geoquerysets.txt 27 KB

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  1. ==========================
  2. GIS QuerySet API Reference
  3. ==========================
  4. .. currentmodule:: django.contrib.gis.db.models
  5. .. _spatial-lookups:
  6. Spatial Lookups
  7. ===============
  8. The spatial lookups in this section are available for :class:`GeometryField`
  9. and :class:`RasterField`.
  10. For an introduction, see the :ref:`spatial lookups introduction
  11. <spatial-lookups-intro>`. For an overview of what lookups are
  12. compatible with a particular spatial backend, refer to the
  13. :ref:`spatial lookup compatibility table <spatial-lookup-compatibility>`.
  14. Lookups with rasters
  15. --------------------
  16. All examples in the reference below are given for geometry fields and inputs,
  17. but the lookups can be used the same way with rasters on both sides. Whenever
  18. a lookup doesn't support raster input, the input is automatically
  19. converted to a geometry where necessary using the `ST_Polygon
  20. <https://postgis.net/docs/RT_ST_Polygon.html>`_ function. See also the
  21. :ref:`introduction to raster lookups <spatial-lookup-raster>`.
  22. The database operators used by the lookups can be divided into three categories:
  23. - Native raster support ``N``: the operator accepts rasters natively on both
  24. sides of the lookup, and raster input can be mixed with geometry inputs.
  25. - Bilateral raster support ``B``: the operator supports rasters only if both
  26. sides of the lookup receive raster inputs. Raster data is automatically
  27. converted to geometries for mixed lookups.
  28. - Geometry conversion support ``C``. The lookup does not have native raster
  29. support, all raster data is automatically converted to geometries.
  30. The examples below show the SQL equivalent for the lookups in the different
  31. types of raster support. The same pattern applies to all spatial lookups.
  32. ==== ============================== =======================================================
  33. Case Lookup SQL Equivalent
  34. ==== ============================== =======================================================
  35. N, B ``rast__contains=rst`` ``ST_Contains(rast, rst)``
  36. N, B ``rast__1__contains=(rst, 2)`` ``ST_Contains(rast, 1, rst, 2)``
  37. B, C ``rast__contains=geom`` ``ST_Contains(ST_Polygon(rast), geom)``
  38. B, C ``rast__1__contains=geom`` ``ST_Contains(ST_Polygon(rast, 1), geom)``
  39. B, C ``poly__contains=rst`` ``ST_Contains(poly, ST_Polygon(rst))``
  40. B, C ``poly__contains=(rst, 1)`` ``ST_Contains(poly, ST_Polygon(rst, 1))``
  41. C ``rast__crosses=rst`` ``ST_Crosses(ST_Polygon(rast), ST_Polygon(rst))``
  42. C ``rast__1__crosses=(rst, 2)`` ``ST_Crosses(ST_Polygon(rast, 1), ST_Polygon(rst, 2))``
  43. C ``rast__crosses=geom`` ``ST_Crosses(ST_Polygon(rast), geom)``
  44. C ``poly__crosses=rst`` ``ST_Crosses(poly, ST_Polygon(rst))``
  45. ==== ============================== =======================================================
  46. Spatial lookups with rasters are only supported for PostGIS backends
  47. (denominated as PGRaster in this section).
  48. .. fieldlookup:: bbcontains
  49. ``bbcontains``
  50. --------------
  51. *Availability*: `PostGIS <https://postgis.net/docs/ST_Geometry_Contain.html>`__,
  52. MySQL, SpatiaLite, PGRaster (Native)
  53. Tests if the geometry or raster field's bounding box completely contains the
  54. lookup geometry's bounding box.
  55. Example::
  56. Zipcode.objects.filter(poly__bbcontains=geom)
  57. ========== ==========================
  58. Backend SQL Equivalent
  59. ========== ==========================
  60. PostGIS ``poly ~ geom``
  61. MySQL ``MBRContains(poly, geom)``
  62. SpatiaLite ``MbrContains(poly, geom)``
  63. ========== ==========================
  64. .. fieldlookup:: bboverlaps
  65. ``bboverlaps``
  66. --------------
  67. *Availability*: `PostGIS <https://postgis.net/docs/geometry_overlaps.html>`__,
  68. MySQL, SpatiaLite, PGRaster (Native)
  69. Tests if the geometry field's bounding box overlaps the lookup geometry's
  70. bounding box.
