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1

Taub, Steven. Electricity in the developing world: A growing role for distributed generation. CERA, 1999.

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2

California Energy Commission. Public Interest Energy Research. Offgases project oil-field flare gas electricity systems: PIER final project report. California Energy Commission, 2008.

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3

United States. Congress. House. Committee on Energy and Commerce. Subcommittee on Energy and Air Quality. National electricity policy: Barriers to competitive generation : hearing before ... 107th Congress, 1st session, July 27, 2001. U.S. G.P.O., 2001.

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4

Peter, Crossley, Chowdhury S. P, and Knovel (Firm), eds. Microgrids and active distribution networks. Institution of Engineering and Technology, 2009.

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5

Organisation for Economic Co-operation and Development. and International Energy Agency, eds. Distributed generation in liberalised electricity markets. OECD/IEA, 2002.

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6

M, Marwali, and Dai Min, eds. Integration of green and renewable energy in electric power systems. Wiley, 2010.

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7

Borge-Diez, David, and Enrique Rosales-Asensio, eds. Energy System Resilience and Distributed Generation. Springer Nature Switzerland, 2024. http://dx.doi.org/10.1007/978-3-031-67754-0.

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8

Bollen, Math, and Fainan Hassan. Integration of Distributed Generation in the Power System. John Wiley & Sons, Inc., 2011. http://dx.doi.org/10.1002/9781118029039.

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9

Bollen, Math H. J. Integration of distributed generation in the power system. Wiley-IEEE Press, 2011.

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10

Amadi, Sam. Enhanced power supply: State investment, tariff, and distributed generation. Nigerian Electricity Regulatory Commission (NERC), 2011.

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11

Coddington, Michael H. Updating interconnection screens for PV system integration. National Renewable Energy Laboratory, 2012.

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12

Resources, United States Congress Senate Committee on Energy and Natural. Electricity generation: Hearing before the Committee on Energy and Natural Resources, United States Senate, One Hundred Eighth Congress, second session, on sustainable, low emission electricity generation, April 27, 2004. U.S. G.P.O., 2004.

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13

Anne-Marie, Borbely, and Kreider Jan F. 1942-, eds. Distributed generation: The power paradigm for the new millennium. CRC Press, 2001.

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14

Buyal'skiy, Vladimir. Wind turbines with optimal control of electricity generation. INFRA-M Academic Publishing LLC., 2023. http://dx.doi.org/10.12737/1946200.

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In the monograph, based on the analysis of modern methods of automatic control of wind power installations, a solution is proposed for the correct connection (in theoretical terms) of related problems of dynamic behavior of power units with optimal control of electricity generation. In this direction, principles, structures and algorithms have been obtained to reduce the dynamic loads of the components of modern wind turbines based on timely preparation of the system for external disturbing influences and taking into account the vibration load of the drive under different operating modes of th
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15

United States. Congress. House. Committee on Energy and Commerce. Subcommittee on Energy and Air Quality. National electricity policy: Barriers to competitive generation : hearing before the Subcommittee on Energy and Air Quality of the Committee on Energy and Commerce, House of Representatives, One Hundred Seventh Congress, first session, July 27, 2001. U.S. G.P.O., 2001.

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16

Nigerian Electricity Regulatory Commission (NERC). Presentation on the major review of the electricity multi-year tariff order to the National Economic Council. Nigerian Electricity Regulatory Commission (NERC), 2011.

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17

Ela, Erik. Operating reserves and variable generation: A comprehensive review of current strategies, studies, and fundamental research on the impact that increased penetration of variable renewable generation has on power system operating reserves. National Renewable Energy Laboratory, 2011.

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18

Carlos, Balda Juan, Oliva Alejandro Raul, Electric Power Research Institute, Central and South West Corporation., and University of Arkansas (Fayetteville campus). Energy Conversion Laboratory., eds. The impact of dispersed generation upon the quality of electric power: The Solar Park in the Ft. Davis distribution system. Electric Power Research Institute, 1997.

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19

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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20

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

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21

Australian Data Fusion Symposium (2nd 1999 Adelaide, Australia). IDC-99: 1999 Information, Decision and Control : Data and Information Fusion Symposium, Signal Processing and Communications Symposium and Decision and Control Symposium : Adelaide, Australia, 8-10 February, 1999 : proceedings. IEEE, 1999.

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22

Soman, S. A. Computational methods for large sparse power systems analysis: An object oriented approach. Kluwer Academic Publishers, 2002.

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23

Buyal'skiy, Vladimir. Efficiency of wind turbines in the Arctic and the Far North. INFRA-M Academic Publishing LLC., 2025. https://doi.org/10.12737/2163331.

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Based on the analysis of modern methods of automatic control of a wind farm, the monograph suggests a solution for the correct connection (in theoretical terms) of the problems of dynamic behavior of power units with optimal control of electricity generation and distribution to consumers in the Arctic and the Far North. In this direction, the principles, structures, mathematical models and algorithms have been obtained to reduce the dynamic loads of the components of modern wind turbines based on timely preparation of the system for external disturbances, consideration of the vibration load of
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24

Transforming the grid: Electricity system governance and network integration of distributed generation. Nomos, 2012.

