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671 werner 2
/********************************************************************************************
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**    iLand - an individual based forest landscape and disturbance model
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**    http://iland.boku.ac.at
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**    Copyright (C) 2009-  Werner Rammer, Rupert Seidl
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**
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**    This program is free software: you can redistribute it and/or modify
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**    it under the terms of the GNU General Public License as published by
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**    the Free Software Foundation, either version 3 of the License, or
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**    (at your option) any later version.
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**
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**    This program is distributed in the hope that it will be useful,
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**    but WITHOUT ANY WARRANTY; without even the implied warranty of
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**    MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE.  See the
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**    GNU General Public License for more details.
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**
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**    You should have received a copy of the GNU General Public License
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**    along with this program.  If not, see <http://www.gnu.org/licenses/>.
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********************************************************************************************/
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15 Werner 21
#ifndef GRID_H
22
#define GRID_H
23
 
22 Werner 24
#include <QtCore>
15 Werner 25
 
26
 
27
#include <stdexcept>
145 Werner 28
#include <limits>
150 iland 29
#include <cstring>
15 Werner 30
 
373 werner 31
#include "global.h"
32
 
247 werner 33
/** Grid class (template).
697 werner 34
@ingroup tools
74 Werner 35
Orientation
656 werner 36
The grid is oriented as typically coordinates on the northern hemisphere: higher y-values -> north, higher x-values-> east.
490 werner 37
The projection is reversed for drawing on screen (Viewport).
74 Werner 38
          N
490 werner 39
  (0/2) (1/2) (2/2)
656 werner 40
W (0/1) (1/1) (2/1)  E
74 Werner 41
  (0/0) (1/0) (2/0)
42
          S
43
*/
15 Werner 44
template <class T>
45
class Grid {
46
public:
47
 
48
    Grid();
49
    Grid(int cellsize, int sizex, int sizey) { mData=0; setup(cellsize, sizex, sizey); }
914 werner 50
    /// create from a metric rect
58 Werner 51
    Grid(const QRectF rect_metric, const float cellsize) { mData=0; setup(rect_metric,cellsize); }
33 Werner 52
    // copy ctor
53
    Grid(const Grid<T>& toCopy);
105 Werner 54
    ~Grid() { clear(); }
55
    void clear() { if (mData) delete[] mData; mData=0; }
15 Werner 56
 
18 Werner 57
    bool setup(const float cellsize, const int sizex, const int sizey);
22 Werner 58
    bool setup(const QRectF& rect, const double cellsize);
896 werner 59
    bool setup(const Grid<T>& source) { clear();  mRect = source.mRect; return setup(source.mRect, source.mCellsize); }
75 Werner 60
    void initialize(const T& value) {for( T *p = begin();p!=end(); ++p) *p=value; }
150 iland 61
    void wipe(); ///< write 0-bytes with memcpy to the whole area
154 werner 62
    void wipe(const T value); ///< overwrite the whole area with "value" size of T must be the size of "int" ERRORNOUS!!!
764 werner 63
    /// copies the content of the source grid to this grid.
64
    /// no operation, if the grids are not of the same size.
65
    void copy(const Grid<T> source) { if (source.count()==count()) memcpy(mData, source.mData, count()*sizeof(T)); }
15 Werner 66
 
797 werner 67
    // get the number of cells in x and y direction
145 Werner 68
    int sizeX() const { return mSizeX; }
69
    int sizeY() const { return mSizeY; }
797 werner 70
    // get the size of the grid in metric coordinates (x and y direction)
145 Werner 71
    float metricSizeX() const { return mSizeX*mCellsize; }
72
    float metricSizeY() const { return mSizeY*mCellsize; }
797 werner 73
    /// get the metric rectangle of the grid
49 Werner 74
    QRectF metricRect() const { return mRect; }
797 werner 75
    /// get the rectangle of the grid in terms of indices
76
    QRect rectangle() const { return QRect(QPoint(0,0), QPoint(sizeX(), sizeY())); }
77
    /// get the length of one pixel of the grid
145 Werner 78
    float cellsize() const { return mCellsize; }
373 werner 79
    int count() const { return mCount; } ///< returns the number of elements of the grid
80
    bool isEmpty() const { return mData==NULL; } ///< returns false if the grid was not setup
32 Werner 81
    // operations
15 Werner 82
    // query
33 Werner 83
    /// access (const) with index variables. use int.
84
    inline const T& operator()(const int ix, const int iy) const { return constValueAtIndex(ix, iy); }
85
    /// access (const) using metric variables. use float.
86
    inline const T& operator()(const float x, const float y) const { return constValueAt(x, y); }
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    inline const T& operator[] (const QPointF &p) const { return constValueAt(p); }
33 Werner 88
 