  71. Example::
  72. Zipcode.objects.filter(poly__bboverlaps=geom)
  73. ========== ==========================
  74. Backend SQL Equivalent
  75. ========== ==========================
  76. PostGIS ``poly && geom``
  77. MySQL ``MBROverlaps(poly, geom)``
  78. SpatiaLite ``MbrOverlaps(poly, geom)``
  79. ========== ==========================
  80. .. fieldlookup:: contained
  81. ``contained``
  82. -------------
  83. *Availability*: `PostGIS <https://postgis.net/docs/ST_Geometry_Contained.html>`__,
  84. MySQL, SpatiaLite, PGRaster (Native)
  85. Tests if the geometry field's bounding box is completely contained by the
  86. lookup geometry's bounding box.
  87. Example::
  88. Zipcode.objects.filter(poly__contained=geom)
  89. ========== ==========================
  90. Backend SQL Equivalent
  91. ========== ==========================
  92. PostGIS ``poly @ geom``
  93. MySQL ``MBRWithin(poly, geom)``
  94. SpatiaLite ``MbrWithin(poly, geom)``
  95. ========== ==========================
  96. .. fieldlookup:: gis-contains
  97. ``contains``
  98. ------------
  99. *Availability*: `PostGIS <https://postgis.net/docs/ST_Contains.html>`__,
  100. Oracle, MySQL, SpatiaLite, PGRaster (Bilateral)
  101. Tests if the geometry field spatially contains the lookup geometry.
  102. Example::
  103. Zipcode.objects.filter(poly__contains=geom)
  104. ========== ============================
  105. Backend SQL Equivalent
  106. ========== ============================
  107. PostGIS ``ST_Contains(poly, geom)``
  108. Oracle ``SDO_CONTAINS(poly, geom)``
  109. MySQL ``MBRContains(poly, geom)``
  110. SpatiaLite ``Contains(poly, geom)``
  111. ========== ============================
  112. .. fieldlookup:: contains_properly
  113. ``contains_properly``
  114. ---------------------
  115. *Availability*: `PostGIS <https://postgis.net/docs/ST_ContainsProperly.html>`__,
  116. PGRaster (Bilateral)
  117. Returns true if the lookup geometry intersects the interior of the
  118. geometry field, but not the boundary (or exterior).