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25

Woodman, Bridget. Shifting the balance of power?: Renewables and distributed generation in liberalised electricity systems. 2003.

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26

Kreider, Jan F., and Anne-Marie Borbely. Distributed Generation. Taylor & Francis Group, 2019.

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27

Distributed Generation in Liberalised Electricity Markets. OECD, 2002. http://dx.doi.org/10.1787/9789264175976-en.

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28

Distributed Generation in Liberalised Electricity Markets. 2002.

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29

Edinger, Raphael. Distributed Electricity Generation with Renewable Resources. Tectum Verlag, 2012.

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30

Kreider, Jan F., and Anne-Marie Borbely. Distributed Generation: The Power Paradigm for the New Millennium. Taylor & Francis Group, 2001.

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31

Kreider, Jan F., and Anne-Marie Borbely. Distributed Generation: The Power Paradigm for the New Millennium. Taylor & Francis Group, 2001.

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32

National electricity policy: Federal government perspective : hearing before the Subcommittee on Energy and Air Quality of the Committee on Energy and Commerce, House of Representatives, One Hundred Seventh Congress, first session, September 20, 2001. U.S. G.P.O., 2002.

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33

Bollen, Math H. J., and Fainan Hassan. Integration of Distributed Generation in the Power System. Wiley & Sons, Limited, John, 2011.

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34

Bollen, Math H. J., and Fainan Hassan. Integration of Distributed Generation in the Power System. Wiley & Sons, Limited, John, 2011.

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35

Bollen, Math H. J., and Fainan Hassan. Integration of Distributed Generation in the Power System. Wiley & Sons, Incorporated, John, 2012.

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36

Bollen, Math H. J., and Fainan Hassan. Integration of Distributed Generation in the Power System. Wiley & Sons, Limited, John, 2011.

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37

Bollen, Math H., and Fainan Hassan. Integration of Distributed Generation in the Power System. Wiley & Sons, Incorporated, John, 2011.

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38

Kreider, Jan F., and Anne-Marie Borbely. Distributed Generation: The Power Paradigm for the New Millennium. Mechanical Engineering Series. Taylor & Francis Group, 2001.

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39

Revealed! the next generation of distributed CICS. IBM, International Technical Support Organization, 2006.

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40

Moddi, Ms Shifali, Mr Harvinder singh, and Mr Sachin Kumar. GRID INTERFACED DISTRIBUTED GENERATION SYSTEM FOR POWER QUALITY IMPROVEMENT AND ISLANDING DETECTION. Independently published, 2019.

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41

Naik, Shrey, and Varun Pratapsinha Jadhav. Regulation of Grid Voltage Using an Integrated Wind-Pv System As Statcom in Distributed Generation Systems. GRIN Verlag GmbH, 2014.

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42

U. S. Government Accountability Offi Gao. Electricity: Generation Mix Has Shifted, and Growth in Consumption Has Slowed, Affecting System Operations and Prices. Independently Published, 2019.

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43

Electricity Generation: Hearing Before the Committee on Energy and Natural Resources, United States Senate, One Hundred Eighth Congress, Secon. Not Avail, 2004.

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44

Competition in Electricity Generation in Germany and Neighboring Countries from a System Dynamics Perspective: Outlook Until 2012. Peter Lang Publishing, 1999.

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45

Ustun, Taha Selim. Power System Protection in Future Smart Grids: Achieving Reliable Operation with Renewable Energy, Electric Vehicles and Distributed Generation. Elsevier Science & Technology, 2023.

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46

Ustun, Taha Selim. Power System Protection in Future Smart Grids: Achieving Reliable Operation with Renewable Energy, Electric Vehicles and Distributed Generation. Elsevier Science & Technology Books, 2023.

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47

Rachapalli, Sireesha, Dr Sudheer Kasa, and Suresh Penagaluru. Effective Optimal Location of Multiple Distributed Generation System: Review and comparison of optimal DG placing algorithms performance with MATLAB coding. LAP LAMBERT Academic Publishing, 2020.

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48

Rachapalli, Sireesha, Dr Sudheer Kasa, and Suresh Penagaluru. Effective Optimal Location of Multiple Distributed Generation System: Review and comparison of optimal DG placing algorithms performance with MATLAB coding. LAP LAMBERT Academic Publishing, 2020.

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49

Reinert, Kenneth A. Electricity. Oxford University Press, 2018. http://dx.doi.org/10.1093/oso/9780190499440.003.0010.

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This chapter considers electricity as a basic good that satisfies critical basic human needs for refrigeration, light, communication, and air conditioning. It considers the widespread nature of electricity deprivation and the challenges that exist to address this deprivation. The chapter also considers the relationship of electricity with other basic goods (e.g., healthcare and food). The chapter examines the subsistence right to electricity and the very limited appearance of this right within the United Nations system of human rights. It also examines electricity provision paradigms (top-down
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50

Zakariah, Zainal Aripin Bin. Electricity generating capacity management in developing countries: A total system approach to electricity generation in developing countries, including the effects of technological diffusion and learning, with particular reference to the National Electricity Board of Malaya. 1986.

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