Results for 'Nonlinear electrodynamics'

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  1.  23
    A generalization of Dirac nonlinear electrodynamics, and spinning charged particles.Waldyr A. Rodrigues, Jayme Vaz & Erasmo Recami - 1993 - Foundations of Physics 23 (3):469-485.
    In this paper—dedicated to Prof. Asim O. Barut—we generalize the Diracnon-linear electrodynamics by introducing two potentials(namely, the vector potential A and the pseudo-vector potential γ5B of the electromagnetic theorywith charges and magnetic monopoles) and by imposing the pseudoscalar part of the product ωω* to be zero, with ω≡A+γ5B. We show that the field equations of such a theory possess a soliton-like solution which can representa priori a “charged particle,” since it is endowed with a Coulomb field plus the field (...)
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  2.  23
    The Dirac electron theory as the approximation of the nonlinear electrodynamics.Alexander G. Kyriakos - 2004 - Apeiron 11 (3):58.
  3.  23
    Maxwell electrodynamics from a theory of macroscopically extended particles.J. W. G. Wignall - 1990 - Foundations of Physics 20 (2):139-158.
    It is shown that an approach to quantum phenomena in which charged particles are treated as macroscopically extended periodic disturbances in a nonlinear c-number field, interacting with each other via massless excitations of that field, leads almost uniquely to the five basic equations of classical electrodynamics: the Lorentz force law and Maxwell's equations. The fundamental electromagnetic quantity in this approach is the 4-vector potential Aα—interpreted absolutely as a measure of the local shift of each particle off its mass (...)
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  4.  32
    Classical electrodynamic systems interacting with classical electromagnetic random radiation.Daniel C. Cole - 1990 - Foundations of Physics 20 (2):225-240.
    In the past, a few researchers have presented arguments indicating that a statistical equilibrium state of classical charged particles necessarily demands the existence of a temperature-independent, incident classical electromagnetic random radiation. Indeed, when classical electromagnetic zero-point radiation is included in the analysis of problems with macroscopic boundaries, or in the analysis of charged particles in linear force fields, then good agreement with nature is obtained. In general, however, this agreement has not been found to hold for charged particles bound in (...)
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  5.  19
    Nonlinear wave mechanics and particulate self-focusing.Dan Censor - 1980 - Foundations of Physics 10 (7-8):555-566.
    A previous model for treating electromagnetic nonlinear wave systems is examined in the context of wave mechanics. It is shown that nonlinear wave mechanics implies harmonic generation of new quasiparticle wave functions, which are absent in linear systems. The phenomenon is interpreted in terms of pair (and higher order ensembles) coherence of the interacting particles. The implications are far-reaching, and the present approach might contribute toward a common basis for diverse physical phenomena involving nonlinearity. An intimate relationship connecting (...)
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  6.  31
    The Foundations of Linear Stochastic Electrodynamics.L. De la Peña & A. M. Cetto - 2006 - Foundations of Physics 36 (3):350-368.
    An analysis is briefly presented of the possible causes of the failure of stochastic electrodynamics (SED) when applied to systems with nonlinear forces, on the basis that the main principles of the theory are correct. In light of this analysis, an alternative approach to the theory is discussed, whose postulates allow to establish contact with quantum mechanics in a natural way. The ensuing theory, linear SED, confirms the essential role of the vacuum–particle interaction as the source of quantum (...)
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  7.  55
    Nonperturbative quantum electrodynamics: The Lamb shift. [REVIEW]A. O. Barut & J. Kraus - 1983 - Foundations of Physics 13 (2):189-194.
    The nonlinear integro-differential equation, obtained from the coupled Maxwell-Dirac equations by eliminating the potential Aμ, is solved by iteration rather than perturbation. The energy shift is complex, the imaginary part giving the spontaneous emission. Both self-energy and vacuum polarization terms are obtained. All results, including renormalization terms, are finite.
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  8.  35
    Quantum mechanics derived from stochastic electrodynamics.L. de la Peña-Auerbach & A. M. Cetto - 1978 - Foundations of Physics 8 (3-4):191-210.
    The connection between stochastic electrodynamics (SED) and the quantum theory of matter is further explored. The main result is that the Fokker-Planck-like equation of SED can be recast into the form of a Schrödinger equation with radiative corrections, when the system is close to a state of equilibrium. The phase-space distribution can be written as Wigner's pseudo-distribution plus corrections due to the nonlinearity of the external force and to radiative effects. The radiative corrections predicted by the theory, namely the (...)