  119. Example::
  120. Zipcode.objects.filter(poly__contains_properly=geom)
  121. ========== ===================================
  122. Backend SQL Equivalent
  123. ========== ===================================
  124. PostGIS ``ST_ContainsProperly(poly, geom)``
  125. ========== ===================================
  126. .. fieldlookup:: coveredby
  127. ``coveredby``
  128. -------------
  129. *Availability*: `PostGIS <https://postgis.net/docs/ST_CoveredBy.html>`__,
  130. Oracle, PGRaster (Bilateral), SpatiaLite
  131. Tests if no point in the geometry field is outside the lookup geometry.
  132. [#fncovers]_
  133. Example::
  134. Zipcode.objects.filter(poly__coveredby=geom)
  135. .. versionchanged:: 2.2
  136. SpatiaLite support was added.
  137. ========== =============================
  138. Backend SQL Equivalent
  139. ========== =============================
  140. PostGIS ``ST_CoveredBy(poly, geom)``
  141. Oracle ``SDO_COVEREDBY(poly, geom)``
  142. SpatiaLite ``CoveredBy(poly, geom)``
  143. ========== =============================
  144. .. fieldlookup:: covers
  145. ``covers``
  146. ----------
  147. *Availability*: `PostGIS <https://postgis.net/docs/ST_Covers.html>`__,
  148. Oracle, PGRaster (Bilateral), SpatiaLite
  149. Tests if no point in the lookup geometry is outside the geometry field.
  150. [#fncovers]_
  151. Example::
  152. Zipcode.objects.filter(poly__covers=geom)
  153. .. versionchanged:: 2.2
  154. SpatiaLite support was added.
  155. ========== ==========================
  156. Backend SQL Equivalent
  157. ========== ==========================
  158. PostGIS ``ST_Covers(poly, geom)``
  159. Oracle ``SDO_COVERS(poly, geom)``
  160. SpatiaLite ``Covers(poly, geom)``
  161. ========== ==========================
  162. .. fieldlookup:: crosses
  163. ``crosses``
  164. -----------
  165. *Availability*: `PostGIS <https://postgis.net/docs/ST_Crosses.html>`__,
  166. SpatiaLite, PGRaster (Conversion)
  167. Tests if the geometry field spatially crosses the lookup geometry.
  168. Example::
  169. Zipcode.objects.filter(poly__crosses=geom)
  170. ========== ==========================
  171. Backend SQL Equivalent
  172. ========== ==========================
  173. PostGIS ``ST_Crosses(poly, geom)``
  174. SpatiaLite ``Crosses(poly, geom)``
  175. ========== ==========================
  176. .. fieldlookup:: disjoint
  177. ``disjoint``
  178. ------------
  179. *Availability*: `PostGIS <https://postgis.net/docs/ST_Disjoint.html>`__,
  180. Oracle, MySQL, SpatiaLite, PGRaster (Bilateral)
  181. Tests if the geometry field is spatially disjoint from the lookup geometry.
  182. Example::
  183. Zipcode.objects.filter(poly__disjoint=geom)
  184. ========== =================================================
  185. Backend SQL Equivalent
  186. ========== =================================================
  187. PostGIS ``ST_Disjoint(poly, geom)``
  188. Oracle ``SDO_GEOM.RELATE(poly, 'DISJOINT', geom, 0.05)``
  189. MySQL ``MBRDisjoint(poly, geom)``
  190. SpatiaLite ``Disjoint(poly, geom)``
  191. ========== =================================================
  192. .. fieldlookup:: equals
  193. ``equals``
  194. ----------
  195. *Availability*: `PostGIS <https://postgis.net/docs/ST_Equals.html>`__,
  196. Oracle, MySQL, SpatiaLite, PGRaster (Conversion)
  197. Tests if the geometry field is spatially equal to the lookup geometry.
  198. Example::
  199. Zipcode.objects.filter(poly__equals=geom)
  200. ========== =================================================
  201. Backend SQL Equivalent
  202. ========== =================================================
  203. PostGIS ``ST_Equals(poly, geom)``
  204. Oracle ``SDO_EQUAL(poly, geom)``
  205. MySQL ``MBREquals(poly, geom)``
  206. SpatiaLite ``Equals(poly, geom)``
  207. ========== =================================================
  208. .. fieldlookup:: exact
  209. .. fieldlookup:: same_as
  210. ``exact``, ``same_as``
  211. ----------------------
  212. *Availability*: `PostGIS <https://postgis.net/docs/ST_Geometry_Same.html>`__,
  213. Oracle, MySQL, SpatiaLite, PGRaster (Bilateral)
  214. Tests if the geometry field is "equal" to the lookup geometry. On Oracle and
  215. SpatiaLite it tests spatial equality, while on MySQL and PostGIS it tests
  216. equality of bounding boxes.
