/src/gdal/alg/gdalrasterize.cpp
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1 | | /****************************************************************************** |
2 | | * |
3 | | * Project: GDAL |
4 | | * Purpose: Vector rasterization. |
5 | | * Author: Frank Warmerdam, warmerdam@pobox.com |
6 | | * |
7 | | ****************************************************************************** |
8 | | * Copyright (c) 2005, Frank Warmerdam <warmerdam@pobox.com> |
9 | | * Copyright (c) 2008-2013, Even Rouault <even dot rouault at spatialys.com> |
10 | | * |
11 | | * SPDX-License-Identifier: MIT |
12 | | ****************************************************************************/ |
13 | | |
14 | | #include "cpl_port.h" |
15 | | #include "gdal_alg.h" |
16 | | #include "gdal_alg_priv.h" |
17 | | |
18 | | #include <climits> |
19 | | #include <cstddef> |
20 | | #include <cstdlib> |
21 | | #include <cstring> |
22 | | #include <cfloat> |
23 | | #include <limits> |
24 | | #include <vector> |
25 | | #include <algorithm> |
26 | | |
27 | | #include "cpl_conv.h" |
28 | | #include "cpl_error.h" |
29 | | #include "cpl_progress.h" |
30 | | #include "cpl_string.h" |
31 | | #include "cpl_vsi.h" |
32 | | #include "gdal.h" |
33 | | #include "gdal_priv.h" |
34 | | #include "gdal_priv_templates.hpp" |
35 | | #include "ogr_api.h" |
36 | | #include "ogr_core.h" |
37 | | #include "ogr_feature.h" |
38 | | #include "ogr_geometry.h" |
39 | | #include "ogr_spatialref.h" |
40 | | #include "ogrsf_frmts.h" |
41 | | |
42 | | template <typename T> static inline T SaturatedAddSigned(T a, T b) |
43 | 0 | { |
44 | 0 | if (a > 0 && b > 0 && a > std::numeric_limits<T>::max() - b) |
45 | 0 | { |
46 | 0 | return std::numeric_limits<T>::max(); |
47 | 0 | } |
48 | 0 | else if (a < 0 && b < 0 && a < std::numeric_limits<T>::min() - b) |
49 | 0 | { |
50 | 0 | return std::numeric_limits<T>::min(); |
51 | 0 | } |
52 | 0 | else |
53 | 0 | { |
54 | 0 | return a + b; |
55 | 0 | } |
56 | 0 | } |
57 | | |
58 | | /************************************************************************/ |
59 | | /* MakeKey() */ |
60 | | /************************************************************************/ |
61 | | |
62 | | inline uint64_t MakeKey(int y, int x) |
63 | 0 | { |
64 | 0 | return (static_cast<uint64_t>(y) << 32) | static_cast<uint64_t>(x); |
65 | 0 | } |
66 | | |
67 | | /************************************************************************/ |
68 | | /* gvBurnScanlineBasic() */ |
69 | | /************************************************************************/ |
70 | | template <typename T> |
71 | | static inline void gvBurnScanlineBasic(GDALRasterizeInfo *psInfo, int nY, |
72 | | int nXStart, int nXEnd, double dfVariant) |
73 | | |
74 | 0 | { |
75 | 0 | for (int iBand = 0; iBand < psInfo->nBands; iBand++) |
76 | 0 | { |
77 | 0 | const double burnValue = |
78 | 0 | (psInfo->burnValues.double_values[iBand] + |
79 | 0 | ((psInfo->eBurnValueSource == GBV_UserBurnValue) ? 0 : dfVariant)); |
80 | |
|
81 | 0 | unsigned char *pabyInsert = |
82 | 0 | psInfo->pabyChunkBuf + iBand * psInfo->nBandSpace + |
83 | 0 | nY * psInfo->nLineSpace + nXStart * psInfo->nPixelSpace; |
84 | 0 | if (psInfo->eMergeAlg == GRMA_Add) |
85 | 0 | { |
86 | 0 | if (psInfo->poSetVisitedPoints) |
87 | 0 | { |
88 | 0 | CPLAssert(!psInfo->bFillSetVisitedPoints); |
89 | 0 | uint64_t nKey = MakeKey(nY, nXStart); |
90 | 0 | auto &oSetVisitedPoints = *(psInfo->poSetVisitedPoints); |
91 | 0 | for (int nX = nXStart; nX <= nXEnd; ++nX) |
92 | 0 | { |
93 | 0 | if (oSetVisitedPoints.find(nKey) == oSetVisitedPoints.end()) |
94 | 0 | { |
95 | 0 | double dfVal = static_cast<double>( |
96 | 0 | *reinterpret_cast<T *>(pabyInsert)) + |
97 | 0 | burnValue; |
98 | 0 | GDALCopyWord(dfVal, *reinterpret_cast<T *>(pabyInsert)); |
99 | 0 | } |
100 | 0 | pabyInsert += psInfo->nPixelSpace; |
101 | 0 | ++nKey; |
102 | 0 | } |
103 | 0 | } |
104 | 0 | else |
105 | 0 | { |
106 | 0 | for (int nX = nXStart; nX <= nXEnd; ++nX) |
107 | 0 | { |
108 | 0 | double dfVal = static_cast<double>( |
109 | 0 | *reinterpret_cast<T *>(pabyInsert)) + |
110 | 0 | burnValue; |
111 | 0 | GDALCopyWord(dfVal, *reinterpret_cast<T *>(pabyInsert)); |
112 | 0 | pabyInsert += psInfo->nPixelSpace; |
113 | 0 | } |
114 | 0 | } |
115 | 0 | } |
116 | 0 | else |
117 | 0 | { |
118 | 0 | T nVal; |
119 | 0 | GDALCopyWord(burnValue, nVal); |
120 | 0 | for (int nX = nXStart; nX <= nXEnd; ++nX) |
121 | 0 | { |
122 | 0 | *reinterpret_cast<T *>(pabyInsert) = nVal; |
123 | 0 | pabyInsert += psInfo->nPixelSpace; |
124 | 0 | } |
125 | 0 | } |
126 | 0 | } |
127 | 0 | } Unexecuted instantiation: gdalrasterize.cpp:void gvBurnScanlineBasic<unsigned char>(GDALRasterizeInfo*, int, int, int, double) Unexecuted instantiation: gdalrasterize.cpp:void gvBurnScanlineBasic<signed char>(GDALRasterizeInfo*, int, int, int, double) Unexecuted instantiation: gdalrasterize.cpp:void gvBurnScanlineBasic<short>(GDALRasterizeInfo*, int, int, int, double) Unexecuted instantiation: gdalrasterize.cpp:void gvBurnScanlineBasic<unsigned short>(GDALRasterizeInfo*, int, int, int, double) Unexecuted instantiation: gdalrasterize.cpp:void gvBurnScanlineBasic<int>(GDALRasterizeInfo*, int, int, int, double) Unexecuted instantiation: gdalrasterize.cpp:void gvBurnScanlineBasic<unsigned int>(GDALRasterizeInfo*, int, int, int, double) Unexecuted instantiation: gdalrasterize.cpp:void gvBurnScanlineBasic<long>(GDALRasterizeInfo*, int, int, int, double) Unexecuted instantiation: gdalrasterize.cpp:void gvBurnScanlineBasic<unsigned long>(GDALRasterizeInfo*, int, int, int, double) Unexecuted instantiation: gdalrasterize.cpp:void gvBurnScanlineBasic<cpl::Float16>(GDALRasterizeInfo*, int, int, int, double) Unexecuted instantiation: gdalrasterize.cpp:void gvBurnScanlineBasic<float>(GDALRasterizeInfo*, int, int, int, double) Unexecuted instantiation: gdalrasterize.cpp:void gvBurnScanlineBasic<double>(GDALRasterizeInfo*, int, int, int, double) |
128 | | |
129 | | static inline void gvBurnScanlineInt64UserBurnValue(GDALRasterizeInfo *psInfo, |
130 | | int nY, int nXStart, |
131 | | int nXEnd) |
132 | | |
133 | 0 | { |
134 | 0 | for (int iBand = 0; iBand < psInfo->nBands; iBand++) |
135 | 0 | { |
136 | 0 | const std::int64_t burnValue = psInfo->burnValues.int64_values[iBand]; |
137 | |
|
138 | 0 | unsigned char *pabyInsert = |
139 | 0 | psInfo->pabyChunkBuf + iBand * psInfo->nBandSpace + |
140 | 0 | nY * psInfo->nLineSpace + nXStart * psInfo->nPixelSpace; |
141 | 0 | if (psInfo->eMergeAlg == GRMA_Add) |
142 | 0 | { |
143 | 0 | if (psInfo->poSetVisitedPoints) |
144 | 0 | { |
145 | 0 | CPLAssert(!psInfo->bFillSetVisitedPoints); |
146 | 0 | uint64_t nKey = MakeKey(nY, nXStart); |
147 | 0 | auto &oSetVisitedPoints = *(psInfo->poSetVisitedPoints); |
148 | 0 | for (int nX = nXStart; nX <= nXEnd; ++nX) |
149 | 0 | { |
150 | 0 | if (oSetVisitedPoints.find(nKey) == oSetVisitedPoints.end()) |
151 | 0 | { |
152 | 0 | *reinterpret_cast<std::int64_t *>(pabyInsert) = |
153 | 0 | SaturatedAddSigned( |
154 | 0 | *reinterpret_cast<std::int64_t *>(pabyInsert), |
155 | 0 | burnValue); |
156 | 0 | } |
157 | 0 | pabyInsert += psInfo->nPixelSpace; |
158 | 0 | ++nKey; |
159 | 0 | } |
160 | 0 | } |
161 | 0 | else |
162 | 0 | { |
163 | 0 | for (int nX = nXStart; nX <= nXEnd; ++nX) |
164 | 0 | { |
165 | 0 | *reinterpret_cast<std::int64_t *>(pabyInsert) = |
166 | 0 | SaturatedAddSigned( |
167 | 0 | *reinterpret_cast<std::int64_t *>(pabyInsert), |
168 | 0 | burnValue); |
169 | 0 | pabyInsert += psInfo->nPixelSpace; |
170 | 0 | } |
171 | 0 | } |
172 | 0 | } |
173 | 0 | else |
174 | 0 | { |
175 | 0 | for (int nX = nXStart; nX <= nXEnd; ++nX) |
176 | 0 | { |
177 | 0 | *reinterpret_cast<std::int64_t *>(pabyInsert) = burnValue; |
178 | 0 | pabyInsert += psInfo->nPixelSpace; |
179 | 0 | } |
180 | 0 | } |
181 | 0 | } |
182 | 0 | } |
183 | | |
184 | | /************************************************************************/ |
185 | | /* gvBurnScanline() */ |
186 | | /************************************************************************/ |
187 | | static void gvBurnScanline(GDALRasterizeInfo *psInfo, int nY, int nXStart, |
188 | | int nXEnd, double dfVariant) |
189 | | |
190 | 0 | { |
191 | 0 | if (nXStart > nXEnd) |
192 | 0 | return; |
193 | | |
194 | 0 | CPLAssert(nY >= 0 && nY < psInfo->nYSize); |
195 | 0 | CPLAssert(nXStart < psInfo->nXSize); |
196 | 0 | CPLAssert(nXEnd >= 0); |
197 | | |
198 | 0 | if (nXStart < 0) |
199 | 0 | nXStart = 0; |
200 | 0 | if (nXEnd >= psInfo->nXSize) |
201 | 0 | nXEnd = psInfo->nXSize - 1; |
202 | |
|
203 | 0 | if (psInfo->eBurnValueType == GDT_Int64) |
204 | 0 | { |
205 | 0 | if (psInfo->eType == GDT_Int64 && |
206 | 0 | psInfo->eBurnValueSource == GBV_UserBurnValue) |
207 | 0 | { |
208 | 0 | gvBurnScanlineInt64UserBurnValue(psInfo, nY, nXStart, nXEnd); |
209 | 0 | } |
210 | 0 | else |
211 | 0 | { |
212 | 0 | CPLAssert(false); |
213 | 0 | } |
214 | 0 | return; |
215 | 0 | } |
216 | | |
217 | 0 | switch (psInfo->eType) |
218 | 0 | { |
219 | 0 | case GDT_Byte: |
220 | 0 | gvBurnScanlineBasic<GByte>(psInfo, nY, nXStart, nXEnd, dfVariant); |
221 | 0 | break; |
222 | 0 | case GDT_Int8: |
223 | 0 | gvBurnScanlineBasic<GInt8>(psInfo, nY, nXStart, nXEnd, dfVariant); |
224 | 0 | break; |
225 | 0 | case GDT_Int16: |
226 | 0 | gvBurnScanlineBasic<GInt16>(psInfo, nY, nXStart, nXEnd, dfVariant); |
227 | 0 | break; |
228 | 0 | case GDT_UInt16: |
229 | 0 | gvBurnScanlineBasic<GUInt16>(psInfo, nY, nXStart, nXEnd, dfVariant); |
230 | 0 | break; |
231 | 0 | case GDT_Int32: |
232 | 0 | gvBurnScanlineBasic<GInt32>(psInfo, nY, nXStart, nXEnd, dfVariant); |
233 | 0 | break; |
234 | 0 | case GDT_UInt32: |
235 | 0 | gvBurnScanlineBasic<GUInt32>(psInfo, nY, nXStart, nXEnd, dfVariant); |
236 | 0 | break; |
237 | 0 | case GDT_Int64: |
238 | 0 | gvBurnScanlineBasic<std::int64_t>(psInfo, nY, nXStart, nXEnd, |
239 | 0 | dfVariant); |
240 | 0 | break; |
241 | 0 | case GDT_UInt64: |
242 | 0 | gvBurnScanlineBasic<std::uint64_t>(psInfo, nY, nXStart, nXEnd, |
243 | 0 | dfVariant); |
244 | 0 | break; |
245 | 0 | case GDT_Float16: |
246 | 0 | gvBurnScanlineBasic<GFloat16>(psInfo, nY, nXStart, nXEnd, |
247 | 0 | dfVariant); |
248 | 0 | break; |
249 | 0 | case GDT_Float32: |
250 | 0 | gvBurnScanlineBasic<float>(psInfo, nY, nXStart, nXEnd, dfVariant); |
251 | 0 | break; |
252 | 0 | case GDT_Float64: |
253 | 0 | gvBurnScanlineBasic<double>(psInfo, nY, nXStart, nXEnd, dfVariant); |
254 | 0 | break; |
255 | 0 | case GDT_CInt16: |
256 | 0 | case GDT_CInt32: |
257 | 0 | case GDT_CFloat16: |
258 | 0 | case GDT_CFloat32: |
259 | 0 | case GDT_CFloat64: |
260 | 0 | case GDT_Unknown: |
261 | 0 | case GDT_TypeCount: |
262 | 0 | CPLAssert(false); |
263 | 0 | break; |
264 | 0 | } |
265 | 0 | } |
266 | | |
267 | | /************************************************************************/ |
268 | | /* gvBurnPointBasic() */ |
269 | | /************************************************************************/ |
270 | | template <typename T> |
271 | | static inline void gvBurnPointBasic(GDALRasterizeInfo *psInfo, int nY, int nX, |
272 | | double dfVariant) |
273 | | |
274 | 0 | { |
275 | 0 | for (int iBand = 0; iBand < psInfo->nBands; iBand++) |
276 | 0 | { |
277 | 0 | double burnValue = |
278 | 0 | (psInfo->burnValues.double_values[iBand] + |
279 | 0 | ((psInfo->eBurnValueSource == GBV_UserBurnValue) ? 0 : dfVariant)); |
280 | 0 | unsigned char *pbyInsert = |
