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773 lines
25 KiB
C
773 lines
25 KiB
C
/*====================================================================*
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- Copyright (C) 2001 Leptonica. All rights reserved.
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- This software is distributed in the hope that it will be
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- useful, but with NO WARRANTY OF ANY KIND.
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- No author or distributor accepts responsibility to anyone for the
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- consequences of using this software, or for whether it serves any
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- particular purpose or works at all, unless he or she says so in
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- writing. Everyone is granted permission to copy, modify and
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- redistribute this source code, for commercial or non-commercial
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- purposes, with the following restrictions: (1) the origin of this
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- source code must not be misrepresented; (2) modified versions must
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- be plainly marked as such; and (3) this notice may not be removed
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- or altered from any source or modified source distribution.
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*====================================================================*/
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/*
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* projective.c
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*
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* Projective (4 pt) image transformation using a sampled
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* (to nearest integer) transform on each dest point
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* PIX *pixProjectiveSampledPta()
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* PIX *pixProjectiveSampled()
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*
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* Projective (4 pt) image transformation using interpolation
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* (or area mapping) for anti-aliasing images that are
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* 2, 4, or 8 bpp gray, or colormapped, or 32 bpp RGB
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* PIX *pixProjectivePta()
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* PIX *pixProjective()
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* PIX *pixProjectivePtaColor()
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* PIX *pixProjectiveColor()
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* PIX *pixProjectivePtaGray()
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* PIX *pixProjectiveGray()
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*
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* Projective coordinate transformation
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* l_int32 getProjectiveXformCoeffs()
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* l_int32 projectiveXformSampledPt()
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* l_int32 projectiveXformPt()
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*
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* A projective transform can be specified as a specific functional
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* mapping between 4 points in the source and 4 points in the dest.
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* It preserves straight lines, but is less stable than a bilinear
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* transform, because it contains a division by a quantity that
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* can get arbitrarily small.)
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*
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* We give both a projective coordinate transformation and
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* two projective image transformations.
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*
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* For the former, we ask for the coordinate value (x',y')
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* in the transformed space for any point (x,y) in the original
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* space. The coefficients of the transformation are found by
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* solving 8 simultaneous equations for the 8 coordinates of
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* the 4 points in src and dest. The transformation can then
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* be used to compute the associated image transform, by
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* computing, for each dest pixel, the relevant pixel(s) in
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* the source. This can be done either by taking the closest
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* src pixel to each transformed dest pixel ("sampling") or
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* by doing an interpolation and averaging over 4 source
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* pixels with appropriate weightings ("interpolated").
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*
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* A typical application would be to remove keystoning
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* due to a projective transform in the imaging system.
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*
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* The projective transform is given by specifying two equations:
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*
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* x' = (ax + by + c) / (gx + hy + 1)
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* y' = (dx + ey + f) / (gx + hy + 1)
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*
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* where the eight coefficients have been computed from four
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* sets of these equations, each for two corresponding data pts.
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* In practice, for each point (x,y) in the dest image, this
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* equation is used to compute the corresponding point (x',y')
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* in the src. That computed point in the src is then used
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* to determine the dest value in one of two ways:
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*
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* - sampling: take the value of the src pixel in which this
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* point falls
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* - interpolation: take appropriate linear combinations of the
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* four src pixels that this dest pixel would
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* overlap, with the coefficients proportional
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* to the amount of overlap
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*
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* For small warp where there is little scale change, (e.g.,
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* for rotation) area mapping is nearly equivalent to interpolation.
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*
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* Typical relative timing of pointwise transforms (sampled = 1.0):
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* 8 bpp: sampled 1.0
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* interpolated 1.5
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* 32 bpp: sampled 1.0
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* interpolated 1.6
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* Additionally, the computation time/pixel is nearly the same
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* for 8 bpp and 32 bpp, for both sampled and interpolated.
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*/
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#include <stdio.h>
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#include <stdlib.h>
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#include <string.h>
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#include <math.h>
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#include "allheaders.h"
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/*-------------------------------------------------------------*
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* Sampled projective image transformation *
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*-------------------------------------------------------------*/
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/*!
