Urban development and management
require the handling of complex spatial related objects
as well. Nowadays there are data acquisition and data
process technologies, which can satisfy such demands.
The methods of data acquisition typically provide
additional information for GIS beyond geometric data.
During the data processing we can get further
possibilities. Data from different source can be
managed jointly and the information content of the
data can be multiplied. Formal times, production of the
corresponding high-quality data of the objects was a
time consuming and expensive procedure. GIS data
acquisition technologies such as Lidar, digital
photogrammetry, remote sensing, terrestrial laser
scanning and GNSS positioning enable to produce a
complex spatial urban database with high resolution
and high accuracy. Certainly, the data collection
equipment may be still costly, but due to the efficiency
of the acquisition method, the measurement time can
dramatically be shortened. It is also an important
aspect that a complex database enables multiple
analysis so that the database can serve multiple
disciplines.
In this study we present some of the data acquisition
and data processing technologies, which are suitable to
integrate into an urban database and can provide
useful information for a wide range of applications
through analysis and visualization. In urban
development several factors need to be considered
simultaneously, such as infrastructure, environment,
heritage preservation, etc. Different spatial display
capabilities can illustrate object of interests one-by-
one, but also it is possible to model its surroundings as
well. This way such tools can be used efficiently for
urban planning by the municipal decision makers. In
this study, we will present how to collect and how to
utilize different resolution data (Lidar, close range and
aerial photogrammetry, terrestrial laser scanning) in
urban areas, how to create 3 dimensional models of
objects or how to generate surface model of the city
based on different data. There are examples presented
indicating how to use different combinations of
geometric, spectral and topographic data in practice.
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dc.format
pdf
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en
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Remote sensing data in the urban GIS
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Open access
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Óbudai Egyetem
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2019. November 14.
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Székesfehérvár
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Alba Regia Műszaki Kar
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Óbudai Egyetem
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Műszaki tudományok - gépészeti tudományok
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data
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urban
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sensing
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development
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Konferenciaközlemény
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AIS 2019 14th International Symposium on Applied Informatics and Related Areas organized in the frame of Hungarian Science Festival 2019 by Óbuda University Proceedings
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local.tempfieldCollections
Könyvrészletek
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16.
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Kiadói változat
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6 p.
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AIS 2019 14th International Symposium on Applied Informatics and Related Areas organized in the frame of Hungarian Science Festival 2019 by Óbuda University