  217. Example::
  218. Zipcode.objects.filter(poly=geom)
  219. ========== =================================================
  220. Backend SQL Equivalent
  221. ========== =================================================
  222. PostGIS ``poly ~= geom``
  223. Oracle ``SDO_EQUAL(poly, geom)``
  224. MySQL ``MBREquals(poly, geom)``
  225. SpatiaLite ``Equals(poly, geom)``
  226. ========== =================================================
  227. .. fieldlookup:: intersects
  228. ``intersects``
  229. --------------
  230. *Availability*: `PostGIS <https://postgis.net/docs/ST_Intersects.html>`__,
  231. Oracle, MySQL, SpatiaLite, PGRaster (Bilateral)
  232. Tests if the geometry field spatially intersects the lookup geometry.
  233. Example::
  234. Zipcode.objects.filter(poly__intersects=geom)
  235. ========== =================================================
  236. Backend SQL Equivalent
  237. ========== =================================================
  238. PostGIS ``ST_Intersects(poly, geom)``
  239. Oracle ``SDO_OVERLAPBDYINTERSECT(poly, geom)``
  240. MySQL ``MBRIntersects(poly, geom)``
  241. SpatiaLite ``Intersects(poly, geom)``
  242. ========== =================================================
  243. .. fieldlookup:: isvalid
  244. ``isvalid``
  245. -----------
  246. *Availability*: MySQL (≥ 5.7.5), `PostGIS
  247. <https://postgis.net/docs/ST_IsValid.html>`__, Oracle, SpatiaLite
  248. Tests if the geometry is valid.
  249. Example::
  250. Zipcode.objects.filter(poly__isvalid=True)
  251. ========================== ================================================================
  252. Backend SQL Equivalent
  253. ========================== ================================================================
  254. MySQL, PostGIS, SpatiaLite ``ST_IsValid(poly)``
  255. Oracle ``SDO_GEOM.VALIDATE_GEOMETRY_WITH_CONTEXT(poly, 0.05) = 'TRUE'``
  256. ========================== ================================================================
  257. .. fieldlookup:: overlaps
  258. ``overlaps``
  259. ------------
  260. *Availability*: `PostGIS <https://postgis.net/docs/ST_Overlaps.html>`__,
  261. Oracle, MySQL, SpatiaLite, PGRaster (Bilateral)
  262. Tests if the geometry field spatially overlaps the lookup geometry.
  263. ========== ============================
  264. Backend SQL Equivalent
  265. ========== ============================
  266. PostGIS ``ST_Overlaps(poly, geom)``
  267. Oracle ``SDO_OVERLAPS(poly, geom)``
  268. MySQL ``MBROverlaps(poly, geom)``
  269. SpatiaLite ``Overlaps(poly, geom)``
  270. ========== ============================
  271. .. fieldlookup:: relate
  272. ``relate``
  273. ----------
  274. *Availability*: `PostGIS <https://postgis.net/docs/ST_Relate.html>`__,
  275. Oracle, SpatiaLite, PGRaster (Conversion)
  276. Tests if the geometry field is spatially related to the lookup geometry by
  277. the values given in the given pattern. This lookup requires a tuple parameter,
  278. ``(geom, pattern)``; the form of ``pattern`` will depend on the spatial backend:
  279. PostGIS & SpatiaLite
  280. ~~~~~~~~~~~~~~~~~~~~
  281. On these spatial backends the intersection pattern is a string comprising
  282. nine characters, which define intersections between the interior, boundary,
  283. and exterior of the geometry field and the lookup geometry.
  284. The intersection pattern matrix may only use the following characters:
  285. ``1``, ``2``, ``T``, ``F``, or ``*``. This lookup type allows users to "fine tune"
  286. a specific geometric relationship consistent with the DE-9IM model. [#fnde9im]_
  287. Geometry example::
  288. # A tuple lookup parameter is used to specify the geometry and
  289. # the intersection pattern (the pattern here is for 'contains').
  290. Zipcode.objects.filter(poly__relate=(geom, 'T*T***FF*'))
  291. PostGIS SQL equivalent::
  292. SELECT ... WHERE ST_Relate(poly, geom, 'T*T***FF*')
  293. SpatiaLite SQL equivalent::
  294. SELECT ... WHERE Relate(poly, geom, 'T*T***FF*')
  295. Raster example::
  296. Zipcode.objects.filter(poly__relate=(rast, 1, 'T*T***FF*'))
  297. Zipcode.objects.filter(rast__2__relate=(rast, 1, 'T*T***FF*'))
  298. PostGIS SQL equivalent::
  299. SELECT ... WHERE ST_Relate(poly, ST_Polygon(rast, 1), 'T*T***FF*')
  300. SELECT ... WHERE ST_Relate(ST_Polygon(rast, 2), ST_Polygon(rast, 1), 'T*T***FF*')
  301. Oracle
  302. ~~~~~~
  303. Here the relation pattern is comprised of at least one of the nine relation
  304. strings: ``TOUCH``, ``OVERLAPBDYDISJOINT``, ``OVERLAPBDYINTERSECT``,
  305. ``EQUAL``, ``INSIDE``, ``COVEREDBY``, ``CONTAINS``, ``COVERS``, ``ON``, and
  306. ``ANYINTERACT``. Multiple strings may be combined with the logical Boolean
  307. operator OR, for example, ``'inside+touch'``. [#fnsdorelate]_ The relation
  308. strings are case-insensitive.
