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Статті в журналах з теми "GIS 3D"

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de la Losa, Arnaud, and Bernard Cervelle. "3D Topological modeling and visualisation for 3D GIS." Computers & Graphics 23, no. 4 (August 1999): 469–78. http://dx.doi.org/10.1016/s0097-8493(99)00066-7.

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Lee, Dong-Yeop, Ju-Kyoung Lee, Mir Park, and Jae Myeong Choi. "3D GIS Modeling based on Blender and Performance Analysis." Journal of Digital Contents Society 23, no. 10 (October 31, 2022): 2085–90. http://dx.doi.org/10.9728/dcs.2022.23.10.2085.

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Biljecki, Filip, Rudi Stouffs, and Mohsen Kalantari. "Emerging topics in 3D GIS." Transactions in GIS 25, no. 1 (January 16, 2021): 3–5. http://dx.doi.org/10.1111/tgis.12728.

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Schaeben, Helmut, Marcus Apel, K. Gerald v. d. Boogaart, and Uwe Kroner. "GIS 2D, 3D, 4D, nD." Informatik-Spektrum 26, no. 3 (June 2003): 173–79. http://dx.doi.org/10.1007/s00287-003-0303-7.

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Coors, Volker. "3D-GIS in networking environments." Computers, Environment and Urban Systems 27, no. 4 (July 2003): 345–57. http://dx.doi.org/10.1016/s0198-9715(02)00035-2.

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Trần, Thị Hương Giang, та Bá Duy Nguyễn. "Nghiên cứu khả năng xây dựng mô hình dữ liệu 3d gis bằng phần mềm mã nguồn mở". Tạp chí Khoa học Đo đạc và Bản đồ, № 13 (1 вересня 2012): 34–37. http://dx.doi.org/10.54491/jgac.2012.13.497.

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Việc nghiên cứu và tiến hành xây dựng những mô hình mô phỏng thế giới thực hiện nay đang là một xu thế được nhiều chính phủ, tổ chức, quốc gia quan tâm và đầu tư phát triển lâu dài. Ngày nay, mô hình 3D GIS đã dần thay thế, bổ sung những mặt hạn chế của mô hình 2D GIS trong việc quản lý, hiển thị, quản lý dân số và phân tích không gian ở những khu vực thành phố, khu đô thị lớn. Tuy nhiên, để xây dựng một hệ thống 3D GIS đòi hỏi một sự đầu tư rất lớn về máy móc, trang thiết bị và đặc biệt là hệ thống phần mềm thương mại GIS. Chi phí cho phần mềm bản quyền sẽ là một trong những trở ngại cho việc xây dựng mô hình 3D-GIS, vì vậy việc nghiên cứu và sử dụng phần mềm mã nguồn mở cho công tác xây dựng mô hình dữ liệu 3D đang được quan tâm và ứng dụng để hạn chế vốn đầu tư cho các dự án. Nghiên cứu này sẽ chỉ ra những phần mềm mã nguồn mở có khả năng ứng dụng cho việc xây dựng mô hình dữ liệu 3D – GIS.
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Tang, Hao, Shuangquan Ge, Jianbo Liu, Yalin Zhang, Qiyun He, and Pengfei Li. "Research on Algorithm of 2D and 3D Interactive Virtual City System." MATEC Web of Conferences 232 (2018): 02013. http://dx.doi.org/10.1051/matecconf/201823202013.

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The integration of 2D GIS and 3D GIS is an important application of the current virtual city system. This paper constructs a virtual city system that integrates 2D GIS and 3D GIS. On this basis, research and achieve on visualization interactive of 2D GIS and 3D GIS. The interactive algorithm is proposed based on the assumption of parameters, so the viewpoint position of the 3D scene can be located according to the 2D scene viewpoint parameters, the viewpoint position of 2D scene can be located according to the 3D scene viewpoint parameters as well, and the position synchronization is maintained in both views through event trigger mechanism during interaction. When user manipulates one viewpoint in 2D GIS or 3D GIS, the others moves synchronously to the same area and angle. Three different views are used as contrasts to verify the accuracy of the algorithm. The implementation results show that the algorithm of synchronization can adapt to various user operations, with feasibility and accuracy.
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Feito Higueruela, Francisco R., and Rafael J. Segura Sánchez. "Herramientas SIG 3D." Virtual Archaeology Review 1, no. 1 (April 11, 2010): 87. http://dx.doi.org/10.4995/var.2010.4795.

