db-api.txt 20 KB

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  1. ======================
  2. GeoDjango Database API
  3. ======================
  4. .. _spatial-backends:
  5. Spatial Backends
  6. ================
  7. .. module:: django.contrib.gis.db.backends
  8. :synopsis: GeoDjango's spatial database backends.
  9. GeoDjango currently provides the following spatial database backends:
  10. * ``django.contrib.gis.db.backends.postgis``
  11. * ``django.contrib.gis.db.backends.mysql``
  12. * ``django.contrib.gis.db.backends.oracle``
  13. * ``django.contrib.gis.db.backends.spatialite``
  14. .. _mysql-spatial-limitations:
  15. MySQL Spatial Limitations
  16. -------------------------
  17. Django supports spatial functions operating on real geometries available in
  18. modern MySQL versions. However, the spatial functions are not as rich as other
  19. backends like PostGIS.
  20. Raster Support
  21. --------------
  22. ``RasterField`` is currently only implemented for the PostGIS backend. Spatial
  23. lookups are available for raster fields, but spatial database functions and
  24. aggregates aren't implemented for raster fields.
  25. Creating and Saving Models with Geometry Fields
  26. ===============================================
  27. Here is an example of how to create a geometry object (assuming the ``Zipcode``
  28. model):
  29. .. code-block:: pycon
  30. >>> from zipcode.models import Zipcode
  31. >>> z = Zipcode(code=77096, poly='POLYGON(( 10 10, 10 20, 20 20, 20 15, 10 10))')
  32. >>> z.save()
  33. :class:`~django.contrib.gis.geos.GEOSGeometry` objects may also be used to save geometric models:
  34. .. code-block:: pycon
  35. >>> from django.contrib.gis.geos import GEOSGeometry
  36. >>> poly = GEOSGeometry('POLYGON(( 10 10, 10 20, 20 20, 20 15, 10 10))')
  37. >>> z = Zipcode(code=77096, poly=poly)
  38. >>> z.save()
  39. Moreover, if the ``GEOSGeometry`` is in a different coordinate system (has a
  40. different SRID value) than that of the field, then it will be implicitly
  41. transformed into the SRID of the model's field, using the spatial database's
  42. transform procedure:
  43. .. code-block:: pycon
  44. >>> poly_3084 = GEOSGeometry('POLYGON(( 10 10, 10 20, 20 20, 20 15, 10 10))', srid=3084) # SRID 3084 is 'NAD83(HARN) / Texas Centric Lambert Conformal'
  45. >>> z = Zipcode(code=78212, poly=poly_3084)
  46. >>> z.save()
  47. >>> from django.db import connection
  48. >>> print(connection.queries[-1]['sql']) # printing the last SQL statement executed (requires DEBUG=True)
  49. INSERT INTO "geoapp_zipcode" ("code", "poly") VALUES (78212, ST_Transform(ST_GeomFromWKB('\\001 ... ', 3084), 4326))
  50. Thus, geometry parameters may be passed in using the ``GEOSGeometry`` object, WKT
  51. (Well Known Text [#fnwkt]_), HEXEWKB (PostGIS specific -- a WKB geometry in
  52. hexadecimal [#fnewkb]_), and GeoJSON (see :rfc:`7946`). Essentially, if the
  53. input is not a ``GEOSGeometry`` object, the geometry field will attempt to
  54. create a ``GEOSGeometry`` instance from the input.
  55. For more information creating :class:`~django.contrib.gis.geos.GEOSGeometry`
  56. objects, refer to the :ref:`GEOS tutorial <geos-tutorial>`.
  57. .. _creating-and-saving-raster-models:
  58. Creating and Saving Models with Raster Fields
  59. =============================================
  60. When creating raster models, the raster field will implicitly convert the input
  61. into a :class:`~django.contrib.gis.gdal.GDALRaster` using lazy-evaluation.
  62. The raster field will therefore accept any input that is accepted by the
  63. :class:`~django.contrib.gis.gdal.GDALRaster` constructor.
