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1

Fragoso, Marcelo D. Continuous-time Markov jump linear systems. Springer, 2013.

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2

Costa, Oswaldo L. V. Continuous-Time Markov Jump Linear Systems. Springer Berlin Heidelberg, 2013.

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3

Costa, Oswaldo L. V., Marcelo D. Fragoso, and Marcos G. Todorov. Continuous-Time Markov Jump Linear Systems. Springer Berlin Heidelberg, 2013. http://dx.doi.org/10.1007/978-3-642-34100-7.

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4

Tsang, K. M. Iden tification of linear and nonlinear continuous time models. University of Sheffield, Dept. of Automatic Control and Systems Engineering, 1991.

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5

Zaslavski, Alexander J. Turnpike Theory of Continuous-Time Linear Optimal Control Problems. Springer International Publishing, 2015. http://dx.doi.org/10.1007/978-3-319-19141-6.

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6

Li, L. M. Continuous time linear and nonlinear system identification in the frequency domain. University of Sheffield, Dept. of Automatic Control and Systems Engineering, 1998.

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7

Tsang, K. M. Reconstruction of linear and nonlinear continuous time models from discrete time sampled-data systems. University of Sheffield, Dept. of Control Engineering, 1990.

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8

Coca, D. Continuous-time system identification for linear and nonlinear systems using wavelet decomposition. University of Sheffield, Department of Automatic Control and Systems Engineering, 1996.

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9

Swain, A. K. Weighted complex orthogonal estimator for identifying linear and nonlinear continuous time models from generalised frequency response functions. University of Sheffield, Dept. of Automatic Control and Systems Engineering, 1995.

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10

Tsang, K. M. A prediction-error estimation algorithm for the reconstruction of linear and nonlinear continuous time models from frequency response data. University of Sheffield, Dept. of Control Engineering, 1991.

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11

Gruyitch, Lyubomir T. Linear Continuous-Time Systems. CRC Press, 2017. http://dx.doi.org/10.1201/9781315116556.

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12

Linear Continuous-Time Systems. Taylor & Francis Group, 2017.

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13

Hartman, Gregory P. Continuous-time adaptive-analog coaxial equalizer in 0.5*m CMOS. 1997.

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14

Hazneci, Altan Sami. 49 Gb/s continuous time transversal equalizer for backplane applications. 2005.

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15

Oswaldo Luiz do Valle Costa, Marcelo D. Fragoso, and Marcos G. Todorov. Continuous-Time Markov Jump Linear Systems. Springer, 2012.

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16

Signals and Systems: Continuous time signals. Wiley, 2002.

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17

Zaslavski, Alexander J. J. Turnpike Theory of Continuous-Time Linear Optimal Control Problems. Springer, 2016.

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18

Zaslavski, Alexander J. Turnpike Theory of Continuous-Time Linear Optimal Control Problems. Springer, 2015.

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19

Berber, Stevan. Discrete Communication Systems. Oxford University Press, 2021. http://dx.doi.org/10.1093/oso/9780198860792.001.0001.

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The book present essential theory and practice of the discrete communication systems design, based on the theory of discrete time stochastic processes, and their relation to the existing theory of digital communication systems. Using the notion of stochastic linear time invariant systems, in addition to the orhogonality principles, a general structure of the discrete communication system is constructed in terms of mathematical operators. Based on this structure, the MPSK, MFSK, QAM, OFDM and CDMA systems, using discrete modulation methods, are deduced as special cases. The signals are processe
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20

Sethna, James P. Statistical Mechanics: Entropy, Order Parameters, and Complexity. 2nd ed. Oxford University Press, 2021. http://dx.doi.org/10.1093/oso/9780198865247.001.0001.

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This text distills the core ideas of statistical mechanics to make room for new advances important to information theory, complexity, active matter, and dynamical systems. Chapters address random walks, equilibrium systems, entropy, free energies, quantum systems, calculation and computation, order parameters and topological defects, correlations and linear response theory, and abrupt and continuous phase transitions. Exercises explore the enormous range of phenomena where statistical mechanics provides essential insight — from card shuffling to how cells avoid errors when copying DNA, from th
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21

Boothroyd, Andrew T. Principles of Neutron Scattering from Condensed Matter. Oxford University Press, 2020. http://dx.doi.org/10.1093/oso/9780198862314.001.0001.

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The book contains a comprehensive account of the theory and application of neutron scattering for the study of the structure and dynamics of condensed matter. All the principal experimental techniques available at national and international neutron scattering facilities are covered. The formal theory is presented, and used to show how neutron scattering measurements give direct access to a variety of correlation and response functions which characterize the equilibrium properties of bulk matter. The determination of atomic arrangements and magnetic structures by neutron diffraction and neutron
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