Open Geospatial Software and Data: A Review of the Current State and A Perspective into the Future
<p>The many components of openness.</p> "> Figure 2
<p>Spatial and multi-temporal data analysis and landscape process modeling with GRASS GIS: (<b>a</b>) Soil erosion potential modeling [<a href="#B13-ijgi-09-00090" class="html-bibr">13</a>]; (<b>b</b>) evolution of Jockey’s Ridge sand dune at 16 m elevation, visualized as iso-surface in space-time cube [<a href="#B14-ijgi-09-00090" class="html-bibr">14</a>]; (<b>c</b>) 3D vegetation fragmentation index derived from lidar point cloud [<a href="#B15-ijgi-09-00090" class="html-bibr">15</a>].</p> "> Figure 3
<p>The Paths of the Queen (in Italian “I cammini della Regina”) geoportal: routing is based on the minimum distance and points of interest (<a href="http://viaregina3.como.polimi.it/ViaRegina/index-en.html" target="_blank">http://viaregina3.como.polimi.it/ViaRegina/index-en.html</a>, accessed on 19 October 2019). The geoportal helps tourists to plan their trip using the typology of the points of interest they want to visit. It promotes slow tourism, i.e., sustainable and respectful of the environment and territory.</p> "> Figure 4
<p>The Migrate Project web site: webgame for educating people on the topic of migration [<a href="#B16-ijgi-09-00090" class="html-bibr">16</a>,<a href="#B17-ijgi-09-00090" class="html-bibr">17</a>].</p> "> Figure 5
<p>The Urban GEO BIG DATA client: OpenStreetMap data visualization with NASA World Wind (left) and ground displacements with Cesium JS (right). These open source virtual globes are not in the OSGeo software stack but Cesium JS is distributed on OSGeo Live (<a href="#ijgi-09-00090-t003" class="html-table">Table 3</a>) [<a href="#B42-ijgi-09-00090" class="html-bibr">42</a>,<a href="#B43-ijgi-09-00090" class="html-bibr">43</a>].</p> "> Figure 6
<p>Students contributing OpenStreetMap (OSM) data during a mapathon.</p> "> Figure 7
<p>Assessment of OpenStreetMap data with the QGIS plugin OSM_SAA [<a href="#B75-ijgi-09-00090" class="html-bibr">75</a>].</p> "> Figure 8
<p>Visualization and query of the 3D model of the city of Milan [<a href="#B79-ijgi-09-00090" class="html-bibr">79</a>].</p> ">
Abstract
:1. Introduction
- Open source software, i.e., free and open collaborative software development;
- Open data, i.e., freely accessible, shareable, and usable data;
- Open hardware, i.e., physical products, machines and systems designed and offered by means of publicly shared information;
- Open standards, i.e., technology neutral specifications for hardware, software, or data developed through an open process;
- Open education, i.e., learning and teaching without barriers; and
- Open science, i.e., making scientific research and its dissemination accessible to all levels of the society.
2. Open Source Geospatial Software
2.1. Introduction
2.2. Open Source Geospatial Software Roots
2.3. OSGeo Software Ecosystem
- Consensus/inclusiveness: the participation from all people—from novice users to advanced developers—is welcomed;
- Fostering: as most contributions are donated, projects encourage and recognize the participation of its volunteers;
- Openness: projects adopt open standards and collaborate with other OSGeo projects; and
- Responsibility: projects are responsible for checking their code integrity with respect to the open source basics.
2.4. Open Source Geospatial Software Development Community
2.5. Beyond the OSGeo Software Ecosystem
2.6. Institutional and Government Supported Open Source Geospatial Initiatives
3. Open Geospatial Data
3.1. Introduction
3.2. Collaboratively Contributed Open Geospatial Data
3.3. Authoritative Open Geospatial Data
3.4. Open Scientific Geospatial Data
4. The Role of Open Standards in Open Geospatial Software and Data
5. Future Perspectives in the Global Geospatial Community
5.1. How Will Open Source Geospatial Software Evolve into the Future?
- -
- How do you think development and use of open source geospatial software will evolve over the next decade?
- -
- What opportunities do you think will arise from open source geospatial software?
- -
- What challenges do you think lie ahead for open source geospatial software?