705 werner 89
    inline T& valueAtIndex(const QPoint& pos) {return valueAtIndex(pos.x(), pos.y());}  ///< value at position defined by a QPoint defining the two indices (x,y)
90
    T& valueAtIndex(const int ix, const int iy) { return mData[iy*mSizeX + ix];  } ///< const value at position defined by indices (x,y)
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    T& valueAtIndex(const int index) {return mData[index]; } ///< get a ref ot value at (one-dimensional) index 'index'.
33 Werner 92
 
705 werner 93
    /// value at position defined by a (integer) QPoint
94
    inline const T& constValueAtIndex(const QPoint& pos) const {return constValueAtIndex(pos.x(), pos.y()); }
95
    /// value at position defined by a pair of integer coordinates
96
    inline const T& constValueAtIndex(const int ix, const int iy) const { return mData[iy*mSizeX + ix];  }
97
    /// value at position defined by the index within the grid
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    const T& constValueAtIndex(const int index) const {return mData[index]; } ///< get a ref ot value at (one-dimensional) index 'index'.
33 Werner 99
 
100
    T& valueAt(const QPointF& posf); ///< value at position defined by metric coordinates (QPointF)
101
    const T& constValueAt(const QPointF& posf) const; ///< value at position defined by metric coordinates (QPointF)
102
 
103
    T& valueAt(const float x, const float y); ///< value at position defined by metric coordinates (x,y)
104
    const T& constValueAt(const float x, const float y) const; ///< value at position defined by metric coordinates (x,y)
105
 
105 Werner 106
    bool coordValid(const float x, const float y) const { return x>=mRect.left() && x<mRect.right()  && y>=mRect.top() && y<mRect.bottom(); }
49 Werner 107
    bool coordValid(const QPointF &pos) const { return coordValid(pos.x(), pos.y()); }
75 Werner 108
 
55 Werner 109
    QPoint indexAt(const QPointF& pos) const { return QPoint(int((pos.x()-mRect.left()) / mCellsize),  int((pos.y()-mRect.top())/mCellsize)); } ///< get index of value at position pos (metric)
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    /// get index (x/y) of the (linear) index 'index' (0..count-1)
111
    QPoint indexOf(const int index) const {return QPoint(index % mSizeX,  index / mSizeX); }
373 werner 112
    bool isIndexValid(const QPoint& pos) const { return (pos.x()>=0 && pos.x()<mSizeX && pos.y()>=0 && pos.y()<mSizeY); } ///< return true, if position is within the grid
113
    bool isIndexValid(const int x, const int y) const {return (x>=0 && x<mSizeX && y>=0 && y<mSizeY); } ///< return true, if index is within the grid
75 Werner 114
    /// force @param pos to contain valid indices with respect to this grid.
55 Werner 115
    void validate(QPoint &pos) const{ pos.setX( qMax(qMin(pos.x(), mSizeX-1), 0) );  pos.setY( qMax(qMin(pos.y(), mSizeY-1), 0) );} ///< ensure that "pos" is a valid key. if out of range, pos is set to minimum/maximum values.
105 Werner 116
    /// get the (metric) centerpoint of cell with index @p pos
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    QPointF cellCenterPoint(const QPoint &pos) const { return QPointF( (pos.x()+0.5)*mCellsize+mRect.left(), (pos.y()+0.5)*mCellsize + mRect.top());} ///< get metric coordinates of the cells center
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    /// get the metric cell center point of the cell given by index 'index'
119
    QPointF cellCenterPoint(const int &index) const { QPoint pos=indexOf(index); return QPointF( (pos.x()+0.5)*mCellsize+mRect.left(), (pos.y()+0.5)*mCellsize + mRect.top());}
105 Werner 120
    /// get the metric rectangle of the cell with index @pos
439 werner 121
    QRectF cellRect(const QPoint &pos) const { QRectF r( QPointF(mRect.left() + mCellsize*pos.x(), mRect.top() + pos.y()*mCellsize),
55 Werner 122
                                                   QSizeF(mCellsize, mCellsize)); return r; } ///< return coordinates of rect given by @param pos.
105 Werner 123
 
