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1

Karlsson, Daniel. Verification of component-based embedded system designs. Linko ping: Department of Computer and Information Science, Linko ping University, 2006.

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2

Atkinson, Colin, Christian Bunse, Hans-Gerhard Gross, and Christian Peper, eds. Component-Based Software Development for Embedded Systems. Berlin, Heidelberg: Springer Berlin Heidelberg, 2005. http://dx.doi.org/10.1007/11591962.

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3

Fischer, Marco. A formal fault model for component-based models of embedded systems. Dresden: TUDpress, 2007.

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4

K, Kokula Krishna Hari, ed. Embedded Software Component Technologies for Real time Systems - An Industrial Perspective: ICIEMS 2014. India: Association of Scientists, Developers and Faculties, 2014.

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5

Stefan, Förster. A formal framework for modelling component extension and layers in distributed embedded systems. Dresden: TUDpress, 2007.

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6

Yŏnʼguwŏn, Hanʼguk Chŏnja Tʻongsin, ред. URC rŭl wihan naejanghyŏng kʻŏmpʻonŏntʻŭ kisul kaebal mit pʻyojunhwa =: Embedded component technology and standardization for URC. [Seoul]: Chŏngbo Tʻongsinbu, 2008.

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7

Yŏnʼguwŏn, Hanʼguk Chŏnja Tʻongsin, ред. URC rŭl wihan naejanghyŏng kʻŏmpʻonŏntʻŭ kisul kaebal mit pʻyojunhwa =: Embedded component technology and standardization for URC. [Seoul]: Chŏngbo Tʻongsinbu, 2008.

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8

Sickle, Ted Van. Reusable software components: Object-oriented embedded systems programming in C. Upper Saddle River, N.J: Prentice Hall PTR, 1997.

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9

Felice, Balarin, ed. Hardware-software co-design of embedded systems: The POLIS approach. Boston: Kluwer Academic Publishers, 1997.

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10

Peper, Christian, Christian Bunse, Hans-Gerhard Gross, and Colin Atkinson. Component-Based Software Development for Embedded Systems: An Overview of Current Research Trends. Springer London, Limited, 2005.

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11

Otruba, Kathy. MEC1609/MEC1609i Mixed Signal Mobile Embedded Flash ARC EC BC-Link/VLPC Base Component - Product Brief. Microchip Technology Incorporated, 2014.

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12

Otruba, Kathy. MEC1609/MEC1609i Mixed Signal Mobile Embedded Flash ARC EC BC-Link/VLPC Base Component - Data Sheet. Microchip Technology Incorporated, 2017.

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13

(Editor), Colin Atkinson, Christian Bunse (Editor), Hans-Gerhard Gross (Editor), and Christian Peper (Editor), eds. Component-Based Software Development for Embedded Systems: An Overview of Current Research Trends (Lecture Notes in Computer Science). Springer, 2005.

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14

Wolf, Wayne. Computers as Components. Elsevier, 2005.

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15

Reis, Ricardo, and Jochen A. G. Jess. Design of System on a Chip: Devices & Components. Springer, 2011.

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16

Seepold, Ralf, and Natividad Martinez Madrid. Virtual Components Design and Reuse. Springer London, Limited, 2013.

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17

Seepold, Ralf, and Natividad Martinez Madrid. Virtual Components Design and Reuse. Springer, 2010.

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18

Real-Time Embedded Components and Systems (Computer Engineering). Charles River Media, 2006.

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19

(Editor), Ralf Seepold, and Natividad Martinez Madrid (Editor), eds. Virtual Components Design and Reuse. Springer, 2000.

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20

Wolf, Marilyn. Computers As Components: Principles of Embedded Computing System Design. Elsevier Science & Technology, 2016.

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21

Computers as Components: Principles of Embedded Computer Systems Design. Morgan Kaufmann Publishers, 2000.

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22

Wolf, Marilyn. Computers As Components: Principles of Embedded Computing System Design. Elsevier Science & Technology Books, 2012.

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23

Wolf, Wayne. Computers As Components: Principles of Embedded Computing System Design. Elsevier Science & Technology Books, 2005.

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24

Wolf, Marilyn. Computers As Components: Principles of Embedded Computing System Design. Elsevier Science & Technology Books, 2008.

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25

Wolf, Marilyn. Computers As Components: Principles of Embedded Computing System Design. Elsevier Science & Technology, 2022.

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26

Wolf, Marilyn. Computers As Components: Principles of Embedded Computing System Design. Elsevier Science & Technology Books, 2022.

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27

Computers as components: Principles of embedded computing system design. 2nd ed. Burlington, MA: Elsevier/Morgan Kaufmann, 2008.

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28

Computers As Components: Principles of Embedded Computing System Design. Elsevier Science & Technology Books, 2016.

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29

Computers as Components: Principles of Embedded Computing System Design. Elsevier Science & Technology Books, 2012.