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  9.  89
    From Time Inversion to Nonlinear QED.Wei Min Jin - 2000 - Foundations of Physics 30 (11):1943-1973.
    In Minkowski flat space-time, it is perceived that time inversion is unitary rather than antiunitary, with energy being a time vector changing sign under time inversion. The Dirac equation, in the case of electromagnetic interaction, is not invariant under unitary time inversion, giving rise to a “Klein paradox.” To render unitary time inversion invariance, a nonlinear wave equation is constructed, in which the “Klein paradox” disappears. In the case of Coulomb interaction, the revised nonlinear equation can be linearized (...)
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  10.  50
    Ground State H-Atom in Born-Infeld Theory.S. Habib Mazharimousavi & M. Halilsoy - 2012 - Foundations of Physics 42 (4):524-530.
    Within the context of Born-Infeld (BI) nonlinear electrodynamics (NED) we revisit the non-relativistic, spinless H-atom. The pair potential computed from the Born-Infeld equations is approximated by the Morse type potential with remarkable fit over the critical region where the convergence of both the short and long distance expansions slows down dramatically. The Morse potential is employed to determine both the ground state energy of the electron and the BI parameter.
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  11.  43
    Radiation Reaction of a Nonrelativistic Quantum Charged Particle.J. A. E. Roa-Neri & J. L. Jiménez - 2004 - Foundations of Physics 34 (4):547-580.
    An alternative approach to analyze the nonrelativistic quantum dynamics of a rigid and extended charged particle taking into account the radiation reaction is discussed with detail. Interpretation of the field operators as annihilation and creation ones, theory of perturbations and renormalization are not used. The analysis is carried out in the Heisenberg picture with the electromagnetic field expanded in a complete orthogonal basis set of functions which allows the electromagnetic field to satisfy arbitrary boundary conditions. The corresponding coefficients are the (...)
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  12.  4
    Analogue Gravity Phenomenology: Analogue Spacetimes and Horizons, from Theory to Experiment.Francesco Belgiorno, Sergio Cacciatori, Daniele Faccio, Vittorio Gorini, Stefano Liberati & Ugo Moschella (eds.) - 2013 - Cham: Imprint: Springer.
    Analogue Gravity Phenomenology is a collection of contributions that cover a vast range of areas in physics, ranging from surface wave propagation in fluids to nonlinear optics. The underlying common aspect of all these topics, and hence the main focus and perspective from which they are explained here, is the attempt to develop analogue models for gravitational systems. The original and main motivation of the field is the verification and study of Hawking radiation from a horizon: the enabling feature (...)
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  13.  44
    Two Mathematically Equivalent Versions of Maxwell’s Equations.Tepper L. Gill & Woodford W. Zachary - 2011 - Foundations of Physics 41 (1):99-128.
    This paper is a review of the canonical proper-time approach to relativistic mechanics and classical electrodynamics. The purpose is to provide a physically complete classical background for a new approach to relativistic quantum theory. Here, we first show that there are two versions of Maxwell’s equations. The new version fixes the clock of the field source for all inertial observers. However now, the (natural definition of the effective) speed of light is no longer an invariant for all observers, but (...)
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  14.  38
    Geometrization of the physics with teleparallelism. I. The classical interactions.José G. Vargas - 1992 - Foundations of Physics 22 (4):507-526.
    A connection viewed from the perspective of integration has the Bianchi identities as constraints. It is shown that the removal of these constraints admits a natural solution on manifolds endowed with a metric and teleparallelism. In the process, the equations of structure and the Bianchi identities take standard forms of field equations and conservation laws.The Levi-Civita (part of the) connection ends up as the potential for the gravity sector, where the source is geometric and tensorial and contains an explicit gravitational (...)
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  15. Nonlinear effects of spatial connectedness implicate hierarchically structured representations in visual working memory.Błażej Skrzypulec & Adam Chuderski - 2020 - Journal of Memory and Language 113:104124.
    Five experiments investigated the role of spatial connectedness between a pair of objects presented in the change detection task for the actual capacity of visual working memory (VWM) in healthy young adults (total N = 405). Three experiments yielded a surprising nonlinear relationship between the proportion of pair-wise connected objects and capacity, with the highest capacity observed for homogenous displays, when either all objects were connected or disjointed. A drop in capacity, ranging from an average of a quarter of (...)
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  16.  4
    A thousand years of nonlinear history.Manuel De Landa - 1997 - New York: Zone Books.