281 | 0 | psInfo->pabyChunkBuf + iBand * psInfo->nBandSpace + |
282 | 0 | nY * psInfo->nLineSpace + nX * psInfo->nPixelSpace; |
283 | |
|
284 | 0 | T *pbyPixel = reinterpret_cast<T *>(pbyInsert); |
285 | 0 | if (psInfo->eMergeAlg == GRMA_Add) |
286 | 0 | burnValue += static_cast<double>(*pbyPixel); |
287 | 0 | GDALCopyWord(burnValue, *pbyPixel); |
288 | 0 | } |
289 | 0 | } Unexecuted instantiation: gdalrasterize.cpp:void gvBurnPointBasic<unsigned char>(GDALRasterizeInfo*, int, int, double) Unexecuted instantiation: gdalrasterize.cpp:void gvBurnPointBasic<signed char>(GDALRasterizeInfo*, int, int, double) Unexecuted instantiation: gdalrasterize.cpp:void gvBurnPointBasic<short>(GDALRasterizeInfo*, int, int, double) Unexecuted instantiation: gdalrasterize.cpp:void gvBurnPointBasic<unsigned short>(GDALRasterizeInfo*, int, int, double) Unexecuted instantiation: gdalrasterize.cpp:void gvBurnPointBasic<int>(GDALRasterizeInfo*, int, int, double) Unexecuted instantiation: gdalrasterize.cpp:void gvBurnPointBasic<unsigned int>(GDALRasterizeInfo*, int, int, double) Unexecuted instantiation: gdalrasterize.cpp:void gvBurnPointBasic<long>(GDALRasterizeInfo*, int, int, double) Unexecuted instantiation: gdalrasterize.cpp:void gvBurnPointBasic<unsigned long>(GDALRasterizeInfo*, int, int, double) Unexecuted instantiation: gdalrasterize.cpp:void gvBurnPointBasic<cpl::Float16>(GDALRasterizeInfo*, int, int, double) Unexecuted instantiation: gdalrasterize.cpp:void gvBurnPointBasic<float>(GDALRasterizeInfo*, int, int, double) Unexecuted instantiation: gdalrasterize.cpp:void gvBurnPointBasic<double>(GDALRasterizeInfo*, int, int, double) |
290 | | |
291 | | static inline void gvBurnPointInt64UserBurnValue(GDALRasterizeInfo *psInfo, |
292 | | int nY, int nX) |
293 | | |
294 | 0 | { |
295 | 0 | for (int iBand = 0; iBand < psInfo->nBands; iBand++) |
296 | 0 | { |
297 | 0 | std::int64_t burnValue = psInfo->burnValues.int64_values[iBand]; |
298 | 0 | unsigned char *pbyInsert = |
299 | 0 | psInfo->pabyChunkBuf + iBand * psInfo->nBandSpace + |
300 | 0 | nY * psInfo->nLineSpace + nX * psInfo->nPixelSpace; |
301 | |
|
302 | 0 | std::int64_t *pbyPixel = reinterpret_cast<std::int64_t *>(pbyInsert); |
303 | 0 | if (psInfo->eMergeAlg == GRMA_Add) |
304 | 0 | { |
305 | 0 | burnValue = SaturatedAddSigned(burnValue, *pbyPixel); |
306 | 0 | } |
307 | 0 | *pbyPixel = burnValue; |
308 | 0 | } |
309 | 0 | } |
310 | | |
311 | | /************************************************************************/ |
312 | | /* gvBurnPoint() */ |
313 | | /************************************************************************/ |
314 | | static void gvBurnPoint(GDALRasterizeInfo *psInfo, int nY, int nX, |
315 | | double dfVariant) |
316 | | |
317 | 0 | { |
318 | |
|
319 | 0 | CPLAssert(nY >= 0 && nY < psInfo->nYSize); |
320 | 0 | CPLAssert(nX >= 0 && nX < psInfo->nXSize); |
321 | | |
322 | 0 | if (psInfo->poSetVisitedPoints) |
323 | 0 | { |
324 | 0 | const uint64_t nKey = MakeKey(nY, nX); |
325 | 0 | if (psInfo->poSetVisitedPoints->find(nKey) == |
326 | 0 | psInfo->poSetVisitedPoints->end()) |
327 | 0 | { |
328 | 0 | if (psInfo->bFillSetVisitedPoints) |
329 | 0 | psInfo->poSetVisitedPoints->insert(nKey); |
330 | 0 | } |
331 | 0 | else |
332 | 0 | { |
333 | 0 | return; |
334 | 0 | } |
335 | 0 | } |
336 | | |
337 | 0 | if (psInfo->eBurnValueType == GDT_Int64) |
338 | 0 | { |
339 | 0 | if (psInfo->eType == GDT_Int64 && |
340 | 0 | psInfo->eBurnValueSource == GBV_UserBurnValue) |
341 | 0 | { |
342 | 0 | gvBurnPointInt64UserBurnValue(psInfo, nY, nX); |
343 | 0 | } |
344 | 0 | else |
345 | 0 | { |
346 | 0 | CPLAssert(false); |
347 | 0 | } |
348 | 0 | return; |
349 | 0 | } |
350 | | |
351 | 0 | switch (psInfo->eType) |
352 | 0 | { |
353 | 0 | case GDT_Byte: |
354 | 0 | gvBurnPointBasic<GByte>(psInfo, nY, nX, dfVariant); |
355 | 0 | break; |
356 | 0 | case GDT_Int8: |
357 | 0 | gvBurnPointBasic<GInt8>(psInfo, nY, nX, dfVariant); |
358 | 0 | break; |
359 | 0 | case GDT_Int16: |
360 | 0 | gvBurnPointBasic<GInt16>(psInfo, nY, nX, dfVariant); |
361 | 0 | break; |
362 | 0 | case GDT_UInt16: |
363 | 0 | gvBurnPointBasic<GUInt16>(psInfo, nY, nX, dfVariant); |
364 | 0 | break; |
365 | 0 | case GDT_Int32: |
366 | 0 | gvBurnPointBasic<GInt32>(psInfo, nY, nX, dfVariant); |
367 | 0 | break; |
368 | 0 | case GDT_UInt32: |
369 | 0 | gvBurnPointBasic<GUInt32>(psInfo, nY, nX, dfVariant); |
370 | 0 | break; |
371 | 0 | case GDT_Int64: |
372 | 0 | gvBurnPointBasic<std::int64_t>(psInfo, nY, nX, dfVariant); |
373 | 0 | break; |
374 | 0 | case GDT_UInt64: |
375 | 0 | gvBurnPointBasic<std::uint64_t>(psInfo, nY, nX, dfVariant); |
376 | 0 | break; |
377 | 0 | case GDT_Float16: |
378 | 0 | gvBurnPointBasic<GFloat16>(psInfo, nY, nX, dfVariant); |
379 | 0 | break; |
380 | 0 | case GDT_Float32: |
381 | 0 | gvBurnPointBasic<float>(psInfo, nY, nX, dfVariant); |
382 | 0 | break; |
383 | 0 | case GDT_Float64: |
384 | 0 | gvBurnPointBasic<double>(psInfo, nY, nX, dfVariant); |
385 | 0 | break; |
386 | 0 | case GDT_CInt16: |
387 | 0 | case GDT_CInt32: |
388 | 0 | case GDT_CFloat16: |
389 | 0 | case GDT_CFloat32: |
390 | 0 | case GDT_CFloat64: |
391 | 0 | case GDT_Unknown: |
392 | 0 | case GDT_TypeCount: |
393 | 0 | CPLAssert(false); |
394 | 0 | } |
395 | 0 | } |
396 | | |
397 | | /************************************************************************/ |
398 | | /* GDALCollectRingsFromGeometry() */ |
399 | | /************************************************************************/ |
400 | | |
401 | | static void GDALCollectRingsFromGeometry(const OGRGeometry *poShape, |
402 | | std::vector<double> &aPointX, |
403 | | std::vector<double> &aPointY, |
404 | | std::vector<double> &aPointVariant, |
405 | | std::vector<int> &aPartSize, |
406 | | GDALBurnValueSrc eBurnValueSrc) |
407 | | |
408 | 0 | { |
409 | 0 | if (poShape == nullptr || poShape->IsEmpty()) |
410 | 0 | return; |
411 | | |
412 | 0 | const OGRwkbGeometryType eFlatType = wkbFlatten(poShape->getGeometryType()); |
413 | |
|
414 | 0 | if (eFlatType == wkbPoint) |
415 | 0 | { |
416 | 0 | const auto poPoint = poShape->toPoint(); |
417 | |
|
418 | 0 | aPointX.push_back(poPoint->getX()); |
419 | 0 | aPointY.push_back(poPoint->getY()); |
420 | 0 | aPartSize.push_back(1); |
421 | 0 | if (eBurnValueSrc != GBV_UserBurnValue) |
422 | 0 | { |
423 | | // TODO(schwehr): Why not have the option for M r18164? |
424 | | // switch( eBurnValueSrc ) |
425 | | // { |
426 | | // case GBV_Z:*/ |
427 | 0 | aPointVariant.push_back(poPoint->getZ()); |
428 | | // break; |
429 | | // case GBV_M: |
430 | | // aPointVariant.reserve( nNewCount ); |
431 | | // aPointVariant.push_back( poPoint->getM() ); |
432 | 0 | } |
433 | 0 | } |
434 | 0 | else if (EQUAL(poShape->getGeometryName(), "LINEARRING")) |
435 | 0 | { |
436 | 0 | const auto poRing = poShape->toLinearRing(); |
437 | 0 | const int nCount = poRing->getNumPoints(); |
438 | 0 | const size_t nNewCount = aPointX.size() + static_cast<size_t>(nCount); |
439 | |
|
440 | 0 | aPointX.reserve(nNewCount); |
441 | 0 | aPointY.reserve(nNewCount); |
442 | 0 | if (eBurnValueSrc != GBV_UserBurnValue) |
443 | 0 | aPointVariant.reserve(nNewCount); |
444 | 0 | if (poRing->isClockwise()) |
445 | 0 | { |
446 | 0 | for (int i = 0; i < nCount; i++) |
447 | 0 | { |
448 | 0 | aPointX.push_back(poRing->getX(i)); |
449 | 0 | aPointY.push_back(poRing->getY(i)); |
450 | 0 | if (eBurnValueSrc != GBV_UserBurnValue) |
451 | 0 | { |
452 | | /*switch( eBurnValueSrc ) |
453 | | { |
454 | | case GBV_Z:*/ |
455 | 0 | aPointVariant.push_back(poRing->getZ(i)); |
456 | | /*break; |
457 | | case GBV_M: |
458 | | aPointVariant.push_back( poRing->getM(i) ); |
459 | | }*/ |
460 | 0 | } |
461 | 0 | } |
462 | 0 | } |
463 | 0 | else |
464 | 0 | { |
465 | 0 | for (int i = nCount - 1; i >= 0; i--) |
466 | 0 | { |
467 | 0 | aPointX.push_back(poRing->getX(i)); |
468 | 0 | aPointY.push_back(poRing->getY(i)); |
469 | 0 | if (eBurnValueSrc != GBV_UserBurnValue) |
470 | 0 | { |
471 | | /*switch( eBurnValueSrc ) |
472 | | { |
473 | | case GBV_Z:*/ |
474 | 0 | aPointVariant.push_back(poRing->getZ(i)); |
475 | | /*break; |
476 | | case GBV_M: |
477 | | aPointVariant.push_back( poRing->getM(i) ); |
478 | | }*/ |
479 | 0 | } |
480 | 0 | } |
481 | 0 | } |
482 | 0 | aPartSize.push_back(nCount); |
483 | 0 | } |
484 | 0 | else if (eFlatType == wkbLineString) |
485 | 0 | { |
486 | 0 | const auto poLine = poShape->toLineString(); |
487 | 0 | const int nCount = poLine->getNumPoints(); |
488 | 0 | const size_t nNewCount = aPointX.size() + static_cast<size_t>(nCount); |
489 | |
|
490 | 0 | aPointX.reserve(nNewCount); |
491 | 0 | aPointY.reserve(nNewCount); |
492 | 0 | if (eBurnValueSrc != GBV_UserBurnValue) |
493 | 0 | aPointVariant.reserve(nNewCount); |
494 | 0 | for (int i = nCount - 1; i >= 0; i--) |
495 | 0 | { |
496 | 0 | aPointX.push_back(poLine->getX(i)); |
497 | 0 | aPointY.push_back(poLine->getY(i)); |
498 | 0 | if (eBurnValueSrc != GBV_UserBurnValue) |
499 | 0 | { |
500 | | /*switch( eBurnValueSrc ) |
501 | | { |
502 | | case GBV_Z:*/ |
503 | 0 | aPointVariant.push_back(poLine->getZ(i)); |
504 | | /*break; |
505 | | case GBV_M: |
506 | | aPointVariant.push_back( poLine->getM(i) ); |
507 | | }*/ |
508 | 0 | } |
509 | 0 | } |
510 | 0 | aPartSize.push_back(nCount); |
511 | 0 | } |
512 | 0 | else if (eFlatType == wkbPolygon) |
513 | 0 | { |
514 | 0 | const auto poPolygon = poShape->toPolygon(); |
515 | |
|
516 | 0 | GDALCollectRingsFromGeometry(poPolygon->getExteriorRing(), aPointX, |
517 | 0 | aPointY, aPointVariant, aPartSize, |
518 | 0 | eBurnValueSrc); |
519 | |
|
520 | 0 | for (int i = 0; i < poPolygon->getNumInteriorRings(); i++) |
521 | 0 | GDALCollectRingsFromGeometry(poPolygon->getInteriorRing(i), aPointX, |
522 | 0 | aPointY, aPointVariant, aPartSize, |
523 | 0 | eBurnValueSrc); |
524 | 0 | } |
525 | 0 | else if (eFlatType == wkbMultiPoint || eFlatType == wkbMultiLineString || |
526 | 0 | eFlatType == wkbMultiPolygon || eFlatType == wkbGeometryCollection) |
527 | 0 | { |
528 | 0 | const auto poGC = poShape->toGeometryCollection(); |
529 | 0 | for (int i = 0; i < poGC->getNumGeometries(); i++) |
530 | 0 | GDALCollectRingsFromGeometry(poGC->getGeometryRef(i), aPointX, |
531 | 0 | aPointY, aPointVariant, aPartSize, |
532 | 0 | eBurnValueSrc); |
533 | 0 | } |
534 | 0 | else |
535 | 0 | { |
536 | 0 | CPLDebug("GDAL", "Rasterizer ignoring non-polygonal geometry."); |
537 | 0 | } |
538 | 0 | } |
539 | | |
540 | | /************************************************************************ |
541 | | * gv_rasterize_one_shape() |
542 | | * |
543 | | * @param pabyChunkBuf buffer to which values will be burned |
544 | | * @param nXOff chunk column offset from left edge of raster |
545 | | * @param nYOff chunk scanline offset from top of raster |
546 | | * @param nXSize number of columns in chunk |
547 | | * @param nYSize number of rows in chunk |
548 | | * @param nBands number of bands in chunk |
549 | | * @param eType data type of pabyChunkBuf |
550 | | * @param nPixelSpace number of bytes between adjacent pixels in chunk |
551 | | * (0 to calculate automatically) |
552 | | * @param nLineSpace number of bytes between adjacent scanlines in chunk |
553 | | * (0 to calculate automatically) |
554 | | * @param nBandSpace number of bytes between adjacent bands in chunk |
555 | | * (0 to calculate automatically) |
556 | | * @param bAllTouched burn value to all touched pixels? |
