinning Narratives, Spinning Selves.Pauline O’Flynn - 2011 - Philosophy Now 85:29-31.
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  28.  65
    Spin and Statistics and First Principles.Sergio Doplicher - 2010 - Foundations of Physics 40 (7):719-732.
    It was shown in the early seventies that, in Local Quantum Theory (that is the most general formulation of Quantum Field Theory, if we leave out only the unknown scenario of Quantum Gravity) the notion of Statistics can be grounded solely on the local observable quantities (without assuming neither the commutation relations nor even the existence of unobservable charged field operators); one finds that only the well known (para)statistics of Bose/Fermi type are allowed by the key principle of local commutativity (...)
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  29.  35
    Spin Factors as Generalized Hermitian Algebras.David J. Foulis & Sylvia Pulmannová - 2009 - Foundations of Physics 39 (3):237-255.
    We relate so-called spin factors and generalized Hermitian (GH-) algebras, both of which are partially ordered special Jordan algebras. Our main theorem states that positive-definite spin factors of dimension greater than one are mathematically equivalent to generalized Hermitian algebras of rank two.
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  30.  60
    Proof of the Spin–Statistics Theorem.Enrico Santamato & Francesco De Martini - 2015 - Foundations of Physics 45 (7):858-873.
    The traditional standard quantum mechanics theory is unable to solve the spin–statistics problem, i.e. to justify the utterly important “Pauli Exclusion Principle”. A complete and straightforward solution of the spin–statistics problem is presented on the basis of the “conformal quantum geometrodynamics” theory. This theory provides a Weyl-gauge invariant formulation of the standard quantum mechanics and reproduces successfully all relevant quantum processes including the formulation of Dirac’s or Schrödinger’s equation, of Heisenberg’s uncertainty relations and of the nonlocal EPR correlations. (...)
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  31.  62
    Spinning the Genome: Why Science Hype Matters.Timothy Caulfield - 2018 - Perspectives in Biology and Medicine 61 (4):560-571.
    Genetic research attracts significant attention from the popular press, and often these representations are less than ideal, skewing toward hyperbole and promises of near-future benefits. Indeed, revolutionary language has permeated public discourse since the start of the Human Genome Project in the early 1990s. If the near constant parade of enthusiastic headlines is to be believed, we have been in the midst of a "genetic revolution" for over three decades, yet, the promised revolutionary changes never fully materialize, at least not (...)
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  32.  32
    On the Spin Projection Operator and the Probabilistic Meaning of the Bipartite Correlation Function.Ana María Cetto, Andrea Valdés-Hernández & Luis de la Peña - 2020 - Foundations of Physics 50 (1):27-39.
    Spin is a fundamental and distinctive property of the electron, having far-reaching implications. Yet its purely formal treatment often blurs the physical content and meaning of the spin operator and associated observables. In this work we propose to advance in disclosing the meaning behind the formalism, by first recalling some basic facts about the one-particle spin operator. Consistently informed by and in line with the quantum formalism, we then proceed to analyse in detail the spin projection (...)
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  33.  64
    Making Sense of Spin.Neil C. Manson - 2012 - Journal of Applied Philosophy 29 (3):200-213.
    Spin” is a pejorative term for a ubiquitous form of communication. Spin is viewed by many as deceptive, and by others as bending or twisting the truth. But spin need not be deceptive and the metaphors are less than clear. The aim here is to clarify what spin is: spin is identified as a form of selective claim-making, where the process of selection is governed by an intention to bring about promotional perlocutionary effects. The process (...)
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  34.  22
    The Spin Structure of the Nucleon; A COMPASS Perspective.Andrea Bressan - 2010 - Foundations of Physics 40 (7):1030-1041.
    The COMPASS experiment at CERN is carrying on an experimental investigation of the spin structure of the nucleon, covering both longitudinal and transverse spin phenomena. In the first case, the central topic is the direct measurement of the gluon polarisation with the hope to solve the spin crisis first observed by EMC. The result shows that Δg/g is small around x g ≃0.1, and its first moment should not be larger than 0.2—0.3 in absolute value. About transverse (...)
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  35.  26
    Spin magnetic moment of a free relativistic electron.T. L. Chow - 1975 - Foundations of Physics 5 (3):453-454.
    By decomposing the charge-current density, it is demonstrated that the “built-in” spin magnetic moment of a free relativistic electron iseħ/2mc, wherem is the Lorentz mass.
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  36.  91
    Spinning strands into aspects: Realism, idealism, and finite modes in Spinoza.Noa Shein - 2020 - European Journal of Philosophy 28 (2):323-336.
    There is a long tradition of reading Spinoza as committed, perhaps unwillingly, to the non-reality of finite modes. While acknowledging that Spinoza does seem to rely on the reality of modes in certain places, Michael Della Rocca has called attention to what he labels an “idealist strand.” As a concluding remark in “Steps Toward Eleaticism in Spinoza's Philosophy of Action,” he claims that faced with these two conflicting strands, which are genuinely to be found in the text, it is better (...)
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  37.  20
    Spin and Contextuality in Extended de Broglie-Bohm-Bell Quantum Mechanics.Jeroen C. Vink - 2022 - Foundations of Physics 52 (5):1-27.
    This paper introduces an extension of the de Broglie-Bohm-Bell formulation of quantum mechanics, which includes intrinsic particle degrees of freedom, such as spin, as elements of reality. To evade constraints from the Kochen-Specker theorem the discrete spin values refer to a specific basis – i.e., a single spin vector orientation for each particle; these spin orientations are, however, not predetermined, but dynamic and guided by the wave function of the system, which is conditional on the realized (...)