27 Werner 124
    inline  T* begin() const { return mData; } ///< get "iterator" pointer
37 Werner 125
    inline  T* end() const { return mEnd; } ///< get iterator end-pointer
717 werner 126
    inline QPoint indexOf(const T* element) const; ///< retrieve index (x/y) of the pointer element. returns -1/-1 if element is not valid.
27 Werner 127
    // special queries
33 Werner 128
    T max() const; ///< retrieve the maximum value of a grid
129
    T sum() const; ///< retrieve the sum of the grid
130
    T avg() const; ///< retrieve the average value of a grid
391 werner 131
    // modifying operations
132
    void add(const T& summand);
133
    void multiply(const T& factor);
33 Werner 134
    /// creates a grid with lower resolution and averaged cell values.
135
    /// @param factor factor by which grid size is reduced (e.g. 3 -> 3x3=9 pixels are averaged to 1 result pixel)
136
    /// @param offsetx, offsety: start averaging with an offset from 0/0 (e.g.: x=1, y=2, factor=3: -> 1/2-3/4 -> 0/0)
137
    /// @return Grid with size sizeX()/factor x sizeY()/factor
138
    Grid<T> averaged(const int factor, const int offsetx=0, const int offsety=0) const;
139
    /// normalized returns a normalized grid, in a way that the sum()  = @param targetvalue.
140
    /// if the grid is empty or the sum is 0, no modifications are performed.
141
    Grid<T> normalized(const T targetvalue) const;
1010 werner 142
    T* ptr(int x, int y) { return &(mData[y*mSizeX + x]); } ///< get a pointer to the element indexed by "x" and "y"
373 werner 143
    inline double distance(const QPoint &p1, const QPoint &p2); ///< distance (metric) between p1 and p2
144
    const QPoint randomPosition() const; ///< returns a (valid) random position within the grid
15 Werner 145
private:
77 Werner 146
 
15 Werner 147
    T* mData;
37 Werner 148
    T* mEnd; ///< pointer to 1 element behind the last
49 Werner 149
    QRectF mRect;
36 Werner 150
    float mCellsize; ///< size of a cell in meter
151
    int mSizeX; ///< count of cells in x-direction
152
    int mSizeY; ///< count of cells in y-direction
153
    int mCount; ///< total number of cells in the grid
15 Werner 154
};
155
 
156
typedef Grid<float> FloatGrid;
157
 
1008 werner 158
enum GridViewType { GridViewRainbow=0, GridViewRainbowReverse=1, GridViewGray=2, GridViewGrayReverse=3, GridViewHeat=4,
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                    GridViewGreens=5, GridViewReds=6, GridViewBlues=7,
880 werner 160
                    GridViewBrewerDiv=10, GridViewBrewerQual=11, GridViewTerrain=12, GridViewCustom=14  };
643 werner 161
 