  309. Example::
  310. Zipcode.objects.filter(poly__relate=(geom, 'anyinteract'))
  311. Oracle SQL equivalent::
  312. SELECT ... WHERE SDO_RELATE(poly, geom, 'anyinteract')
  313. .. fieldlookup:: touches
  314. ``touches``
  315. -----------
  316. *Availability*: `PostGIS <https://postgis.net/docs/ST_Touches.html>`__,
  317. Oracle, MySQL, SpatiaLite
  318. Tests if the geometry field spatially touches the lookup geometry.
  319. Example::
  320. Zipcode.objects.filter(poly__touches=geom)
  321. ========== ==========================
  322. Backend SQL Equivalent
  323. ========== ==========================
  324. PostGIS ``ST_Touches(poly, geom)``
  325. MySQL ``MBRTouches(poly, geom)``
  326. Oracle ``SDO_TOUCH(poly, geom)``
  327. SpatiaLite ``Touches(poly, geom)``
  328. ========== ==========================
  329. .. fieldlookup:: within
  330. ``within``
  331. ----------
  332. *Availability*: `PostGIS <https://postgis.net/docs/ST_Within.html>`__,
  333. Oracle, MySQL, SpatiaLite, PGRaster (Bilateral)
  334. Tests if the geometry field is spatially within the lookup geometry.
  335. Example::
  336. Zipcode.objects.filter(poly__within=geom)
  337. ========== ==========================
  338. Backend SQL Equivalent
  339. ========== ==========================
  340. PostGIS ``ST_Within(poly, geom)``
  341. MySQL ``MBRWithin(poly, geom)``
  342. Oracle ``SDO_INSIDE(poly, geom)``
  343. SpatiaLite ``Within(poly, geom)``
  344. ========== ==========================
  345. .. fieldlookup:: left
  346. ``left``
  347. --------
  348. *Availability*: `PostGIS <https://postgis.net/docs/ST_Geometry_Left.html>`__,
  349. PGRaster (Conversion)
  350. Tests if the geometry field's bounding box is strictly to the left of the
  351. lookup geometry's bounding box.
  352. Example::
  353. Zipcode.objects.filter(poly__left=geom)
  354. PostGIS equivalent::
  355. SELECT ... WHERE poly << geom
  356. .. fieldlookup:: right
  357. ``right``
  358. ---------
  359. *Availability*: `PostGIS <https://postgis.net/docs/ST_Geometry_Right.html>`__,
  360. PGRaster (Conversion)
  361. Tests if the geometry field's bounding box is strictly to the right of the
  362. lookup geometry's bounding box.
  363. Example::
  364. Zipcode.objects.filter(poly__right=geom)
  365. PostGIS equivalent::
  366. SELECT ... WHERE poly >> geom
  367. .. fieldlookup:: overlaps_left
  368. ``overlaps_left``
  369. -----------------
  370. *Availability*: `PostGIS <https://postgis.net/docs/ST_Geometry_Overleft.html>`__,
  371. PGRaster (Bilateral)
  372. Tests if the geometry field's bounding box overlaps or is to the left of the lookup
  373. geometry's bounding box.
  374. Example::
  375. Zipcode.objects.filter(poly__overlaps_left=geom)
  376. PostGIS equivalent::
  377. SELECT ... WHERE poly &< geom
  378. .. fieldlookup:: overlaps_right
  379. ``overlaps_right``
  380. ------------------
  381. *Availability*: `PostGIS <https://postgis.net/docs/ST_Geometry_Overright.html>`__,
  382. PGRaster (Bilateral)
  383. Tests if the geometry field's bounding box overlaps or is to the right of the lookup
  384. geometry's bounding box.
  385. Example::
  386. Zipcode.objects.filter(poly__overlaps_right=geom)
  387. PostGIS equivalent::
  388. SELECT ... WHERE poly &> geom
  389. .. fieldlookup:: overlaps_above
  390. ``overlaps_above``
  391. ------------------
  392. *Availability*: `PostGIS <https://postgis.net/docs/ST_Geometry_Overabove.html>`__,
  393. PGRaster (Conversion)
  394. Tests if the geometry field's bounding box overlaps or is above the lookup
  395. geometry's bounding box.
