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1

Zacker, Craig. Building Windows 98 networks: Design, implementation, and use. Cambridge, Mass: O'Reilly, 1999.

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2

Umlauf, Elyse. Building design: Improving commercial spaces. Glen Cove, N.Y: Library of Applied Design, 1990.

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3

Haverstock, Henry. The building design easibrief: An easy to use reference book for building designers. London: Morgan-Grampian, 1993.

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4

Grassi, Ennio. Stone materials in curtain walls: Design criteria, technical performance, use of stone in prefabricated systems. [Genoa]: Internazionale Marmi e Macchine Carrara S.P.A, 1992.

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5

Bainbridge, Kathy. Building web sites constituents will use: Innovations, links, design, content, audience. Washington, D.C: Congressional Management Foundation, 1999.

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6

Nash, John C. Building a database of secular and religious holidays for world-wide use. [Ottawa]: Administration, University of Ottawa = Administration, Université d'Ottawa, 1987.

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7

Building a multi-use barn for garage, animals, workshop, studio. Charlotte, Vt: Williamson Pub., 1994.

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8

Catanzaro, Thomas E. Veterinary practice building: Design starter kit to use in renovating, expanding or building a new facility : complete with cut-out functional areas for desk top use. 2nd ed. Denver, Colo: American Animal Hospital Association, 1989.

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9

Site analysis: Informing context-sensitive and sustainable site planning and design. Hoboken: Wiley, 2013.

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10

Haverstock, Henry. The building design Easibrief: An easy to use reference book for designers. London: Morgan Grampian, 1987.

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11

Haverstock, Henry. The Building design easibrief: An easy to use reference book for designers. [London]: Morgan-Grampian, 1993.

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12

Haverstock, Henry. The Building design easibrief: An easy to use reference book for designers. [London]: Morgan-Grampian, 1987.

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13

Needham, F. H. The development of design rules for the use of structural steel in building. Luxembourg: Commission of the European Communities, 1985.

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14

W, Starke Barry, ed. Landscape architecture: A manual of environmental planning and design. 4th ed. New York: McGraw-Hill, 2006.

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15

Landscape architecture: A manual of site planning and design. 3rd ed. New York: McGraw-Hill, 1998.

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16

LaGro, James A. Site analysis: A context-sensitive approach to sustainable site planning and design. 2nd ed. Hoboken: John Wiley & Sons, 2008.

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17

Sherwood, P. T. The use of waste materials in fill and capping layers. Crowthorne, Berks: Bridges and Ground Engineering Resource Centre, Transport Research Laboratory, 1994.

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18

Authority, Singapore Building and Construction. Design guide on use of alternative steel materials to BS 5950: BC 1: 2008. Singapore: Building and Construction Authority, 2008.

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19

Renovating or building a small barn for your horse. Pownal, Vt: Storey Books, 1999.

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20

Catanzaro, Thomas E. Design starter kit for veterinary hospitals: Use in renovating, expanding or building a new facility complete with cut-out functional areas drawn to accurate scale for desktop use. 3rd ed. [Denver, Colo: American Animal Hospital Association], 1996.

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21

Alexander, Mowat, ed. A treatise on stairbuilding and handrailing: Containing numerous examples illustrating the construction of the various classes of wood stairs ... intended for the use of house and ship joiners ... Fresno, CA: Linden Pub. Co., 1985.

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22

Eberhardshtayner, Yozef, Sergey Leonovich, and Valentin Dorkin. Design models of structural building materials under multiaxial stress. ru: INFRA-M Academic Publishing LLC., 2020. http://dx.doi.org/10.12737/1082947.

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The monograph presents the results of experimental and theoretical studies of the behavior of wood and concrete of various structures under biaxial and triaxial compression. It contains a systematic classification of existing models for concrete that link three-axis nonlinear elastic stresses and deformations, as well as research and subsequent evaluation of some basic models from the point of view of their possible use in the framework of spatial load analysis using FEM. It is intended for scientific and engineering workers of research and design organizations.
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23

The building retrofit challenge: Programmazione, progettazione e gestione degli interventi in Europa : planning, design and management of interventions in Europe. Firenze: Alinea editrice, 2012.

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24

Arendt, Randall. Conservation design for subdivisions: A practical guide to creating open space networks. Washington, D.C: Island Press, 1996.

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25

Moyes, Rowena E. Zoning standards and design guidelines for infill housing and redevelopment : City of Saint John : case study = Normes de zonage et directives de conception pour la construction résidentielle intercalaire et le réaménagement : ville de Saint John : étude de cas. Ottawa, Ont: Canada Mortgage and Housing Corporation = Société canadienne d'hypothèques et de logement, 1997.

