Books on the topic 'Platform control'

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1

Ziauddin, S. M. Co-operative control of multiple arms mounted on a mobile platform. Sheffield: University of Sheffield. Department of Automatic Control and Systems Engineering, 1995.

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2

Scott, A. Don. Rigid-body-control subsystem sizing for an earth science geostationary platform. Hampton, Va: Langley Research Center, 1991.

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3

Skowronski, J. Coordination control of independent two robot arms on moving platform attained via differential game. New York: AIAA, 1989.

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4

Butler, Ricky W. Formal design and verification of a reliable computing platform for real-time control: Phase 3 results. Hampton, Va: National Aeronautics and Space Administration, Langley Research Center, 1994.

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5

1965-, Taylor James, and Larbi Sammy, eds. Drools JBoss Rules 5.0 developer's guide: Develop rules-based business logic using the Drools platform. Birmingham, UK: Packt Pub., 2009.

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6

Goldbach, Tobias. Control Modes on Mobile Software Platforms. Wiesbaden: Springer Fachmedien Wiesbaden, 2016. http://dx.doi.org/10.1007/978-3-658-14893-5.

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7

Zhang, Bao-Lin, Qing-Long Han, Xian-Ming Zhang, and Gong-You Tang. Active Control of Offshore Steel Jacket Platforms. Singapore: Springer Singapore, 2019. http://dx.doi.org/10.1007/978-981-13-2986-9.

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8

Nawrat. M, Aleksander M., ed. Innovative Control Systems for Tracked Vehicle Platforms. Cham: Springer International Publishing, 2014. http://dx.doi.org/10.1007/978-3-319-04624-2.

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9

Hines, Karl E. Decision aids in airborne command and control platforms. Monterey, Calif: Naval Postgraduate School, 1998.

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10

Johnson, C. D. A multiple pointing-mount control strategy for space platforms: Final report. [Washington, DC: National Aeronautics and Space Administration, 1992.

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11

Engineers, National Association of Corrosion. Corrosion control of steel fixed offshore platforms associated with petroleum production. Houston: NACE, 1994.

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12

Johnson, C. D. A multiple pointing-mount control strategy for space platforms: Final report. [Washington, DC: National Aeronautics and Space Administration, 1992.

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13

Tompkins, Bill G. Conceptual design analysis applied to offshore control systems. Research Triangle Park, N.C: Instrument Society of America, 1992.

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14

Technology, Society for Underwater, and Institution of Electrical Engineers, eds. Subsea control and data acquisition--for oil and gas production systems: Proceedings of an international conference (Subsea Control and Data Acquision--for Oil and Gas Production Systems). London, Uk: Graham & Trotman, 1986.

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15

Siani, Pearson, and Balacheff Boris, eds. Trusted computing platforms: TCPA technology in context. Upper Saddle River, N.J: Prentice Hall PTR, 2003.

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16

James, Benjamin B. Multidisciplinary optimization of a controlled space structure using 150 design variables. Hampton, Va: Langley Research Center, 1992.

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17

James, Benjamin B. Multidisciplinary optimization of a controlled space structure using 150 design variables. [Washington, DC]: National Aeronautics and Space Administration, Office of Management, Scientific and Technical Information Program, 1993.

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18

Wachowiak, Nawojka M. Sediment-hosted Pb-Zn (Esker)/Cu mineralization, ~1.89 Ga Rocknest platform, Northwest Territories/Nunavut, Canada; characteristics, paragenetic analysis and controls. Ottawa: National Library of Canada, 2001.

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19

Delil, A. A. M. Sensors for a system to control the liquid flow into an evaporative cold plate of a two-phase heat transport system for large spacecraft. Amsterdam: National Aerospace Laboratory, 1986.

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20

United States. Naval Research Advisory Committee. Damage Control and Maintenance Panel. Damage control and maintenance (for reduced manning): Identify science and technology opportunities, as well as policy and process improvements, to reduce onboard manning for damage control and maintenance of in-service platforms. [Washington, D.C.]: NRAC, 1996.

