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Books on the topic 'Physic formulation theories'

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1

Tulczyjew, Wlodzimierz M. Geometric formulations of physical theories: Statics and dynamics of mechanical systems. Bibliopolis, 1989.

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2

Highlights of the grand unified theorem: Formulation of the unified field theory or the theory of everything. Nova Science Publishers, 2001.

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3

Barrett, Jeffrey A. The Conceptual Foundations of Quantum Mechanics. Oxford University Press, 2019. http://dx.doi.org/10.1093/oso/9780198844686.001.0001.

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The book starts with a description of classical mechanics then discusses the quantum phenomena that require us to give up our commonsense classical intuitions. We consider the physical and conceptual arguments that led to the standard von Neumann-Dirac formulation of quantum mechanics and how the standard theory explains quantum phenomena. This includes a discussion of how the theory’s two dynamical laws work with the standard interpretation of states to explain determinate measurement records, quantum statistics, interference effects, entanglement, decoherence, and quantum nonlocality. A care
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4

Moretti, Valter. Spectral Theory and Quantum Mechanics: Mathematical Foundations of Quantum Theories, Symmetries and Introduction to the Algebraic Formulation. Springer, 2018.

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5

Peskin, Michael E. Concepts of Elementary Particle Physics. Oxford University Press, 2019. http://dx.doi.org/10.1093/oso/9780198812180.001.0001.

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This is a textbook of elementary particle physics whose goal is to explain the Standard Model of particle interactions. Part I introduces the basic concepts governing high-energy particle physics: elements of relativity and quantum field theory, the quark model of hadrons, methods for detection and measurement of elementary particles, methods for calculating predictions for observable quantitites. Part II builds up our understanding of the strong interaction from the key experiments to the formulation of Quantum Chromodynamics and its application to the description of evetns at the CERN Large
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6

North, Jill. Physics, Structure, and Reality. Oxford University Press, 2021. http://dx.doi.org/10.1093/oso/9780192894106.001.0001.

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How do we figure out the nature of the world from a mathematically formulated physical theory? What do we infer about the world when a physical theory can be mathematically formulated in different ways? Physics, Structure, and Reality addresses these questions, questions that get to the heart of the project of interpreting physics—of figuring out what physics is telling us about the world. North argues that there is a certain notion of structure, implicit in physics and mathematics, that we should pay careful attention to, and that doing so sheds light on these questions concerning what physic
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7

Weatherall, James Owen. Category Theory and the Foundations of Classical Space–Time Theories. Oxford University Press, 2018. http://dx.doi.org/10.1093/oso/9780198748991.003.0013.

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I review some recent work on applications of category theory to questions concerning theoretical structure and theoretical equivalence of classical field theories, including Newtonian gravitation, general relativity, and Yang–Mills theories. In particular, the chapter explains how the Baez–Bartel–Dolan framework for classifying forgetful functors provides a precise way of saying when one formulation of a physical theory posits more or less structure than another, and also when two theories posit equivalent amounts of structure.
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8

Rowlands, Peter, Richard L. Amoroso, Richard L. Amoroso, Louis H. Kauffman, and Gianni Albertini. Unified Field Mechanics II : Formulations and Empirical Tests: Proceedings of the Xth Symposium Honoring Noted French Mathematical Physicist Jean-pierre Vigier. World Scientific Publishing Company, 2018.

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9

Tulczyjew, Wlodzimierz M. Geometric Formulations of Physical Theories: Statics and Dynamics of Mechanical Systems (Monographs and Textbooks in Physical Science Lecture Notes). Amer Inst of Physics, 1989.

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10

Baker, David John. The Philosophy of Quantum Field Theory. Oxford University Press, 2016. http://dx.doi.org/10.1093/oxfordhb/9780199935314.013.33.

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This is an opinionated survey of some interpretive puzzles in quantum field theory. The problem of inequivalent representations is sketched, including its connections with competing accounts of physical equivalence. The controversy between variant formulations of the theory, algebraic versus Lagrangian, is given a conciliatory resolution. Arguments against particles are addressed, demarcating clearly between different forms of particle interpretation. Field interpretations are then considered, including wavefunctional, spacetime state realist and Heisenberg operator realist interpretations. Ru
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11

French, Steven, and Juha Saatsi, eds. Scientific Realism and the Quantum. Oxford University Press, 2020. http://dx.doi.org/10.1093/oso/9780198814979.001.0001.

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Scientific realism has traditionally maintained that our best scientific theories can be regarded as more or less true and as representing the world as it is (more or less). However, one of our very best current theories—quantum mechanics—has famously resisted such a realist construal, threatening to undermine the realist stance altogether. The chapters in this volume carefully examine this tension and the reasons behind it, including the underdetermination generated by the multiplicity of formulations and interpretations of quantum physics, each presenting a different way the world could be.
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12

Algom, Daniel, Ami Eidels, Robert X. D. Hawkins, Brett Jefferson, and James T. Townsend. Features of Response Times. Edited by Jerome R. Busemeyer, Zheng Wang, James T. Townsend, and Ami Eidels. Oxford University Press, 2015. http://dx.doi.org/10.1093/oxfordhb/9780199957996.013.4.