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<p>Applications of Geographical Information Systems on several Archeology fields have been increasing during the last years. Recent avances in these technologies make possible to work with more realistic 3D models. In this paper we introduce a new paradigm for this system, the GIS Thetrahedron, in which we define the fundamental elements of GIS, in order to provide a better understanding of their capabilities. At the same time the basic 3D characteristics of some comercial and open source software are described, as well as the application to some samples on archeological researchs</p>
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Xie, Nan, and Zhi Yang. "Application of Visualization and GIS Techniques in Water Conservancy Works." Advanced Materials Research 605-607 (December 2012): 2510–13. http://dx.doi.org/10.4028/www.scientific.net/amr.605-607.2510.

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3D visualization has become the basic requirements of many applications of GIS. However, most of the commercialization of GIS software based on two-dimensional, to describe the true three-dimensional hydraulic engineering environment. Data integration with 3D visualization technology can be obtained through various means in order to visualize three-dimensional graphics dynamically shown to provide a convenient analytical tool to handle the vast amounts of complex engineering data, has become the GIS research cutting edge of technology and research hotspot. This paper first discusses the hydraulic engineering 3D visualization modeling framework and then study the water conservancy 3D GIS model and visualize the general principles and processes. And the general approach and application effect of 3D GIS Model have been illustrated in detailed.
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Gao, Yan Li, Wen Bin Li, and Chang Zheng Shang. "The Research on Implementation Methods of 3D GIS." Applied Mechanics and Materials 170-173 (May 2012): 2840–43. http://dx.doi.org/10.4028/www.scientific.net/amm.170-173.2840.

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3D GIS is an intuitive and effective method of realistic geo-information. Its spatial analysis function meets the user’s needs of inquiring and analyzing to the geo-information. 3D GIS has been widely used in geoscience and urban planning. This article introduces the 3D GIS firstly. Then it discusses the implementation methods of 3D GIS in detail. These include underlying development, secondary development and implementation by remote sensing images. At last, their merits and faults are analyzed, and the paper gives the suitable conditions for different applications.
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Дисертації з теми "GIS 3D"

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Karlsson, Lars. "Förslag till 3D-strategi för Skövde kommun." Thesis, Karlstad University, Faculty of Social and Life Sciences, 2008. http://urn.kb.se/resolve?urn=urn:nbn:se:kau:diva-2149.

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Att vilja lagra sina geografiska data i tre dimensioner har börjat bli allt vanligare bland de svenska kommunerna. Man vill utifrån dessa data skapa en 3D-modell över sina tätorter med realistiska byggnader och andra objekt. Detta ger ökade möjligheter inom planprocesser, bygglov, skuggstudier och andra kommunala ändamål för invånarna.Detta examensarbete hade till syfte att ta fram ett förslag till 3D-strategi för Skövde kommun. De har idag sina data lagrade i två dimensioner i en Oracle-databas och man har en del andra material som till exempel punktmoln från laserskanning som skulle kunna användas för att skapa en geografisk databas i tre dimensioner.Examensarbetet tar upp olika mjukvaror man kan använda för skapandet och användandet av 3D-modeller. Den tar även upp vilka standarder man kan använda för att lagra geografiska data i tre dimensioner och vilka databaser man kan använda för detta ändamål. Dessutom berörs hur man skulle kunna ajourföra data och hur långt några andra kommuner har kommit i deras arbete med en 3D-strategi.Som slutsats så ser man att det det är svårt att hitta information inom området. Men att det finns mycket information att hämta från andra kommuner som redan gjort en hel del arbete. Ett bra exempel är Göteborg som tagit fram en riktigt fin modell som man kan se som en förebild. Man kan också se att Oracle och CityGML är en bra lösning för lagring av data i 3D. Det finns också företag som tagit fram lösningar för skapandet av kompletta 3D-lösningar efter en automatisk process men att de kan behöva utvecklas mer för att användas i dessa ändamål.


