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1

McAndrews, James J. Banking and payment system stability in an electronic money world. Federal Reserve Bank of Philadelphia, Economic Research Division, 1997.

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2

Paice, D. A. Power electronic converter harmonics: Calculations and multipulse methods. Paice and Associates, 1994.

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3

Paice, D. A. Power electronic converter harmonics: Multipulse methods for clean power. IEEE Press, 1996.

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4

Friauf, Walter S. Feedback loop stability analysis. McGraw-Hill, 1998.

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5

J, Balu Neal, and Lauby Mark G, eds. Power system stability and control. McGraw-Hill, 1994.

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6

Kundur, P. Power system stability and control. McGraw-Hill, 1994.

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7

Fang, Jingyang. More-Electronics Power Systems: Power Quality and Stability. Springer Singapore, 2021. http://dx.doi.org/10.1007/978-981-15-8590-6.

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8

Fuchs, Ewald F. Power quality in power systems and electrical machines. Academic Press/Elsevier, 2008.

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9

International Conference on Energy Management and Power Delivery (1998 Singapore). EMPD '98: Proceedings : 1998 International Conference on Energy Management and Power Delivery : 3-5 March, 1998, Raffles City Convention Center, The Westin Stamford and Westin Plaza, Singapore. IEEE, 1998.

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10

Frequency stability: Introduction and applications. Wiley, 2012.

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11

V, Răsvan, ed. Stability and stable oscillations in discrete time systems. Gordon & Breach, 2000.

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12

Messina, Arturo Roman. Inter-area Oscillations in Power Systems: A Nonlinear and Nonstationary Perspective. Springer-Verlag US, 2009.

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13

service), SpringerLink (Online, ed. Discontinuous Systems: Lyapunov Analysis and Robust Synthesis under Uncertainty Conditions. Springer London, 2009.

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14

Al, Berutti, Waggoner R. M, and DeDad John A, eds. Practical guide to quality power for sensitive electronic equipment. Intertec Electrical Group, 1993.

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15

Practical Guide to Quality Power for Sensitive Electronic Equipment. Intertec Pub Corp/Telephony, 1992.

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16

A, Dedad John, and Intertec Electrical Group, eds. Practical guide to power distribution for information technology equipment. EC&M Books, INTERTEC Pub. Corp., 1997.

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17

K, Jurgen Ronald, ed. Electronic braking, traction, and stability control. Society of Automotive Engineers, 1999.

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18

Reif, Konrad. Automotive Mechatronics: Automotive Networking, Driving Stability Systems, Electronics. Springer Vieweg, 2014.

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19

Electronic Braking, Traction, and Stability Controls Volume 2. SAE, 2006.

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20

Janssen, Ted, Gervais Chapuis, and Marc de Boissieu. Origin and stability. Oxford University Press, 2018. http://dx.doi.org/10.1093/oso/9780198824442.003.0006.

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The origin of the stability of aperiodic systems is very difficult to answer. Often the terms ‘competitive forces’ or ‘frustration’ have been proposed as the origin of stability. The role of Fermi surfaces and Brillouin zone boundary have also been invoked. This chapter deals with the numerous attempts which have been proposed for a better understanding. First, the Landau theory of phase transition, which has often been applied to understand the stability of incommensurate and composite systems, is presented here. Various semi-microscopic models are also proposed, in particular the Frenkel–Kon
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21

Voltage Stability of Electric Power Systems (Power Electronics and Power Systems). Springer, 2007.

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22

Power Quality in Electrical Machines and Power Systems. Academic Press, 2008.

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23

Power Quality in Power Systems and Electrical Machines. Elsevier Science & Technology Books, 2015.

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24

Melnikov, D. V., J. Kim, L. X. Zhang, and J. P. Leburton. Few-electron quantum-dot spintronics. Edited by A. V. Narlikar and Y. Y. Fu. Oxford University Press, 2017. http://dx.doi.org/10.1093/oxfordhb/9780199533060.013.2.

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This article examines the spin and charge properties of double and triple quantum dots (QDs) populated containing just a few electrons, with particular emphasis on laterally coupled QDs. It first describes the theoretical approach, known as exact diagonalization method, utilized on the example of the two-electron system in coupled QDs that are modelled as two parabolas. The many-body problem is solved via the exact diagonalization method as well as variational Heitler–London and Monte Carlo methods. The article proceeds by considering the general characteristics of the two-electron double-QD s
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25

GmbH, Robert Bosch. Esp Electronic Stability Program: Vehicle Safety Systems for Passenger Cars : Technical Instruction. Robert Bosch GmbH, 2000.

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26

Computational Techniques for Voltage Stability Assessment and Control (Power Electronics and Power Systems). Springer, 2006.

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27

Institute Of Electrical and Electronics Engineers and International Conference on Energy Management and Power Delivery (1998 : Singapore). Energy Management Power and Delivery Conference (EMPD), 1998. Institute of Electrical & Electronics Enginee, 1998.

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28

EMPD '98: Proceedings : 1998 International Conference on Energy Management and Power Delivery : 3-5 March, 1998, Raffles City Convention Center, The Westin Stamford and Westin Plaza, Singapore. IEEE, 1998.

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29

Real-Time Stability in Power Systems: Techniques for Early Detection of the Risk of Blackout (Power Electronics and Power Systems). Springer, 2005.

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30

Ernst, Damien, Daniel Ruiz-Vega, and Mania Pavella. Transient Stability of Power Systems: A Unified Approach to Assessment and Control (Power Electronics and Power Systems). Springer, 2000.

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31

Messina, Arturo Roman. Inter-area Oscillations in Power Systems. Springer, 2009.

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32

Messina, Arturo Roman. Inter-area Oscillations in Power Systems: A Nonlinear and Nonstationary Perspective. Springer, 2010.

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33

Paulo, Ribeiro, ed. Time-varying waveform distortions in power systems. Wiley, 2009.

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34

Rasvan, Vladimir, and Aristide Halanay. Stability and Stable Oscillations in Discrete Time Systems (Advances in Discrete Mathematics and Applications, Volume 2). CRC, 2000.

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35

Power Systems Modelling and Fault Analysis: Theory and Practice (Newnes Power Engineering Series) (Newnes Power Engineering Series). Newnes, 2007.

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36

Structural Preserving Energy Functions in Power Systems. CRC Press, 2013.

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37

Energy Intermittency. Taylor & Francis Group, 2014.

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38

Tiwari, Sandip. Phenomena and devices at the quantum scale and the mesoscale. Oxford University Press, 2017. http://dx.doi.org/10.1093/oso/9780198759874.003.0003.

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Unique nanoscale phenomena arise in quantum and mesoscale properties and there are additional intriguing twists from effects that are classical in origin. In this chapter, these are brought forth through an exploration of quantum computation with the important notions of superposition, entanglement, non-locality, cryptography and secure communication. The quantum mesoscale and implications of nonlocality of potential are discussed through Aharonov-Bohm effect, the quantum Hall effect in its various forms including spin, and these are unified through a topological discussion. Single electron ef
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39

Numerik für Ingenieure und Naturwissenschaftler. Springer, 2006.

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40

Numerik für Ingenieure und Naturwissenschaftler. 2nd ed. Springer, 2008.

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41

Dahmen, W., and A. Reusken. Numerik für Ingenieure und Naturwissenschaftler (Springer-Lehrbuch). Springer, 2006.

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