557 | | * @param poShape geometry to rasterize, in original coordinates |
558 | | * @param eBurnValueType type of value to be burned (must be Float64 or Int64) |
559 | | * @param padfBurnValues array of nBands values to burn (Float64), or nullptr |
560 | | * @param panBurnValues array of nBands values to burn (Int64), or nullptr |
561 | | * @param eBurnValueSrc whether to burn values from padfBurnValues / |
562 | | * panBurnValues, or from the Z or M values of poShape |
563 | | * @param eMergeAlg whether the burn value should replace or be added to the |
564 | | * existing values |
565 | | * @param pfnTransformer transformer from CRS of geometry to pixel/line |
566 | | * coordinates of raster |
567 | | * @param pTransformArg arguments to pass to pfnTransformer |
568 | | ************************************************************************/ |
569 | | static void gv_rasterize_one_shape( |
570 | | unsigned char *pabyChunkBuf, int nXOff, int nYOff, int nXSize, int nYSize, |
571 | | int nBands, GDALDataType eType, int nPixelSpace, GSpacing nLineSpace, |
572 | | GSpacing nBandSpace, int bAllTouched, const OGRGeometry *poShape, |
573 | | GDALDataType eBurnValueType, const double *padfBurnValues, |
574 | | const int64_t *panBurnValues, GDALBurnValueSrc eBurnValueSrc, |
575 | | GDALRasterMergeAlg eMergeAlg, GDALTransformerFunc pfnTransformer, |
576 | | void *pTransformArg) |
577 | | |
578 | 0 | { |
579 | 0 | if (poShape == nullptr || poShape->IsEmpty()) |
580 | 0 | return; |
581 | 0 | const auto eGeomType = wkbFlatten(poShape->getGeometryType()); |
582 | |
|
583 | 0 | if ((eGeomType == wkbMultiLineString || eGeomType == wkbMultiPolygon || |
584 | 0 | eGeomType == wkbGeometryCollection) && |
585 | 0 | eMergeAlg == GRMA_Replace) |
586 | 0 | { |
587 | | // Speed optimization: in replace mode, we can rasterize each part of |
588 | | // a geometry collection separately. |
589 | 0 | const auto poGC = poShape->toGeometryCollection(); |
590 | 0 | for (const auto poPart : *poGC) |
591 | 0 | { |
592 | 0 | gv_rasterize_one_shape( |
593 | 0 | pabyChunkBuf, nXOff, nYOff, nXSize, nYSize, nBands, eType, |
594 | 0 | nPixelSpace, nLineSpace, nBandSpace, bAllTouched, poPart, |
595 | 0 | eBurnValueType, padfBurnValues, panBurnValues, eBurnValueSrc, |
596 | 0 | eMergeAlg, pfnTransformer, pTransformArg); |
597 | 0 | } |
598 | 0 | return; |
599 | 0 | } |
600 | | |
601 | 0 | if (nPixelSpace == 0) |
602 | 0 | { |
603 | 0 | nPixelSpace = GDALGetDataTypeSizeBytes(eType); |
604 | 0 | } |
605 | 0 | if (nLineSpace == 0) |
606 | 0 | { |
607 | 0 | nLineSpace = static_cast<GSpacing>(nXSize) * nPixelSpace; |
608 | 0 | } |
609 | 0 | if (nBandSpace == 0) |
610 | 0 | { |
611 | 0 | nBandSpace = nYSize * nLineSpace; |
612 | 0 | } |
613 | |
|
614 | 0 | GDALRasterizeInfo sInfo; |
615 | 0 | sInfo.nXSize = nXSize; |
616 | 0 | sInfo.nYSize = nYSize; |
617 | 0 | sInfo.nBands = nBands; |
618 | 0 | sInfo.pabyChunkBuf = pabyChunkBuf; |
619 | 0 | sInfo.eType = eType; |
620 | 0 | sInfo.nPixelSpace = nPixelSpace; |
621 | 0 | sInfo.nLineSpace = nLineSpace; |
622 | 0 | sInfo.nBandSpace = nBandSpace; |
623 | 0 | sInfo.eBurnValueType = eBurnValueType; |
624 | 0 | if (eBurnValueType == GDT_Float64) |
625 | 0 | sInfo.burnValues.double_values = padfBurnValues; |
626 | 0 | else if (eBurnValueType == GDT_Int64) |
627 | 0 | sInfo.burnValues.int64_values = panBurnValues; |
628 | 0 | else |
629 | 0 | { |
630 | 0 | CPLAssert(false); |
631 | 0 | } |
632 | 0 | sInfo.eBurnValueSource = eBurnValueSrc; |
633 | 0 | sInfo.eMergeAlg = eMergeAlg; |
634 | 0 | sInfo.bFillSetVisitedPoints = false; |
635 | 0 | sInfo.poSetVisitedPoints = nullptr; |
636 | | |
637 | | /* -------------------------------------------------------------------- */ |
638 | | /* Transform polygon geometries into a set of rings and a part */ |
639 | | /* size list. */ |
640 | | /* -------------------------------------------------------------------- */ |
641 | 0 | std::vector<double> |
642 | 0 | aPointX; // coordinate X values from all rings/components |
643 | 0 | std::vector<double> |
644 | 0 | aPointY; // coordinate Y values from all rings/components |
645 | 0 | std::vector<double> aPointVariant; // coordinate Z values |
646 | 0 | std::vector<int> aPartSize; // number of X/Y/(Z) values associated with |
647 | | // each ring/component |
648 | |
|
649 | 0 | GDALCollectRingsFromGeometry(poShape, aPointX, aPointY, aPointVariant, |
650 | 0 | aPartSize, eBurnValueSrc); |
651 | | |
652 | | /* -------------------------------------------------------------------- */ |
653 | | /* Transform points if needed. */ |
654 | | /* -------------------------------------------------------------------- */ |
655 | 0 | if (pfnTransformer != nullptr) |
656 | 0 | { |
657 | 0 | int *panSuccess = |
658 | 0 | static_cast<int *>(CPLCalloc(sizeof(int), aPointX.size())); |
659 | | |
660 | | // TODO: We need to add all appropriate error checking at some point. |
661 | 0 | pfnTransformer(pTransformArg, FALSE, static_cast<int>(aPointX.size()), |
662 | 0 | aPointX.data(), aPointY.data(), nullptr, panSuccess); |
663 | 0 | CPLFree(panSuccess); |
664 | 0 | } |
665 | | |
666 | | /* -------------------------------------------------------------------- */ |
667 | | /* Shift to account for the buffer offset of this buffer. */ |
668 | | /* -------------------------------------------------------------------- */ |
669 | 0 | for (unsigned int i = 0; i < aPointX.size(); i++) |
670 | 0 | aPointX[i] -= nXOff; |
671 | 0 | for (unsigned int i = 0; i < aPointY.size(); i++) |
672 | 0 | aPointY[i] -= nYOff; |
673 | | |
674 | | /* -------------------------------------------------------------------- */ |
675 | | /* Perform the rasterization. */ |
676 | | /* According to the C++ Standard/23.2.4, elements of a vector are */ |
677 | | /* stored in continuous memory block. */ |
678 | | /* -------------------------------------------------------------------- */ |
679 | |
|
680 | 0 | switch (eGeomType) |
681 | 0 | { |
682 | 0 | case wkbPoint: |
683 | 0 | case wkbMultiPoint: |
684 | 0 | GDALdllImagePoint( |
685 | 0 | sInfo.nXSize, nYSize, static_cast<int>(aPartSize.size()), |
686 | 0 | aPartSize.data(), aPointX.data(), aPointY.data(), |
687 | 0 | (eBurnValueSrc == GBV_UserBurnValue) ? nullptr |
688 | 0 | : aPointVariant.data(), |
689 | 0 | gvBurnPoint, &sInfo); |
690 | 0 | break; |
691 | 0 | case wkbLineString: |
692 | 0 | case wkbMultiLineString: |
693 | 0 | { |
694 | 0 | if (eMergeAlg == GRMA_Add) |
695 | 0 | { |
696 | 0 | sInfo.bFillSetVisitedPoints = true; |
697 | 0 | sInfo.poSetVisitedPoints = new std::set<uint64_t>(); |
698 | 0 | } |
699 | 0 | if (bAllTouched) |
700 | 0 | GDALdllImageLineAllTouched( |
701 | 0 | sInfo.nXSize, nYSize, static_cast<int>(aPartSize.size()), |
702 | 0 | aPartSize.data(), aPointX.data(), aPointY.data(), |
703 | 0 | (eBurnValueSrc == GBV_UserBurnValue) ? nullptr |
704 | 0 | : aPointVariant.data(), |
705 | 0 | gvBurnPoint, &sInfo, eMergeAlg == GRMA_Add, false); |
706 | 0 | else |
707 | 0 | GDALdllImageLine( |
708 | 0 | sInfo.nXSize, nYSize, static_cast<int>(aPartSize.size()), |
709 | 0 | aPartSize.data(), aPointX.data(), aPointY.data(), |
710 | 0 | (eBurnValueSrc == GBV_UserBurnValue) ? nullptr |
711 | 0 | : aPointVariant.data(), |
712 | 0 | gvBurnPoint, &sInfo); |
713 | 0 | } |
714 | 0 | break; |
715 | | |
716 | 0 | default: |
717 | 0 | { |
718 | 0 | if (eMergeAlg == GRMA_Add) |
719 | 0 | { |
720 | 0 | sInfo.bFillSetVisitedPoints = true; |
721 | 0 | sInfo.poSetVisitedPoints = new std::set<uint64_t>(); |
722 | 0 | } |
723 | 0 | if (bAllTouched) |
724 | 0 | { |
725 | | // Reverting the variants to the first value because the |
726 | | // polygon is filled using the variant from the first point of |
727 | | // the first segment. Should be removed when the code to full |
728 | | // polygons more appropriately is added. |
729 | 0 | if (eBurnValueSrc == GBV_UserBurnValue) |
730 | 0 | { |
731 | 0 | GDALdllImageLineAllTouched( |
732 | 0 | sInfo.nXSize, nYSize, |
733 | 0 | static_cast<int>(aPartSize.size()), aPartSize.data(), |
734 | 0 | aPointX.data(), aPointY.data(), nullptr, gvBurnPoint, |
735 | 0 | &sInfo, eMergeAlg == GRMA_Add, true); |
736 | 0 | } |
737 | 0 | else |
738 | 0 | { |
739 | 0 | for (unsigned int i = 0, n = 0; |
740 | 0 | i < static_cast<unsigned int>(aPartSize.size()); i++) |
741 | 0 | { |
742 | 0 | for (int j = 0; j < aPartSize[i]; j++) |
743 | 0 | aPointVariant[n++] = aPointVariant[0]; |
744 | 0 | } |
745 | |
|
746 | 0 | GDALdllImageLineAllTouched( |
747 | 0 | sInfo.nXSize, nYSize, |
748 | 0 | static_cast<int>(aPartSize.size()), aPartSize.data(), |
749 | 0 | aPointX.data(), aPointY.data(), aPointVariant.data(), |
750 | 0 | gvBurnPoint, &sInfo, eMergeAlg == GRMA_Add, true); |
751 | 0 | } |
752 | 0 | } |
753 | 0 | sInfo.bFillSetVisitedPoints = false; |
754 | 0 | GDALdllImageFilledPolygon( |
755 | 0 | sInfo.nXSize, nYSize, static_cast<int>(aPartSize.size()), |
756 | 0 | aPartSize.data(), aPointX.data(), aPointY.data(), |
757 | 0 | (eBurnValueSrc == GBV_UserBurnValue) ? nullptr |
758 | 0 | : aPointVariant.data(), |
759 | 0 | gvBurnScanline, &sInfo, eMergeAlg == GRMA_Add); |
760 | 0 | } |
761 | 0 | break; |
762 | 0 | } |
763 | | |
764 | 0 | delete sInfo.poSetVisitedPoints; |
765 | 0 | } |
766 | | |
767 | | /************************************************************************/ |
768 | | /* GDALRasterizeOptions() */ |
769 | | /* */ |
770 | | /* Recognise a few rasterize options used by all three entry */ |
771 | | /* points. */ |
772 | | /************************************************************************/ |
773 | | |
774 | | static CPLErr GDALRasterizeOptions(CSLConstList papszOptions, int *pbAllTouched, |
775 | | GDALBurnValueSrc *peBurnValueSource, |
776 | | GDALRasterMergeAlg *peMergeAlg, |
777 | | GDALRasterizeOptim *peOptim) |
778 | 0 | { |
779 | 0 | *pbAllTouched = CPLFetchBool(papszOptions, "ALL_TOUCHED", false); |
780 | |
|
781 | 0 | const char *pszOpt = CSLFetchNameValue(papszOptions, "BURN_VALUE_FROM"); |
782 | 0 | *peBurnValueSource = GBV_UserBurnValue; |
783 | 0 | if (pszOpt) |
784 | 0 | { |
785 | 0 | if (EQUAL(pszOpt, "Z")) |
786 | 0 | { |
787 | 0 | *peBurnValueSource = GBV_Z; |
788 | 0 | } |
789 | | // else if( EQUAL(pszOpt, "M")) |
790 | | // eBurnValueSource = GBV_M; |
791 | 0 | else |
792 | 0 | { |
793 | 0 | CPLError(CE_Failure, CPLE_AppDefined, |
794 | 0 | "Unrecognized value '%s' for BURN_VALUE_FROM.", pszOpt); |
795 | 0 | return CE_Failure; |
796 | 0 | } |
797 | 0 | } |
798 | | |
799 | | /* -------------------------------------------------------------------- */ |
800 | | /* MERGE_ALG=[REPLACE]/ADD */ |
801 | | /* -------------------------------------------------------------------- */ |
802 | 0 | *peMergeAlg = GRMA_Replace; |
803 | 0 | pszOpt = CSLFetchNameValue(papszOptions, "MERGE_ALG"); |
804 | 0 | if (pszOpt) |
805 | 0 | { |
806 | 0 | if (EQUAL(pszOpt, "ADD")) |
807 | 0 | { |
808 | 0 | *peMergeAlg = GRMA_Add; |
809 | 0 | } |
810 | 0 | else if (EQUAL(pszOpt, "REPLACE")) |
811 | 0 | { |
812 | 0 | *peMergeAlg = GRMA_Replace; |
813 | 0 | } |
814 | 0 | else |
815 | 0 | { |
816 | 0 | CPLError(CE_Failure, CPLE_AppDefined, |
817 | 0 | "Unrecognized value '%s' for MERGE_ALG.", pszOpt); |
818 | 0 | return CE_Failure; |
819 | 0 | } |
820 | 0 | } |
821 | | |
822 | | /* -------------------------------------------------------------------- */ |
823 | | /* OPTIM=[AUTO]/RASTER/VECTOR */ |