    More than a simple expository history, A Thousand Years of Nonlinear History sketches the outlines of a renewed materialist philosophy of history in the tradition of Fernand Braudel, Gilles Deleuze, and F lix Guattari, while also engaging the critical new understanding of material processes derived from the sciences of dynamics.Following in the wake of his groundbreaking War in the Age of Intelligent Machines, Manuel De Landa presents a radical synthesis of historical development over the last one thousand years. More (...)
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  17.  66
    For electrodynamic consistency.Lena Zuchowski - 2013 - Studies in History and Philosophy of Science Part B: Studies in History and Philosophy of Modern Physics 44 (2):135-142.
    I will present a refutation of 6 and 7 inconsistency claim. Using the proof by Kiessling, I will show that Classical Electrodynamics can be applied consistently and can preserve energy conservation to the problem of charged, accelerated particles. This refutes the core of Frisch's inconsistency claim. Additionally, I will argue that Frisch's proof and the resulting debate is based on a comparison of different, approximate, explicit solutions to the Maxwell–Lorentz equations. However, in order to be informative on the foundations (...)
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  18. Nonlinearity and metaphysical emergence.Jessica M. Wilson - 2013 - In Stephen Mumford & Matthew Tugby (eds.), Metaphysics and Science.
    The nonlinearity of a composite system, whereby certain of its features (including powers and behaviors) cannot be seen as linear or other broadly additive combinations of features of the system's composing entities, has been frequently seen as a mark of metaphysical emergence, coupling the dependence of a composite system on an underlying system of composing entities with the composite system's ontological autonomy from its underlying system. But why think that nonlinearity is a mark of emergence, and moreover, of metaphysical rather (...)
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  19.  54
    The Electrodynamic 2-Body Problem and the Origin of Quantum Mechanics.C. K. Raju - 2004 - Foundations of Physics 34 (6):937-962.
    We numerically solve the functional differential equations (FDEs) of 2-particle electrodynamics, using the full electrodynamic force obtained from the retarded Lienard–Wiechert potentials and the Lorentz force law. In contrast, the usual formulation uses only the Coulomb force (scalar potential), reducing the electrodynamic 2-body problem to a system of ordinary differential equations (ODEs). The ODE formulation is mathematically suspect since FDEs and ODEs are known to be incompatible; however, the Coulomb approximation to the full electrodynamic force has been believed to (...)
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  20.  72
    Quantum electrodynamics within the framework of a new four-dimensional symmetry.J. P. Hsu - 1978 - Foundations of Physics 8 (5-6):371-391.
    We discuss quantum electrodynamics within the framework of a new four-dimensional symmetry in which the concept of time, the propagation of light, and the transformation property of many physical quantities are drastically different from those in special relativity. However, they are consistent with experiments. The new framework allows for natural developments of additional concepts. Observers in different frames may use the same grid of clocks, located in any one of the frames, and hence have a universal time.
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  21.  92
    Nonlinearity in the epidemiology of complex health and disease processes.P. Philippe & O. Mansi - 1998 - Theoretical Medicine and Bioethics 19 (6):591-607.
    The challenges posed by chronic illness have pointed out to epidemiologists the multifactorial complex nature of disease causality. This notion has been referred to as a web of causality. This web extends theoretically beyond risk markers. It includes determinants of emergence/non-emergence of disease. This web of determinants is a form of complex system. Due to its complexity, the determinants within such system are not linked to each others in a linear, predictable manner only. Predictability is possible only on a short-term (...)
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  22.  51
    Electrodynamics of Balanced Charges.Anatoli Babin & Alexander Figotin - 2011 - Foundations of Physics 41 (2):242-260.
    We introduce here a new “neoclassical” electromagnetic (EM) theory in which elementary charges are represented by wave functions and individual EM fields to account for their EM interactions. We call so defined charges balanced or “b-charges”. We construct the EM theory of b-charges (BEM) based on a relativistic field Lagrangian and show that: (i) the elementary EM fields satisfy the Maxwell equations; (ii) the Newton equations with the Lorentz forces hold approximately when b-charges are well separated and move with non-relativistic (...)
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  23.  47
    Two electrodynamics between plurality and reduction.Wolfgang Pietsch - unknown
    Comparing action-at-a-distance electrodynamics in the tradition of Coulomb and Ampère with electromagnetic field theory of Faraday and Maxwell provides an example for a relation between theories, that are on a par in many respects. They have a broadly overlapping domain of applicability, and both were widely successful in explanation and prediction. The relation can be understood as an inhomogeneous reduction without a clear distinction between reducing and reduced theory. It is argued in general, when a clear hierarchy between competing (...)
