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Books on the topic 'Linear dispersion'

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1

Jørgensen, Bent. The theory of dispersion models. Chapman & Hall, 1997.

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2

Rukhadze, A. A. (Anri Amvrosievich), 1930-, ed. Methods of wave theory in dispersive media. World Scientific, 2010.

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3

Dix, Daniel Beach. Large-time behavior of solutions of linear dispersive equations. Springer, 1997.

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4

Dix, Daniel B. Large-time Behavior of Solutions of Linear Dispersive Equations. Springer Berlin Heidelberg, 1997. http://dx.doi.org/10.1007/bfb0093368.

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5

Bose, S. Materials for advanced turbine engines (MATE) project 3 design, fabrication and evaluation of an oxide dispersion strengthened sheet alloy combustor liner. National Aeronautics and Space Administration, 1990.

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6

Dessì, Giuseppe, and Enrico Falqui. Lettere 1935-1972. Edited by Alberto Baldi. Firenze University Press, 2015. http://dx.doi.org/10.36253/978-88-6655-771-5.

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Poco più di 150 pezzi epistolari, provenienti dagli archivi novecenteschi di Firenze e di Roma, pubblicati per la prima volta grazie all’attenta trascrizione di Alberto Baldi, consentono non solo di ricostruire la storia di un’amicizia nata intorno alle pagine dei giornali e consolidatasi nel tempo fino a coinvolgere le compagne dei due interlocutori (Gianna Manzini, Lina Baraldi e Luisa Babini), ma di seguire la presenza di Giuseppe Dessí su uno dei quotidiani più letti nella capitale. La corrispondenza editoriale (precocemente avviata da un Falqui animatore di cultura) si trasforma ben prest
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7

Roach, G. F. Introduction to Linear and Nonlinear Scattering Theory. CRC Press LLC, 2017.

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8

Introduction to Linear and Nonlinear Scattering Theory. CRC Press LLC, 2017.

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9

Roach, G. F. Introduction to Linear and Nonlinear Scattering Theory. CRC Press LLC, 2017.

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10

Roach, G. F. Introduction to Linear and Nonlinear Scattering Theory. CRC Press LLC, 2017.

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11

Roach, G. F. Introduction to Linear and Nonlinear Scattering Theory. Taylor & Francis Group, 2020.

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12

Khadin, Oleg, M. V. Kuzelev, and A. A. Rukhadze. Methods of Wave Theory in Dispersive Media. World Scientific Publishing Co Pte Ltd, 2009.

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13

Wright, A. G. Timing with PMTs. Oxford University Press, 2017. http://dx.doi.org/10.1093/oso/9780199565092.003.0008.

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The timing capability of photomultipliers (PMTs) can be inferred from the basic laws of electron motion. The relationships between time dispersion and field strength, initial electron energy, angle of emission, and electrode spacing follow from these laws. For conventional PMTs, the major contribution to dispersion arises from the cathode-to-first-dynode region. The field gradient at the cathode primarily determines the timing. This is verified by examining the electron motion in non-uniform electric fields. The contribution from interdynode transitions is small for linear focussed PMTs. Monte
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14

Kavokin, Alexey V., Jeremy J. Baumberg, Guillaume Malpuech, and Fabrice P. Laussy. Strong coupling: resonant effects. Oxford University Press, 2017. http://dx.doi.org/10.1093/oso/9780198782995.003.0007.

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This chapter presents experimental studies performed on planar semiconductor microcavities in the strong-coupling regime. The first section reviews linear experiments performed in the 1990s that evidence the linear optical properties of cavity exciton-polaritons. The chapter is then focused on experimental and theoretical studies of resonantly excited microcavity emission. We mainly describe experimental configuations in which stimulated scattering was observed due to formation of a dynamical condensate of polaritons. Pump-probe and cw experiments are described in addition. Dressing of the pol
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15

Dix, Daniel B. Large-Time Behavior of Solutions of Linear Dispersive Equations. Springer London, Limited, 2006.

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16

Chain-scattering approach to h[infinity] control. Birkhauser, 2012.

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17

Wideband Pulse Propagation in Linear Dispersive Bio-dielectrics Using Fourier Transforms. Storming Media, 1999.

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18

An Analysis of Mutually Dispersive Brown Symbols for Non-Linear Ambiguity Suppression. Storming Media, 2002.

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19

Alexander, Peter D. G., and Malachy O. Columb. Presentation and handling of data, descriptive and inferential statistics. Edited by Jonathan G. Hardman. Oxford University Press, 2017. http://dx.doi.org/10.1093/med/9780199642045.003.0028.

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The need for any doctor to comprehend, assimilate, analyse, and form an opinion on data cannot be overestimated. This chapter examines the presentation and handling of such data and its subsequent statistical analysis. It covers the organization and description of data, measures of central tendency such as mean, median, and mode, measures of dispersion (standard deviation), and the problems of missing data. Theoretical distributions, such as the Gaussian distribution, are examined and the possibility of data transformation discussed. Inferential statistics are used as a means of comparing grou
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20

Karpman, V. I., and D. ter Haar. Non-Linear Waves in Dispersive Media: International Series of Monographs in Natural Philosophy. Elsevier Science & Technology Books, 2016.

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21

Ferreira, Eliel Alves, and João Vicente Zamperion. Excel: Uma ferramenta estatística. Brazil Publishing, 2021. http://dx.doi.org/10.31012/978-65-5861-400-5.

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This study aims to present the concepts and methods of statistical analysis using the Excel software, in a simple way aiming at a greater ease of understanding of students, both undergraduate and graduate, from different areas of knowledge. In Excel, mainly Data Analysis Tools will be used. For a better understanding, there are, in this book, many practical examples applying these tools and their interpretations, which are of paramount importance. In the first chapter, it deals with introductory concepts, such as introduction to Excel, the importance of statistics, concepts and definitions. Be
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22

Furst, Eric M., and Todd M. Squires. Laser tweezer microrheology. Oxford University Press, 2018. http://dx.doi.org/10.1093/oso/9780199655205.003.0009.

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To many, the idea that light can be used to hold and manipulate matter is probably quite foreign. The photon is a seemingly evanescent particle; its interactions with matter are weak. But while it has no rest mass, a photon carries momentum. Optical traps have become important tools used to measure forces on nanometer to micrometer length scale. Laser tweezers can be used to drive (or hold) microrheological probes. Optical trapping forces are reviewed and optical trap designs discussed, incluing the use of fixed and moving reference frame optical traps. Proper calibration of optical traps espe
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23

Yábar, Miriam Salazar, and Julia Yábar Rayo. EstadÍstica Descriptiva: Conceptos Básicos, Recolección y Organización de Datos, Representación Gráfica de Datos, Medias de Tendencia, Dispersión, Desplazamiento, Correlación y Regresión Lineal. Independently Published, 2022.

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24

Milonni, Peter W. An Introduction to Quantum Optics and Quantum Fluctuations. Oxford University Press, 2019. http://dx.doi.org/10.1093/oso/9780199215614.001.0001.

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This book is an introduction to quantum optics for students who have studied electromagnetism and quantum mechanics at an advanced undergraduate or graduate level. It provides detailed expositions of theory with emphasis on general physical principles. Foundational topics in classical and quantum electrodynamics, including the semiclassical theory of atom-field interactions, the quantization of the electromagnetic field in dispersive and dissipative media, uncertainty relations, and spontaneous emission, are addressed in the first half of the book. The second half begins with a chapter on the
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