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21

Technology, Society for Underwater, and Institute of Measurement and Control., eds. Subsea control and data acquisition for oil and gas production systems: Papers presented at a conference organized by the Society for Underwater Technology and held in London, UK, April 20-21, 1994. Dordrecht: Kluwer Academic Publishers, 1994.

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22

1943-, Gramling Robert, ed. Blowout in the Gulf: The BP oil spill disaster and the future of energy in America. Cambridge, Mass: MIT Press, 2012.

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23

Yuan, Michael. Building Intelligent, Cross-Platform, Messaging Bots. Pearson Education, Limited, 2025.

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24

van Dijck, José, Thomas Poell, and Martijn de Waal. The Platform Society. Oxford University Press, 2018. http://dx.doi.org/10.1093/oso/9780190889760.001.0001.

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Individuals all over the world can use Airbnb to rent an apartment in a foreign city, check Coursera to find a course on statistics, join PatientsLikeMe to exchange information about one’s disease, hail a cab using Uber, or read the news through Facebook’s Instant Articles. In The Platform Society, Van Dijck, Poell, and De Waal offer a comprehensive analysis of a connective world where platforms have penetrated the heart of societies—disrupting markets and labor relations, transforming social and civic practices, and affecting democratic processes. The Platform Society analyzes intense struggles between competing ideological systems and contesting societal actors—market, government, and civil society—asking who is or should be responsible for anchoring public values and the common good in a platform society. Public values include, of course, privacy, accuracy, safety, and security; but they also pertain to broader societal effects, such as fairness, accessibility, democratic control, and accountability. Such values are the very stakes in the struggle over the platformization of societies around the globe. The Platform Society highlights how these struggles play out in four private and public sectors: news, urban transport, health, and education. Some of these conflicts highlight local dimensions, for instance, fights over regulation between individual platforms and city councils, while others address the geopolitical level where power clashes between global markets and (supra-)national governments take place.
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25

Legal mechanisms of local government debt financing platform risk control. China Social Sciences Press, 2018.

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26

Changes in Pilot Control Behaviour across Stewart Platform Motion Systems. Berlin, Germany: Logos-Verlag Berlin, 2012.

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27

United States. National Aeronautics and Space Administration. Scientific and Technical Information Division., ed. Rigid-body-control subsystem sizing for an earth science geostationary platform. [Washington, DC]: National Aeronautics and Space Administration, Office of Management, Scientific and Technical Information Division, 1991.

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28

United States. National Aeronautics and Space Administration. Scientific and Technical Information Division., ed. Rigid-body-control subsystem sizing for an earth science geostationary platform. [Washington, DC]: National Aeronautics and Space Administration, Office of Management, Scientific and Technical Information Division, 1991.

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29

PATIO: Platform for ATM tools integration up to pre-operation. Luxembourg: Office for Official Publications of the European Communities, 1999.

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30

Singh, Rajesh. Robotic Platform Control with Atmega328 and NuttyFi Based on the Internet of Things. Nova Science Publishers, Incorporated, 2020.

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31

Singh, Rajesh. Robotic Platform Control with Atmega328 and NuttyFi Based on the Internet of Things. Nova Science Publishers, Incorporated, 2020.

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32

J, Landrigan Philip, Selikoff Irving J, and New York Academy of Sciences., eds. Occupational health in the 1990s: Developing a platform for disease prevention. New York, N.Y: New York Academy of Sciences, 1989.

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33

United States. National Aeronautics and Space Administration., ed. Project MEDSAT: The design of a remote sensing platform for malaria research and control. [Washington, DC]: NASA/USRA, 1991.

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34

Project MEDSAT: The design of a remote sensing platform for malaria research and control. [Washington, DC]: NASA/USRA, 1991.

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35

Trajectory planning and control of a 6 DOF manipulator with Stewart Platform-based mechanism. Washington, D.C: Catholic University of America, Dept. of Electrical Engineering, 1990.