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  24. Does quantum electrodynamics have an arrow of time?☆.David Atkinson - 2005 - Studies in History and Philosophy of Science Part B: Studies in History and Philosophy of Modern Physics 37 (3):528-541.
    Quantum electrodynamics is a time-symmetric theory that is part of the electroweak interaction, which is invariant under a generalized form of this symmetry, the PCT transformation. The thesis is defended that the arrow of time in electrodynamics is a consequence of the assumption of an initial state of high order, together with the quantum version of the equiprobability postulate.
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  25. Electrodynamics in context: object states, laboratory practice and anti-Romanticism.Jed Z. Buchwald - 1993 - In David Cahan (ed.), Hermann von Helmholtz and the Foundations of Nineteenth-Century Science. University of California Press. pp. 345--368.
     
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  26.  22
    Nonlinear Models of Electric Charge and Magnetic Moment.I. Bersons & R. Veilande - 2015 - Foundations of Physics 45 (11):1526-1532.
    The models of the electric charge and magnetic moment are presented based on the nonlinear response of a vacuum on the applied electric and magnetic fields. The model of the electric charge contains one parameter—the radius of charge—and predicts one value of the electric charge for all elementary particles independently on the value of this radius. Different values of this parameter for the electron are discussed.
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  27.  11
    Nonlinear Dynamical Systems Analysis for the Behavioral Sciences Using Real Data.Stephen J. Guastello & Robert A. M. Gregson (eds.) - 2010 - Crc Press.
    Although its roots can be traced to the 19th century, progress in the study of nonlinear dynamical systems has taken off in the last 30 years. While pertinent source material exists, it is strewn about the literature in mathematics, physics, biology, economics, and psychology at varying levels of accessibility. A compendium research methods reflecting the expertise of major contributors to NDS psychology, Nonlinear Dynamical Systems Analysis for the Behavioral Sciences Using Real Data examines the techniques proven to be (...)
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  28.  42
    Electrodynamics at spatial infinity.Matthew Alexander & Peter G. Bergmann - 1984 - Foundations of Physics 14 (10):925-951.
    In preparation for the treatment of the gravitational field at spatial infinity, this paper deals with the electromagnetic field at spatial infinity. The field equations on this three-dimensional(1+2) manifold can be obtained from an action principle, which in turn lends itself to a Hamiltonian formulation. Quantization is formally straightforward, but some thought is given to the physical interpretation of the results.
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  29.  51
    Nonabelian Electrodynamics and SU (2) SU (2) Electroweak Theory in LEP1 Data on Z Particle Production.L. B. Crowell - 2000 - Apeiron 7 (1-2).
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  30. Nonlinear dynamics: How science comprehends chaos.Sunny Auyang - manuscript
    Behaviors of chaotic systems are unpredictable. Chaotic systems are deterministic, their evolutions being governed by dynamical equations. Are the two statements contradictory? They are not, because the theory of chaos encompasses two levels of description. On a higher level, unpredictability appears as an emergent property of systems that are predictable on a lower level. In this talk, we examine the structure of dynamical theories to see how they employ multiple descriptive levels to explain chaos, bifurcation, and other complexities of (...) systems.. (shrink)
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  31.  39
    Electrodynamics and Spacetime Geometry: Foundations.Francisco Cabral & Francisco S. N. Lobo - 2017 - Foundations of Physics 47 (2):208-228.
    We explore the intimate connection between spacetime geometry and electrodynamics. This link is already implicit in the constitutive relations between the field strengths and excitations, which are an essential part of the axiomatic structure of electromagnetism, clearly formulated via integration theory and differential forms. We review the foundations of classical electromagnetism based on charge and magnetic flux conservation, the Lorentz force and the constitutive relations. These relations introduce the conformal part of the metric and allow the study of (...) for specific spacetime geometries. At the foundational level, we discuss the possibility of generalizing the vacuum constitutive relations, by relaxing the fixed conditions of homogeneity and isotropy, and by assuming that the symmetry properties of the electro-vacuum follow the spacetime isometries. The implications of this extension are briefly discussed in the context of the intimate connection between electromagnetism and the geometry of spacetime. (shrink)
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  32. On the electrodynamics of moving bodies.Albert Einstein - 1920 - In The Principle of Relativity. [Calcutta]: Dover Publications. pp. 35-65.