  396. Example::
  397. Zipcode.objects.filter(poly__overlaps_above=geom)
  398. PostGIS equivalent::
  399. SELECT ... WHERE poly |&> geom
  400. .. fieldlookup:: overlaps_below
  401. ``overlaps_below``
  402. ------------------
  403. *Availability*: `PostGIS <https://postgis.net/docs/ST_Geometry_Overbelow.html>`__,
  404. PGRaster (Conversion)
  405. Tests if the geometry field's bounding box overlaps or is below the lookup
  406. geometry's bounding box.
  407. Example::
  408. Zipcode.objects.filter(poly__overlaps_below=geom)
  409. PostGIS equivalent::
  410. SELECT ... WHERE poly &<| geom
  411. .. fieldlookup:: strictly_above
  412. ``strictly_above``
  413. ------------------
  414. *Availability*: `PostGIS <https://postgis.net/docs/ST_Geometry_Above.html>`__,
  415. PGRaster (Conversion)
  416. Tests if the geometry field's bounding box is strictly above the lookup
  417. geometry's bounding box.
  418. Example::
  419. Zipcode.objects.filter(poly__strictly_above=geom)
  420. PostGIS equivalent::
  421. SELECT ... WHERE poly |>> geom
  422. .. fieldlookup:: strictly_below
  423. ``strictly_below``
  424. ------------------
  425. *Availability*: `PostGIS <https://postgis.net/docs/ST_Geometry_Below.html>`__,
  426. PGRaster (Conversion)
  427. Tests if the geometry field's bounding box is strictly below the lookup
  428. geometry's bounding box.
  429. Example::
  430. Zipcode.objects.filter(poly__strictly_below=geom)
  431. PostGIS equivalent::
  432. SELECT ... WHERE poly <<| geom
  433. .. _distance-lookups:
  434. Distance Lookups
  435. ================
  436. *Availability*: PostGIS, Oracle, MySQL, SpatiaLite, PGRaster (Native)
  437. For an overview on performing distance queries, please refer to
  438. the :ref:`distance queries introduction <distance-queries>`.
  439. Distance lookups take the following form::
  440. <field>__<distance lookup>=(<geometry/raster>, <distance value>[, 'spheroid'])
  441. <field>__<distance lookup>=(<raster>, <band_index>, <distance value>[, 'spheroid'])
  442. <field>__<band_index>__<distance lookup>=(<raster>, <band_index>, <distance value>[, 'spheroid'])
  443. The value passed into a distance lookup is a tuple; the first two
  444. values are mandatory, and are the geometry to calculate distances to,
  445. and a distance value (either a number in units of the field, a
  446. :class:`~django.contrib.gis.measure.Distance` object, or a `query expression
  447. <ref/models/expressions>`). To pass a band index to the lookup, use a 3-tuple
  448. where the second entry is the band index.
  449. On every distance lookup except :lookup:`dwithin`, an optional element,
  450. ``'spheroid'``, may be included to use the more accurate spheroid distance
  451. calculation functions on fields with a geodetic coordinate system.
  452. On PostgreSQL, the ``'spheroid'`` option uses `ST_DistanceSpheroid
  453. <https://postgis.net/docs/ST_Distance_Spheroid.html>`__ instead of
  454. `ST_DistanceSphere <https://postgis.net/docs/ST_DistanceSphere.html>`__. The
  455. simpler `ST_Distance <https://postgis.net/docs/ST_Distance.html>`__ function is
  456. used with projected coordinate systems. Rasters are converted to geometries for
  457. spheroid based lookups.
  458. .. fieldlookup:: distance_gt
  459. ``distance_gt``
  460. ---------------
  461. Returns models where the distance to the geometry field from the lookup
  462. geometry is greater than the given distance value.
  463. Example::
  464. Zipcode.objects.filter(poly__distance_gt=(geom, D(m=5)))
  465. ========== ==================================================
  466. Backend SQL Equivalent
  467. ========== ==================================================
  468. PostGIS ``ST_Distance/ST_Distance_Sphere(poly, geom) > 5``
  469. Oracle ``SDO_GEOM.SDO_DISTANCE(poly, geom, 0.05) > 5``
  470. SpatiaLite ``Distance(poly, geom) > 5``
  471. ========== ==================================================
  472. .. fieldlookup:: distance_gte
  473. ``distance_gte``
  474. ----------------
  475. Returns models where the distance to the geometry field from the lookup
  476. geometry is greater than or equal to the given distance value.