  64. Here is an example of how to create a raster object from a raster file
  65. ``volcano.tif`` (assuming the ``Elevation`` model):
  66. .. code-block:: pycon
  67. >>> from elevation.models import Elevation
  68. >>> dem = Elevation(name='Volcano', rast='/path/to/raster/volcano.tif')
  69. >>> dem.save()
  70. :class:`~django.contrib.gis.gdal.GDALRaster` objects may also be used to save
  71. raster models:
  72. .. code-block:: pycon
  73. >>> from django.contrib.gis.gdal import GDALRaster
  74. >>> rast = GDALRaster({'width': 10, 'height': 10, 'name': 'Canyon', 'srid': 4326,
  75. ... 'scale': [0.1, -0.1], 'bands': [{"data": range(100)}]})
  76. >>> dem = Elevation(name='Canyon', rast=rast)
  77. >>> dem.save()
  78. Note that this equivalent to:
  79. .. code-block:: pycon
  80. >>> dem = Elevation.objects.create(
  81. ... name='Canyon',
  82. ... rast={'width': 10, 'height': 10, 'name': 'Canyon', 'srid': 4326,
  83. ... 'scale': [0.1, -0.1], 'bands': [{"data": range(100)}]},
  84. ... )
  85. .. _spatial-lookups-intro:
  86. Spatial Lookups
  87. ===============
  88. GeoDjango's lookup types may be used with any manager method like
  89. ``filter()``, ``exclude()``, etc. However, the lookup types unique to
  90. GeoDjango are only available on spatial fields.
  91. Filters on 'normal' fields (e.g. :class:`~django.db.models.CharField`)
  92. may be chained with those on geographic fields. Geographic lookups accept
  93. geometry and raster input on both sides and input types can be mixed freely.
  94. The general structure of geographic lookups is described below. A complete
  95. reference can be found in the :ref:`spatial lookup reference<spatial-lookups>`.
  96. Geometry Lookups
  97. ----------------
  98. Geographic queries with geometries take the following general form (assuming
  99. the ``Zipcode`` model used in the :doc:`model-api`):
  100. .. code-block:: pycon
  101. >>> qs = Zipcode.objects.filter(<field>__<lookup_type>=<parameter>)
  102. >>> qs = Zipcode.objects.exclude(...)
  103. For example:
  104. .. code-block:: pycon
  105. >>> qs = Zipcode.objects.filter(poly__contains=pnt)
  106. >>> qs = Elevation.objects.filter(poly__contains=rst)
  107. In this case, ``poly`` is the geographic field, :lookup:`contains <gis-contains>`
  108. is the spatial lookup type, ``pnt`` is the parameter (which may be a
  109. :class:`~django.contrib.gis.geos.GEOSGeometry` object or a string of
  110. GeoJSON , WKT, or HEXEWKB), and ``rst`` is a
  111. :class:`~django.contrib.gis.gdal.GDALRaster` object.
  112. .. _spatial-lookup-raster:
  113. Raster Lookups
  114. --------------
  115. The raster lookup syntax is similar to the syntax for geometries. The only
  116. difference is that a band index can be specified as additional input. If no band
  117. index is specified, the first band is used by default (index ``0``). In that
  118. case the syntax is identical to the syntax for geometry lookups.
  119. To specify the band index, an additional parameter can be specified on both
  120. sides of the lookup. On the left hand side, the double underscore syntax is
  121. used to pass a band index. On the right hand side, a tuple of the raster and
  122. band index can be specified.