Swedish municipalities increasingly want to store their spatial data in three dimensions. On the basis of these data they want to create a 3D model of their cities with realistic buildings and other items. This provides increased opportunities in planning, building applications, studies of shadows and other municipal purposes for the residents.The purpose of this degree project was to develop a proposal for a 3D strategy for Skövde municipality. For the moment they have their data stored in two dimensions in an Oracle database and they have a number of other materials such as point clouds from laser scanning that could be used to create a spatial database in three dimensions.The degree project points to various software that can be used for the creation and use of 3D models. It also shows standards that can be used for storing of spatial data in three dimensions and which databases can be used for this purpose. Furthermore the study deals with how the model can be updated and how far other municipalities have advanced in their work with 3D strategies.As a conclusion, we can notice that it is difficult to find information in this area. But there are a lot of information to require from other municipalities that already has done a lot of work. A great example is Göteborg who have created a really nice model that can be seen as a paragon. You can also see that Oracle and CityGML is a good solution for storage of data in 3D. There are also companies that have developed solutions for the creation of complete 3D solutions trough an automatic process but that they need to develop it more for making it able to use for this purposes.

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Hilbring, Désirée. "3D-GIS Visualisierung in der Umweltinformatik." Karlsruhe : Univ.-Verl. Karlsruhe, 2005. http://deposit.d-nb.de/cgi-bin/dokserv?idn=977265838.

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Stevens, Pieter. "Exitability measurements through indoor 3D GIS." Thesis, Högskolan i Gävle, Samhällsbyggnad, GIS, 2018. http://urn.kb.se/resolve?urn=urn:nbn:se:hig:diva-27994.

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Population growth, city expansion and the limitation of space is shifting construction into a vertical direction. Residential or public constructions as well as office buildings are growing vertically, especially in big cities. Along with the verticality, evacuation problems popped up. The higher buildings are rising the longer it takes to get people safely to the nearest exit. The primary concern for emergency response and rescue is the time needed to evacuate. Evacuation processes are highly contingent to building structure as built and not necessarily as designed. Throughout construction minor modifications are made and in evacuation planning it is eminent that the most accurate and up to date information is used.In this dissertation the focus is laid on the evacuation capability of the Munin building of the Hogkolan I Gävle. This research uses network analysis and network routing in an indoor three dimensional (3D) geographic information system. Exitability is defined as the ease to get to the nearest exit. This is a crucial factor in evacuation modelling and planning. In order to calculate the exitability a three dimensional model of the building is created along with a network dataset. The building model is analyzed based on three different scenarios, for different paces on the five different floor levels resulting into a matrix of evacuation paths. The easiest way out from each room in the building to the nearest exit is calculated and listed. By representing the exitability, the evacuation plan of the building can be revised and if needed adjusted. The created model can be used as a tool in decision making considering the time needed to get to the nearest exit.The importance of the implementation of network routing in GIS to improve evacuation plans can be found in development phase as well as whilst emergencies. During emergencies the shortest path for search and rescue can be found considering blocked paths. Throughout development the placement of exits and the amount of exits can be tested using the system. By simulating emergencies, bottlenecks and hazardous situations can be reconciled and doing so improve the evacuation plans. The influence of different scenarios on the exitability can be reduced to influence the scenarios have on the covered distance to the nearest exit. The different scenarios show a translation of linearity. The different scenarios give an insight in the congestion of the exits, which can be used for emergency planning. Future-minded it is preferable this theoretical model is compared to real-time results.
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Gunnarson, Nicklas, and Pontus Schelin. "3D-visualisering i markprojekteringsprocessen." Thesis, Karlstads universitet, Avdelningen för geografi och turism, 2012. http://urn.kb.se/resolve?urn=urn:nbn:se:kau:diva-15118.

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The thesis has been made for NCC Teknik in Gothenburg. The NCC Corporation is one of the largest leading companies in Scandinavia within the construction industry. NCC is active throughout the whole construction process, where one part is to carry out soil investigations prior the construction of various buildings, for example residential buildings. NCC Technology wants to visualize the samples taken at the construction sites in 3D for clients, authorities and also internally to show in a simple and understandable way how contamination is spread out in the soil. The thesis includes the area of Limhamns läge in Malmö, previously an industrial area. The area has previously included a concrete factory and the contamination from that factory has lingered in the soil. Here, the old buildings will be demolished and will be replaced by residential area and parkland. The contaminated soil must first be transported away to enable people to inhabit in the area. The goal has been to develop a method that improves visualization of the soil remediation process by creating 3D models that could replace the visualization in 2D and tables with analysis results. The idea is that the method of 3D visualization can be applied to other soil remediation processes and some shafting. Limhamns läge has the been divided into the squares to be able to take samples, which in turn are divided into boxes in depth which is defined as 20x20x0,5m. After the samples have been analyzed it is possible to determine which boxes that can remain in place, which ones that can be reused in the area and which ones that need to be transported away for landfill. The created models are visualizations in 3D showing the distribution of soil contamination. One model is divided into half meter layers, making it possible to see the various levels of contaminants in the soil. A 3D model has also been created where the uncontaminated boxes have been separated from the other boxes and it allows visualization of the contaminated boxes. A model has been created that shows how the shafting work progresses by gradually remove boxes that have been shafted for each week. The models are designed to capture the results of analyzes by sieving. They are divided for each fraction, coarse, medium and fine. The models show what material can be reused and what should be transported to the landfill. The second version of the model shows the proportion of each fraction that was found in the sieved boxes.
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Ekberg, Fredrik. "An approach for representing complex 3D objects in GIS applied to 3D properties." Thesis, University of Gävle, Department of Technology and Built Environment, 2007. http://urn.kb.se/resolve?urn=urn:nbn:se:hig:diva-139.