438 werner 162
/** @class GridRunner is a helper class to iterate over a rectangular fraction of a grid
163
*/
164
template <class T>
165
class GridRunner {
166
public:
650 werner 167
    // constructors with a QRectF (metric coordinates)
617 werner 168
    GridRunner(Grid<T> &target_grid, const QRectF &rectangle) {setup(&target_grid, rectangle);}
169
    GridRunner(const Grid<T> &target_grid, const QRectF &rectangle) {setup(&target_grid, rectangle);}
170
    GridRunner(Grid<T> *target_grid, const QRectF &rectangle) {setup(target_grid, rectangle);}
650 werner 171
    // constructors with a QRect (indices within the grid)
172
    GridRunner(Grid<T> &target_grid, const QRect &rectangle) {setup(&target_grid, rectangle);}
173
    GridRunner(const Grid<T> &target_grid, const QRect &rectangle) {setup(&target_grid, rectangle);}
174
    GridRunner(Grid<T> *target_grid, const QRect &rectangle) {setup(target_grid, rectangle);}
914 werner 175
    GridRunner(Grid<T> *target_grid) {setup(target_grid, target_grid->rectangle()); }
438 werner 176
    T* next(); ///< to to next element, return NULL if finished
662 werner 177
    T* current() const { return mCurrent; }
1010 werner 178
    bool isValid() const {return mCurrent>=mFirst && mCurrent<=mLast; }
902 werner 179
    /// return the (index) - coordinates of the current position in the grid
180
    QPoint currentIndex() const { return mGrid->indexOf(mCurrent); }
181
    /// return the coordinates of the cell center point of the current position in the grid.
182
    QPointF currentCoord() const {return mGrid->cellCenterPoint(mGrid->indexOf(mCurrent));}
650 werner 183
    void reset() { mCurrent = mFirst-1; mCurrentCol = -1; }
1010 werner 184
    /// set the internal pointer to the pixel at index 'new_index'. The index is relative to the base grid!
185
    void setPosition(QPoint new_index) { if (mGrid->isIndexValid(new_index)) mCurrent = const_cast<Grid<T> *>(mGrid)->ptr(new_index.x(), new_index.y()); else mCurrent=0; }
650 werner 186
    // helpers
187
    /// fill array with pointers to neighbors (north, east, west, south)
188
    /// or Null-pointers if out of range.
189
    /// the target array (rArray) is not checked and must be valid!
190
    void neighbors4(T** rArray);
191
    void neighbors8(T** rArray);
438 werner 192
private:
617 werner 193
    void setup(const Grid<T> *target_grid, const QRectF &rectangle);
650 werner 194
    void setup(const Grid<T> *target_grid, const QRect &rectangle);
902 werner 195
    const Grid<T> *mGrid;
650 werner 196
    T* mFirst; // points to the first element of the grid
197
    T* mLast; // points to the last element of the grid
438 werner 198
    T* mCurrent;
199
    size_t mLineLength;
200
    size_t mCols;
984 werner 201
    int mCurrentCol;
438 werner 202
};
203
 
646 werner 204
/** @class Vector3D is a simple 3d vector.
205
  QVector3D (from Qt) is in QtGui so we needed a replacement.
206
*/
207
class Vector3D
208
{
209
 public:
210
    Vector3D(): mX(0.), mY(0.), mZ(0.) {}
211
    Vector3D(const double x, const double y, const double z): mX(x), mY(y), mZ(z) {}
212
    double x() const { return mX; } ///< get x-coordinate
213
    double y() const { return mY; } ///< get y-coordinate
214
    double z() const { return mZ; } ///< get z-coordinate
215
    // set variables
216
    void setX(const double x) { mX=x; } ///< set value of the x-coordinate
217
    void setY(const double y) { mY=y; } ///< set value of the y-coordinate
218
    void setZ(const double z) { mZ=z; } ///< set value of the z-coordinate
219
private:
220
    double mX;
221
    double mY;
222
    double mZ;
223
};
438 werner 224
 
33 Werner 225
// copy constructor
226
template <class T>
227
Grid<T>::Grid(const Grid<T>& toCopy)
228
{
40 Werner 229
    mData = 0;
50 Werner 230
    mRect = toCopy.mRect;
33 Werner 231
    setup(toCopy.cellsize(), toCopy.sizeX(), toCopy.sizeY());
232
    const T* end = toCopy.end();
233
    T* ptr = begin();
234
    for (T* i= toCopy.begin(); i!=end; ++i, ++ptr)
235
       *ptr = *i;
236
}
22 Werner 237
 
33 Werner 238
// normalize function
32 Werner 239
template <class T>
33 Werner 240
Grid<T> Grid<T>::normalized(const T targetvalue) const
32 Werner 241
{
33 Werner 242
    Grid<T> target(*this);
243
    T total = sum();
244
    T multiplier;
245
    if (total)
246
        multiplier = targetvalue / total;
247
    else
248
        return target;
249
    for (T* p=target.begin();p!=target.end();++p)
250
        *p *= multiplier;
40 Werner 251
    return target;
33 Werner 252
}
253
 