  477. Example::
  478. Zipcode.objects.filter(poly__distance_gte=(geom, D(m=5)))
  479. ========== ===================================================
  480. Backend SQL Equivalent
  481. ========== ===================================================
  482. PostGIS ``ST_Distance/ST_Distance_Sphere(poly, geom) >= 5``
  483. Oracle ``SDO_GEOM.SDO_DISTANCE(poly, geom, 0.05) >= 5``
  484. SpatiaLite ``Distance(poly, geom) >= 5``
  485. ========== ===================================================
  486. .. fieldlookup:: distance_lt
  487. ``distance_lt``
  488. ---------------
  489. Returns models where the distance to the geometry field from the lookup
  490. geometry is less than the given distance value.
  491. Example::
  492. Zipcode.objects.filter(poly__distance_lt=(geom, D(m=5)))
  493. ========== ==================================================
  494. Backend SQL Equivalent
  495. ========== ==================================================
  496. PostGIS ``ST_Distance/ST_Distance_Sphere(poly, geom) < 5``
  497. Oracle ``SDO_GEOM.SDO_DISTANCE(poly, geom, 0.05) < 5``
  498. SpatiaLite ``Distance(poly, geom) < 5``
  499. ========== ==================================================
  500. .. fieldlookup:: distance_lte
  501. ``distance_lte``
  502. ----------------
  503. Returns models where the distance to the geometry field from the lookup
  504. geometry is less than or equal to the given distance value.
  505. Example::
  506. Zipcode.objects.filter(poly__distance_lte=(geom, D(m=5)))
  507. ========== ===================================================
  508. Backend SQL Equivalent
  509. ========== ===================================================
  510. PostGIS ``ST_Distance/ST_Distance_Sphere(poly, geom) <= 5``
  511. Oracle ``SDO_GEOM.SDO_DISTANCE(poly, geom, 0.05) <= 5``
  512. SpatiaLite ``Distance(poly, geom) <= 5``
  513. ========== ===================================================
  514. .. fieldlookup:: dwithin
  515. ``dwithin``
  516. -----------
  517. Returns models where the distance to the geometry field from the lookup
  518. geometry are within the given distance from one another. Note that you can only
  519. provide :class:`~django.contrib.gis.measure.Distance` objects if the targeted
  520. geometries are in a projected system. For geographic geometries, you should use
  521. units of the geometry field (e.g. degrees for ``WGS84``) .
  522. Example::
  523. Zipcode.objects.filter(poly__dwithin=(geom, D(m=5)))
  524. ========== ======================================
  525. Backend SQL Equivalent
  526. ========== ======================================
  527. PostGIS ``ST_DWithin(poly, geom, 5)``
  528. Oracle ``SDO_WITHIN_DISTANCE(poly, geom, 5)``
  529. SpatiaLite ``PtDistWithin(poly, geom, 5)``
  530. ========== ======================================
  531. Aggregate Functions
  532. -------------------
  533. Django provides some GIS-specific aggregate functions. For details on how to
  534. use these aggregate functions, see :doc:`the topic guide on aggregation
  535. </topics/db/aggregation>`.
  536. ===================== =====================================================
  537. Keyword Argument Description
  538. ===================== =====================================================
  539. ``tolerance`` This keyword is for Oracle only. It is for the
  540. tolerance value used by the ``SDOAGGRTYPE``
  541. procedure; the `Oracle documentation`__ has more
  542. details.
  543. ===================== =====================================================
  544. __ https://docs.oracle.com/en/database/oracle/oracle-database/18/spatl/
  545. spatial-concepts.html#GUID-CE10AB14-D5EA-43BA-A647-DAC9EEF41EE6
  546. Example::
  547. >>> from django.contrib.gis.db.models import Extent, Union
  548. >>> WorldBorder.objects.aggregate(Extent('mpoly'), Union('mpoly'))
  549. ``Collect``
  550. ~~~~~~~~~~~
  551. .. class:: Collect(geo_field)
  552. *Availability*: `PostGIS <https://postgis.net/docs/ST_Collect.html>`__,
  553. SpatiaLite
  554. Returns a ``GEOMETRYCOLLECTION`` or a ``MULTI`` geometry object from the geometry
  555. column. This is analogous to a simplified version of the :class:`Union`
  556. aggregate, except it can be several orders of magnitude faster than performing
  557. a union because it simply rolls up geometries into a collection or multi object,
  558. not caring about dissolving boundaries.