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30

Global Specification and Validation of Embedded Systems: Integrating Heterogeneous Components. Springer, 2007.

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31

John, Pratt, ed. Real-time embedded components and systems: With Linux and RTOS. Mercury Learning & Information, 2016.

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32

Nicolescu, G., and Ahmed A. Jerraya. Global Specification and Validation of Embedded Systems: Integrating Heterogeneous Components. Springer London, Limited, 2007.

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33

Nicolescu, G., and Ahmed A. Jerraya. Global Specification and Validation of Embedded Systems: Integrating Heterogeneous Components. Springer, 2010.

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34

Real-Time Embedded Components and Systems with Linux and RTOS. de Gruyter GmbH, Walter, 2016.

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35

Real-Time Embedded Components and Systems with Linux and RTOS. de Gruyter GmbH, Walter, 2016.

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36

Hutchinson, G. O. Motion in Grattius. Oxford University Press, 2018. http://dx.doi.org/10.1093/oso/9780198789017.003.0007.

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Анотація:
This chapter views motion as an important component to this as well as to other didactic poems. The presentation of hunting itself is less astir with lively motion than might have been expected, especially in light of its potential for exciting narrative; rather, verbal networks connect hunting with wider worlds, and a larger ethical and pragmatic vision is conveyed. Humans interact not just with animals but also with the divine and with the forces of disease; hierarchies and power struggles are involved. Yet for all the expansion of the poem’s universe, the purposeful and rational ethos of Grattius’ poem is embedded in its treatment of the primary subject matter.
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37

Schürmann, Bernd, Karsten Berns, and Alexander Köpper. Technical Foundations of Embedded Systems: Electronics, System Theory, Components and Analysis. Springer International Publishing AG, 2022.

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38

Schürmann, Bernd, Karsten Berns, and Alexander Köpper. Technical Foundations of Embedded Systems: Electronics, System Theory, Components and Analysis. Springer International Publishing AG, 2021.

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39

Kawachi, Ichiro. Trust and Population Health. Edited by Eric M. Uslaner. Oxford University Press, 2017. http://dx.doi.org/10.1093/oxfordhb/9780190274801.013.35.

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Анотація:
Research in public health approaches trust as a component of social cohesion, a characteristic of the social context in which an individual is embedded. This article discusses the theoretical mechanisms why living in a trusting environment might be associated with better health outcomes. A conceptual dilemma in health studies is that individual trust perceptions overlap with the personality trait of “cynical hostility” (from the field of psychology). Multi-level studies help to distinguish between the health effects of cynical distrust (an individual characteristic) and trustworthiness of the environment. I review the empirical studies linking trust and health outcomes. To date, trust has been examined as a contextual feature of residential neigborhoods and workplaces. Future research needs to strengthen causal inference.
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40

Embedded System Architecture and Hardware Design: Building Blocks, Circuits, Intercommunications, IC and Discrete Components. Independently Published, 2020.

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41

Jandial, Sharmila, and Helen Foster. Principles of clinical examination in children. Oxford University Press, 2013. http://dx.doi.org/10.1093/med/9780199642489.003.0005.

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Анотація:
The clinical examination of children and adolescents is an essential component of assessment, facilitates appropriate interpretation of investigations and is integral to the process of making a diagnosis. The clinical assessment of children and young people differs from that of adults, requiring greater reliance on physical examination as the history may be vague and illocalized and requires knowledge of normal musculoskeletal development, normal motor milestones and different patterns of clinical presentations across the ages. The interpretation of clinical findings needs to be in the context of the whole child and the clinical presentation. The degree of expertise required in clinical skills varies with the clinical practice of the examiner and ranges from the basic screening assessment to a more detailed examination of joints, muscles and anatomical regions. The evidence base for clinical assessment in children and young people is accruing and undoubtedly, competent clinical skills requires learning to be embedded in core child health teaching and assessment starting at medical school and reinforced in postgraduate training.
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42

Jandial, Sharmila, and Helen Foster. Principles of clinical examination in children. Oxford University Press, 2016. http://dx.doi.org/10.1093/med/9780199642489.003.0005_update_002.

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Анотація:
The clinical examination of children and adolescents is an essential component of assessment, facilitates appropriate interpretation of investigations and is integral to the process of making a diagnosis. The clinical assessment of children and young people differs from that of adults, requiring greater reliance on physical examination as the history may be vague and illocalized and requires knowledge of normal musculoskeletal development, normal motor milestones and different patterns of clinical presentations across the ages. The interpretation of clinical findings needs to be in the context of the whole child and the clinical presentation. The degree of expertise required in clinical skills varies with the clinical practice of the examiner and ranges from the basic screening assessment to a more detailed examination of joints, muscles and anatomical regions. The evidence base for clinical assessment in children and young people is accruing and undoubtedly, competent clinical skills requires learning to be embedded in core child health teaching and assessment starting at medical school and reinforced in postgraduate training.
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43

Chapman, Audrey R., and Konstantinos Tararas. The United Nations Educational, Scientific and Cultural Organization. Oxford University Press, 2018. http://dx.doi.org/10.1093/oso/9780190672676.003.0011.