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The main problem that is addressed in this thesis is how to represent complex three-dimensional objects in GIS in order to render a more realistic representation of the real world. The goal is to present an approach for representing complex 3D objects in GIS. This is achieved by using commercial GIS (ArcGIS), applied to 3D properties. In order to get a clear overview of the state-of-the-art of 3D GIS and the current 3D cadastral situation a literature study was carried out. Based on this overview it can be concluded that 3D GIS still is in its initial phase. Current 3D GIS developments are mainly in the area of visualisation and animation, and almost nothing in the area of spatial analysis and attribute handling. Furthermore, the literature study reveals that no complete solution has been introduced that solves the problems involved in 3D cadastral registration. In several countries (e.g. Sweden, Denmark, Norway, Netherlands, Israel, and Australia) 3D properties exists in a juridical framework, but technical issues such as how to represent, store, and visualize 3D properties has not yet been solved. Some countries (Sweden, Norway, and Australia) visualize the footprints of 3D property units in a base map. This approach partly solves some technical issues, but can only represent 3D objects in a 2.5D environment. Therefore, research in how to represent complex objects in GIS as ‘true’ 3D objects is of great need.

This thesis will emphasize MultiPatch as a geographic representation method to represent complex 3D objects in GIS. A case study will demonstrate that complex objects can be visualized and analysed in a commercial GIS, in this case ArcGIS. Most commercial GIS software available on the market applies a 2.5D approach to represent 3D objects. The 2.5D approach has limitations for representing complex objects. There is therefore a need of finding new approaches to represent complex objects within GIS. The result shows that MultiPatch is not an answer to all the problems within 3D GIS but a solution to some of the problems. It still requires a lot of research in the field of 3D GIS, especially in development of spatial analysis capabilities.


Det huvudsakliga problemet i denna uppsats är hur komplexa tre-dimensionella objekt kan representeras i GIS för att återge verkligheten mer realistiskt. Målet är att presentera ett tillvägagångssätt för att representera komplexa 3D-objekt i GIS. Detta har uppnåtts genom att använda ett kommersiellt GIS tillämpat på 3D-fastigheter. En litteraturstudie har genomförts för att erhålla en klar översikt över det senaste inom 3D-GIS och över den aktuella situationen inom 3D-fastigheter. Grundat på översikten kan slutsatsen dras att 3D-GIS bara är i sin begynnelsefas. Den aktuella utvecklingen inom 3D-GIS har huvudsakligen fokuserat på visualisering och animering och nästan ingenting inom rumsliga analysmetoder och hantering av attribut. Litteraturstudien visar också att ingen fullständig lösning för de problem som finns inom 3D-fastighetsregistrering har introducerats. I flera länder, t.ex. Sverige, Danmark, Norge, Nederländerna, Israel och Australien, existerar 3D-fastigheter idag i juridiska termer, men de tekniska problemen som t.ex. hur 3D-fastigheter ska representeras, lagras och visualiseras har inte ännu lösts. Vissa länder (Sverige, Norge och Australien) visualiserar idag en projektion av 3D-fastigheterna på en fastighetskarta. Den här metoden löser endast några av de tekniska problemen och kan endast representera 3D-objekt i en 2,5D-miljö. Därför är forskning inom hur komplexa objekt kan representeras i GIS som s.k. ”sann” 3D av betydelse.