  123. This results in the following general form for lookups involving rasters
  124. (assuming the ``Elevation`` model used in the :doc:`model-api`):
  125. .. code-block:: pycon
  126. >>> qs = Elevation.objects.filter(<field>__<lookup_type>=<parameter>)
  127. >>> qs = Elevation.objects.filter(<field>__<band_index>__<lookup_type>=<parameter>)
  128. >>> qs = Elevation.objects.filter(<field>__<lookup_type>=(<raster_input, <band_index>)
  129. For example:
  130. .. code-block:: pycon
  131. >>> qs = Elevation.objects.filter(rast__contains=geom)
  132. >>> qs = Elevation.objects.filter(rast__contains=rst)
  133. >>> qs = Elevation.objects.filter(rast__1__contains=geom)
  134. >>> qs = Elevation.objects.filter(rast__contains=(rst, 1))
  135. >>> qs = Elevation.objects.filter(rast__1__contains=(rst, 1))
  136. On the left hand side of the example, ``rast`` is the geographic raster field
  137. and :lookup:`contains <gis-contains>` is the spatial lookup type. On the right
  138. hand side, ``geom`` is a geometry input and ``rst`` is a
  139. :class:`~django.contrib.gis.gdal.GDALRaster` object. The band index defaults to
  140. ``0`` in the first two queries and is set to ``1`` on the others.
  141. While all spatial lookups can be used with raster objects on both sides, not all
  142. underlying operators natively accept raster input. For cases where the operator
  143. expects geometry input, the raster is automatically converted to a geometry.
  144. It's important to keep this in mind when interpreting the lookup results.
  145. The type of raster support is listed for all lookups in the :ref:`compatibility
  146. table <spatial-lookup-compatibility>`. Lookups involving rasters are currently
  147. only available for the PostGIS backend.
  148. .. _distance-queries:
  149. Distance Queries
  150. ================
  151. Introduction
  152. ------------
  153. Distance calculations with spatial data is tricky because, unfortunately,
  154. the Earth is not flat. Some distance queries with fields in a geographic
  155. coordinate system may have to be expressed differently because of
  156. limitations in PostGIS. Please see the :ref:`selecting-an-srid` section
  157. in the :doc:`model-api` documentation for more details.
  158. .. _distance-lookups-intro:
  159. Distance Lookups
  160. ----------------
  161. *Availability*: PostGIS, MariaDB, MySQL, Oracle, SpatiaLite, PGRaster (Native)
  162. The following distance lookups are available:
  163. * :lookup:`distance_lt`
  164. * :lookup:`distance_lte`
  165. * :lookup:`distance_gt`
  166. * :lookup:`distance_gte`
  167. * :lookup:`dwithin` (except MariaDB and MySQL)
  168. .. note::
  169. For *measuring*, rather than querying on distances, use the
  170. :class:`~django.contrib.gis.db.models.functions.Distance` function.
  171. Distance lookups take a tuple parameter comprising:
  172. #. A geometry or raster to base calculations from; and
  173. #. A number or :class:`~django.contrib.gis.measure.Distance` object containing the distance.
  174. If a :class:`~django.contrib.gis.measure.Distance` object is used,
  175. it may be expressed in any units (the SQL generated will use units
  176. converted to those of the field); otherwise, numeric parameters are assumed
  177. to be in the units of the field.
  178. .. note::
  179. In PostGIS, ``ST_Distance_Sphere`` does *not* limit the geometry types
  180. geographic distance queries are performed with. [#fndistsphere15]_ However,
  181. these queries may take a long time, as great-circle distances must be
  182. calculated on the fly for *every* row in the query. This is because the
  183. spatial index on traditional geometry fields cannot be used.
  184. For much better performance on WGS84 distance queries, consider using
  185. :ref:`geography columns <geography-type>` in your database instead because
  186. they are able to use their spatial index in distance queries.
  187. You can tell GeoDjango to use a geography column by setting ``geography=True``
  188. in your field definition.
  189. For example, let's say we have a ``SouthTexasCity`` model (from the
  190. :source:`GeoDjango distance tests <tests/gis_tests/distapp/models.py>` ) on a
  191. *projected* coordinate system valid for cities in southern Texas::
  192. from django.contrib.gis.db import models
  193. class SouthTexasCity(models.Model):
  194. name = models.CharField(max_length=30)
  195. # A projected coordinate system (only valid for South Texas!)