254
 
255
template <class T>
256
Grid<T> Grid<T>::averaged(const int factor, const int offsetx, const int offsety) const
257
{
32 Werner 258
    Grid<T> target;
259
    target.setup(cellsize()*factor, sizeX()/factor, sizeY()/factor);
260
    int x,y;
261
    T sum=0;
262
    target.initialize(sum);
263
    // sum over array of 2x2, 3x3, 4x4, ...
264
    for (x=offsetx;x<mSizeX;x++)
265
        for (y=offsety;y<mSizeY;y++) {
266
            target.valueAtIndex((x-offsetx)/factor, (y-offsety)/factor) += constValueAtIndex(x,y);
267
        }
268
    // divide
269
    double fsquare = factor*factor;
270
    for (T* p=target.begin();p!=target.end();++p)
271
        *p /= fsquare;
272
    return target;
273
}
22 Werner 274
 
36 Werner 275
 
27 Werner 276
template <class T>
33 Werner 277
T&  Grid<T>::valueAt(const float x, const float y)
278
{
279
    return valueAtIndex( indexAt(QPointF(x,y)) );
280
}
36 Werner 281
 
33 Werner 282
template <class T>
283
const T&  Grid<T>::constValueAt(const float x, const float y) const
284
{
285
    return constValueAtIndex( indexAt(QPointF(x,y)) );
286
}
36 Werner 287
 
33 Werner 288
template <class T>
22 Werner 289
T&  Grid<T>::valueAt(const QPointF& posf)
290
{
291
    return valueAtIndex( indexAt(posf) );
292
}
36 Werner 293
 
33 Werner 294
template <class T>
295
const T&  Grid<T>::constValueAt(const QPointF& posf) const
296
{
297
    return constValueAtIndex( indexAt(posf) );
298
}
22 Werner 299
 
300
template <class T>
15 Werner 301
Grid<T>::Grid()
302
{
37 Werner 303
    mData = 0; mCellsize=0.f;
304
    mEnd = 0;
912 werner 305
    mSizeX=0; mSizeY=0; mCount=0;
15 Werner 306
}
307
 
308
template <class T>
18 Werner 309
bool Grid<T>::setup(const float cellsize, const int sizex, const int sizey)
15 Werner 310
{
912 werner 311
    mSizeX=sizex; mSizeY=sizey;
951 werner 312
    if (mRect.isNull()) // only set rect if not set before (e.g. by call to setup(QRectF, double))
50 Werner 313
        mRect.setCoords(0., 0., cellsize*sizex, cellsize*sizey);
912 werner 314
 
315
    if (mData) {
316
        // test if we can re-use the allocated memory.
951 werner 317
        if (mSizeX*mSizeY > mCount || mCellsize != cellsize) {
912 werner 318
            // we cannot re-use the memory - create new data
319
            delete[] mData; mData=NULL;
320
        }
321
    }
322
    mCellsize=cellsize;
15 Werner 323
    mCount = mSizeX*mSizeY;
951 werner 324
    if (mCount==0)
325
        return false;
326
    if (mData==NULL)
37 Werner 327
        mData = new T[mCount];
912 werner 328
    mEnd = &(mData[mCount]);
329
    return true;
15 Werner 330
}
331
 
332
template <class T>
22 Werner 333
bool Grid<T>::setup(const QRectF& rect, const double cellsize)
15 Werner 334
{
49 Werner 335
    mRect = rect;
22 Werner 336
    int dx = int(rect.width()/cellsize);
49 Werner 337
    if (mRect.left()+cellsize*dx<rect.right())
22 Werner 338
        dx++;
339
    int dy = int(rect.height()/cellsize);
49 Werner 340
    if (mRect.top()+cellsize*dy<rect.bottom())
22 Werner 341
        dy++;
342
    return setup(cellsize, dx, dy);
15 Werner 343
}
344
 
261 werner 345
/** retrieve from the index from an element reversely from a pointer to that element.
346
    The internal memory layout is (for dimx=6, dimy=3):
347
 
348
6  7  8  9  10 11
349
12 13 14 15 16 17
350
Note: north and south are reversed, thus the item with index 0 is located in the south-western edge of the grid! */
487 werner 351
template <class T> inline
717 werner 352
QPoint Grid<T>::indexOf(const T* element) const
25 Werner 353
{
487 werner 354
//    QPoint result(-1,-1);
25 Werner 355
    if (element==NULL || element<mData || element>=end())
487 werner 356
        return QPoint(-1, -1);
25 Werner 357
    int idx = element - mData;
487 werner 358
    return QPoint(idx % mSizeX,  idx / mSizeX);
359
//    result.setX( idx % mSizeX);
360
//    result.setY( idx / mSizeX);
361
//    return result;
25 Werner 362
}
22 Werner 363
 