Den här uppsatsen framhäver MultiPatch som en datatyp för att representera komplexa 3D-objekt i GIS. En fallstudie visar att komplexa objekt kan visualiseras och analyseras i ett kommersiellt GIS, i det här fallet ArcGIS. De flesta kommersiella GIS som är tillgängliga på marknaden använder 2,5D-metoden för att representera 3D-objekt. 2,5D-metoden har vissa begränsningar för att representera komplexa objekt och därför finns det ett behov att finna nya tillvägagångssätt för att representera komplexa objekt inom GIS. Resultaten kommer att visa att MultiPatch inte är någon fullständig lösning till alla problem inom 3D-GIS men en lösning på några av problemen. Det krävs fortfarande mycket forskning inom 3D-GIS, särskilt inom utveckling av rumsliga analysmetoder.

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Aidantausta, Elin. "3D-byggnadsmodeller utifrån takkonstruktioner : Lagring, hantering och bearbetning." Thesis, Karlstads universitet, Avdelningen för geografi och turism, 2013. http://urn.kb.se/resolve?urn=urn:nbn:se:kau:diva-28152.

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A growing number of cities and municipalities in Sweden begin to work with city models in 3D. For the most part the models are used for visualizations of ongoing planning processes, but also for the analysis of noise, shadow studies and environmental disaster simulations. Gothenburg continues to develop the use of 3D maps in municipal operations and is demanding a way to create building elements (walls), which generates in 3D buildings, from roof constructions that are mapped from the primary map. A method has been investigated in the present study. The results are then presented as a 3D model of buildings, along with a terrain map that will facilitate the localization of the area. The created 3D buildings are then compared with roof-data from the primary map to see how well they harmonize with each other. Then also the handling and storage of three-dimensional data with the information model CityGML is investigated. A specification of the requirements and characteristics that the customer, the City Planning in Gothenburg, looks are essential for building modeling in 3D has also been established. The final result shows of 4% increase in the plane of 3D buildings compared to primary map. The increase would be slightly greater if the comparison is made on the volume instead. The results also revealed that the increase in plan is something that has occurred during the creation of the roof constructions, which was something that I couldn’t have affected during the work. The results also show that the CityGML is an appropriate information model for storage and handling of 3D. Gothenburg still have insufficient knowledge of CityGML, which is also one of the reasons why the information model hasn’t been implemented in the municipality work with 3D models.
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Hilbring, Désirée [Verfasser]. "3D-GIS Visualisierung in der Umweltinformatik / von Désirée Hilbring." Karlsruhe : Univ.-Verl. Karlsruhe, 2005. http://d-nb.info/977265838/34.

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Blomqvist, Daniel. "3D-visualizations for building interiors in a GIS perspective." Thesis, Högskolan i Gävle, Avdelningen för Industriell utveckling, IT och Samhällsbyggnad, 2010. http://urn.kb.se/resolve?urn=urn:nbn:se:hig:diva-7626.

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Presented in this work is a visualization in 3D of building interiors. Fields such asfacility management is of interest for this concept. Data that is to be visualized has,unlike most previous GIS, access to the third dimension to describe floors of abuilding in a realistic manner. Tests to determine strengths and weaknesses of 3Dconcepts compared to widely known 2D concepts is being performed. Factors toconsider in visualization theory is taken into context to combine visualization andGIS. The results is expected to have positive effects for users interested in facilitymanagement.
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Kučera, Josef. "Modelování parametrů solární elektrárny v GIS." Master's thesis, Vysoké učení technické v Brně. Fakulta elektrotechniky a komunikačních technologií, 2013. http://www.nusl.cz/ntk/nusl-219948.

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The work deals with the modeling of the parameters of solar power plants and the issue of solar energy with its use in the photovoltaic power plants. It uses the geographic information system named ArcGIS. In the beginning of the work, there is the theory. This theory is necessary to understanding the function of the photovoltaic cells, from the beginning to the photovoltaic panels construction. There were analyzed the conditions of the location of the photovoltaic panels in the Czech Republic. Furthermore, the work approaches the ArcGIS and its 3D modeling possibilities. The part of the work deals with the proposal for the selection process of the most suitable location to the photovoltaic panels installing. The main part of the work is the visualization of the 3D models of the locations of interest.
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Keršner, Oldřich. "Hluková mapa v GIS." Master's thesis, Vysoké učení technické v Brně. Fakulta elektrotechniky a komunikačních technologií, 2009. http://www.nusl.cz/ntk/nusl-218150.