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  38.  15
    Creación de Spin Off Como Estrategia de Aprendizaje.Elvia Rosalía Inga Llanez & María Fernanda Yaguache Aguilar - 2022 - Human Review. International Humanities Review / Revista Internacional de Humanidades 11 (2):1-12.
    A partir del siglo XX se ha dado un cambio de paradigma en el proceso de enseñanza-aprendizaje con el apoyo de las nuevas tecnologías se añade a la creación de empresa la denominación de Spin Off que permite explotar la investigación y el conocimiento –práctico de los estudiantes. Su creación se basa en el proceso de constitución deSociedades por Acciones Simplificadas (SAS) y un modelo paralelista de doble entrada (conocimiento/práctica) para el desarrollo académico de Contabilidad financieraavanzada. Los estudiantes responden (...)
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  39.  75
    Deriving Spin within a Discrete-Time Theory.Erasmo Recami & Giovanni Salesi - 2007 - Foundations of Physics 37 (2):277-294.
    We prove that the classical theory with a discrete time (chronon) is a particular case of a more general theory in which spinning particles are associated with generalized Lagrangians containing time-derivatives of any order (a theory that has been called “Non-Newtonian Mechanics”). As a consequence, we get, for instance, a classical kinematical derivation of Hamiltonian and spin vector for the mentioned chronon theory (e.g., in Caldirola et al.’s formulation). Namely, we show that the extension of classical mechanics obtained by (...)
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  40.  91
    Spin, truth and lies.Stephen Burwood - 2004 - The Philosophers' Magazine 26 (28):46-48.
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  41.  8
    Spin, truth and lies.Stephen Burwood - 2004 - The Philosophers' Magazine 28:73-77.
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  42.  37
    General Spin Dirac Equation.Golden Gadzirayi Nyambuya - 2009 - Apeiron: Studies in Infinite Nature 16 (4):516.
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  43.  18
    Isotopic spin selection rules X: The 7.18 MeV state of20Ne.B. J. Toppel, S. D. Bloom & D. H. Wilkinson - 1957 - Philosophical Magazine 2 (13):61-62.
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  44. Spin: All is not what it seems.Margaret Morrison - 2007 - Studies in History and Philosophy of Science Part B: Studies in History and Philosophy of Modern Physics 38 (3):529-557.
  45.  67
    Spin-1/2 Maxwell Fields.Rollin S. Armour - 2004 - Foundations of Physics 34 (5):815-842.
    Requiring covariance of Maxwell's equations without a priori imposing charge invariance allows for both spin-1 and spin-1/2 transformations of the complete Maxwell field and current. The spin-1/2 case yields new transformation rules, with new invariants, for all traditional Maxwell field and source quantities. The accompanying spin-1/2 representations of the Lorentz group employ the Minkowski metric, and consequently the primary spin-1/2 Maxwell invariants are also spin-1 invariants; for example, Φ2−A2, E2−B2+2iE⋅B−2. The associated Maxwell Lagrangian density (...)
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  46.  19
    Academic spin-offs and innovative start-ups : Two of the same.Maximilian Goethner - 2010 - Analysis.
    It has become commonplace to consider start-ups originating from the science field usually referred to as academic spin-offs as drivers of innovation, productivity, and employment. However, only little is known about the process of spin-off creation (e.g., Goethner et al., 2009) and development (e.g., Mustar et al., 2006; Vohora et al., 2004). Specifically, there has not been sufficient empirical research directly comparing equivalently matched groups of academic spin-offs and non-academic start-ups in order to draw definitive conclusions on (...)
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  47.  51
    Is spin coherence like Humpty-Dumpty? I. Simplified treatment.Berthold-Georg Englert, Julian Schwinger & Marlan O. Scully - 1988 - Foundations of Physics 18 (10):1045-1056.
    When Humpty-Dumpty had his great fall nobody could put him together again. A vastly more moderate challenge is to reunite the two partial beams of a Stern-Gerlach apparatus with such precision that the original spin state is recovered. Nevertheless, as we demonstrate, a substantial loss of spin coherence always occurs, unless the experimenter is able to control the magnetic field's inhomogeneity with an accuracy of at least one part in 105.
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  48. Relativistic spin on the Poincaré group.Ludger Hannibal - 1997 - Foundations of Physics 27 (1):43-56.
    Classical spinning particles are interpreted in terms of an underlying geometric theory. They are described by trajectories on the Poincaré group. Upon quantization an eleven-dimensional Kaluza-Klein type theory is obtained which incorporates spin and isospin in a local SL(2, C)×U(1)×SU(2) gauge theory, unifying gravity and the pre-Higgs standard model. The relation to parametrized relativistic quantum theory is discussed.
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  49. Deterministic model of spin and statistics.Itamar Pitowsky - unknown
    A deterministic model that accounts for the statistical behavior of random samples of identical particles is presented. The model is based on some nonmeasurable distribution of spin values in all directions. The mathematical existence of such distributions is proved by set-theoretical techniques, and the relation between these distributions and observed frequencies is explored within an appropriate extension of probability theory. The relation between quantum mechanics and the model is specified. The model is shown to be consistent with known polarization (...)
     
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  50.  22
    The spin of124Sb and the spin and moments of122Sb.P. C. B. Fernando, G. K. Rochester & K. F. Smith - 1960 - Philosophical Magazine 5 (60):1309-1309.
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