27 Werner 364
template <class T>
365
T  Grid<T>::max() const
366
{
143 Werner 367
    T maxv = -std::numeric_limits<T>::max();
27 Werner 368
    T* p;
369
    T* pend = end();
370
    for (p=begin(); p!=pend;++p)
371
       maxv = std::max(maxv, *p);
372
    return maxv;
373
}
374
 
33 Werner 375
template <class T>
376
T  Grid<T>::sum() const
377
{
378
    T* pend = end();
379
    T total = 0;
380
    for (T *p=begin(); p!=pend;++p)
381
       total += *p;
382
    return total;
383
}
384
 
385
template <class T>
386
T  Grid<T>::avg() const
387
{
388
    if (count())
389
        return sum() / T(count());
390
    else return 0;
391
}
392
 
150 iland 393
template <class T>
391 werner 394
void Grid<T>::add(const T& summand)
395
{
396
    T* pend = end();
397
    for (T *p=begin(); p!=pend;*p+=summand,++p)
398
       ;
399
}
400
 
401
template <class T>
402
void Grid<T>::multiply(const T& factor)
403
{
404
    T* pend = end();
405
    for (T *p=begin(); p!=pend;*p*=factor,++p)
406
       ;
407
}
408
 
409
 
410
 
411
template <class T>
150 iland 412
void  Grid<T>::wipe()
413
{
414
    memset(mData, 0, mCount*sizeof(T));
415
}
416
template <class T>
417
void  Grid<T>::wipe(const T value)
418
{
154 werner 419
    /* this does not work properly !!! */
153 werner 420
    if (sizeof(T)==sizeof(int)) {
421
        float temp = value;
422
        float *pf = &temp;
423
 
424
        memset(mData, *((int*)pf), mCount*sizeof(T));
425
    } else
150 iland 426
        initialize(value);
427
}
428
 
373 werner 429
template <class T>
430
double Grid<T>::distance(const QPoint &p1, const QPoint &p2)
431
{
432
    QPointF fp1=cellCenterPoint(p1);
433
    QPointF fp2=cellCenterPoint(p2);
434
    double distance = sqrt( (fp1.x()-fp2.x())*(fp1.x()-fp2.x()) + (fp1.y()-fp2.y())*(fp1.y()-fp2.y()));
435
    return distance;
436
}
437
 
438
template <class T>
439
const QPoint Grid<T>::randomPosition() const
440
{
441
    return QPoint(irandom(0,mSizeX-1), irandom(0, mSizeY-1));
442
}
438 werner 443
 
373 werner 444
////////////////////////////////////////////////////////////
438 werner 445
// grid runner
446
////////////////////////////////////////////////////////////
447
template <class T>
650 werner 448
void GridRunner<T>::setup(const Grid<T> *target_grid, const QRect &rectangle)
438 werner 449
{
650 werner 450
    QPoint upper_left = rectangle.topLeft();
651 werner 451
    // due to the strange behavior of QRect::bottom() and right():
650 werner 452
    QPoint lower_right = rectangle.bottomRight();
617 werner 453
    mCurrent = const_cast<Grid<T> *>(target_grid)->ptr(upper_left.x(), upper_left.y());
650 werner 454
    mFirst = mCurrent;
585 werner 455
    mCurrent--; // point to first element -1
617 werner 456
    mLast = const_cast<Grid<T> *>(target_grid)->ptr(lower_right.x()-1, lower_right.y()-1);
438 werner 457
    mCols = lower_right.x() - upper_left.x(); //
617 werner 458
    mLineLength =  target_grid->sizeX() - mCols;
585 werner 459
    mCurrentCol = -1;
902 werner 460
    mGrid = target_grid;
585 werner 461
//    qDebug() << "GridRunner: rectangle:" << rectangle
462
//             << "upper_left:" << target_grid.cellCenterPoint(target_grid.indexOf(mCurrent))
463
//             << "lower_right:" << target_grid.cellCenterPoint(target_grid.indexOf(mLast));
438 werner 464
}
465
 