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The aim of this Master’s Thesis is noise map creation and processing of measured data using ArcView 9.2 and its extensions. One - year Student Edition of ArcView 9.2 and its extensions have been provided by ARCDATA PRAHA, s.r.o. Noise maps are created from measured data in the neighborhood of the faculty building and the Moravian Square in Brno. Measurement of geographic position of measuring points is realized by GPS. For creation of noise maps, analysis and processing of measured data ArcGIS extensions - Spatial Analyst and Geostatistical Analyst were used. The last part of this Master’s Thesis is specialized on creation of 3D landscape model using ArcGIS 3D Analyst extension.
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Книги з теми "GIS 3D"

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Zlatanova, Siyka. 3D GIS for urban development. Enschede, Netherlands: International Institute for Aerospace Survey and Earth Sciences, 2000.

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Booth, Bob. Using ArcGIS 3D analyst: GIS by ESRI. Redlands, CA: Environmental Systems Research Institute, 2001.

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Environmental Systems Research Institute (Redlands, Calif.), ed. Using ArcGIS 3D analyst: GIS by ESRI. Redlands, CA: Environmental Systems Research Institute, 2000.

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Booth, Bob. Using ArcGIS 3D analyst: GIS by ESRI. Redlands, CA: Environmental Systems Research Institute, 2000.

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Ormsby, Tim. Extending ArcView GIS: Teach yourself to use ArcView GIS extensions : network analyst, spatial analyst, 3D analyst : self-study workbook for ArcView GIS users. Redlands, Calif: ESRI Press, 1999.

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6

B, Karagichev A., Semushin S. A, and United States. National Aeronautics and Space Administration., eds. Conservative boundary conditions for 3D gas dynamics problems. Washington DC: National Aeronautics and Space Administration, 1986.

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7

William, Keach R., and Utah Geological Survey, eds. Interpretation of the Jurassic Entrada Sandstone play using 3D seismic attribute analysis, Uinta Basin, Utah. Salt Lake City, Utah: Utah Geological Survey, 2006.

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8

Bingjie, Cheng, and Xu Tianji, eds. San wei san fen liang di zhen kan tan: 3D/3-C seismic exploration = Sawei san fenliang dizhen kantan. Beijing: Di zhi chu ban she, 2011.

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9

1945-, Bono Peter R., ed. PC graphics with GKS: Introduction to graphics standards (GKS, GKS-3D, PHIGS, CGI, and CGM) and to graphics programming. Englewood Cliffs, N.J., USA: Prentice Hall, 1990.

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10

Office, United States Bureau of Land Management Rock Springs Field. Decision record, finding of no significant impact and environmental assessment for the Hay Reservoir 3D geophysical project. Rock Springs, WY: U.S. Department of the Interior, Bureau of Land Management, Wyoming State Office, 2003.

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Частини книг з теми "GIS 3D"

1

Shekhar, Shashi, and Hui Xiong. "3D Models." In Encyclopedia of GIS, 1. Boston, MA: Springer US, 2008. http://dx.doi.org/10.1007/978-0-387-35973-1_3.

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2

Dell’Unto, Nicolò, and Giacomo Landeschi. "3D visibility analysis." In Archaeological 3D GIS, 96–108. London: Routledge, 2022. http://dx.doi.org/10.4324/9781003034131-7.

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Dell’Unto, Nicolò, and Giacomo Landeschi. "Surface and subsurface analysis." In Archaeological 3D GIS, 83–95. London: Routledge, 2022. http://dx.doi.org/10.4324/9781003034131-6.

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4

Dell’Unto, Nicolò, and Giacomo Landeschi. "Geographical information systems in archaeology." In Archaeological 3D GIS, 5–17. London: Routledge, 2022. http://dx.doi.org/10.4324/9781003034131-2.

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Dell’Unto, Nicolò, and Giacomo Landeschi. "Introduction." In Archaeological 3D GIS, 1–4. London: Routledge, 2022. http://dx.doi.org/10.4324/9781003034131-1.

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Dell’Unto, Nicolò, and Giacomo Landeschi. "Deploying 3D GIS at the Trowel's edge." In Archaeological 3D GIS, 55–82. London: Routledge, 2022. http://dx.doi.org/10.4324/9781003034131-5.

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Dell’Unto, Nicolò, and Giacomo Landeschi. "Volumes." In Archaeological 3D GIS, 109–24. London: Routledge, 2022. http://dx.doi.org/10.4324/9781003034131-8.