824 | | /* -------------------------------------------------------------------- */ |
825 | 0 | pszOpt = CSLFetchNameValue(papszOptions, "OPTIM"); |
826 | 0 | if (pszOpt) |
827 | 0 | { |
828 | 0 | if (peOptim) |
829 | 0 | { |
830 | 0 | *peOptim = GRO_Auto; |
831 | 0 | if (EQUAL(pszOpt, "RASTER")) |
832 | 0 | { |
833 | 0 | *peOptim = GRO_Raster; |
834 | 0 | } |
835 | 0 | else if (EQUAL(pszOpt, "VECTOR")) |
836 | 0 | { |
837 | 0 | *peOptim = GRO_Vector; |
838 | 0 | } |
839 | 0 | else if (EQUAL(pszOpt, "AUTO")) |
840 | 0 | { |
841 | 0 | *peOptim = GRO_Auto; |
842 | 0 | } |
843 | 0 | else |
844 | 0 | { |
845 | 0 | CPLError(CE_Failure, CPLE_AppDefined, |
846 | 0 | "Unrecognized value '%s' for OPTIM.", pszOpt); |
847 | 0 | return CE_Failure; |
848 | 0 | } |
849 | 0 | } |
850 | 0 | else |
851 | 0 | { |
852 | 0 | CPLError(CE_Warning, CPLE_NotSupported, |
853 | 0 | "Option OPTIM is not supported by this function"); |
854 | 0 | } |
855 | 0 | } |
856 | | |
857 | 0 | return CE_None; |
858 | 0 | } |
859 | | |
860 | | /************************************************************************/ |
861 | | /* GDALRasterizeGeometries() */ |
862 | | /************************************************************************/ |
863 | | |
864 | | static CPLErr GDALRasterizeGeometriesInternal( |
865 | | GDALDatasetH hDS, int nBandCount, const int *panBandList, int nGeomCount, |
866 | | const OGRGeometryH *pahGeometries, GDALTransformerFunc pfnTransformer, |
867 | | void *pTransformArg, GDALDataType eBurnValueType, |
868 | | const double *padfGeomBurnValues, const int64_t *panGeomBurnValues, |
869 | | CSLConstList papszOptions, GDALProgressFunc pfnProgress, |
870 | | void *pProgressArg); |
871 | | |
872 | | /** |
873 | | * Burn geometries into raster. |
874 | | * |
875 | | * Rasterize a list of geometric objects into a raster dataset. The |
876 | | * geometries are passed as an array of OGRGeometryH handlers. |
877 | | * |
878 | | * If the geometries are in the georeferenced coordinates of the raster |
879 | | * dataset, then the pfnTransform may be passed in NULL and one will be |
880 | | * derived internally from the geotransform of the dataset. The transform |
881 | | * needs to transform the geometry locations into pixel/line coordinates |
882 | | * on the raster dataset. |
883 | | * |
884 | | * The output raster may be of any GDAL supported datatype. An explicit list |
885 | | * of burn values for each geometry for each band must be passed in. |
886 | | * |
887 | | * The papszOption list of options currently only supports one option. The |
888 | | * "ALL_TOUCHED" option may be enabled by setting it to "TRUE". |
889 | | * |
890 | | * @param hDS output data, must be opened in update mode. |
891 | | * @param nBandCount the number of bands to be updated. |
892 | | * @param panBandList the list of bands to be updated. |
893 | | * @param nGeomCount the number of geometries being passed in pahGeometries. |
894 | | * @param pahGeometries the array of geometries to burn in. |
895 | | * @param pfnTransformer transformation to apply to geometries to put into |
896 | | * pixel/line coordinates on raster. If NULL a geotransform based one will |
897 | | * be created internally. |
898 | | * @param pTransformArg callback data for transformer. |
899 | | * @param padfGeomBurnValues the array of values to burn into the raster. |
900 | | * There should be nBandCount values for each geometry. |
901 | | * @param papszOptions special options controlling rasterization |
902 | | * <ul> |
903 | | * <li>"ALL_TOUCHED": May be set to TRUE to set all pixels touched |
904 | | * by the line or polygons, not just those whose center is within the polygon |
905 | | * (behavior is unspecified when the polygon is just touching the pixel center) |
906 | | * or that are selected by Brezenham's line algorithm. Defaults to FALSE.</li> |
907 | | * <li>"BURN_VALUE_FROM": May be set to "Z" to use the Z values of the |
908 | | * geometries. dfBurnValue is added to this before burning. |
909 | | * Defaults to GDALBurnValueSrc.GBV_UserBurnValue in which case just the |
910 | | * dfBurnValue is burned. This is implemented only for points and lines for |
911 | | * now. The M value may be supported in the future.</li> |
912 | | * <li>"MERGE_ALG": May be REPLACE (the default) or ADD. REPLACE results in |
913 | | * overwriting of value, while ADD adds the new value to the existing raster, |
914 | | * suitable for heatmaps for instance.</li> |
915 | | * <li>"CHUNKYSIZE": The height in lines of the chunk to operate on. |
916 | | * The larger the chunk size the less times we need to make a pass through all |
917 | | * the shapes. If it is not set or set to zero the default chunk size will be |
918 | | * used. Default size will be estimated based on the GDAL cache buffer size |
919 | | * using formula: cache_size_bytes/scanline_size_bytes, so the chunk will |
920 | | * not exceed the cache. Not used in OPTIM=RASTER mode.</li> |
921 | | * <li>"OPTIM": May be set to "AUTO", "RASTER", "VECTOR". Force the algorithm |
922 | | * used (results are identical). The raster mode is used in most cases and |
923 | | * optimise read/write operations. The vector mode is useful with a decent |
924 | | * amount of input features and optimize the CPU use. That mode has to be used |
925 | | * with tiled images to be efficient. The auto mode (the default) will chose |
926 | | * the algorithm based on input and output properties. |
927 | | * </li> |
928 | | * </ul> |
929 | | * @param pfnProgress the progress function to report completion. |
930 | | * @param pProgressArg callback data for progress function. |
931 | | * |
932 | | * @return CE_None on success or CE_Failure on error. |
933 | | * |
934 | | * <strong>Example</strong><br> |
935 | | * GDALRasterizeGeometries rasterize output to MEM Dataset :<br> |
936 | | * @code |
937 | | * int nBufXSize = 1024; |
938 | | * int nBufYSize = 1024; |
939 | | * int nBandCount = 1; |
940 | | * GDALDataType eType = GDT_Byte; |
941 | | * int nDataTypeSize = GDALGetDataTypeSizeBytes(eType); |
942 | | * |
943 | | * void* pData = CPLCalloc( nBufXSize*nBufYSize*nBandCount, nDataTypeSize ); |
944 | | * char memdsetpath[1024]; |
945 | | * sprintf(memdsetpath,"MEM:::DATAPOINTER=0x%p,PIXELS=%d,LINES=%d," |
946 | | * "BANDS=%d,DATATYPE=%s,PIXELOFFSET=%d,LINEOFFSET=%d", |
947 | | * pData,nBufXSize,nBufYSize,nBandCount,GDALGetDataTypeName(eType), |
948 | | * nBandCount*nDataTypeSize, nBufXSize*nBandCount*nDataTypeSize ); |
949 | | * |
950 | | * // Open Memory Dataset |
951 | | * GDALDatasetH hMemDset = GDALOpen(memdsetpath, GA_Update); |
952 | | * // or create it as follows |
953 | | * // GDALDriverH hMemDriver = GDALGetDriverByName("MEM"); |
954 | | * // GDALDatasetH hMemDset = GDALCreate(hMemDriver, "", nBufXSize, |
955 | | * nBufYSize, nBandCount, eType, NULL); |
956 | | * |
957 | | * double adfGeoTransform[6]; |
958 | | * // Assign GeoTransform parameters,Omitted here. |
959 | | * |
960 | | * GDALSetGeoTransform(hMemDset,adfGeoTransform); |
961 | | * GDALSetProjection(hMemDset,pszProjection); // Can not |
962 | | * |
963 | | * // Do something ... |
964 | | * // Need an array of OGRGeometry objects,The assumption here is pahGeoms |
965 | | * |
966 | | * int bandList[3] = { 1, 2, 3}; |
967 | | * std::vector<double> geomBurnValue(nGeomCount*nBandCount,255.0); |
968 | | * CPLErr err = GDALRasterizeGeometries( |
969 | | * hMemDset, nBandCount, bandList, nGeomCount, pahGeoms, pfnTransformer, |
970 | | * pTransformArg, geomBurnValue.data(), papszOptions, |
971 | | * pfnProgress, pProgressArg); |
972 | | * if( err != CE_None ) |
973 | | * { |
974 | | * // Do something ... |
975 | | * } |
976 | | * GDALClose(hMemDset); |
977 | | * CPLFree(pData); |
978 | | *@endcode |
979 | | */ |
980 | | |
981 | | CPLErr GDALRasterizeGeometries( |
982 | | GDALDatasetH hDS, int nBandCount, const int *panBandList, int nGeomCount, |
983 | | const OGRGeometryH *pahGeometries, GDALTransformerFunc pfnTransformer, |
984 | | void *pTransformArg, const double *padfGeomBurnValues, |
985 | | CSLConstList papszOptions, GDALProgressFunc pfnProgress, void *pProgressArg) |
986 | | |
987 | 0 | { |
988 | 0 | VALIDATE_POINTER1(hDS, "GDALRasterizeGeometries", CE_Failure); |
989 | | |
990 | 0 | return GDALRasterizeGeometriesInternal( |
991 | 0 | hDS, nBandCount, panBandList, nGeomCount, pahGeometries, pfnTransformer, |
992 | 0 | pTransformArg, GDT_Float64, padfGeomBurnValues, nullptr, papszOptions, |
993 | 0 | pfnProgress, pProgressArg); |
994 | 0 | } |
995 | | |
996 | | /** |
997 | | * Burn geometries into raster. |
998 | | * |
999 | | * Same as GDALRasterizeGeometries(), except that the burn values array is |
1000 | | * of type Int64. And the datatype of the output raster *must* be GDT_Int64. |
1001 | | * |
1002 | | * @since GDAL 3.5 |
1003 | | */ |
1004 | | CPLErr GDALRasterizeGeometriesInt64( |
1005 | | GDALDatasetH hDS, int nBandCount, const int *panBandList, int nGeomCount, |
1006 | | const OGRGeometryH *pahGeometries, GDALTransformerFunc pfnTransformer, |
1007 | | void *pTransformArg, const int64_t *panGeomBurnValues, |
1008 | | CSLConstList papszOptions, GDALProgressFunc pfnProgress, void *pProgressArg) |
1009 | | |
1010 | 0 | { |
1011 | 0 | VALIDATE_POINTER1(hDS, "GDALRasterizeGeometriesInt64", CE_Failure); |
1012 | | |
1013 | 0 | return GDALRasterizeGeometriesInternal( |
1014 | 0 | hDS, nBandCount, panBandList, nGeomCount, pahGeometries, pfnTransformer, |
1015 | 0 | pTransformArg, GDT_Int64, nullptr, panGeomBurnValues, papszOptions, |
1016 | 0 | pfnProgress, pProgressArg); |
1017 | 0 | } |
1018 | | |
1019 | | static CPLErr GDALRasterizeGeometriesInternal( |
1020 | | GDALDatasetH hDS, int nBandCount, const int *panBandList, int nGeomCount, |
1021 | | const OGRGeometryH *pahGeometries, GDALTransformerFunc pfnTransformer, |
1022 | | void *pTransformArg, GDALDataType eBurnValueType, |
1023 | | const double *padfGeomBurnValues, const int64_t *panGeomBurnValues, |
1024 | | CSLConstList papszOptions, GDALProgressFunc pfnProgress, void *pProgressArg) |
1025 | | |
1026 | 0 | { |
1027 | 0 | if (pfnProgress == nullptr) |
1028 | 0 | pfnProgress = GDALDummyProgress; |
1029 | |
|
1030 | 0 | GDALDataset *poDS = GDALDataset::FromHandle(hDS); |
1031 | | /* -------------------------------------------------------------------- */ |
1032 | | /* Do some rudimentary arg checking. */ |
1033 | | /* -------------------------------------------------------------------- */ |
1034 | 0 | if (nBandCount == 0 || nGeomCount == 0) |
1035 | 0 | { |
1036 | 0 | pfnProgress(1.0, "", pProgressArg); |
1037 | 0 | return CE_None; |
1038 | 0 | } |
1039 | | |
1040 | 0 | if (eBurnValueType == GDT_Int64) |
1041 | 0 | { |
1042 | 0 | for (int i = 0; i < nBandCount; i++) |
1043 | 0 | { |
1044 | 0 | GDALRasterBand *poBand = poDS->GetRasterBand(panBandList[i]); |
1045 | 0 | if (poBand == nullptr) |
1046 | 0 | return CE_Failure; |
1047 | 0 | if (poBand->GetRasterDataType() != GDT_Int64) |
1048 | 0 | { |
1049 | 0 | CPLError(CE_Failure, CPLE_NotSupported, |
1050 | 0 | "GDALRasterizeGeometriesInt64() only supported on " |
1051 | 0 | "Int64 raster"); |
1052 | 0 | return CE_Failure; |
1053 | 0 | } |
1054 | 0 | } |
1055 | 0 | } |
1056 | | |
1057 | | // Prototype band. |
1058 | 0 | GDALRasterBand *poBand = poDS->GetRasterBand(panBandList[0]); |
1059 | 0 | if (poBand == nullptr) |
1060 | 0 | return CE_Failure; |
1061 | | |
