Books on the topic 'Electrically large analysis'

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1

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

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2

Solution of large networks by matrix methods. 2nd ed. New York: Wiley, 1985.

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3

Kuhn, Michael. CLEAN: CO2 Large-Scale Enhanced Gas Recovery in the Altmark Natural Gas Field - GEOTECHNOLOGIEN Science Report No. 19. Berlin, Heidelberg: Springer Berlin Heidelberg, 2013.

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4

Zeljko, Zilic, ed. Verification by error modeling: Using testing techniques in hardware verification. Boston: Kluwer Academic Publishers, 2003.

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5

Thornton, Mitchell Aaron. Spectral techniques in VLSI CAD. Boston: Kluwer Academic Publishers, 2001.

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6

Ashar, Pranav. Sequential logic synthesis. Boston: Kluwer Academic Publishers, 1992.

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7

Rolf, Drechsler, and Miller D. Michael, eds. Spectral techniques in VLSI CAD. Boston: Kluwer Academic Publishers, 2001.

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8

Bening, Lionel. Principles of verifiable RTL design: A functional coding style supporting verification processes in Verilog. 2nd ed. Boston: Kluwer Academic Publishers, 2001.

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9

1956-, Foster Harry, ed. Principles of verifiable RTL design: A functional coding style supporting verification processes in Verilog. Norwell, Mass: Kluwer Academic Publishers, 2000.

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10

Bening, Lionel. Principles of verifiable RTL design: A functional coding style supporting verification processes in Verilog. 2nd ed. Boston: Kluwer Academic Publishers, 2001.

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11

A, Jerraya Ahmed, ed. Behavioral synthesis and component reuse with VHDL. Boston: Kluwer Academic Publishers, 1997.

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12

Heldring, Alexander. Full-Wave Analysis of Electrically Large Reflector Antennas. Delft Univ Pr, 2002.

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13

Soman, S. A., Shubha Pandit, and S. A. Khaparde. Computational Methods for Large Sparse Power Systems Analysis: An Object Oriented Approach. Springer London, Limited, 2012.

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14

Vassanelli, Stefano. Implantable neural interfaces. Oxford University Press, 2018. http://dx.doi.org/10.1093/oso/9780199674923.003.0050.

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Establishing direct communication with the brain through physical interfaces is a fundamental strategy to investigate brain function. Starting with the patch-clamp technique in the seventies, neuroscience has moved from detailed characterization of ionic channels to the analysis of single neurons and, more recently, microcircuits in brain neuronal networks. Development of new biohybrid probes with electrodes for recording and stimulating neurons in the living animal is a natural consequence of this trend. The recent introduction of optogenetic stimulation and advanced high-resolution large-scale electrical recording approaches demonstrates this need. Brain implants for real-time neurophysiology are also opening new avenues for neuroprosthetics to restore brain function after injury or in neurological disorders. This chapter provides an overview on existing and emergent neurophysiology technologies with particular focus on those intended to interface neuronal microcircuits in vivo. Chemical, electrical, and optogenetic-based interfaces are presented, with an analysis of advantages and disadvantages of the different technical approaches.
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15

Solution of large networks by matrix methods. wiley, 1985.

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16

Solution of large networks by matrix methods. wiley, 1985.

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17

Novel Algorithms for Fast Statistical Analysis of Scaled Circuits Lecture Notes in Electrical Engineering. Springer, 2009.

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18

Soman, S. A., S. A. Khaparde, and Shubha Pandit. Computational Methods for Large Sparse Power Systems: An Object Oriented Approach (With CD-ROM) (Power Electronics and Power Systems). Springer, 2001.

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19

Radecka, Katarzyna. Verification by Error Modeling: Using Testing Techniques In Hardware Verification. Springer, 2010.

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20

Radecka, Katarzyna, and Zeljko Zilic. Verification by Error Modeling: Using Testing Techniques in Hardware Verification. Springer London, Limited, 2006.

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21

Drechsler, Rolf, Mitchell Aaron Thornton, and D. Michael Miller. Spectral Techniques in VLSI CAD. Springer, 2001.

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22

Djaloeis, Ashar, S. Devadas, and A. Richard Newton. Sequential Logic Synthesis (The International Series in Engineering and Computer Science). Springer, 1991.

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23

Bening, Lionel, and Harry D. Foster. Principles of Verifiable RTL Design Second Edition - A Functional Coding Style Supporting Verification Processes in Verilog. 2nd ed. Springer, 2001.

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24

Bening, Lionel, and Harry D. Foster. Principles of Verifiable RTL Design: A Functional Coding Style Supporting Verification Processes in Verilog. Springer, 2013.

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25

Bening, Lionel, and Harry D. Foster. Principles of Verifiable RTL Design: A functional coding style supporting verification processes in Verilog. Springer, 2013.

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26

Bening, Lionel, and Harry D. Foster. Principles of Verifiable RTL Design: A Functional Coding Style Supporting Verification Processes in Verilog. Springer London, Limited, 2007.

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27

Jerraya, Ahmed Amine, Hong Ding, Polen Kission, and Maher Rahmouni. Behavioral Synthesis and Component Reuse with VHDL. Springer, 1996.

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