  559. ``Extent``
  560. ~~~~~~~~~~
  561. .. class:: Extent(geo_field)
  562. *Availability*: `PostGIS <https://postgis.net/docs/ST_Extent.html>`__,
  563. Oracle, SpatiaLite
  564. Returns the extent of all ``geo_field`` in the ``QuerySet`` as a four-tuple,
  565. comprising the lower left coordinate and the upper right coordinate.
  566. Example::
  567. >>> qs = City.objects.filter(name__in=('Houston', 'Dallas')).aggregate(Extent('poly'))
  568. >>> print(qs['poly__extent'])
  569. (-96.8016128540039, 29.7633724212646, -95.3631439208984, 32.782058715820)
  570. ``Extent3D``
  571. ~~~~~~~~~~~~
  572. .. class:: Extent3D(geo_field)
  573. *Availability*: `PostGIS <https://postgis.net/docs/ST_3DExtent.html>`__
  574. Returns the 3D extent of all ``geo_field`` in the ``QuerySet`` as a six-tuple,
  575. comprising the lower left coordinate and upper right coordinate (each with x, y,
  576. and z coordinates).
  577. Example::
  578. >>> qs = City.objects.filter(name__in=('Houston', 'Dallas')).aggregate(Extent3D('poly'))
  579. >>> print(qs['poly__extent3d'])
  580. (-96.8016128540039, 29.7633724212646, 0, -95.3631439208984, 32.782058715820, 0)
  581. ``MakeLine``
  582. ~~~~~~~~~~~~
  583. .. class:: MakeLine(geo_field)
  584. *Availability*: `PostGIS <https://postgis.net/docs/ST_MakeLine.html>`__,
  585. SpatiaLite
  586. Returns a ``LineString`` constructed from the point field geometries in the
  587. ``QuerySet``. Currently, ordering the queryset has no effect.
  588. Example::
  589. >>> qs = City.objects.filter(name__in=('Houston', 'Dallas')).aggregate(MakeLine('poly'))
  590. >>> print(qs['poly__makeline'])
  591. LINESTRING (-95.3631510000000020 29.7633739999999989, -96.8016109999999941 32.7820570000000018)
  592. ``Union``
  593. ~~~~~~~~~
  594. .. class:: Union(geo_field)
  595. *Availability*: `PostGIS <https://postgis.net/docs/ST_Union.html>`__,
  596. Oracle, SpatiaLite
  597. This method returns a :class:`~django.contrib.gis.geos.GEOSGeometry` object
  598. comprising the union of every geometry in the queryset. Please note that use of
  599. ``Union`` is processor intensive and may take a significant amount of time on
  600. large querysets.
  601. .. note::
  602. If the computation time for using this method is too expensive, consider
  603. using :class:`Collect` instead.
  604. Example::
  605. >>> u = Zipcode.objects.aggregate(Union(poly)) # This may take a long time.
  606. >>> u = Zipcode.objects.filter(poly__within=bbox).aggregate(Union(poly)) # A more sensible approach.
  607. .. rubric:: Footnotes
  608. .. [#fnde9im] *See* `OpenGIS Simple Feature Specification For SQL <http://www.opengis.org/docs/99-049.pdf>`_, at Ch. 2.1.13.2, p. 2-13 (The Dimensionally Extended Nine-Intersection Model).
  609. .. [#fnsdorelate] *See* `SDO_RELATE documentation <https://docs.oracle.com/en/
  610. database/oracle/oracle-database/18/spatl/spatial-operators-reference.html#
  611. GUID-97C17C18-F05E-49B4-BE11-E89B972E2A02>`_, from the Oracle Spatial and
  612. Graph Developer's Guide.
  613. .. [#fncovers] For an explanation of this routine, read `Quirks of the "Contains" Spatial Predicate <https://lin-ear-th-inking.blogspot.com/2007/06/subtleties-of-ogc-covers-spatial.html>`_ by Martin Davis (a PostGIS developer).