1062 | | /* -------------------------------------------------------------------- */ |
1063 | | /* Options */ |
1064 | | /* -------------------------------------------------------------------- */ |
1065 | 0 | int bAllTouched = FALSE; |
1066 | 0 | GDALBurnValueSrc eBurnValueSource = GBV_UserBurnValue; |
1067 | 0 | GDALRasterMergeAlg eMergeAlg = GRMA_Replace; |
1068 | 0 | GDALRasterizeOptim eOptim = GRO_Auto; |
1069 | 0 | if (GDALRasterizeOptions(papszOptions, &bAllTouched, &eBurnValueSource, |
1070 | 0 | &eMergeAlg, &eOptim) == CE_Failure) |
1071 | 0 | { |
1072 | 0 | return CE_Failure; |
1073 | 0 | } |
1074 | | |
1075 | | /* -------------------------------------------------------------------- */ |
1076 | | /* If we have no transformer, assume the geometries are in file */ |
1077 | | /* georeferenced coordinates, and create a transformer to */ |
1078 | | /* convert that to pixel/line coordinates. */ |
1079 | | /* */ |
1080 | | /* We really just need to apply an affine transform, but for */ |
1081 | | /* simplicity we use the more general GenImgProjTransformer. */ |
1082 | | /* -------------------------------------------------------------------- */ |
1083 | 0 | bool bNeedToFreeTransformer = false; |
1084 | |
|
1085 | 0 | if (pfnTransformer == nullptr) |
1086 | 0 | { |
1087 | 0 | bNeedToFreeTransformer = true; |
1088 | |
|
1089 | 0 | char **papszTransformerOptions = nullptr; |
1090 | 0 | double adfGeoTransform[6] = {0.0}; |
1091 | 0 | if (poDS->GetGeoTransform(adfGeoTransform) != CE_None && |
1092 | 0 | poDS->GetGCPCount() == 0 && poDS->GetMetadata("RPC") == nullptr) |
1093 | 0 | { |
1094 | 0 | papszTransformerOptions = CSLSetNameValue( |
1095 | 0 | papszTransformerOptions, "DST_METHOD", "NO_GEOTRANSFORM"); |
1096 | 0 | } |
1097 | |
|
1098 | 0 | pTransformArg = GDALCreateGenImgProjTransformer2( |
1099 | 0 | nullptr, hDS, papszTransformerOptions); |
1100 | 0 | CSLDestroy(papszTransformerOptions); |
1101 | |
|
1102 | 0 | pfnTransformer = GDALGenImgProjTransform; |
1103 | 0 | if (pTransformArg == nullptr) |
1104 | 0 | { |
1105 | 0 | return CE_Failure; |
1106 | 0 | } |
1107 | 0 | } |
1108 | | |
1109 | | /* -------------------------------------------------------------------- */ |
1110 | | /* Choice of optimisation in auto mode. Use vector optim : */ |
1111 | | /* 1) if output is tiled */ |
1112 | | /* 2) if large number of features is present (>10000) */ |
1113 | | /* 3) if the nb of pixels > 50 * nb of features (not-too-small ft) */ |
1114 | | /* -------------------------------------------------------------------- */ |
1115 | 0 | int nXBlockSize, nYBlockSize; |
1116 | 0 | poBand->GetBlockSize(&nXBlockSize, &nYBlockSize); |
1117 | |
|
1118 | 0 | if (eOptim == GRO_Auto) |
1119 | 0 | { |
1120 | 0 | eOptim = GRO_Raster; |
1121 | | // TODO make more tests with various inputs/outputs to adjust the |
1122 | | // parameters |
1123 | 0 | if (nYBlockSize > 1 && nGeomCount > 10000 && |
1124 | 0 | (poBand->GetXSize() * static_cast<long long>(poBand->GetYSize()) / |
1125 | 0 | nGeomCount > |
1126 | 0 | 50)) |
1127 | 0 | { |
1128 | 0 | eOptim = GRO_Vector; |
1129 | 0 | CPLDebug("GDAL", "The vector optim has been chosen automatically"); |
1130 | 0 | } |
1131 | 0 | } |
1132 | | |
1133 | | /* -------------------------------------------------------------------- */ |
1134 | | /* The original algorithm */ |
1135 | | /* Optimized for raster writing */ |
1136 | | /* (optimal on a small number of large vectors) */ |
1137 | | /* -------------------------------------------------------------------- */ |
1138 | 0 | unsigned char *pabyChunkBuf; |
1139 | 0 | CPLErr eErr = CE_None; |
1140 | 0 | if (eOptim == GRO_Raster) |
1141 | 0 | { |
1142 | | /* -------------------------------------------------------------------- |
1143 | | */ |
1144 | | /* Establish a chunksize to operate on. The larger the chunk */ |
1145 | | /* size the less times we need to make a pass through all the */ |
1146 | | /* shapes. */ |
1147 | | /* -------------------------------------------------------------------- |
1148 | | */ |
1149 | 0 | const GDALDataType eType = |
1150 | 0 | GDALGetNonComplexDataType(poBand->GetRasterDataType()); |
1151 | |
|
1152 | 0 | const uint64_t nScanlineBytes = static_cast<uint64_t>(nBandCount) * |
1153 | 0 | poDS->GetRasterXSize() * |
1154 | 0 | GDALGetDataTypeSizeBytes(eType); |
1155 | |
|
1156 | | #if SIZEOF_VOIDP < 8 |
1157 | | // Only on 32-bit systems and in pathological cases |
1158 | | if (nScanlineBytes > std::numeric_limits<size_t>::max()) |
1159 | | { |
1160 | | CPLError(CE_Failure, CPLE_OutOfMemory, "Too big raster"); |
1161 | | if (bNeedToFreeTransformer) |
1162 | | GDALDestroyTransformer(pTransformArg); |
1163 | | return CE_Failure; |
1164 | | } |
1165 | | #endif |
1166 | |
|
1167 | 0 | int nYChunkSize = |
1168 | 0 | atoi(CSLFetchNameValueDef(papszOptions, "CHUNKYSIZE", "0")); |
1169 | 0 | if (nYChunkSize <= 0) |
1170 | 0 | { |
1171 | 0 | const GIntBig nYChunkSize64 = GDALGetCacheMax64() / nScanlineBytes; |
1172 | 0 | const int knIntMax = std::numeric_limits<int>::max(); |
1173 | 0 | nYChunkSize = nYChunkSize64 > knIntMax |
1174 | 0 | ? knIntMax |
1175 | 0 | : static_cast<int>(nYChunkSize64); |
1176 | 0 | } |
1177 | |
|
1178 | 0 | if (nYChunkSize < 1) |
1179 | 0 | nYChunkSize = 1; |
1180 | 0 | if (nYChunkSize > poDS->GetRasterYSize()) |
1181 | 0 | nYChunkSize = poDS->GetRasterYSize(); |
1182 | |
|
1183 | 0 | CPLDebug("GDAL", "Rasterizer operating on %d swaths of %d scanlines.", |
1184 | 0 | DIV_ROUND_UP(poDS->GetRasterYSize(), nYChunkSize), |
1185 | 0 | nYChunkSize); |
1186 | |
|
1187 | 0 | pabyChunkBuf = static_cast<unsigned char *>(VSI_MALLOC2_VERBOSE( |
1188 | 0 | nYChunkSize, static_cast<size_t>(nScanlineBytes))); |
1189 | 0 | if (pabyChunkBuf == nullptr) |
1190 | 0 | { |
1191 | 0 | if (bNeedToFreeTransformer) |
1192 | 0 | GDALDestroyTransformer(pTransformArg); |
1193 | 0 | return CE_Failure; |
1194 | 0 | } |
1195 | | |
1196 | | /* ==================================================================== |
1197 | | */ |
1198 | | /* Loop over image in designated chunks. */ |
1199 | | /* ==================================================================== |
1200 | | */ |
1201 | 0 | pfnProgress(0.0, nullptr, pProgressArg); |
1202 | |
|
1203 | 0 | for (int iY = 0; iY < poDS->GetRasterYSize() && eErr == CE_None; |
1204 | 0 | iY += nYChunkSize) |
1205 | 0 | { |
1206 | 0 | int nThisYChunkSize = nYChunkSize; |
1207 | 0 | if (nThisYChunkSize + iY > poDS->GetRasterYSize()) |
1208 | 0 | nThisYChunkSize = poDS->GetRasterYSize() - iY; |
1209 | |
|
1210 | 0 | eErr = poDS->RasterIO( |
1211 | 0 | GF_Read, 0, iY, poDS->GetRasterXSize(), nThisYChunkSize, |
1212 | 0 | pabyChunkBuf, poDS->GetRasterXSize(), nThisYChunkSize, eType, |
1213 | 0 | nBandCount, panBandList, 0, 0, 0, nullptr); |
1214 | 0 | if (eErr != CE_None) |
1215 | 0 | break; |
1216 | | |
1217 | 0 | for (int iShape = 0; iShape < nGeomCount; iShape++) |
1218 | 0 | { |
1219 | 0 | gv_rasterize_one_shape( |
1220 | 0 | pabyChunkBuf, 0, iY, poDS->GetRasterXSize(), |
1221 | 0 | nThisYChunkSize, nBandCount, eType, 0, 0, 0, bAllTouched, |
1222 | 0 | OGRGeometry::FromHandle(pahGeometries[iShape]), |
1223 | 0 | eBurnValueType, |
1224 | 0 | padfGeomBurnValues |
1225 | 0 | ? padfGeomBurnValues + |
1226 | 0 | static_cast<size_t>(iShape) * nBandCount |
1227 | 0 | : nullptr, |
1228 | 0 | panGeomBurnValues |
1229 | 0 | ? panGeomBurnValues + |
1230 | 0 | static_cast<size_t>(iShape) * nBandCount |
1231 | 0 | : nullptr, |
1232 | 0 | eBurnValueSource, eMergeAlg, pfnTransformer, pTransformArg); |
1233 | 0 | } |
1234 | |
|
1235 | 0 | eErr = poDS->RasterIO( |
1236 | 0 | GF_Write, 0, iY, poDS->GetRasterXSize(), nThisYChunkSize, |
1237 | 0 | pabyChunkBuf, poDS->GetRasterXSize(), nThisYChunkSize, eType, |
1238 | 0 | nBandCount, panBandList, 0, 0, 0, nullptr); |
1239 | |
|
1240 | 0 | if (!pfnProgress((iY + nThisYChunkSize) / |
1241 | 0 | static_cast<double>(poDS->GetRasterYSize()), |
1242 | 0 | "", pProgressArg)) |
1243 | 0 | { |
1244 | 0 | CPLError(CE_Failure, CPLE_UserInterrupt, "User terminated"); |
1245 | 0 | eErr = CE_Failure; |
1246 | 0 | } |
1247 | 0 | } |
1248 | 0 | } |
1249 | | /* -------------------------------------------------------------------- */ |
1250 | | /* The new algorithm */ |
1251 | | /* Optimized to minimize the vector computation */ |
1252 | | /* (optimal on a large number of vectors & tiled raster) */ |
1253 | | /* -------------------------------------------------------------------- */ |
1254 | 0 | else |
1255 | 0 | { |
1256 | | /* -------------------------------------------------------------------- |
1257 | | */ |
1258 | | /* Establish a chunksize to operate on. Its size is defined by */ |
1259 | | /* the block size of the output file. */ |
1260 | | /* -------------------------------------------------------------------- |
1261 | | */ |
1262 | 0 | const int nXBlocks = DIV_ROUND_UP(poBand->GetXSize(), nXBlockSize); |
1263 | 0 | const int nYBlocks = DIV_ROUND_UP(poBand->GetYSize(), nYBlockSize); |
1264 | |
|
1265 | 0 | const GDALDataType eType = |
1266 | 0 | poBand->GetRasterDataType() == GDT_Byte ? GDT_Byte : GDT_Float64; |
1267 | |
|
1268 | 0 | const int nPixelSize = nBandCount * GDALGetDataTypeSizeBytes(eType); |
1269 | | |
1270 | | // rem: optimized for square blocks |
1271 | 0 | const GIntBig nbMaxBlocks64 = |
1272 | 0 | GDALGetCacheMax64() / nPixelSize / nYBlockSize / nXBlockSize; |
1273 | 0 | const int knIntMax = std::numeric_limits<int>::max(); |
1274 | 0 | const int nbMaxBlocks = static_cast<int>( |
1275 | 0 | std::min(static_cast<GIntBig>(knIntMax / nPixelSize / nYBlockSize / |
1276 | 0 | nXBlockSize), |
1277 | 0 | nbMaxBlocks64)); |
1278 | 0 | const int nbBlocksX = std::max( |
1279 | 0 | 1, |
1280 | 0 | std::min(static_cast<int>(sqrt(static_cast<double>(nbMaxBlocks))), |
1281 | 0 | nXBlocks)); |
1282 | 0 | const int nbBlocksY = |
1283 | 0 | std::max(1, std::min(nbMaxBlocks / nbBlocksX, nYBlocks)); |
1284 | |
|
1285 | 0 | const uint64_t nChunkSize = static_cast<uint64_t>(nXBlockSize) * |
1286 | 0 | nbBlocksX * nYBlockSize * nbBlocksY; |
1287 | |
|
1288 | | #if SIZEOF_VOIDP < 8 |
1289 | | // Only on 32-bit systems and in pathological cases |
1290 | | if (nChunkSize > std::numeric_limits<size_t>::max()) |
1291 | | { |
1292 | | CPLError(CE_Failure, CPLE_OutOfMemory, "Too big raster"); |
1293 | | if (bNeedToFreeTransformer) |
1294 | | GDALDestroyTransformer(pTransformArg); |
1295 | | return CE_Failure; |
1296 | | } |
1297 | | #endif |
1298 | |
|
1299 | 0 | pabyChunkBuf = static_cast<unsigned char *>( |
1300 | 0 | VSI_MALLOC2_VERBOSE(nPixelSize, static_cast<size_t>(nChunkSize))); |
1301 | 0 | if (pabyChunkBuf == nullptr) |
1302 | 0 | { |
1303 | 0 | if (bNeedToFreeTransformer) |
1304 | 0 | GDALDestroyTransformer(pTransformArg); |
1305 | 0 | return CE_Failure; |
1306 | 0 | } |
1307 | | |
1308 | 0 | OGREnvelope sRasterEnvelope; |
1309 | 0 | sRasterEnvelope.MinX = 0; |
1310 | 0 | sRasterEnvelope.MinY = 0; |
1311 | 0 | sRasterEnvelope.MaxX = poDS->GetRasterXSize(); |
1312 | 0 | sRasterEnvelope.MaxY = poDS->GetRasterYSize(); |
1313 | | |
1314 | | /* -------------------------------------------------------------------- |
1315 | | */ |
1316 | | /* loop over the vectorial geometries */ |
1317 | | /* -------------------------------------------------------------------- |
1318 | | */ |
1319 | 0 | pfnProgress(0.0, nullptr, pProgressArg); |
1320 | 0 | for (int iShape = 0; iShape < nGeomCount; iShape++) |