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Psychology is one of the most recent sciences to issue from the mother-tree of philosophy. One of the greatest challenges is that of formulating theories and methodologies that move the field toward theoretical structures that are not only sufficient to explain and predict phenomena but, in some vital sense, necessary for those purposes. Mathematical modeling is perhaps the most promising general strategy, but even under that aegis, the physical sciences have labored toward that end. The present chapter begins by outlining the roots of our approach in 19th century physics, physiology, and psyc
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13

Canarutto, Daniel. Gauge Field Theory in Natural Geometric Language. Oxford University Press, 2020. http://dx.doi.org/10.1093/oso/9780198861492.001.0001.

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This monograph addresses the need to clarify basic mathematical concepts at the crossroad between gravitation and quantum physics. Selected mathematical and theoretical topics are exposed within a not-too-short, integrated approach that exploits standard and non-standard notions in natural geometric language. The role of structure groups can be regarded as secondary even in the treatment of the gauge fields themselves. Two-spinors yield a partly original ‘minimal geometric data’ approach to Einstein-Cartan-Maxwell-Dirac fields. The gravitational field is jointly represented by a spinor connect
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14

Caparrini, Sandro, and Craig Fraser. Mechanics in the Eighteenth Century. Edited by Jed Z. Buchwald and Robert Fox. Oxford University Press, 2017. http://dx.doi.org/10.1093/oxfordhb/9780199696253.013.13.

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This article focuses on mechanics in the eighteenth century. The publication in 1687 of Isaac Newton’s Mathematical Principles of Natural Philosophy has long been regarded as the event that ushered in the modern period in mathematical physics. The success and scope of the Principia heralded the arrival of mechanics as the model for the mathematical investigation of nature. This subject would be at the cutting edge of science for the next two centuries. This article first provides an overview of the fundamental principles and theorems of mechanics, including the principles of inertia and relati
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15

Maloney, J. Christopher. Direct Realism and Illusion. Oxford University Press, 2018. http://dx.doi.org/10.1093/oso/9780190854751.003.0008.

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The supposed problem of perceptual error, including illusion and hallucination, has led most theories of perception to deny formulations of direct realism. The standard response to this apparent problem adopts the mistaken presupposition that perception is indeed liable to error. However, the prevailing conditions of observation are themselves elements of perceptual representation, functioning in the manner of predicate modifiers. They ensure that the predicates applied in perceptual representations do indeed correctly attribute properties that perceived physical objects actually instantiate.
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16

Belnap, Nuel, Thomas Müller, and Tomasz Placek. Branching Space-Times. Oxford University Press, 2021. http://dx.doi.org/10.1093/oso/9780190884314.001.0001.

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This book develops a rigorous theory of indeterminism as a local and modal concept. Its crucial insight is that our world contains events or processes with alternative, really possible outcomes. The theory aims at clarifying what this assumption involves, and it does it in two ways. First, it provides a mathematically rigorous framework for local and modal indeterminism. Second, we support that theory by spelling out the philosophically relevant consequences of this formulation and by showing its fruitful applications in metaphysics. To this end, we offer a formal analysis of modal correlation
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17

Zinn-Justin, Jean. Quantum Field Theory and Critical Phenomena. 5th ed. Oxford University Press, 2021. http://dx.doi.org/10.1093/oso/9780198834625.001.0001.

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Introduced as a quantum extension of Maxwell's classical theory, quantum electrodynamic (QED) has been the first example of a quantum field theory (QFT). Eventually, QFT has become the framework for the discussion of all fundamental interactions at the microscopic scale except, possibly, gravity. More surprisingly, it has also provided a framework for the understanding of second order phase transitions in statistical mechanics. In fact, as hopefully this work illustrates, QFT is the natural framework for the discussion of most systems involving an infinite number of degrees of freedom with loc
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18

Wolff, J. E. The Metaphysics of Quantities. Oxford University Press, 2020. http://dx.doi.org/10.1093/oso/9780198837084.001.0001.

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This book articulates and defends a new and original answer to two questions: What are physical quantities and what makes them quantitative? This novel position—substantival structuralism—says that quantitativeness is an irreducible feature of particular attributes, and quantitative attributes are best understood as substantival structured spaces. Physical quantities like mass, momentum, or temperature play an important role in formulating laws of nature and in testing scientific theories. It is therefore important to have a clear philosophical understanding of what makes these attributes spec
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19

King, Daniel. Experiencing Pain in Imperial Greek Culture. Oxford University Press, 2017. http://dx.doi.org/10.1093/oso/9780198810513.001.0001.

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Much of the Western intellectual tradition’s interest in pain can be traced back to Greek material. This book investigates one theme in the interest in physical pain in Greek culture under the Roman Empire. Traditional accounts of pain in the Roman Empire have either focused on philosophical or medical theories of pain or on Christian notions of ‘suffering’; and fascination with the pained body has often been assumed to be a characteristic of Christian society, rather than ancient culture in general. The book uses ideas from medical anthropology, as well as contemporary philosophical discussio
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