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1

Robbins, Allan. Circuit analysis: Theory and practice. Albany: Delmar Publishers, 1995.

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2

Wilhelm, Miller, ed. Circuit analysis: Theory and practice. 2nd ed. Albany, N.Y: Delmar, 2000.

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3

Wilhelm, Miller, ed. Circuit analysis: Theory and practice. 3rd ed. New York: Thomson/Delmar Learning, 2003.

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4

Wilhelm, Miller, ed. Circuit analysis: Theory and practice. 4th ed. Clifton Park, NY: Thomson Delmar Learning, 2007.

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5

Benini, Luca. Dynamic power management: Design techniques and CAD tools. Boston: Kluwer, 1998.

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6

Baschirotto, Andrea, Pieter Harpe, and Kofi A. A. Makinwa, eds. Next-Generation ADCs, High-Performance Power Management, and Technology Considerations for Advanced Integrated Circuits. Cham: Springer International Publishing, 2020. http://dx.doi.org/10.1007/978-3-030-25267-0.

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7

Mezhiba, Andrey V. Power distribution networks in high speed integrated circuits. Boston, MA: Kluwer Academic Publishers, 2003.

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8

G, Friedman Eby, ed. Power distribution networks in high speed integrated circuits. Boston: Kluwer Academic Publishers, 2004.

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9

Electical calculations and guidelines for generating stations and industrial plants. Boca Raton: Taylor & Francis, 2012.

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10

Arrillaga, J. AC-DC power systems analysis. London, UK: The Institution of Electrical Engineers, 1998.

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11

Tanzawa, Toru. On-chip High-Voltage Generator Design. New York, NY: Springer New York, 2013.

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12

Tanzawa, Toru. On-chip high-voltage generator design. New York: Springer, 2013.

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13

Harpe, Pieter, Andrea Baschirotto, and Kofi A. A. Makinwa. Next-Generation ADCs, High-Performance Power Management, and Technology Considerations for Advanced Integrated Circuits: Advances in Analog Circuit Design 2019. Springer, 2019.

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14

Miller, Wilhelm, and Allan H. Robbins. Circuit Analysis: Theory & Practice. 2nd ed. Delmar Thomson Learning, 1999.

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15

Robbins, Allan H., and Wilhelm C. Miller. Circuit Analysis: Theory and Practice. 4th ed. Cengage Delmar Learning, 2006.

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16

Circuit Analysis: Theory and Practice. Delmar, 2012.

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17

Micheli, G. De, and Luca Benini. Dynamic Power Management: Design Techniques and CAD Tools. Springer, 1997.

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18

Sotnyk, M. Power supply for educational institutions: efficiency and alternatives. Accent Graphics Communications & Publishing, 2020. http://dx.doi.org/10.29013/msotnyk.pseiea.2020.146.

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Proposed methodological approaches to modeling short-term forecasting and long-term planning of electrical consumption in educational institutions based on retrospective data. A logic-structural model and software of the circuit “object of monitoring of electric consumption — factors of influence — regulatory tools” of an automated system for controlling the efficiency of energy consumption in educational institutions have been developed. There are given practical recommendations of feasibility study of introduction of alternative power supply sources in educational institutions, in particular: solar generation, heat pumps, autonomous energy sources, etc. Proposed scientific and methodological approaches to the introduction of an organizational and economic mechanism for managing the development of renewable energy in educational institutions and a motivation system for employees of the energy management service. The monograph is a generalization of scientific research conducted by employees of Sumy State University during the state budget research work “Model of an efficiency management and forecasting system for the consumption of electric energy” (State Registration No. 0118U003583). The monograph is intended for researchers and specialists in the implementation of energy management systems
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19

Bearden, Tom, and John Bedini. Free Energy Generation Circuits & Schematics. Cheniere Press, 2006.

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20

E, Baker Thomas. Electrical Calculations and Guidelines for Generating Station and Industrial Plants. Taylor & Francis Group, 2018.

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21

Electrical Calculations and Guidelines for Generating Stations and Industrial Plants, Second Edition. Taylor & Francis Group, 2017.

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22

Ahmed, Alaa Eldin Hussein Abozeid. Wind driven doubly fed induction generator. Cham : Springer, 2018.

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23

Power Distribution Networks in High Speed Integrated Circuits. Springer, 2012.

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24

Friedman, Eby G., and Andrey Mezhiba. Power Distribution Networks in High Speed Integrated Circuits. Springer, 2003.

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25

Abdelbaset, Adel, Yehia S. Mohamed, Abou-Hashema M. El-Sayed, and Alaa Eldin Hussein Abozeid Ahmed. Wind Driven Doubly Fed Induction Generator: Grid Synchronization and Control. Springer, 2017.

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26

Abdelbaset, Adel, Yehia S. Mohamed, Abou-Hashema M. El-Sayed, and Alaa Eldin Hussein Abozeid Ahmed. Wind Driven Doubly Fed Induction Generator: Grid Synchronization and Control. Springer, 2018.

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27

B, Gillett W., Hacker R. J, Kaut W, and Commission of the European Communities. Directorate-General for Energy., eds. Photovoltaic demonstration projects 2. London: Elsevier Applied Science, 1989.

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28

Ac-Dc Power System Analysis (I E E Power Engineering Series). Institution of Electrical Engineers, 1998.

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29

Tanzawa, Toru. On-chip High-Voltage Generator Design. Springer, 2012.

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30

Tanzawa, Toru. On-chip High-Voltage Generator Design. Springer, 2014.

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31

IEEE Power Engineering Society. Power Generation Committee., ed. IEEE recommended practice for the design of safety-related DC auxiliary power systems for nuclear power generating stations. New York, NY, USA: Institute of Electrical and Electronics Engineers, 1985.

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32

Tanzawa, Toru. On-chip High-Voltage Generator Design: Design Methodology for Charge Pumps. Springer, 2016.

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33

Tanzawa, Toru. On-chip High-Voltage Generator Design: Design Methodology for Charge Pumps. Springer, 2015.

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34

Christopher, Evans J., Brigitte L. Kieffer, David Jentsch, and Rafael J. Maldonado. Animal Models of Addiction. Edited by Dennis S. Charney, Eric J. Nestler, Pamela Sklar, and Joseph D. Buxbaum. Oxford University Press, 2017. http://dx.doi.org/10.1093/med/9780190681425.003.0043.

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Drug addiction, now officially diagnosed as substance use disorder (SUD), is a chronic brain syndrome characterized by the compulsive use of drugs, loss of control over drug taking in spite of its adverse consequences, and relapse even after long periods of drug abstinence. Animal models have played a critical role in our understanding of the molecules, circuits, and behaviors associated with substance use disorders. This chapter reviews animal models that have been widely used to assess all stages of the addiction cycle: from drug initiation, through drug seeking, to withdrawal and relapse. We discuss the power of genetics, especially in generating rodent models for the discovery of essential proteins and pathways regulating behaviors exhibited during the different stages of the addiction cycle. Preclinical research in animal models will undoubtedly continue to reveal therapeutic strategies for substance use disorders.
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