1321 | 0 | { |
1322 | |
|
1323 | 0 | const OGRGeometry *poGeometry = |
1324 | 0 | OGRGeometry::FromHandle(pahGeometries[iShape]); |
1325 | 0 | if (poGeometry == nullptr || poGeometry->IsEmpty()) |
1326 | 0 | continue; |
1327 | | /* ------------------------------------------------------------ */ |
1328 | | /* get the envelope of the geometry and transform it to */ |
1329 | | /* pixels coordinates. */ |
1330 | | /* ------------------------------------------------------------ */ |
1331 | 0 | OGREnvelope sGeomEnvelope; |
1332 | 0 | poGeometry->getEnvelope(&sGeomEnvelope); |
1333 | 0 | if (pfnTransformer != nullptr) |
1334 | 0 | { |
1335 | 0 | int anSuccessTransform[2] = {0}; |
1336 | 0 | double apCorners[4]; |
1337 | 0 | apCorners[0] = sGeomEnvelope.MinX; |
1338 | 0 | apCorners[1] = sGeomEnvelope.MaxX; |
1339 | 0 | apCorners[2] = sGeomEnvelope.MinY; |
1340 | 0 | apCorners[3] = sGeomEnvelope.MaxY; |
1341 | |
|
1342 | 0 | if (!pfnTransformer(pTransformArg, FALSE, 2, &(apCorners[0]), |
1343 | 0 | &(apCorners[2]), nullptr, |
1344 | 0 | anSuccessTransform) || |
1345 | 0 | !anSuccessTransform[0] || !anSuccessTransform[1]) |
1346 | 0 | { |
1347 | 0 | continue; |
1348 | 0 | } |
1349 | 0 | sGeomEnvelope.MinX = std::min(apCorners[0], apCorners[1]); |
1350 | 0 | sGeomEnvelope.MaxX = std::max(apCorners[0], apCorners[1]); |
1351 | 0 | sGeomEnvelope.MinY = std::min(apCorners[2], apCorners[3]); |
1352 | 0 | sGeomEnvelope.MaxY = std::max(apCorners[2], apCorners[3]); |
1353 | 0 | } |
1354 | 0 | if (!sGeomEnvelope.Intersects(sRasterEnvelope)) |
1355 | 0 | continue; |
1356 | 0 | sGeomEnvelope.Intersect(sRasterEnvelope); |
1357 | 0 | CPLAssert(sGeomEnvelope.MinX >= 0 && |
1358 | 0 | sGeomEnvelope.MinX <= poDS->GetRasterXSize()); |
1359 | 0 | CPLAssert(sGeomEnvelope.MinY >= 0 && |
1360 | 0 | sGeomEnvelope.MinY <= poDS->GetRasterYSize()); |
1361 | 0 | CPLAssert(sGeomEnvelope.MaxX >= 0 && |
1362 | 0 | sGeomEnvelope.MaxX <= poDS->GetRasterXSize()); |
1363 | 0 | CPLAssert(sGeomEnvelope.MaxY >= 0 && |
1364 | 0 | sGeomEnvelope.MaxY <= poDS->GetRasterYSize()); |
1365 | 0 | const int minBlockX = int(sGeomEnvelope.MinX) / nXBlockSize; |
1366 | 0 | const int minBlockY = int(sGeomEnvelope.MinY) / nYBlockSize; |
1367 | 0 | const int maxBlockX = int(sGeomEnvelope.MaxX + 1) / nXBlockSize; |
1368 | 0 | const int maxBlockY = int(sGeomEnvelope.MaxY + 1) / nYBlockSize; |
1369 | | |
1370 | | /* ------------------------------------------------------------ */ |
1371 | | /* loop over the blocks concerned by the geometry */ |
1372 | | /* (by packs of nbBlocksX x nbBlocksY) */ |
1373 | | /* ------------------------------------------------------------ */ |
1374 | |
|
1375 | 0 | for (int xB = minBlockX; xB <= maxBlockX; xB += nbBlocksX) |
1376 | 0 | { |
1377 | 0 | for (int yB = minBlockY; yB <= maxBlockY; yB += nbBlocksY) |
1378 | 0 | { |
1379 | | |
1380 | | /* -------------------------------------------------------------------- |
1381 | | */ |
1382 | | /* ensure to stay in the image */ |
1383 | | /* -------------------------------------------------------------------- |
1384 | | */ |
1385 | 0 | int remSBX = std::min(maxBlockX - xB + 1, nbBlocksX); |
1386 | 0 | int remSBY = std::min(maxBlockY - yB + 1, nbBlocksY); |
1387 | 0 | int nThisXChunkSize = nXBlockSize * remSBX; |
1388 | 0 | int nThisYChunkSize = nYBlockSize * remSBY; |
1389 | 0 | if (xB * nXBlockSize + nThisXChunkSize > |
1390 | 0 | poDS->GetRasterXSize()) |
1391 | 0 | nThisXChunkSize = |
1392 | 0 | poDS->GetRasterXSize() - xB * nXBlockSize; |
1393 | 0 | if (yB * nYBlockSize + nThisYChunkSize > |
1394 | 0 | poDS->GetRasterYSize()) |
1395 | 0 | nThisYChunkSize = |
1396 | 0 | poDS->GetRasterYSize() - yB * nYBlockSize; |
1397 | | |
1398 | | /* -------------------------------------------------------------------- |
1399 | | */ |
1400 | | /* read image / process buffer / write buffer */ |
1401 | | /* -------------------------------------------------------------------- |
1402 | | */ |
1403 | 0 | eErr = poDS->RasterIO( |
1404 | 0 | GF_Read, xB * nXBlockSize, yB * nYBlockSize, |
1405 | 0 | nThisXChunkSize, nThisYChunkSize, pabyChunkBuf, |
1406 | 0 | nThisXChunkSize, nThisYChunkSize, eType, nBandCount, |
1407 | 0 | panBandList, 0, 0, 0, nullptr); |
1408 | 0 | if (eErr != CE_None) |
1409 | 0 | break; |
1410 | | |
1411 | 0 | gv_rasterize_one_shape( |
1412 | 0 | pabyChunkBuf, xB * nXBlockSize, yB * nYBlockSize, |
1413 | 0 | nThisXChunkSize, nThisYChunkSize, nBandCount, eType, 0, |
1414 | 0 | 0, 0, bAllTouched, |
1415 | 0 | OGRGeometry::FromHandle(pahGeometries[iShape]), |
1416 | 0 | eBurnValueType, |
1417 | 0 | padfGeomBurnValues |
1418 | 0 | ? padfGeomBurnValues + |
1419 | 0 | static_cast<size_t>(iShape) * nBandCount |
1420 | 0 | : nullptr, |
1421 | 0 | panGeomBurnValues |
1422 | 0 | ? panGeomBurnValues + |
1423 | 0 | static_cast<size_t>(iShape) * nBandCount |
1424 | 0 | : nullptr, |
1425 | 0 | eBurnValueSource, eMergeAlg, pfnTransformer, |
1426 | 0 | pTransformArg); |
1427 | |
|
1428 | 0 | eErr = poDS->RasterIO( |
1429 | 0 | GF_Write, xB * nXBlockSize, yB * nYBlockSize, |
1430 | 0 | nThisXChunkSize, nThisYChunkSize, pabyChunkBuf, |
1431 | 0 | nThisXChunkSize, nThisYChunkSize, eType, nBandCount, |
1432 | 0 | panBandList, 0, 0, 0, nullptr); |
1433 | 0 | if (eErr != CE_None) |
1434 | 0 | break; |
1435 | 0 | } |
1436 | 0 | } |
1437 | |
|
1438 | 0 | if (!pfnProgress(iShape / static_cast<double>(nGeomCount), "", |
1439 | 0 | pProgressArg)) |
1440 | 0 | { |
1441 | 0 | CPLError(CE_Failure, CPLE_UserInterrupt, "User terminated"); |
1442 | 0 | eErr = CE_Failure; |
1443 | 0 | } |
1444 | 0 | } |
1445 | | |
1446 | 0 | if (!pfnProgress(1., "", pProgressArg)) |
1447 | 0 | { |
1448 | 0 | CPLError(CE_Failure, CPLE_UserInterrupt, "User terminated"); |
1449 | 0 | eErr = CE_Failure; |
1450 | 0 | } |
1451 | 0 | } |
1452 | | |
1453 | | /* -------------------------------------------------------------------- */ |
1454 | | /* cleanup */ |
1455 | | /* -------------------------------------------------------------------- */ |
1456 | 0 | VSIFree(pabyChunkBuf); |
1457 | |
|
1458 | 0 | if (bNeedToFreeTransformer) |
1459 | 0 | GDALDestroyTransformer(pTransformArg); |
1460 | |
|
1461 | 0 | return eErr; |
1462 | 0 | } |
1463 | | |
1464 | | /************************************************************************/ |
1465 | | /* GDALRasterizeLayers() */ |
1466 | | /************************************************************************/ |
1467 | | |
1468 | | /** |
1469 | | * Burn geometries from the specified list of layers into raster. |
1470 | | * |
1471 | | * Rasterize all the geometric objects from a list of layers into a raster |
1472 | | * dataset. The layers are passed as an array of OGRLayerH handlers. |
1473 | | * |
1474 | | * If the geometries are in the georeferenced coordinates of the raster |
1475 | | * dataset, then the pfnTransform may be passed in NULL and one will be |
1476 | | * derived internally from the geotransform of the dataset. The transform |
1477 | | * needs to transform the geometry locations into pixel/line coordinates |
1478 | | * on the raster dataset. |
1479 | | * |
1480 | | * The output raster may be of any GDAL supported datatype. An explicit list |
1481 | | * of burn values for each layer for each band must be passed in. |
1482 | | * |
1483 | | * @param hDS output data, must be opened in update mode. |
1484 | | * @param nBandCount the number of bands to be updated. |
1485 | | * @param panBandList the list of bands to be updated. |
1486 | | * @param nLayerCount the number of layers being passed in pahLayers array. |
1487 | | * @param pahLayers the array of layers to burn in. |
1488 | | * @param pfnTransformer transformation to apply to geometries to put into |
1489 | | * pixel/line coordinates on raster. If NULL a geotransform based one will |
1490 | | * be created internally. |
1491 | | * @param pTransformArg callback data for transformer. |
1492 | | * @param padfLayerBurnValues the array of values to burn into the raster. |
1493 | | * There should be nBandCount values for each layer. |
1494 | | * @param papszOptions special options controlling rasterization: |
1495 | | * <ul> |
1496 | | * <li>"ATTRIBUTE": Identifies an attribute field on the features to be |
1497 | | * used for a burn in value. The value will be burned into all output |
1498 | | * bands. If specified, padfLayerBurnValues will not be used and can be a NULL |
1499 | | * pointer.</li> |
1500 | | * <li>"CHUNKYSIZE": The height in lines of the chunk to operate on. |
1501 | | * The larger the chunk size the less times we need to make a pass through all |
1502 | | * the shapes. If it is not set or set to zero the default chunk size will be |
1503 | | * used. Default size will be estimated based on the GDAL cache buffer size |
1504 | | * using formula: cache_size_bytes/scanline_size_bytes, so the chunk will |
1505 | | * not exceed the cache.</li> |
1506 | | * <li>"ALL_TOUCHED": May be set to TRUE to set all pixels touched |
1507 | | * by the line or polygons, not just those whose center is within the polygon |
1508 | | * (behavior is unspecified when the polygon is just touching the pixel center) |
1509 | | * or that are selected by Brezenham's line algorithm. Defaults to FALSE. |
1510 | | * <li>"BURN_VALUE_FROM": May be set to "Z" to use the Z values of the</li> |
1511 | | * geometries. The value from padfLayerBurnValues or the attribute field value |
1512 | | * is added to this before burning. In default case dfBurnValue is burned as it |
1513 | | * is. This is implemented properly only for points and lines for now. Polygons |
1514 | | * will be burned using the Z value from the first point. The M value may be |
1515 | | * supported in the future.</li> |
1516 | | * <li>"MERGE_ALG": May be REPLACE (the default) or ADD. REPLACE results in |
1517 | | * overwriting of value, while ADD adds the new value to the existing raster, |
1518 | | * suitable for heatmaps for instance.</li> |
1519 | | * </ul> |
1520 | | * @param pfnProgress the progress function to report completion. |
1521 | | * @param pProgressArg callback data for progress function. |
1522 | | * |
1523 | | * @return CE_None on success or CE_Failure on error. |
1524 | | */ |
1525 | | |
1526 | | CPLErr GDALRasterizeLayers(GDALDatasetH hDS, int nBandCount, int *panBandList, |
1527 | | int nLayerCount, OGRLayerH *pahLayers, |
1528 | | GDALTransformerFunc pfnTransformer, |
1529 | | void *pTransformArg, double *padfLayerBurnValues, |
1530 | | char **papszOptions, GDALProgressFunc pfnProgress, |
1531 | | void *pProgressArg) |
1532 | | |
1533 | 0 | { |
1534 | 0 | VALIDATE_POINTER1(hDS, "GDALRasterizeLayers", CE_Failure); |
1535 | | |
1536 | 0 | if (pfnProgress == nullptr) |
1537 | 0 | pfnProgress = GDALDummyProgress; |
1538 | | |
1539 | | /* -------------------------------------------------------------------- */ |
1540 | | /* Do some rudimentary arg checking. */ |
1541 | | /* -------------------------------------------------------------------- */ |
1542 | 0 | if (nBandCount == 0 || nLayerCount == 0) |
1543 | 0 | return CE_None; |
1544 | | |
1545 | 0 | GDALDataset *poDS = GDALDataset::FromHandle(hDS); |
1546 | | |
1547 | | // Prototype band. |
1548 | 0 | GDALRasterBand *poBand = poDS->GetRasterBand(panBandList[0]); |
1549 | 0 | if (poBand == nullptr) |
1550 | 0 | return CE_Failure; |
1551 | | |
1552 | | /* -------------------------------------------------------------------- */ |