  196. # is used, units are in meters.
  197. point = models.PointField(srid=32140)
  198. Then distance queries may be performed as follows:
  199. .. code-block:: pycon
  200. >>> from django.contrib.gis.geos import GEOSGeometry
  201. >>> from django.contrib.gis.measure import D # ``D`` is a shortcut for ``Distance``
  202. >>> from geoapp.models import SouthTexasCity
  203. # Distances will be calculated from this point, which does not have to be projected.
  204. >>> pnt = GEOSGeometry('POINT(-96.876369 29.905320)', srid=4326)
  205. # If numeric parameter, units of field (meters in this case) are assumed.
  206. >>> qs = SouthTexasCity.objects.filter(point__distance_lte=(pnt, 7000))
  207. # Find all Cities within 7 km, > 20 miles away, and > 100 chains away (an obscure unit)
  208. >>> qs = SouthTexasCity.objects.filter(point__distance_lte=(pnt, D(km=7)))
  209. >>> qs = SouthTexasCity.objects.filter(point__distance_gte=(pnt, D(mi=20)))
  210. >>> qs = SouthTexasCity.objects.filter(point__distance_gte=(pnt, D(chain=100)))
  211. Raster queries work the same way by replacing the geometry field ``point`` with
  212. a raster field, or the ``pnt`` object with a raster object, or both. To specify
  213. the band index of a raster input on the right hand side, a 3-tuple can be
  214. passed to the lookup as follows:
  215. .. code-block:: pycon
  216. >>> qs = SouthTexasCity.objects.filter(point__distance_gte=(rst, 2, D(km=7)))
  217. Where the band with index 2 (the third band) of the raster ``rst`` would be
  218. used for the lookup.
  219. .. _compatibility-table:
  220. Compatibility Tables
  221. ====================
  222. .. _spatial-lookup-compatibility:
  223. Spatial Lookups
  224. ---------------
  225. The following table provides a summary of what spatial lookups are available
  226. for each spatial database backend. The PostGIS Raster (PGRaster) lookups are
  227. divided into the three categories described in the :ref:`raster lookup details
  228. <spatial-lookup-raster>`: native support ``N``, bilateral native support ``B``,
  229. and geometry conversion support ``C``.
  230. ================================= ========= ======== ========= ============ ========== ========
  231. Lookup Type PostGIS Oracle MariaDB MySQL [#]_ SpatiaLite PGRaster
  232. ================================= ========= ======== ========= ============ ========== ========
  233. :lookup:`bbcontains` X X X X N
  234. :lookup:`bboverlaps` X X X X N
  235. :lookup:`contained` X X X X N
  236. :lookup:`contains <gis-contains>` X X X X X B
  237. :lookup:`contains_properly` X B
  238. :lookup:`coveredby` X X X B
  239. :lookup:`covers` X X X B
  240. :lookup:`crosses` X X X X C
  241. :lookup:`disjoint` X X X X X B
  242. :lookup:`distance_gt` X X X X X N
  243. :lookup:`distance_gte` X X X X X N
  244. :lookup:`distance_lt` X X X X X N
  245. :lookup:`distance_lte` X X X X X N
  246. :lookup:`dwithin` X X X B
  247. :lookup:`equals` X X X X X C
  248. :lookup:`exact <same_as>` X X X X X B
  249. :lookup:`intersects` X X X X X B
  250. :lookup:`isempty` X
  251. :lookup:`isvalid` X X X X
  252. :lookup:`overlaps` X X X X X B
  253. :lookup:`relate` X X X X C
  254. :lookup:`same_as` X X X X X B
  255. :lookup:`touches` X X X X X B
  256. :lookup:`within` X X X X X B
  257. :lookup:`left` X C
  258. :lookup:`right` X C
  259. :lookup:`overlaps_left` X B
  260. :lookup:`overlaps_right` X B
  261. :lookup:`overlaps_above` X C
  262. :lookup:`overlaps_below` X C
  263. :lookup:`strictly_above` X C
  264. :lookup:`strictly_below` X C
  265. ================================= ========= ======== ========= ============ ========== ========
  266. .. _database-functions-compatibility:
  267. Database functions
  268. ------------------
  269. The following table provides a summary of what geography-specific database
  270. functions are available on each spatial backend.
