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Books on the topic 'Optical Illumination'

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1

J, Svetkoff Donald, and Society of Photo-optical Instrumentation Engineers., eds. Optics, illumination, and image sensing for machine vision VI: 14-15 November 1991, Boston, Massachusetts. SPIE--the International Society for Optical Engineering, 1992.

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2

J, Svetkoff Donald, Automated Imaging Association, and Society of Photo-optical Instrumentation Engineers., eds. Optics, illumination, and image sensing for machine vision VIII: 8-9 September 1993, Boston, Massachusetts. SPIE--the International Society for Optical Engineering, 1994.

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3

J, Svetkoff Donald, Society of Photo-optical Instrumentation Engineers., and Symposium on Advances in Intelligent Systems (1990 : Boston, Mass.), eds. Optics, illumination, and image sensing for machine vision V: 8-9 November 1990, Boston, Massachusetts. SPIE--the International Society for Optical Engineering, 1991.

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4

1959-, Voelz David George, Ricklin Jennifer Crider 1960-, and Society of Photo-optical Instrumentation Engineers., eds. Free-space laser communication and active laser illumination III: 4-6 August 2003, San Diego, California, USA. SPIE, 2004.

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5

Gordon, Jeffrey M., and Roland Winston. Nonimaging optics: Efficient design for illumination and solar concentration VIII : 21-22 August 2011, San Diego, California, United States. Edited by SPIE (Society). SPIE, 2011.

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6

Weyrauch, Curtis. Fiber optic handpiece illumination systems. United States Air Force, School of Aerospace Medicine, 1989.

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7

Kirkland, Kyle. Optics: Illuminating the power of light. Facts on File, 2006.

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8

Ng, Eddie Kai Ho. Illuminating the local area: Towards adaptive, efficient, practical optical access networks. National Library of Canada, 2000.

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9

Kidger, Tina E. Illumination optics: 2-3 September 2008, Glasgow, United Kingdom. Edited by SPIE Europe, Scottish Optoelectronics Association, Europäische Forschungsgesellschaft Dünne Schichten, and SPIE (Society). SPIE, 2008.

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10

John, Koshel R., and Society of Photo-optical Instrumentation Engineers., eds. Design of efficient illumination systems: 4-5 August 2003, San Diego, California, USA. SPIE, 2003.

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11

Illumination engineering: Design with nonimaging optics. Wiley-IEEE Press, 2013.

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12

David, Stuart, and Tina Kidger. Optical Systems Design 2015: Illumination Optics. SPIE, 2015.

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13

Illumination Engineering: design with nonimaging optics. IEEE Wiley, 2013.

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14

Koshel, R. John. Illumination Engineering: Design with Nonimaging Optics. Wiley & Sons, Incorporated, John, 2012.

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15

Koshel, R. John. Illumination Engineering: Design with Nonimaging Optics. Wiley & Sons, Incorporated, John, 2012.

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16

Koshel, R. John. Illumination Engineering: Design with Nonimaging Optics. Wiley & Sons, Incorporated, John, 2012.

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17

Koshel, R. John. Illumination Engineering: Design with Nonimaging Optics. Wiley & Sons, Limited, John, 2013.

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18

Koshel, R. John. Illumination Engineering: Design with Nonimaging Optics. Wiley & Sons, Incorporated, John, 2012.

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19

Svetkoff, Donald J. Optics, Illumination, and Image Sensing for Machine Vision III. Society of Photo Optical, 1989.

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20

Svetkoff, Donald J. Optics Illumination and Image Sensing for Machine Vision Viii/V 2065. Society of Photo Optical, 1993.

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21

Winston, Roland, Lun Jiang, and Vladimir Oliker. Nonimaging Optics: Solar and Illumination System Methods, Design, and Performance. Taylor & Francis Group, 2020.

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22

Winston, Roland, Lun Jiang, and Vladimir Oliker. Nonimaging Optics: Solar and Illumination System Methods, Design, and Performance. Taylor & Francis Group, 2020.

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23

Gordon, Jeffrey, and Roland Winston. Nonimaging Optics: Efficient Design for Illumination and Solar Concentration X. SPIE, 2013.

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24

Gordon, Jeffrey, and Roland Winston. Nonimaging Optics: Efficient Design for Illumination and Solar Concentration XI. SPIE, 2014.

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25

Gordon, Jeffrey, and Roland Winston. Nonimaging Optics: Efficient Design for Illumination and Solar Concentration XII. SPIE, 2015.