1553 | | /* Options */ |
1554 | | /* -------------------------------------------------------------------- */ |
1555 | 0 | int bAllTouched = FALSE; |
1556 | 0 | GDALBurnValueSrc eBurnValueSource = GBV_UserBurnValue; |
1557 | 0 | GDALRasterMergeAlg eMergeAlg = GRMA_Replace; |
1558 | 0 | if (GDALRasterizeOptions(papszOptions, &bAllTouched, &eBurnValueSource, |
1559 | 0 | &eMergeAlg, nullptr) == CE_Failure) |
1560 | 0 | { |
1561 | 0 | return CE_Failure; |
1562 | 0 | } |
1563 | | |
1564 | | /* -------------------------------------------------------------------- */ |
1565 | | /* Establish a chunksize to operate on. The larger the chunk */ |
1566 | | /* size the less times we need to make a pass through all the */ |
1567 | | /* shapes. */ |
1568 | | /* -------------------------------------------------------------------- */ |
1569 | 0 | const char *pszYChunkSize = CSLFetchNameValue(papszOptions, "CHUNKYSIZE"); |
1570 | |
|
1571 | 0 | const GDALDataType eType = poBand->GetRasterDataType(); |
1572 | |
|
1573 | 0 | const int nScanlineBytes = |
1574 | 0 | nBandCount * poDS->GetRasterXSize() * GDALGetDataTypeSizeBytes(eType); |
1575 | |
|
1576 | 0 | int nYChunkSize = 0; |
1577 | 0 | if (!(pszYChunkSize && ((nYChunkSize = atoi(pszYChunkSize))) != 0)) |
1578 | 0 | { |
1579 | 0 | const GIntBig nYChunkSize64 = GDALGetCacheMax64() / nScanlineBytes; |
1580 | 0 | nYChunkSize = static_cast<int>( |
1581 | 0 | std::min<GIntBig>(nYChunkSize64, std::numeric_limits<int>::max())); |
1582 | 0 | } |
1583 | |
|
1584 | 0 | if (nYChunkSize < 1) |
1585 | 0 | nYChunkSize = 1; |
1586 | 0 | if (nYChunkSize > poDS->GetRasterYSize()) |
1587 | 0 | nYChunkSize = poDS->GetRasterYSize(); |
1588 | |
|
1589 | 0 | CPLDebug("GDAL", "Rasterizer operating on %d swaths of %d scanlines.", |
1590 | 0 | DIV_ROUND_UP(poDS->GetRasterYSize(), nYChunkSize), nYChunkSize); |
1591 | 0 | unsigned char *pabyChunkBuf = static_cast<unsigned char *>( |
1592 | 0 | VSI_MALLOC2_VERBOSE(nYChunkSize, nScanlineBytes)); |
1593 | 0 | if (pabyChunkBuf == nullptr) |
1594 | 0 | { |
1595 | 0 | return CE_Failure; |
1596 | 0 | } |
1597 | | |
1598 | | /* -------------------------------------------------------------------- */ |
1599 | | /* Read the image once for all layers if user requested to render */ |
1600 | | /* the whole raster in single chunk. */ |
1601 | | /* -------------------------------------------------------------------- */ |
1602 | 0 | if (nYChunkSize == poDS->GetRasterYSize()) |
1603 | 0 | { |
1604 | 0 | if (poDS->RasterIO(GF_Read, 0, 0, poDS->GetRasterXSize(), nYChunkSize, |
1605 | 0 | pabyChunkBuf, poDS->GetRasterXSize(), nYChunkSize, |
1606 | 0 | eType, nBandCount, panBandList, 0, 0, 0, |
1607 | 0 | nullptr) != CE_None) |
1608 | 0 | { |
1609 | 0 | CPLFree(pabyChunkBuf); |
1610 | 0 | return CE_Failure; |
1611 | 0 | } |
1612 | 0 | } |
1613 | | |
1614 | | /* ==================================================================== */ |
1615 | | /* Read the specified layers transforming and rasterizing */ |
1616 | | /* geometries. */ |
1617 | | /* ==================================================================== */ |
1618 | 0 | CPLErr eErr = CE_None; |
1619 | 0 | const char *pszBurnAttribute = CSLFetchNameValue(papszOptions, "ATTRIBUTE"); |
1620 | |
|
1621 | 0 | pfnProgress(0.0, nullptr, pProgressArg); |
1622 | |
|
1623 | 0 | for (int iLayer = 0; iLayer < nLayerCount; iLayer++) |
1624 | 0 | { |
1625 | 0 | OGRLayer *poLayer = reinterpret_cast<OGRLayer *>(pahLayers[iLayer]); |
1626 | |
|
1627 | 0 | if (!poLayer) |
1628 | 0 | { |
1629 | 0 | CPLError(CE_Warning, CPLE_AppDefined, |
1630 | 0 | "Layer element number %d is NULL, skipping.", iLayer); |
1631 | 0 | continue; |
1632 | 0 | } |
1633 | | |
1634 | | /* -------------------------------------------------------------------- |
1635 | | */ |
1636 | | /* If the layer does not contain any features just skip it. */ |
1637 | | /* Do not force the feature count, so if driver doesn't know */ |
1638 | | /* exact number of features, go down the normal way. */ |
1639 | | /* -------------------------------------------------------------------- |
1640 | | */ |
1641 | 0 | if (poLayer->GetFeatureCount(FALSE) == 0) |
1642 | 0 | continue; |
1643 | | |
1644 | 0 | int iBurnField = -1; |
1645 | 0 | double *padfBurnValues = nullptr; |
1646 | |
|
1647 | 0 | if (pszBurnAttribute) |
1648 | 0 | { |
1649 | 0 | iBurnField = |
1650 | 0 | poLayer->GetLayerDefn()->GetFieldIndex(pszBurnAttribute); |
1651 | 0 | if (iBurnField == -1) |
1652 | 0 | { |
1653 | 0 | CPLError(CE_Warning, CPLE_AppDefined, |
1654 | 0 | "Failed to find field %s on layer %s, skipping.", |
1655 | 0 | pszBurnAttribute, poLayer->GetLayerDefn()->GetName()); |
1656 | 0 | continue; |
1657 | 0 | } |
1658 | 0 | } |
1659 | 0 | else |
1660 | 0 | { |
1661 | 0 | padfBurnValues = padfLayerBurnValues + iLayer * nBandCount; |
1662 | 0 | } |
1663 | | |
1664 | | /* -------------------------------------------------------------------- |
1665 | | */ |
1666 | | /* If we have no transformer, create the one from input file */ |
1667 | | /* projection. Note that each layer can be georefernced */ |
1668 | | /* separately. */ |
1669 | | /* -------------------------------------------------------------------- |
1670 | | */ |
1671 | 0 | bool bNeedToFreeTransformer = false; |
1672 | |
|
1673 | 0 | if (pfnTransformer == nullptr) |
1674 | 0 | { |
1675 | 0 | char *pszProjection = nullptr; |
1676 | 0 | bNeedToFreeTransformer = true; |
1677 | |
|
1678 | 0 | OGRSpatialReference *poSRS = poLayer->GetSpatialRef(); |
1679 | 0 | if (!poSRS) |
1680 | 0 | { |
1681 | 0 | if (poDS->GetSpatialRef() != nullptr || |
1682 | 0 | poDS->GetGCPSpatialRef() != nullptr || |
1683 | 0 | poDS->GetMetadata("RPC") != nullptr) |
1684 | 0 | { |
1685 | 0 | CPLError( |
1686 | 0 | CE_Warning, CPLE_AppDefined, |
1687 | 0 | "Failed to fetch spatial reference on layer %s " |
1688 | 0 | "to build transformer, assuming matching coordinate " |
1689 | 0 | "systems.", |
1690 | 0 | poLayer->GetLayerDefn()->GetName()); |
1691 | 0 | } |
1692 | 0 | } |
1693 | 0 | else |
1694 | 0 | { |
1695 | 0 | poSRS->exportToWkt(&pszProjection); |
1696 | 0 | } |
1697 | |
|
1698 | 0 | char **papszTransformerOptions = nullptr; |
1699 | 0 | if (pszProjection != nullptr) |
1700 | 0 | papszTransformerOptions = CSLSetNameValue( |
1701 | 0 | papszTransformerOptions, "SRC_SRS", pszProjection); |
1702 | 0 | double adfGeoTransform[6] = {}; |
1703 | 0 | if (poDS->GetGeoTransform(adfGeoTransform) != CE_None && |
1704 | 0 | poDS->GetGCPCount() == 0 && poDS->GetMetadata("RPC") == nullptr) |
1705 | 0 | { |
1706 | 0 | papszTransformerOptions = CSLSetNameValue( |
1707 | 0 | papszTransformerOptions, "DST_METHOD", "NO_GEOTRANSFORM"); |
1708 | 0 | } |
1709 | |
|
1710 | 0 | pTransformArg = GDALCreateGenImgProjTransformer2( |
1711 | 0 | nullptr, hDS, papszTransformerOptions); |
1712 | 0 | pfnTransformer = GDALGenImgProjTransform; |
1713 | |
|
1714 | 0 | CPLFree(pszProjection); |
1715 | 0 | CSLDestroy(papszTransformerOptions); |
1716 | 0 | if (pTransformArg == nullptr) |
1717 | 0 | { |
1718 | 0 | CPLFree(pabyChunkBuf); |
1719 | 0 | return CE_Failure; |
1720 | 0 | } |
1721 | 0 | } |
1722 | | |
1723 | 0 | poLayer->ResetReading(); |
1724 | | |
1725 | | /* -------------------------------------------------------------------- |
1726 | | */ |
1727 | | /* Loop over image in designated chunks. */ |
1728 | | /* -------------------------------------------------------------------- |
1729 | | */ |
1730 | |
|
1731 | 0 | double *padfAttrValues = static_cast<double *>( |
1732 | 0 | VSI_MALLOC_VERBOSE(sizeof(double) * nBandCount)); |
1733 | 0 | if (padfAttrValues == nullptr) |
1734 | 0 | eErr = CE_Failure; |
1735 | |
|
1736 | 0 | for (int iY = 0; iY < poDS->GetRasterYSize() && eErr == CE_None; |
1737 | 0 | iY += nYChunkSize) |
1738 | 0 | { |
1739 | 0 | int nThisYChunkSize = nYChunkSize; |
1740 | 0 | if (nThisYChunkSize + iY > poDS->GetRasterYSize()) |
1741 | 0 | nThisYChunkSize = poDS->GetRasterYSize() - iY; |
1742 | | |
1743 | | // Only re-read image if not a single chunk is being rendered. |
1744 | 0 | if (nYChunkSize < poDS->GetRasterYSize()) |
1745 | 0 | { |
1746 | 0 | eErr = poDS->RasterIO( |
1747 | 0 | GF_Read, 0, iY, poDS->GetRasterXSize(), nThisYChunkSize, |
1748 | 0 | pabyChunkBuf, poDS->GetRasterXSize(), nThisYChunkSize, |
1749 | 0 | eType, nBandCount, panBandList, 0, 0, 0, nullptr); |
1750 | 0 | if (eErr != CE_None) |
1751 | 0 | break; |
1752 | 0 | } |
1753 | | |
1754 | 0 | for (auto &poFeat : poLayer) |
1755 | 0 | { |
1756 | 0 | OGRGeometry *poGeom = poFeat->GetGeometryRef(); |
1757 | |
|
1758 | 0 | if (pszBurnAttribute) |
1759 | 0 | { |
1760 | 0 | const double dfAttrValue = |
1761 | 0 | poFeat->GetFieldAsDouble(iBurnField); |
1762 | 0 | for (int iBand = 0; iBand < nBandCount; iBand++) |
1763 | 0 | padfAttrValues[iBand] = dfAttrValue; |
1764 | |
|
1765 | 0 | padfBurnValues = padfAttrValues; |
1766 | 0 | } |
1767 | |
|
1768 | 0 | gv_rasterize_one_shape( |
1769 | 0 | pabyChunkBuf, 0, iY, poDS->GetRasterXSize(), |
1770 | 0 | nThisYChunkSize, nBandCount, eType, 0, 0, 0, bAllTouched, |
1771 | 0 | poGeom, GDT_Float64, padfBurnValues, nullptr, |
1772 | 0 | eBurnValueSource, eMergeAlg, pfnTransformer, pTransformArg); |
1773 | 0 | } |
1774 | | |
1775 | | // Only write image if not a single chunk is being rendered. |
1776 | 0 | if (nYChunkSize < poDS->GetRasterYSize()) |
1777 | 0 | { |
1778 | 0 | eErr = poDS->RasterIO( |
1779 | 0 | GF_Write, 0, iY, poDS->GetRasterXSize(), nThisYChunkSize, |
1780 | 0 | pabyChunkBuf, poDS->GetRasterXSize(), nThisYChunkSize, |
1781 | 0 | eType, nBandCount, panBandList, 0, 0, 0, nullptr); |
1782 | 0 | } |
1783 | |
|
1784 | 0 | poLayer->ResetReading(); |
1785 | |
|
1786 | 0 | if (!pfnProgress((iY + nThisYChunkSize) / |
1787 | 0 | static_cast<double>(poDS->GetRasterYSize()), |
1788 | 0 | "", pProgressArg)) |
1789 | 0 | { |
1790 | 0 | CPLError(CE_Failure, CPLE_UserInterrupt, "User terminated"); |
1791 | 0 | eErr = CE_Failure; |
1792 | 0 | } |
1793 | 0 | } |
1794 | |
|
1795 | 0 | VSIFree(padfAttrValues); |
1796 | |
|
1797 | 0 | if (bNeedToFreeTransformer) |
1798 | 0 | { |
1799 | 0 | GDALDestroyTransformer(pTransformArg); |
1800 | 0 | pTransformArg = nullptr; |
1801 | 0 | pfnTransformer = nullptr; |
1802 | 0 | } |
1803 | 0 | } |
1804 | | |
1805 | | /* -------------------------------------------------------------------- */ |
1806 | | /* Write out the image once for all layers if user requested */ |
1807 | | /* to render the whole raster in single chunk. */ |
1808 | | /* -------------------------------------------------------------------- */ |
1809 | 0 | if (eErr == CE_None && nYChunkSize == poDS->GetRasterYSize()) |
1810 | 0 | { |
1811 | 0 | eErr = |
1812 | 0 | poDS->RasterIO(GF_Write, 0, 0, poDS->GetRasterXSize(), nYChunkSize, |
1813 | 0 | pabyChunkBuf, poDS->GetRasterXSize(), nYChunkSize, |
1814 | 0 | eType, nBandCount, panBandList, 0, 0, 0, nullptr); |
1815 | 0 | } |
1816 | | |
1817 | | /* -------------------------------------------------------------------- */ |
1818 | | /* cleanup */ |
1819 | | /* -------------------------------------------------------------------- */ |
1820 | 0 | VSIFree(pabyChunkBuf); |
1821 | |
|
1822 | 0 | return eErr; |
1823 | 0 | } |
1824 | | |
1825 | | /************************************************************************/ |
1826 | | /* GDALRasterizeLayersBuf() */ |
1827 | | /************************************************************************/ |