466
template <class T>
650 werner 467
void GridRunner<T>::setup(const Grid<T> *target_grid, const QRectF &rectangle_metric)
468
{
469
    QRect rect(target_grid->indexAt(rectangle_metric.topLeft()),
470
               target_grid->indexAt(rectangle_metric.bottomRight()) );
471
    setup (target_grid, rect);
472
}
473
 
474
template <class T>
438 werner 475
T* GridRunner<T>::next()
476
{
477
    if (mCurrent>mLast)
478
        return NULL;
479
    mCurrent++;
480
    mCurrentCol++;
585 werner 481
 
1031 werner 482
    if (mCurrentCol >= int(mCols)) {
438 werner 483
        mCurrent += mLineLength; // skip to next line
484
        mCurrentCol = 0;
485
    }
585 werner 486
    if (mCurrent>mLast)
487
        return NULL;
488
    else
489
        return mCurrent;
438 werner 490
}
491
 
650 werner 492
template <class T>
656 werner 493
/// get pointers the the 4-neighborhood
1037 werner 494
/// north, east, west, south
803 werner 495
/// 0-pointers are returned for edge pixels.
650 werner 496
void GridRunner<T>::neighbors4(T** rArray)
497
{
498
    // north:
651 werner 499
    rArray[0] = mCurrent + mCols + mLineLength > mLast?0: mCurrent + mCols + mLineLength;
650 werner 500
    // south:
651 werner 501
    rArray[3] = mCurrent - (mCols + mLineLength) < mFirst?0: mCurrent -  (mCols + mLineLength);
650 werner 502
    // east / west
1031 werner 503
    rArray[1] = mCurrentCol<int(mCols)? mCurrent + 1 : 0;
656 werner 504
    rArray[2] = mCurrentCol>0? mCurrent-1 : 0;
650 werner 505
}
506
 
507
/// get pointers to the 8-neighbor-hood
508
/// north/east/west/south/NE/NW/SE/SW
803 werner 509
/// 0-pointers are returned for edge pixels.
650 werner 510
template <class T>
511
void GridRunner<T>::neighbors8(T** rArray)
512
{
513
    neighbors4(rArray);
514
    // north-east
656 werner 515
    rArray[4] = rArray[0] && rArray[1]? rArray[0]+1: 0;
650 werner 516
    // north-west
656 werner 517
    rArray[5] = rArray[0] && rArray[2]? rArray[0]-1: 0;
650 werner 518
    // south-east
656 werner 519
    rArray[6] = rArray[3] && rArray[1]? rArray[3]+1: 0;
650 werner 520
    // south-west
656 werner 521
    rArray[7] = rArray[3] && rArray[2]? rArray[3]-1: 0;
650 werner 522
 
523
}
524
 
438 werner 525
////////////////////////////////////////////////////////////
36 Werner 526
// global functions
373 werner 527
////////////////////////////////////////////////////////////
36 Werner 528
 
529
/// dumps a FloatGrid to a String.
46 Werner 530
/// rows will be y-lines, columns x-values. (see grid.cpp)
599 werner 531
QString gridToString(const FloatGrid &grid, const QChar sep=QChar(';'), const int newline_after=-1);
36 Werner 532
 
533
/// creates and return a QImage from Grid-Data.
534
/// @param black_white true: max_value = white, min_value = black, false: color-mode: uses a HSV-color model from blue (min_value) to red (max_value), default: color mode (false)
535
/// @param min_value, max_value min/max bounds for color calcuations. values outside bounds are limited to these values. defaults: min=0, max=1
536
/// @param reverse if true, color ramps are inversed (to: min_value = white (black and white mode) or red (color mode). default = false.
537
/// @return a QImage with the Grids size of pixels. Pixel coordinates relate to the index values of the grid.
538
QImage gridToImage(const FloatGrid &grid,
539
                   bool black_white=false,
540
                   double min_value=0., double max_value=1.,
541
                   bool reverse=false);
542
 
556 werner 543
 
285 werner 544
/** load into 'rGrid' the content of the image pointed at by 'fileName'.
545
    Pixels are converted to grey-scale and then transformend to a value ranging from 0..1 (black..white).
546
  */
547
bool loadGridFromImage(const QString &fileName, FloatGrid &rGrid);
548
 