- -
- How does your organization (or the members that you represent) plan to use and/or contribute to the development of open source geospatial software?
5.2. How Will Open Data Evolve into the Future?
- -
- How do you think production and use of open geospatial data will evolve over the next decade?
- -
- What opportunities do you think will arise from open geospatial data?
- -
- What challenges do you think lie ahead for open geospatial data?
- -
- How does your organization (or the members that you represent) plan to use and/or contribute to the production of open geospatial data?
6. Discussion
7. Conclusions
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
References
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Type | Project |
---|---|
Geospatial Libraries | GDAL/OGR, PROJ, GEOS, GeoTools, Orfeo ToolBox |
Web Mapping GIS | deegree, GeoMoose, GeoServer, Mapbender, GeoMapFish, MapServer, OpenLayers, PyWPS |
Spatial Database | PostGIS |
Desktop GIS | GRASS GIS, gvSIG Desktop, Marble, QGIS Desktop |
Metadata Catalogs, Content Management System | GeoNetwork, GeoNode, OSGeoLive, pycsw |
Type | Software |
---|---|
Geospatial libraries | Actinia, pgRouting, Pronto Raster, OWSlib, FDO, OSSIM |
Web Mapping GIS | istSOS 1, ZOO-project 1, Oskari 1, GeoWebCache, GC2/Vidi, GeoExt, MapGuide Open Source, Geomajas, pygeoapi |
Spatial Database | rasdaman |
Desktop GIS | OSGeo4W, Optics 1 |
Other | GeoServer Client PHP, Loader, GeohealthCheck, Portable GIS, TEAM Engine 1 |
Platform/Language | Geospatial Components/Applications/Libraries |
---|---|
R | Spatial and spatio-temporal packages, see [25,33] |
Python | GeoPython, GeoPandas, PySAL, landlab |
Javascript | Leaflet, D3, MapBox, NodeJS, Cesium, plas.io, potree |
Blender | Blender for GIS |
Type | Software |
---|---|
Desktop GIS | GRASS GIS 7, gvSIG desktop, OpenJUMP, QGIS, SAGA GIS, uDig |
Browser facing GIS | OpenLayers, Leaflet, Cesium, Geomajas, Mapbender, GeoExt, GeoMoose, GeoNode |
Web Services | GeoServer, MapServer, MapCache, deegree, ncWMS, EOxServer, GeoNetwork, pycsw, PyWPS, MapProxy, QGIS Server, istSOS, 52 North SOS, 52 North WPS, Zoo Project, t-rex, Actinia |
Geospatial libraries | GDAL/OGR, GeoTools, GEOS, libLAS, JTS, PROJ4 |
Data stores | PostGIS, SpatiaLite, Rasdaman, pgRouting |
Navigation and maps | OpenStreetMap, JOSM and iD editor, GpsPrune, Marble, OpenCPN, zyGrib |
Spatial tools | GMT, Orfeo ToolBox, Mapnik, MapSlicer, R |
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Coetzee, S.; Ivánová, I.; Mitasova, H.; Brovelli, M.A. Open Geospatial Software and Data: A Review of the Current State and A Perspective into the Future. ISPRS Int. J. Geo-Inf. 2020, 9, 90. https://doi.org/10.3390/ijgi9020090
Coetzee S, Ivánová I, Mitasova H, Brovelli MA. Open Geospatial Software and Data: A Review of the Current State and A Perspective into the Future. ISPRS International Journal of Geo-Information. 2020; 9(2):90. https://doi.org/10.3390/ijgi9020090
Chicago/Turabian StyleCoetzee, Serena, Ivana Ivánová, Helena Mitasova, and Maria Antonia Brovelli. 2020. "Open Geospatial Software and Data: A Review of the Current State and A Perspective into the Future" ISPRS International Journal of Geo-Information 9, no. 2: 90. https://doi.org/10.3390/ijgi9020090
APA StyleCoetzee, S., Ivánová, I., Mitasova, H., & Brovelli, M. A. (2020). Open Geospatial Software and Data: A Review of the Current State and A Perspective into the Future. ISPRS International Journal of Geo-Information, 9(2), 90. https://doi.org/10.3390/ijgi9020090