1828 | | |
1829 | | /** |
1830 | | * Burn geometries from the specified list of layer into raster. |
1831 | | * |
1832 | | * Rasterize all the geometric objects from a list of layers into supplied |
1833 | | * raster buffer. The layers are passed as an array of OGRLayerH handlers. |
1834 | | * |
1835 | | * If the geometries are in the georeferenced coordinates of the raster |
1836 | | * dataset, then the pfnTransform may be passed in NULL and one will be |
1837 | | * derived internally from the geotransform of the dataset. The transform |
1838 | | * needs to transform the geometry locations into pixel/line coordinates |
1839 | | * of the target raster. |
1840 | | * |
1841 | | * The output raster may be of any GDAL supported datatype(non complex). |
1842 | | * |
1843 | | * @param pData pointer to the output data array. |
1844 | | * |
1845 | | * @param nBufXSize width of the output data array in pixels. |
1846 | | * |
1847 | | * @param nBufYSize height of the output data array in pixels. |
1848 | | * |
1849 | | * @param eBufType data type of the output data array. |
1850 | | * |
1851 | | * @param nPixelSpace The byte offset from the start of one pixel value in |
1852 | | * pData to the start of the next pixel value within a scanline. If defaulted |
1853 | | * (0) the size of the datatype eBufType is used. |
1854 | | * |
1855 | | * @param nLineSpace The byte offset from the start of one scanline in |
1856 | | * pData to the start of the next. If defaulted the size of the datatype |
1857 | | * eBufType * nBufXSize is used. |
1858 | | * |
1859 | | * @param nLayerCount the number of layers being passed in pahLayers array. |
1860 | | * |
1861 | | * @param pahLayers the array of layers to burn in. |
1862 | | * |
1863 | | * @param pszDstProjection WKT defining the coordinate system of the target |
1864 | | * raster. |
1865 | | * |
1866 | | * @param padfDstGeoTransform geotransformation matrix of the target raster. |
1867 | | * |
1868 | | * @param pfnTransformer transformation to apply to geometries to put into |
1869 | | * pixel/line coordinates on raster. If NULL a geotransform based one will |
1870 | | * be created internally. |
1871 | | * |
1872 | | * @param pTransformArg callback data for transformer. |
1873 | | * |
1874 | | * @param dfBurnValue the value to burn into the raster. |
1875 | | * |
1876 | | * @param papszOptions special options controlling rasterization: |
1877 | | * <ul> |
1878 | | * <li>"ATTRIBUTE": Identifies an attribute field on the features to be |
1879 | | * used for a burn in value. The value will be burned into all output |
1880 | | * bands. If specified, padfLayerBurnValues will not be used and can be a NULL |
1881 | | * pointer.</li> |
1882 | | * <li>"ALL_TOUCHED": May be set to TRUE to set all pixels touched |
1883 | | * by the line or polygons, not just those whose center is within the polygon |
1884 | | * (behavior is unspecified when the polygon is just touching the pixel center) |
1885 | | * or that are selected by Brezenham's line algorithm. Defaults to FALSE.</li> |
1886 | | * <li>"BURN_VALUE_FROM": May be set to "Z" to use |
1887 | | * the Z values of the geometries. dfBurnValue or the attribute field value is |
1888 | | * added to this before burning. In default case dfBurnValue is burned as it |
1889 | | * is. This is implemented properly only for points and lines for now. Polygons |
1890 | | * will be burned using the Z value from the first point. The M value may |
1891 | | * be supported in the future.</li> |
1892 | | * <li>"MERGE_ALG": May be REPLACE (the default) or ADD. REPLACE |
1893 | | * results in overwriting of value, while ADD adds the new value to the |
1894 | | * existing raster, suitable for heatmaps for instance.</li> |
1895 | | * </ul> |
1896 | | * |
1897 | | * @param pfnProgress the progress function to report completion. |
1898 | | * |
1899 | | * @param pProgressArg callback data for progress function. |
1900 | | * |
1901 | | * |
1902 | | * @return CE_None on success or CE_Failure on error. |
1903 | | */ |
1904 | | |
1905 | | CPLErr GDALRasterizeLayersBuf( |
1906 | | void *pData, int nBufXSize, int nBufYSize, GDALDataType eBufType, |
1907 | | int nPixelSpace, int nLineSpace, int nLayerCount, OGRLayerH *pahLayers, |
1908 | | const char *pszDstProjection, double *padfDstGeoTransform, |
1909 | | GDALTransformerFunc pfnTransformer, void *pTransformArg, double dfBurnValue, |
1910 | | char **papszOptions, GDALProgressFunc pfnProgress, void *pProgressArg) |
1911 | | |
1912 | 0 | { |
1913 | | /* -------------------------------------------------------------------- */ |
1914 | | /* check eType, Avoid not supporting data types */ |
1915 | | /* -------------------------------------------------------------------- */ |
1916 | 0 | if (GDALDataTypeIsComplex(eBufType) || eBufType <= GDT_Unknown || |
1917 | 0 | eBufType >= GDT_TypeCount) |
1918 | 0 | { |
1919 | 0 | CPLError(CE_Failure, CPLE_NotSupported, |
1920 | 0 | "GDALRasterizeLayersBuf(): unsupported data type of eBufType"); |
1921 | 0 | return CE_Failure; |
1922 | 0 | } |
1923 | | |
1924 | | /* -------------------------------------------------------------------- */ |
1925 | | /* If pixel and line spaceing are defaulted assign reasonable */ |
1926 | | /* value assuming a packed buffer. */ |
1927 | | /* -------------------------------------------------------------------- */ |
1928 | 0 | int nTypeSizeBytes = GDALGetDataTypeSizeBytes(eBufType); |
1929 | 0 | if (nPixelSpace == 0) |
1930 | 0 | { |
1931 | 0 | nPixelSpace = nTypeSizeBytes; |
1932 | 0 | } |
1933 | 0 | if (nPixelSpace < nTypeSizeBytes) |
1934 | 0 | { |
1935 | 0 | CPLError(CE_Failure, CPLE_NotSupported, |
1936 | 0 | "GDALRasterizeLayersBuf(): unsupported value of nPixelSpace"); |
1937 | 0 | return CE_Failure; |
1938 | 0 | } |
1939 | | |
1940 | 0 | if (nLineSpace == 0) |
1941 | 0 | { |
1942 | 0 | nLineSpace = nPixelSpace * nBufXSize; |
1943 | 0 | } |
1944 | 0 | if (nLineSpace < nPixelSpace * nBufXSize) |
1945 | 0 | { |
1946 | 0 | CPLError(CE_Failure, CPLE_NotSupported, |
1947 | 0 | "GDALRasterizeLayersBuf(): unsupported value of nLineSpace"); |
1948 | 0 | return CE_Failure; |
1949 | 0 | } |
1950 | | |
1951 | 0 | if (pfnProgress == nullptr) |
1952 | 0 | pfnProgress = GDALDummyProgress; |
1953 | | |
1954 | | /* -------------------------------------------------------------------- */ |
1955 | | /* Do some rudimentary arg checking. */ |
1956 | | /* -------------------------------------------------------------------- */ |
1957 | 0 | if (nLayerCount == 0) |
1958 | 0 | return CE_None; |
1959 | | |
1960 | | /* -------------------------------------------------------------------- */ |
1961 | | /* Options */ |
1962 | | /* -------------------------------------------------------------------- */ |
1963 | 0 | int bAllTouched = FALSE; |
1964 | 0 | GDALBurnValueSrc eBurnValueSource = GBV_UserBurnValue; |
1965 | 0 | GDALRasterMergeAlg eMergeAlg = GRMA_Replace; |
1966 | 0 | if (GDALRasterizeOptions(papszOptions, &bAllTouched, &eBurnValueSource, |
1967 | 0 | &eMergeAlg, nullptr) == CE_Failure) |
1968 | 0 | { |
1969 | 0 | return CE_Failure; |
1970 | 0 | } |
1971 | | |
1972 | | /* ==================================================================== */ |
1973 | | /* Read the specified layers transforming and rasterizing */ |
1974 | | /* geometries. */ |
1975 | | /* ==================================================================== */ |
1976 | 0 | CPLErr eErr = CE_None; |
1977 | 0 | const char *pszBurnAttribute = CSLFetchNameValue(papszOptions, "ATTRIBUTE"); |
1978 | |
|
1979 | 0 | pfnProgress(0.0, nullptr, pProgressArg); |
1980 | |
|
1981 | 0 | for (int iLayer = 0; iLayer < nLayerCount; iLayer++) |
1982 | 0 | { |
1983 | 0 | OGRLayer *poLayer = reinterpret_cast<OGRLayer *>(pahLayers[iLayer]); |
1984 | |
|
1985 | 0 | if (!poLayer) |
1986 | 0 | { |
1987 | 0 | CPLError(CE_Warning, CPLE_AppDefined, |
1988 | 0 | "Layer element number %d is NULL, skipping.", iLayer); |
1989 | 0 | continue; |
1990 | 0 | } |
1991 | | |
1992 | | /* -------------------------------------------------------------------- |
1993 | | */ |
1994 | | /* If the layer does not contain any features just skip it. */ |
1995 | | /* Do not force the feature count, so if driver doesn't know */ |
1996 | | /* exact number of features, go down the normal way. */ |
1997 | | /* -------------------------------------------------------------------- |
1998 | | */ |
1999 | 0 | if (poLayer->GetFeatureCount(FALSE) == 0) |
2000 | 0 | continue; |
2001 | | |
2002 | 0 | int iBurnField = -1; |
2003 | 0 | if (pszBurnAttribute) |
2004 | 0 | { |
2005 | 0 | iBurnField = |
2006 | 0 | poLayer->GetLayerDefn()->GetFieldIndex(pszBurnAttribute); |
2007 | 0 | if (iBurnField == -1) |
2008 | 0 | { |
2009 | 0 | CPLError(CE_Warning, CPLE_AppDefined, |
2010 | 0 | "Failed to find field %s on layer %s, skipping.", |
2011 | 0 | pszBurnAttribute, poLayer->GetLayerDefn()->GetName()); |
2012 | 0 | continue; |
2013 | 0 | } |
2014 | 0 | } |
2015 | | |
2016 | | /* -------------------------------------------------------------------- |
2017 | | */ |
2018 | | /* If we have no transformer, create the one from input file */ |
2019 | | /* projection. Note that each layer can be georefernced */ |
2020 | | /* separately. */ |
2021 | | /* -------------------------------------------------------------------- |
2022 | | */ |
2023 | 0 | bool bNeedToFreeTransformer = false; |
2024 | |
|
2025 | 0 | if (pfnTransformer == nullptr) |
2026 | 0 | { |
2027 | 0 | char *pszProjection = nullptr; |
2028 | 0 | bNeedToFreeTransformer = true; |
2029 | |
|
2030 | 0 | OGRSpatialReference *poSRS = poLayer->GetSpatialRef(); |
2031 | 0 | if (!poSRS) |
2032 | 0 | { |
2033 | 0 | CPLError(CE_Warning, CPLE_AppDefined, |
2034 | 0 | "Failed to fetch spatial reference on layer %s " |
2035 | 0 | "to build transformer, assuming matching coordinate " |
2036 | 0 | "systems.", |
2037 | 0 | poLayer->GetLayerDefn()->GetName()); |
2038 | 0 | } |
2039 | 0 | else |
2040 | 0 | { |
2041 | 0 | poSRS->exportToWkt(&pszProjection); |
2042 | 0 | } |
2043 | |
|
2044 | 0 | pTransformArg = GDALCreateGenImgProjTransformer3( |
2045 | 0 | pszProjection, nullptr, pszDstProjection, padfDstGeoTransform); |
2046 | 0 | pfnTransformer = GDALGenImgProjTransform; |
2047 | |
|
2048 | 0 | CPLFree(pszProjection); |
2049 | 0 | } |
2050 | |
|
2051 | 0 | for (auto &poFeat : poLayer) |
2052 | 0 | { |
2053 | 0 | OGRGeometry *poGeom = poFeat->GetGeometryRef(); |
2054 | |
|
2055 | 0 | if (pszBurnAttribute) |
2056 | 0 | dfBurnValue = poFeat->GetFieldAsDouble(iBurnField); |
2057 | |
|
2058 | 0 | gv_rasterize_one_shape( |
2059 | 0 | static_cast<unsigned char *>(pData), 0, 0, nBufXSize, nBufYSize, |
2060 | 0 | 1, eBufType, nPixelSpace, nLineSpace, 0, bAllTouched, poGeom, |
2061 | 0 | GDT_Float64, &dfBurnValue, nullptr, eBurnValueSource, eMergeAlg, |
2062 | 0 | pfnTransformer, pTransformArg); |
2063 | 0 | } |
2064 | |
|
2065 | 0 | poLayer->ResetReading(); |
2066 | |
|
2067 | 0 | if (!pfnProgress(1, "", pProgressArg)) |
2068 | 0 | { |
2069 | 0 | CPLError(CE_Failure, CPLE_UserInterrupt, "User terminated"); |
2070 | 0 | eErr = CE_Failure; |
2071 | 0 | } |
2072 | |
|
2073 | 0 | if (bNeedToFreeTransformer) |
2074 | 0 | { |
2075 | 0 | GDALDestroyTransformer(pTransformArg); |
2076 | 0 | pTransformArg = nullptr; |
2077 | 0 | pfnTransformer = nullptr; |
2078 | 0 | } |
2079 | 0 | } |
2080 | |
|
2081 | 0 | return eErr; |
2082 | 0 | } |