    It is known that Maxwell’s electrodynamics—as usually understood at the present time—when applied to moving bodies, leads to asymmetries which do not appear to be inherent in the phenomena. Take, for example, the reciprocal electrodynamic action of a magnet and a conductor. The observable phenomenon here depends only on the relative motion of the conductor and the magnet, whereas the customary view draws a sharp distinction between the two cases in which either the one or the other of these (...)
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  33. Nonlinear synthesis and co‐evolution of complex systems.Helena Knyazeva & Sergei P. Kurdyumov - 2001 - World Futures 57 (3):239-261.
    Today a change is imperative in approaching global problems: what is needed is not arm-twisting and power politics, but searching for ways of co-evolution in the complex social and geopolitical systems of the world. The modern theory of self-organization of complex systems provides us with an understanding of the possible forms of coexistence of heterogeneous social and geopolitical structures at different stages of development regarding the different paths of their sustainable co-evolutionary development. The theory argues that the evolutionary channel to (...)
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  34.  17
    Nonlinear photonic quasicrystals for novel optical devices.A. Bahabad, R. Lifshitz, N. Voloch & A. Arie - 2008 - Philosophical Magazine 88 (13-15):2285-2293.
  35. Inconsistency in classical electrodynamics?F. A. Muller - 2007 - Philosophy of Science 74 (2):253-277.
    In a recent issue of this journal, M. Frisch claims to have proven that classical electrodynamics is an inconsistent physical theory. We argue that he has applied classical electrodynamics inconsistently. Frisch also claims that all other classical theories of electromagnetic phenomena, when consistent and in some sense an approximation of classical electrodynamics, are haunted by “serious conceptual problems” that defy resolution. We argue that this claim is based on a partisan if not misleading presentation of theoretical research (...)
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  36.  30
    Collective Electrodynamics: Quantum Foundations of Electromagnetism.Carver A. Mead - 2002 - MIT Press.
    Carver Mead offers a radically new approach to the standard problems of electromagnetic theory.
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  37.  28
    Nonlinear data analysis of experimental (EEG) data and comparison with theoretical (ANN) data.Atin Das, Pritha Das & A. B. Roy - 2002 - Complexity 7 (3):30-40.
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  38.  49
    A Nonlinear Method for Measuring the Effects of Environmental Variations.Mihaela D. Iftime - 2011 - Foundations of Science 16 (4):353-361.
    Ever wonder if it is possible to construct a numeric scale for environmental variables, like one does for the temperature? This paper is an attempt to construct one. There are two main parts: section “Statistical Analysis of Variations” presents a general statistical strategy for environmental factor selection. Section “Nonlinear Analytical Geometric Model of Variations” develops an analytical geometric representation of system variations in response to environmental changes. The model is used to quantify the effects of environmental interactions. The paper (...)
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  39. Nonlinear brain dynamics and intention according to Aquinas.Walter Freeman - 2008 - Mind and Matter 6 (2):207-234.
    We humans and other animals continuously construct and main- tain our grasp of the world by using astonishingly small snippets of sensory information. Recent studies in nonlinear brain dynamics have shown how this occurs: brains imagine possible futures and seek and use sensory stimulation to select among them as guides for chosen actions. On the one hand the scientific explanation of the dynamics is inaccessible to most of us. On the other hand the philosophical foundation from which the sciences (...)
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  40.  48
    Evaluating nonlinear variability of mental fatigue behavioral indices during long‐term attentive task.Mahdi Azarnoosh, Ali Motie Nasrabadi, Mohammad Reza Mohammadi & Mohammad Firoozabadi - 2012 - Complexity 17 (6):7-16.
  41.  17
    The Electrodynamics of Moving Bodies from Faraday to Hertz.Olivier Darrigol - 1993 - Centaurus 36 (3):245-360.
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  42.  26
    Does quantum electrodynamics have an arrow of time?David Atkinson - 2006 - Studies in History and Philosophy of Science Part B: Studies in History and Philosophy of Modern Physics 37 (3):528-541.
    Quantum electrodynamics is a time-symmetric theory that is part of the electroweak interaction, which is invariant under a generalized form of this symmetry, the PCT transformation. The thesis is defended that the arrow of time in electrodynamics is a consequence of the assumption of an initial state of high order, together with the quantum version of the equiprobability postulate.
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  43. Dynamics of nonlinear feedback control.H. Snippe & J. H. van Hateren - 2004 - In Robert Schwartz (ed.), Perception. Malden Ma: Blackwell. pp. 182-182.