46 Werner 549
/// template version for non-float grids (see also version for FloatGrid)
599 werner 550
/// @param sep string separator
551
/// @param newline_after if <>-1 a newline is added after every 'newline_after' data values
36 Werner 552
template <class T>
599 werner 553
        QString gridToString(const Grid<T> &grid, const QChar sep=QChar(';'), const int newline_after=-1)
36 Werner 554
{
555
    QString res;
556
    QTextStream ts(&res);
557
 
599 werner 558
    int newl_counter = newline_after;
708 werner 559
    for (int y=grid.sizeY()-1;y>=0;--y){
46 Werner 560
        for (int x=0;x<grid.sizeX();x++){
599 werner 561
            ts << grid.constValueAtIndex(x,y) << sep;
562
            if (--newl_counter==0) {
563
                ts << "\r\n";
564
                newl_counter = newline_after;
565
            }
36 Werner 566
        }
567
        ts << "\r\n";
568
    }
569
 
570
    return res;
571
}
46 Werner 572
 
599 werner 573
/// template version for non-float grids (see also version for FloatGrid)
574
/// @param valueFunction pointer to a function with the signature: QString func(const T&) : this should return a QString
575
/// @param sep string separator
576
/// @param newline_after if <>-1 a newline is added after every 'newline_after' data values
577
template <class T>
578
        QString gridToString(const Grid<T> &grid, QString (*valueFunction)(const T& value), const QChar sep=QChar(';'), const int newline_after=-1 )
708 werner 579
        {
580
            QString res;
581
            QTextStream ts(&res);
599 werner 582
 
708 werner 583
            int newl_counter = newline_after;
584
            for (int y=grid.sizeY()-1;y>=0;--y){
585
                for (int x=0;x<grid.sizeX();x++){
586
                    ts << (*valueFunction)(grid.constValueAtIndex(x,y)) << sep;
599 werner 587
 
708 werner 588
                    if (--newl_counter==0) {
589
                        ts << "\r\n";
590
                        newl_counter = newline_after;
591
                    }
592
                }
599 werner 593
                ts << "\r\n";
594
            }
708 werner 595
 
596
            return res;
599 werner 597
        }
646 werner 598
void modelToWorld(const Vector3D &From, Vector3D &To);
599 werner 599
 
600
template <class T>
601
    QString gridToESRIRaster(const Grid<T> &grid, QString (*valueFunction)(const T& value) )
602
{
646 werner 603
        Vector3D model(grid.metricRect().left(), grid.metricRect().top(), 0.);
604
        Vector3D world;
599 werner 605
        modelToWorld(model, world);
607 werner 606
        QString result = QString("ncols %1\r\nnrows %2\r\nxllcorner %3\r\nyllcorner %4\r\ncellsize %5\r\nNODATA_value %6\r\n")
599 werner 607
                                .arg(grid.sizeX())
608
                                .arg(grid.sizeY())
600 werner 609
                                .arg(world.x(),0,'f').arg(world.y(),0,'f')
599 werner 610
                                .arg(grid.cellsize()).arg(-9999);
694 werner 611
        QString line =  gridToString(grid, valueFunction, QChar(' ')); // for special grids
612
        return result + line;
613
}
599 werner 614
 
615
    template <class T>
616
        QString gridToESRIRaster(const Grid<T> &grid )
617
{
646 werner 618
            Vector3D model(grid.metricRect().left(), grid.metricRect().top(), 0.);
619
            Vector3D world;
599 werner 620
            modelToWorld(model, world);
683 werner 621
            QString result = QString("ncols %1\r\nnrows %2\r\nxllcorner %3\r\nyllcorner %4\r\ncellsize %5\r\nNODATA_value %6\r\n")
599 werner 622
                    .arg(grid.sizeX())
623
                    .arg(grid.sizeY())
680 werner 624
                    .arg(world.x(),0,'f').arg(world.y(),0,'f')
599 werner 625
                    .arg(grid.cellsize()).arg(-9999);
694 werner 626
            QString line = gridToString(grid, QChar(' ')); // for normal grids (e.g. float)
627
            return result + line;
599 werner 628
}
629
 
15 Werner 630
#endif // GRID_H