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Анотація:
This chapter focuses on the human rights work of the United Nations Educational, Scientific and Cultural Organization (UNESCO) and its interconnection with initiatives relating to global health. Embedded in its Constitution, the promotion of human rights has been a component of UNESCO’s activities across its fields of competence since the first years of its existence. Although global health is not central to its mandate, many of UNESCO’s programs are either inextricably connected to global health or have contributed to UN initiatives promoting public health and the right to health. This is showcased through an overview of UNESCO’s efforts on: (1) standard-setting and monitoring; (2) rights in education; and (3) rights in science. Enabling factors for a stronger human rights articulation of UNESCO’s global health initiatives are the adoption of the 2030 Agenda for Sustainable Development as a rights-based common standard of achievement and the resulting inter-agency cooperation and coordination.
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44

Wolf, Wayne. Computers as Components: Principles of Embedded Computing System Design (The Morgan Kaufmann Series in Computer Architecture and Design) (The Morgan Kaufmann ... Series in Computer Architecture and Design). Morgan Kaufmann, 2005.

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45

Wolf, Wayne. Computers as Components: Principles of Embedded Computing System Design (The Morgan Kaufmann Series in Computer Architecture and Design) (The Morgan Kaufmann ... Series in Computer Architecture and Design). Morgan Kaufmann, 2005.

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46

Computers as Components: Principles of Embedded Computer Systems Design (With CD-ROM) (The Morgan Kaufmann Series in Computer Architecture and Design). Morgan Kaufmann, 2000.

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47

Reusable Software Components: Object-Oriented Embedded Systems Programming in C (Prentice Hall Series on Programming Tools and Methodologies). Prentice Hall, 1996.

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48

Sickle, Ted Van. Reusable Software Components: Object-Oriented Embedded Systems Programming in C (Prentice Hall Series on Programming Tools and Methodologies). Prentice Hall, 1996.

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49

Mueller, Milton. Internet Governance. Oxford University Press, 2017. http://dx.doi.org/10.1093/acrefore/9780190846626.013.245.

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Анотація:
The internet is a set of software instructions (known as “protocols”) capable of transmitting data over networks. These protocols were designed to facilitate the movement of data across independently managed networks and different physical media, and not to survive a nuclear war as the popular myth suggests. The use of the internet protocols gives rise to technical, legal, regulatory, and policy problems that become the main concern of internet governance. Because the internet is a key component of the infrastructure for a growing digital economy, internet governance has turned into an increasingly high-stakes arena for political activity. The world’s convergence on the internet protocols for computer communications, coupled with the proliferation of a variety of increasingly inexpensive digital devices that can be networked, has created a new set of geopolitical issues around information and communication technologies. These problems are intertwined with a broader set of public policy issues such as freedom of expression, privacy, transnational crime, the security of states and critical infrastructure, intellectual property, trade, and economic regulation. Political scientists and International Relations scholars have been slow to attack these problems, in part due to the difficulty of recognizing governance issues when they are embedded in a highly technological context. Internet governance is closely related to, and has evolved out of, debates over digital convergence, telecommunications policy, and media regulation.
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50

Lu, Jie, and Yun-han Chu. Understandings of Democracy. Oxford University Press, 2021. http://dx.doi.org/10.1093/oso/9780197570401.001.0001.

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Анотація:
While democracy is popular and still enjoys supremacy in contemporary political discourse with limited challenges from alternatives, it has also been acknowledged that democracy is in crisis. However, if most people love democracy and politicians have to live with democracy, how can democracy be in trouble? Understandings of Democracy examines this puzzling phenomenon, arguing that (1) people hold distinct understandings of democracy; (2) popular conceptions of democracy are significantly shaped by socioeconomic and political contexts; (3) such varying conceptions generate different baselines for people to assess democratic practices and to establish their views of democracy; and (4) such distinct conceptions also drive political participation in different ways. Overall, popular understandings of democracy have critically shaped how citizens respond to authoritarian or populist practices in contemporary politics. Using new survey instruments embedded in the Global Barometer Surveys (GBS), this book highlights the significance and essentialness of how people assess the tradeoffs between key democratic principles and instrumental gains when they conceptualize democracy for comparative research on popular understandings of democracy. Furthermore, weaving together GBS II survey data from seventy-two societies and survey experiments, this book scrutinizes some key micro-dynamics that drive people’s critical political attitudes and behaviors, which are centered on how people understand democracy in different ways. Overall, this book theorizes and demonstrates that, as a critical but underappreciated component of the demand-side dynamics, varying conceptions of democracy offer significant explanatory power for understanding why democracy is in trouble, even when most people profess to love democracy.
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