  271. .. currentmodule:: django.contrib.gis.db.models.functions
  272. ==================================== ======= ============== ============ =========== =================
  273. Function PostGIS Oracle MariaDB MySQL SpatiaLite
  274. ==================================== ======= ============== ============ =========== =================
  275. :class:`Area` X X X X X
  276. :class:`AsGeoJSON` X X X X X
  277. :class:`AsGML` X X X
  278. :class:`AsKML` X X
  279. :class:`AsSVG` X X
  280. :class:`AsWKB` X X X X X
  281. :class:`AsWKT` X X X X X
  282. :class:`Azimuth` X X (LWGEOM/RTTOPO)
  283. :class:`BoundingCircle` X X
  284. :class:`Centroid` X X X X X
  285. :class:`ClosestPoint` X X
  286. :class:`Difference` X X X X X
  287. :class:`Distance` X X X X X
  288. :class:`Envelope` X X X X X
  289. :class:`ForcePolygonCW` X X
  290. :class:`FromWKB` X X X X X
  291. :class:`FromWKT` X X X X X
  292. :class:`GeoHash` X X X (LWGEOM/RTTOPO)
  293. :class:`Intersection` X X X X X
  294. :class:`IsEmpty` X
  295. :class:`IsValid` X X X X
  296. :class:`Length` X X X X X
  297. :class:`LineLocatePoint` X X
  298. :class:`MakeValid` X X (LWGEOM/RTTOPO)
  299. :class:`MemSize` X
  300. :class:`NumGeometries` X X X X X
  301. :class:`NumPoints` X X X X X
  302. :class:`Perimeter` X X X
  303. :class:`PointOnSurface` X X X X
  304. :class:`Reverse` X X X
  305. :class:`Scale` X X
  306. :class:`SnapToGrid` X X
  307. :class:`SymDifference` X X X X X
  308. :class:`Transform` X X X
  309. :class:`Translate` X X
  310. :class:`Union` X X X X X
  311. ==================================== ======= ============== ============ =========== =================
  312. Aggregate Functions
  313. -------------------
  314. The following table provides a summary of what GIS-specific aggregate functions
  315. are available on each spatial backend. Please note that MySQL does not
  316. support any of these aggregates, and is thus excluded from the table.
  317. .. currentmodule:: django.contrib.gis.db.models
  318. ======================= ======= ====== ==========
  319. Aggregate PostGIS Oracle SpatiaLite
  320. ======================= ======= ====== ==========
  321. :class:`Collect` X X
  322. :class:`Extent` X X X
  323. :class:`Extent3D` X
  324. :class:`MakeLine` X X
  325. :class:`Union` X X X
  326. ======================= ======= ====== ==========
  327. .. rubric:: Footnotes
  328. .. [#fnwkt] *See* Open Geospatial Consortium, Inc., `OpenGIS Simple Feature Specification For SQL <https://portal.ogc.org/files/?artifact_id=829>`_, Document 99-049 (May 5, 1999), at Ch. 3.2.5, p. 3-11 (SQL Textual Representation of Geometry).
  329. .. [#fnewkb] *See* `PostGIS EWKB, EWKT and Canonical Forms <https://postgis.net/docs/using_postgis_dbmanagement.html#EWKB_EWKT>`_, PostGIS documentation at Ch. 4.1.2.
  330. .. [#fndistsphere15] *See* `PostGIS documentation <https://postgis.net/docs/ST_DistanceSphere.html>`_ on ``ST_DistanceSphere``.
  331. .. [#] Refer :ref:`mysql-spatial-limitations` section for more details.