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26

Winston, Roland, and Sarah Kurtz. Nonimaging Optics: Efficient Design for Illumination and Solar Concentration XIV. SPIE, 2017.

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27

Winston, Roland, Lun Jiang, and Vladimir Oliker. Nonimaging Optics: Solar and Illumination System Methods, Design, and Performance. Taylor & Francis Group, 2020.

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28

Nonimaging Optics: Solar and Illumination System Methods, Design, and Performance. Taylor & Francis Group, 2020.

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29

Nonimaging Optics: Solar and Illumination System Methods, Design, and Performance. Taylor & Francis Group, 2023.

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30

Optics, illumination, and image sensing for machine vision VII: 15-16 November 1992, Boston, Massachusetts. SPIE--the International Society for Optical Engineering, 1993.

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31

Optics, illumination, and image sensing for machine vision III: 8-9 November 1988, Cambridge, Massachusetts. SPIE, 1989.

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32

Taylor, David K. Non-coherent optical radiation sources. Oxford University Press, 2015. http://dx.doi.org/10.1093/med/9780199655212.003.0022.

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Optical radiation is ubiquitous, and intense artificial sources find many applications in clinical practice, including zone illumination, diagnosis, and therapy. Its effects on humans are strongly wavelength-dependent, its hazards sometimes overlooked due to familiarity or masking by other wavelengths. This chapter examines non-laser sources of ultraviolet, visible, and infrared radiations, the risks likely to be encountered in clinical settings, the calculations needed to assess commonly encountered optical radiation sources, and the measures that can be taken to minimize the hazards to worke
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33

A Catalogue of Medieval and Renaissance Optical Manuscripts. Pontifical Inst of Medieval, 1998.

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34

Hayes, Brian S., and Luther M. Gammon. Optical Microscopy of Fiber-Reinforced Composites. ASM International, 2010. http://dx.doi.org/10.31399/asm.tb.omfrc.9781627083492.

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Optical Microscopy of Fiber-Reinforced Composites discusses the tools and techniques used to examine the microstructure of engineered composites and provides insights that can help improve the quality and performance of parts made from them. It begins with a review of fiber-reinforced polymer-matrix composites and their unique microstructure and morphology. It then explains how to prepare and mount test samples, how to assess lighting, illumination, and contrast needs, and how to use reagents to bring out different phases and areas of interest. It also presents the results of several studies t
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35

Automotive Displays and Industrial Illumination Meeting Proceedings June 1988 (Proceedings of SPIE--the International Society for Optical Engineering). Society of Photo Optical, 1988.

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36

United States War Department. TM 9-1582 Ordnance Maintenance Panoramic Telescope M8 1942 : Topics: Optical System, Mechanical Construction, Illumination, Leveling and Adjusting, Pointing in Direction, Inspection. Procedure. Independently Published, 2022.

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37

Ries, Harald, and Wolfgang Spirkl. Modern Illumination Optics Design. Wiley & Sons, Incorporated, John, 2020.

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38

Kirkland, Kyle, and Sean M. Grady. Optics: Illuminating the Power of Light (Science and Technology in Focus). Facts on File, 2006.

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39

Zuckerman, Ezra W. Optimal Distinctiveness Revisited. Edited by Michael G. Pratt, Majken Schultz, Blake E. Ashforth, and Davide Ravasi. Oxford University Press, 2016. http://dx.doi.org/10.1093/oxfordhb/9780199689576.013.22.

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This chapter integrates three approaches to the question of why successful identities—individual and organizational—generally involve a balance between conformity to others’ practices and differentiation from them. An entertaining model is employed to highlight the limitations of the “optimal distinctiveness” and the “different audiences” approaches. A third approach—“two-stage valuation”—is then shown to address these limitations. It is also demonstrated that this approach provides a general foundation for understanding the balance between conformity and differentiation. The advantages of thi
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40

Design of efficient illumination systems: 4-5 August 2003, San Diego, California, USA. SPIE, 2004.

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41

Czarnocki, Jan, and Przemysław Pałka, eds. Proportionality in EU Digital Law. Hart Publishing, 2024. http://dx.doi.org/10.5040/9781509974542.

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This book addresses the interplay between the proportionality principle and EU digital law. Does EU digital law provide a fair balance of rights and interests? How does proportionality limit legislation in the digital economy? How can it be used to balance competing rights and interests? Diving into the dialectics of law and technology, the book analyses the relevance of the proportionality principle in regulating the digital world and as a vital tool for balancing competing rights and interests. The chapters analyse how conflicting rights and interests are resolved in EU digital law through t
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