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26

Smith, Ian, and Andrea Frangi. Use of Timber in Tall Multi-Storey Buildings. Zurich, Switzerland: International Association for Bridge and Structural Engineering (IABSE), 2014. http://dx.doi.org/10.2749/sed013.

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<p>Since the dawn of civilization, timber has been a primary material for achieving great structural engineering feats. Yet during the late 19th century and most of the 20th century it lost currency as a preferred material for construction of large and tall multi-storey building superstructures. This Structural Engineering Document (SED) addresses a reawakening of interest in timber and timber-based products as primary con-struction materials for relatively tall, multi-storey buildings. Emphasis throughout is on holistically addressing various aspects of performance of complete systems, reflecting that major gaps in knowhow relate to design concepts rather than technical information about timber as a material. Special con-sideration is given to structural form, fire vulnerability, and durability aspects for attaining desired building performance over lifespans that can be centuries long.</p>
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27

Keller, Thomas. Use of fibre reinforced polymers in bridge construction. Zurich, Switzerland: International Association for Bridge and Structural Engineering (IABSE), 2003. http://dx.doi.org/10.2749/sed007.

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<p>The aim of the present Structural Engineering Document, a state-of-the-art report, is to review the progress made worldwide in the use of fibre rein­forced polymers as structural components in bridges until the end of the year 2000.<p> Due to their advantageous material properties such as high specific strength, a large tolerance for frost and de-icing salts and, furthermore, short installation times with minimum traffic interference, fibre reinforced polymers have matured to become valuable alternative building materials for bridge structures. Today, fibre reinforced polymers are manufactured industrially to semi-finished products and ccimplete structural components, which can be easily and quickly installed or erected on site.<p> Examples of semi-finished products and structural components available are flexible tension elements, profiles stiff in bending and sandwich panels. As tension elements, especially for the purpose of strengthening, strips and sheets are available, as weil as reinforcing bars for concrete reinforcement and prestressing members for internal prestressing or external use. Profiles are available for beams and columns, and sandwich constructions especially for bridge decks. During the manufacture of the structural components fibre-optic sensors for continuous monitoring can be integrated in the materials. Adhesives are being used more and more for joining com­ponents.<p> Fibre reinforced polymers have been used in bridge construction since the mid-1980s, mostly for the strengthening of existing structures, and increas­ingly since the mid-1990s as pilot projects for new structures. In the case of new structures, three basic types of applications can be distinguished: concrete reinforcement, new hybrid structures in combination with traditional construction materials, and all-composite applications, in which the new materials are used exclusively.<p> This Structural Engineering Document also includes application and research recommendations with particular reference to Switzerland.<p> This book is aimed at both students and practising engineers, working in the field of fibre reinforced polymers, bridge design, construction, repair and strengthening.
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28

Lomakina, Tat'yana, and Nina Vasil'chenko. Modern technology of teaching a foreign language: design and experience. ru: INFRA-M Academic Publishing LLC., 2021. http://dx.doi.org/10.12737/1111366.

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The monograph deals with the theoretical and practical issues of pedagogical design of the technology of teaching a foreign language in the system of secondary vocational education. Presents an analysis of key concepts "instructional design" and "technology of education" that is meaningful and reveals the basic principles of the system, activity-based and student-centered approaches to the design of learning technologies to address new opportunities and the status of the str system in the modern socio-economic conditions. The author has developed a method of selection of the content of learning English language, based on the modular structure of the course, taking into account international experience in building the content of language education for professional purposes, the requirements of the educational-methodical complex of teaching business English and core competencies stipulated by the Council of Europe, as well as the requirements of the labour market and the needs of employers standardisert, intensificarea language training specialist of middle management by reflection of the status and trends of professional activities in various fields. For use in the system of professional development of teachers of secondary vocational education, additional education and the system of corporate training.
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29

Schneider, Jörg, and Ton Vrouwenvelder. Introduction to safety and reliability of structures. 3rd ed. Zurich, Switzerland: International Association for Bridge and Structural Engineering (IABSE), 1997. http://dx.doi.org/10.2749/sed005.

