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The applicability of SWE in polish spatial data infrastructures - the example of the SensorML language

Autorzy
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Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
Mobile and stationary sensors currently used to measure various environmental parameters, functioning independently or as part of monitoring networks and measurement stations, provide vast amounts of data on the state and quality of the environment on the Earth. If the data is to be used effectively, they must be exchanged and shared among IT systems. Systems which offer services of searching, exchange, sharing, visualisation and analysis of dispersed and varied data resources on the widely understood environment are, for example, spatial data infrastructures. The article presents an overview of IT technologies and standards which offer interoperability in spatial data infrastructures. It first defines interoperability and then describes the most important issues connected with spatial data infrastructures on the example of INSPIRE. An example standard which facilitates interoperability in INSPIRE is the SensorML language, a component of Sensor Web Enablement (SWE). Its practical application is proposed – for description of processes of air monitoring in a spatial data infrastructure that is an element of the Polish national environmental monitoring plan
Słowa kluczowe
Rocznik
Strony
187--201
Opis fizyczny
Bibliogr. 32 poz., rys.
Twórcy
autor
  • Warsaw University of Technology, Faculty of Environmental Engineering, Department of Information Science and Environment Quality Research, Nowowiejska 20, 00-653 Warsaw
autor
  • Warsaw University of Technology, Faculty of Environmental Engineering, Department of Information Science and Environment Quality Research, Nowowiejska 20, 00-653 Warsaw
Bibliografia
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  • [7] European Commission, Guidelines for the use of Observations & Measurements and Sensor Web Enablement-related standards in INSPIRE Annex II and III data specification development (D2.9_v2.0), http://inspire.ec.europa.eu/documents/Data_Specifications/D2.9_O&M_Guidelines_v2.0.pdf (access 28.01.2015).
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  • [20] KRI, 2012 Rozporządzenie Rady Ministrów z dnia 16 maja 2012 r. w sprawie Krajowych Ram Interoperacyjności, minimalnych wymagań dla rejestrów publicznych i wymiany informacji w postaci elektronicznej oraz minimalnych wymagań dla systemów teleinformatycznych (Dz. U. z 2012 r. poz. 526).
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  • [22] Liang S.H.L., Croitoru A., Vincent Tao C., A distributed geospatial infrastructure for Sensor Web, Computers & Geosciences, 31, 2005, 221–231.
  • [23] Lutz M., Sprado J., Klien E., Schubert C., Christ I., Overcoming semantic heterogeneity in spatial data infrastructures, Computers & Geosciences, 35, 2009, 739–752.
  • [24] Michalak J., Languages derived from and connected with GML, Annals of Geomatics, VI, 6, 2008, 75-84.
  • [25] Michalak J., UML geospatial data models and their transformation into GML schemas and database structures, Annals of Geomatics, X, 1, 2012, 15-34.
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  • [28] Rossa M., Gogołek W., Łukasiewicz A., Geostandardy, metadane i dyrektywa INSPIRE. Poradnik metodyczny Zintegrowanego Systemu Kartografii Geologicznej IKAR. Państwowy Instytut Geologiczny, Warszawa, 2009.
  • [29] Rossa M., Aplikacje GML dla środowiska na przykładzie GeoSciML i GWML2 – stan aktualny, kierunki rozwoju, zastosowania praktyczne, Konferencja „GML w praktyce”, 12.04.2012, Kon-Dor, Warszawa, 2013.
  • [30] Rossa M., 2014a Zastosowanie języka GML do przetwarzania danych geologicznych, XXIII Szkoła eksploatacji górniczej, 24-28.02.2014, Kraków.
  • [31] Rossa M., 2014b Wykorzystanie języka GML do opisu danych hydrogeologicznych i hydrograficznych, XXIII Szkoła eksploatacji górniczej, 24-28.02.2014, Kraków.
  • [32] Sánchez López T., RFID and sensor integration standards: State and future prospects, Computer Standards & Interfaces, 33, 2011, 207–213.
Typ dokumentu
Bibliografia
Identyfikator YADDA
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