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Dell’Unto, Nicolò, and Giacomo Landeschi. "3D models and knowledge production." In Archaeological 3D GIS, 18–28. London: Routledge, 2022. http://dx.doi.org/10.4324/9781003034131-3.

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9

Dell’Unto, Nicolò, and Giacomo Landeschi. "3D GIS in archaeology." In Archaeological 3D GIS, 29–54. London: Routledge, 2022. http://dx.doi.org/10.4324/9781003034131-4.

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Dell’Unto, Nicolò, and Giacomo Landeschi. "Future developments." In Archaeological 3D GIS, 125–32. London: Routledge, 2022. http://dx.doi.org/10.4324/9781003034131-9.

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Тези доповідей конференцій з теми "GIS 3D"

1

Douass, Souhaib, and M'hamed Ait Kbir. "3D GIS for smart cities." In the Mediterranean Symposium. New York, New York, USA: ACM Press, 2017. http://dx.doi.org/10.1145/3175628.3175630.

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2

Porter, Todd R., John Archer, and Lee Parker. "Exploration GIS: Optimising land 3D operations." In SEG Technical Program Expanded Abstracts 1997. Society of Exploration Geophysicists, 1997. http://dx.doi.org/10.1190/1.1885617.

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3

Porter, Todd R., and Monty Martin. "Exploration GIS: Optimising 3D seismic operations." In SEG Technical Program Expanded Abstracts 1998. Society of Exploration Geophysicists, 1998. http://dx.doi.org/10.1190/1.1820096.

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4

Richards-Rissetto, H., J. von Schwerin, and G. Girardi. "Kinect and 3D GIS in archaeology." In 2012 18th International Conference on Virtual Systems and Multimedia (VSMM 2012). IEEE, 2012. http://dx.doi.org/10.1109/vsmm.2012.6365942.

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5

Shi, Beiqi, Jianxun Rui, and Neng Chen. "Scalable 3D GIS environment managed by 3D-XML-based modeling." In Sixth International Conference on Advanced Optical Materials and Devices, edited by Lin Liu, Xia Li, Kai Liu, Xinchang Zhang, and Aijun Chen. SPIE, 2008. http://dx.doi.org/10.1117/12.812645.

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Blinov, Alexander B. "Reconstruction of 3D-horizons from 3D-seismic data sets." In Remote Sensing for Environmental Monitoring, GIS Applications, and Geology III. SPIE, 2004. http://dx.doi.org/10.1117/12.513165.

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7

Liu Tao, AiTing Hua, and Zheng Li. "Research on conversion method of 2D-GIS to 3D-GIS of pipeline." In 2010 Second International Conference on Computational Intelligence and Natural Computing (CINC). IEEE, 2010. http://dx.doi.org/10.1109/cinc.2010.5643831.

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Liu, Xiaohong, Ying Zhu, Weili Wang, and Fengmin Liu. "3D GIS modeling of air pollution effects." In 3rd International Congress on Image and Signal Processing (CISP 2010). IEEE, 2010. http://dx.doi.org/10.1109/cisp.2010.5647463.

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9

Nguyen-Gia, Tuan-Anh, Minh-Son Dao, and Cuong Mai-Van. "A comparative survey of 3D GIS models." In 2017 4th NAFOSTED Conference on Information and Computer Science. IEEE, 2017. http://dx.doi.org/10.1109/nafosted.2017.8108051.

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10

Lei, Peng, and Kun Yang. "Development of Submarine Pipeline 3D GIS Platform." In 2013 Seventh International Conference on Image and Graphics (ICIG). IEEE, 2013. http://dx.doi.org/10.1109/icig.2013.160.

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Звіти організацій з теми "GIS 3D"

1

Pack, S. Extending GIS concepts into true 3D for geologic and hydrogeologic descriptive modeling. Natural Resources Canada/ESS/Scientific and Technical Publishing Services, 2002. http://dx.doi.org/10.4095/299502.

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Acharya, Sumanta. A 3D-PIV System for Gas Turbine Applications. Fort Belvoir, VA: Defense Technical Information Center, August 2002. http://dx.doi.org/10.21236/ada406716.

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3

Dutra, Lauren M., James Nonnemaker, Nathaniel Taylor, Ashley Feld, Brian Bradfield, John Holloway, Edward (Chip) Hill, and Annice Kim. Visual Attention to Tobacco-Related Stimuli in a 3D Virtual Store. RTI Press, May 2020. http://dx.doi.org/10.3768/rtipress.2020.rr.0036.2005.