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<p>Society expects that buildings and other structures are safe for the people who use them or who are near them. The failure of a building or structure is expected to be an extremely rare event. Thus, society implicitly relies on the expertise of the professionals involved in the planning, design, construction, operation and maintenance of the structures it uses.<p>Structural engineers devote all their effort to meeting society’s expectations effi ciently. Engineers and scientists work together to develop solutions to structural problems. Given that nothing is absolutely and eternally safe, the goal is to attain an acceptably small probability of failure for a structure, a facility, or a situation. Reliability analysis is part of the science and practice of engineering today, not only with respect to the safety of structures, but also for questions of serviceability and other requirements of technical systems that might be impacted by some probability.<p>The present volume takes a rather broad approach to safety and reliability in Structural Engineering. It treats the underlying concepts of safety, reliability and risk and introduces the reader in a fi rst chapter to the main concepts and strategies for dealing with hazards. The next chapter is devoted to the processing of data into information that is relevant for applying reliability theory. Two following chapters deal with the modelling of structures and with methods of reliability analysis. Another chapter focuses on problems related to establishing target reliabilities, assessing existing structures, and on effective strategies against human error. The last chapter presents an outlook to more advanced applications. The Appendix supports the application of the methods proposed and refers readers to a number of related computer programs.<p>This book is aimed at both students and practicing engineers. It presents the concepts and procedures of reliability analysis in a straightforward, understandable way, making use of simple examples, rather than extended theoretical discussion. It is hoped that this approach serves to advance the application of safety and reliability analysis in engineering practice.<p>The book is amended with a free access to an educational version of a Variables Processor computer program. FreeVaP can be downloaded free of charge and supports the understanding of the subjects treated in this book.
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30

1949-, Mom Gijs, and Tissot Laurent, eds. Road history: Planning, building and use. Neuchâtel, Suisse: Editions Alphil, 2007.

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31

Lu, Xilin. Retrofitting Design of Building Structures. Taylor & Francis Group, 2017.

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32

Xilin, Lu, ed. Retrofitting design of building structures. Boca Raton: Taylor & Francis, 2010.

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33

Travis, Fulton, ed. Huxley Green Building Design: Group C. Bellingham, Wash: Huxley College of the Environment, 2004.

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34

Building Type Basics for Retail and Mixed-Use Facilities (Building Type Basics). Wiley, 2004.

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35

Cunningham, Christopher. Building the Greenland Kayak : A Manual for Its Contruction and Use. International Marine/Ragged Mountain Press, 2002.

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36

Cunningham, Christopher. Building the Greenland Kayak : A Manual for Its Contruction and Use. International Marine/Ragged Mountain Press, 2002.

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37

Martyr, A. J., and M. A. PLINT. Engine Testing: The Design, Building, Modification and Use of Powertrain Test Facilities. Elsevier Science & Technology Books, 2012.

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38

Plint, M. A., and A. J. Martyr. Engine Testing: The Design, Building, Modification and Use of Powertrain Test Facilities. Elsevier Science & Technology Books, 2012.

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39

Christian, Schittich, ed. Building in existing fabric: Refurbishment, extensions, new design. München: Edition Detail, 2003.

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40

Building Reuse: Sustainability, Preservation, and the Value of Design. University of Washington Press, 2018.

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41

Merlino, Kathryn Rogers. Building Reuse: Sustainability, Preservation, and the Value of Design. University of Washington Press, 2020.

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42

Clarke, J. L., and F. K. Garas. Design of Concrete Structures: The Use of Model Analysis. Chapman & Hall, 1985.

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43

L, Clarke J., Garas F. K, Armer G. S. T, and Institution of Structural Engineers (Great Britain). Informal Study Group for "Model Analysis as a Design Tool"., eds. Design of concrete structures: The use of model analysis. London: Elsevier Applied Science Publishers, 1985.

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44

Kurrer, Karl-Eugen, Bill Addis, and Werner Lorenz. Physical Models,: Their Historical and Current Use in Civil and Building Engineering Design. Wiley & Sons, Limited, John, 2020.

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45

Building design, construction use, and the environment: Inter-faculty conference, 3 April '96. [Singapore: School of Architecture, Faculty of Architecture & Building N.U.S., 1996.

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46

Risk Management in Architectural Design: Control of Uncertainty over Building Use and Maintenance. Springer, 2014.

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47

Val, Moses, and Design Workshop Inc, eds. Toward legacy: Design Workshop's pursuit of ideals in landscape, architecture, planning and urban design. Washington, D C: Grayson, 2007.

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48

Site Analysis: Linking Program and Concept in Land Planning and Design. Wiley, 2001.

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49

Site Analysis: A Contextual Approach to Sustainable Land Planning and Site Design. 2nd ed. Wiley, 2007.

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50

Sustainable Use Of Wood In Construction. John Wiley & Sons Inc, 2014.

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