    Feedback control in neural systems is ubiquitous. Here we study the mathematics of nonlinear feedback control. We compare models in which the input is multiplied by a dynamic gain (multiplicative control) with models in which the input is divided by a dynamic attenuation (divisive control). The gain signal (resp. the attenuation signal) is obtained through a concatenation of an instantaneous nonlinearity and a linear low-pass filter operating on the output of the feedback loop. For input steps, the dynamics of (...)
     
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  44.  44
    Stochastic electrodynamics. IV. Transitions in the perturbed harmonic oscillator-zero-point field system.G. H. Goedecke - 1984 - Foundations of Physics 14 (1):41-63.
    In this fourth paper in a series on stochastic electrodynamics (SED), the harmonic oscillator-zero-point field system in the presence of an arbitrary applied classical radiation field is studied further. The exact closed-form expressions are found for the time-dependent probability that the oscillator is in the nth eigenstate of the unperturbed SED Hamiltonian H 0 , the same H 0 as that of ordinary quantum mechanics. It is shown that an eigenvalue of H 0 is the average energy that the (...)
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  45. On Nonlinear Quantum Mechanics, Noncommutative Phase Spaces, Fractal-Scale Calculus and Vacuum Energy.Carlos Castro - 2010 - Foundations of Physics 40 (11):1712-1730.
    A (to our knowledge) novel Generalized Nonlinear Schrödinger equation based on the modifications of Nottale-Cresson’s fractal-scale calculus and resulting from the noncommutativity of the phase space coordinates is explicitly derived. The modifications to the ground state energy of a harmonic oscillator yields the observed value of the vacuum energy density. In the concluding remarks we discuss how nonlinear and nonlocal QM wave equations arise naturally from this fractal-scale calculus formalism which may have a key role in the final (...)
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  46.  40
    Electrodynamics and Radiation Reaction.Richard T. Hammond - 2013 - Foundations of Physics 43 (2):201-209.
    The self force of electrodynamics is derived from a scalar field. The resulting equation of motion is free of all of the problems that plague the Lorentz Abraham Dirac equation. The age-old problem of a particle in a constant field is solved and the solution has intuitive appeal.
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  47.  21
    Does quantum electrodynamics have an arrow of time?David Atkinson - 2005 - Studies in History and Philosophy of Science Part B: Studies in History and Philosophy of Modern Physics 37 (3):528-541.
    Quantum electrodynamics is a time-symmetric theory that is part of the electroweak interaction, which is invariant under a generalized form of this symmetry, the PCT transformation. The thesis is defended that the arrow of time in electrodynamics is a consequence of the assumption of an initial state of high order, together with the quantum version of the equiprobability postulate.
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  48.  66
    The Nonlinear Essence of Gravitational Waves.R. Aldrovandi, J. G. Pereira & K. H. Vu - 2007 - Foundations of Physics 37 (10):1503-1517.
    A critical review of gravitational wave theory is made. It is pointed out that the usual linear approach to the gravitational wave theory is neither conceptually consistent nor mathematically justified. Relying upon that analysis it is argued that—analogously to a Yang-Mills propagating field, which must be nonlinear to carry its gauge charge—a gravitational wave must necessarily be nonlinear to transport its own charge—that is, energy-momentum.
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  49. Nonlinear neurodynamics of intentionality.Walter J. Freeman - 1997 - Journal of Mind and Behavior 18 (2-3):291-304.
    Study of electroencephalographic brain activity in behaving animals has guided development of a model for the self-organization of goal-directed behavior. Synthesis of a dynamical representation of brain function is based in the concept of intentionality as the organizing principle of animal and human behavior. The constructions of patterns of brain activity constitute meaning and not information or representations. The three accepted meanings of intention: "aboutness," goal-seeking, and wound healing, can be incorporated into the dynamics of meaningful behavior, centered in the (...)
     
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  50.  5
    Nonlinear Dynamics of the Quadratic-Damping Helmholtz Oscillator.R. Fangnon, C. Ainamon, A. V. Monwanou, C. H. Miwadinou & J. B. Chabi Orou - 2020 - Complexity 2020:1-17.
    In this paper, the Helmholtz equation with quadratic damping themes is used for modeling the dynamics of a simple prey-predator system also called a simple Lotka–Volterra system. From the Helmholtz equation with quadratic damping themes obtained after modeling, the equilibrium points have been found, and their stability has been analyzed. Subsequently, the harmonic oscillations have been studied by the harmonic balance method, and the phenomena of resonance and hysteresis are observed. The primary and secondary resonances have been researched by the (...)
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