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36

Singh, Rajesh, Lovi Raj Gupta, and Bhupendra Singh. Cookbook for Mobile Robotic Platform Control: With Internet of Things and Ti Launch Pad. BPB Publications, 2019.

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37

National Aeronautics and Space Administration (NASA) Staff. Test Platform for Advanced Digital Control of Brushless DC Motors (Msfc Center Director's Discretionary Fund). Independently Published, 2018.

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38

L, Di Vito Ben, and Langley Research Center, eds. Formal design and verification of a reliable computing platform for real-time control: Phase 2 results. Hampton, Va: National Aeronautics and Space Administration, Langley Research Center, 1992.

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39

Formal design and verification of a reliable computing platform for real-time control: Phase 1 results. Hampton, Va: National Aeronautics and Space Administration, Langley Research Center, 1990.

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40

National Aeronautics and Space Administration (NASA) Staff. Formal Design and Verification of a Reliable Computing Platform for Real-Time Control. Phase 1: Results. Independently Published, 2018.

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41

PATIO: Platform for ATM tools integration up to pre-operation (Transport research, Fourth Framework Programme, air transport, DG VII). Bernan Associates [distributor], 1999.

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42

End-To-End Automation with Kubernetes and Crossplane: Develop a Control Plane-Based Platform for Unified Infrastructure, Services, and Application Automation. Packt Publishing, Limited, 2022.

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43

Prassl, Jeremias. Lost in the Crowd. Oxford University Press, 2018. http://dx.doi.org/10.1093/oso/9780198797012.003.0004.

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This chapter explores the gig economy’s entrepreneurship narrative, juxtaposing platforms’ promises of autonomy, freedom, and self-determination with the sobering reality of algorithmic control. Life as a ‘micro-entrepreneur’, it turns out, is heavily conditioned by ever-watchful rating algorithms, which aggregate customer feedback and compliance with platform guidelines to exercise close control. Failure to comply can have drastic results. Moreover, depending on consumer demand, the promised flexibility of on-demand work can quickly turn into economic insecurity, as gig income is highly unpredictable from week to week. The promise of freedom similarly rings hollow for many—not least because of carefully constructed contractual agreements that ban some gig workers from taking platforms to court. Instead of enjoying the spoils of successful entrepreneurship, a significant proportion of on-demand workers find themselves trapped in precarious, low-paid work.
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44

Considerations for Ensuring Safety and Efficacy of Vaccines and Therapeutic Proteins Manufactured by Using Platform Approaches: Summary of a Workshop. National Academies Press, 2010.

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45

Dorobek, Steven. Tectonic Controls on Carbonate Platform Evolution. Wiley & Sons, Incorporated, John, 2020.

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46

Dorobek, Steven. Tectonic Controls on Carbonate Platform Evolution. Wiley & Sons, Limited, John, 2010.

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47

van, José. Epilogue. Oxford University Press, 2018. http://dx.doi.org/10.1093/oso/9780190889760.003.0009.

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The epilogue sketches a few scenarios on potential geopolitical consequences of the global paradigm shift toward multiple online platform “spheres.” Currently, the neoliberal US-based platform ecosystem dominates. This ecosystem revolves around the promotion of individualism and minimal state interference, leaving checks and balances to the market. On the other end of the ideological spectrum is the Chinese ecosystem, in which the autocratic regime controls the platform ecosystem via regulated censorship of tech corporations. Squeezed between the US and the Chinese models is the European Union, whose member states neither own nor operate any major platforms in either ecosystem. For European democracies to survive in the information age, its cities, national governments, and supranational legislature need to collaborate on a blueprint for a common digital strategy toward markets and public sectors.
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48

Nawrat, Aleksander M. Innovative Control Systems for Tracked Vehicle Platforms. Springer International Publishing AG, 2016.

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49

Han, Qing-Long, Bao-Lin Zhang, Xian-Ming Zhang, and Gong-You Tang. Active Control of Offshore Steel Jacket Platforms. Springer, 2018.

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50

M, Aleksander M. Nawrat. Innovative Control Systems for Tracked Vehicle Platforms. Springer, 2014.

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