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We used eye tracking to measure visual attention to tobacco products and pro- and anti-tobacco advertisements (pro-ads and anti-ads) during a shopping task in a three-dimensional virtual convenience store. We used eye-tracking hardware to track the percentage of fixations (number of times the eye was essentially stationary; F) and dwell time (time spent looking at an object; DT) for several categories of objects and ads for 30 adult current cigarette smokers. We used Wald F-tests to compare fixations and dwell time across categories, adjusting comparisons of ads by the number of each type of ad. Overall, unadjusted for the number of each object, participants focused significantly greater attention on snacks and drinks and tobacco products than ads (all P<0.005). Adjusting for the number of each type of ad viewed, participants devoted significantly greater visual attention to pro-ads than anti-ads or ads unrelated to tobacco (P<0.001). Visual attention for anti-ads was significantly greater when the ads were placed on the store’s external walls or hung from the ceiling than when placed on the gas pump or floor (P<0.005). In a cluttered convenience store environment, anti-ads at the point of sale have to compete with many other stimuli. Restrictions on tobacco product displays and advertisements at the point of sale could reduce the stimuli that attract smokers’ attention away from anti-ads.
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PANAGOPOULOS, George, Ioannis PYLIOTIS, Avraam ZELILIDIS, Evangelos SPYRIDONOS, Hamdan HAMDAM, Antonis VAFIDIS, and Emmanuil MANOUTSOGLOU. 3D modeling of biogenic gas-bearing Neogene deposits at Arkalochori region, Messara, Crete, Greece. Cogeo@oeaw-giscience, September 2011. http://dx.doi.org/10.5242/iamg.2011.0281.

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5

David G. Morse and Hannes E. Leetaru. RESERVOIR CHARACTERIZATION & 3D MODELS OF MT. SIMON GAS STORAGE FIELDS IN THE ILLINOIS BASIN. Office of Scientific and Technical Information (OSTI), September 2003. http://dx.doi.org/10.2172/825371.

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6

James Reeves. Advancing New 3D Seismic Interpretation Methods for Exploration and Development of Fractured Tight Gas Reservoirs. Office of Scientific and Technical Information (OSTI), January 2005. http://dx.doi.org/10.2172/958069.

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7

Morkun, Vladimir S., Natalia V. Morkun, and Andrey V. Pikilnyak. Augmented reality as a tool for visualization of ultrasound propagation in heterogeneous media based on the k-space method. [б. в.], February 2020. http://dx.doi.org/10.31812/123456789/3757.

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For programming the AR tools, interactive objects and creating the markers, the method of fiber spaces (k-space) for modeling of ultrasonic wave propagation in an inhomogeneous medium using coarse grids, with maintaining the required accuracy was used. The algorithm and tools of augmented reality were introduced into the adaptive control system of the pulp gas phase in the iron ore flotation process using a control action on the basis of high-energy ultrasound dynamic effects generated by ultrasonic phased arrays. The tools of augmented reality based on k-space methods allow to facilitate wider adoption of ultrasound technology and visualize the ultra-sound propagation in heterogeneous media by providing a specific correspondence between the ultrasound data acquired in real- time and a sufficiently detailed augmented 3D scene. The tools of augmented reality allow seeing the field of ultrasound propagation, its characteristics, as well as the effect of the dynamic effects of ultrasound on the change in the gas phase during the flotation process.
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8

Subramanian, Ramesh. Additive Manufactured Metallic 3D Ox-Ox CMC Integrated Structures for 65% Combined Cycle Efficient Gas Turbine Components. Office of Scientific and Technical Information (OSTI), April 2020. http://dx.doi.org/10.2172/1608692.

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9

Bjorn N. P. Paulsson. Development of a 400 Level 3C Clamped Downhole Seismic Receiver Array for 3D Borehole Seismic Imaging of Gas Reservoirs. Office of Scientific and Technical Information (OSTI), September 2006. http://dx.doi.org/10.2172/902838.

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Bjorn N. P. Paulsson. Development of a 400 Level 3C Clamped Downhole Seismic Receiver Array for 3D Borehole Seismic Imaging of Gas Reservoirs. Office of Scientific and Technical Information (OSTI), March 2006. http://dx.doi.org/10.2172/894896.

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