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* pixProjectiveSampledPta()
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*
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* Input: pixs (all depths)
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* ptad (4 pts of final coordinate space)
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* ptas (4 pts of initial coordinate space)
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* incolor (L_BRING_IN_WHITE, L_BRING_IN_BLACK)
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* Return: pixd, or null on error
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*
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* Notes:
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* (1) Brings in either black or white pixels from the boundary.
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* (2) Retains colormap, which you can do for a sampled transform..
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* (3) No 3 of the 4 points may be collinear.
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* (4) For 8 and 32 bpp pix, better quality is obtained by the
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* somewhat slower pixProjectivePta(). See that
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* function for relative timings between sampled and interpolated.
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*/
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PIX *
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pixProjectiveSampledPta(PIX *pixs,
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PTA *ptad,
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PTA *ptas,
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l_int32 incolor)
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{
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l_float32 *vc;
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PIX *pixd;
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PROCNAME("pixProjectiveSampledPta");
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if (!pixs)
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return (PIX *)ERROR_PTR("pixs not defined", procName, NULL);
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if (!ptas)
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return (PIX *)ERROR_PTR("ptas not defined", procName, NULL);
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if (!ptad)
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return (PIX *)ERROR_PTR("ptad not defined", procName, NULL);
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if (incolor != L_BRING_IN_WHITE && incolor != L_BRING_IN_BLACK)
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return (PIX *)ERROR_PTR("invalid incolor", procName, NULL);
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if (ptaGetCount(ptas) != 4)
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return (PIX *)ERROR_PTR("ptas count not 4", procName, NULL);
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if (ptaGetCount(ptad) != 4)
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return (PIX *)ERROR_PTR("ptad count not 4", procName, NULL);
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/* Get backwards transform from dest to src, and apply it */
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getProjectiveXformCoeffs(ptad, ptas, &vc);
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pixd = pixProjectiveSampled(pixs, vc, incolor);
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FREE(vc);
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return pixd;
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}
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/*!
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* pixProjectiveSampled()
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*
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* Input: pixs (all depths)
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* vc (vector of 8 coefficients for projective transformation)
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* incolor (L_BRING_IN_WHITE, L_BRING_IN_BLACK)
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* Return: pixd, or null on error
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*
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* Notes:
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* (1) Brings in either black or white pixels from the boundary.
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* (2) Retains colormap, which you can do for a sampled transform..
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* (3) For 8 or 32 bpp, much better quality is obtained by the
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* somewhat slower pixProjective(). See that function
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* for relative timings between sampled and interpolated.
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*/
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PIX *
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pixProjectiveSampled(PIX *pixs,
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l_float32 *vc,
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l_int32 incolor)
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{
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l_int32 i, j, w, h, d, x, y, wpls, wpld, color, cmapindex;
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l_uint32 val;
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l_uint32 *datas, *datad, *lines, *lined;
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PIX *pixd;
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PIXCMAP *cmap;
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PROCNAME("pixProjectiveSampled");
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if (!pixs)
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return (PIX *)ERROR_PTR("pixs not defined", procName, NULL);
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if (!vc)
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return (PIX *)ERROR_PTR("vc not defined", procName, NULL);
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if (incolor != L_BRING_IN_WHITE && incolor != L_BRING_IN_BLACK)
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return (PIX *)ERROR_PTR("invalid incolor", procName, NULL);
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pixGetDimensions(pixs, &w, &h, &d);
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if (d != 1 && d != 2 && d != 4 && d != 8 && d != 32)
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return (PIX *)ERROR_PTR("depth not 1, 2, 4, 8 or 16", procName, NULL);
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/* Init all dest pixels to color to be brought in from outside */
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pixd = pixCreateTemplate(pixs);
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if ((cmap = pixGetColormap(pixs)) != NULL) {
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if (incolor == L_BRING_IN_WHITE)
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color = 1;
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else
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color = 0;
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pixcmapAddBlackOrWhite(cmap, color, &cmapindex);
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pixSetAllArbitrary(pixd, cmapindex);
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}
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else {
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if ((d == 1 && incolor == L_BRING_IN_WHITE) ||
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(d > 1 && incolor == L_BRING_IN_BLACK))
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pixClearAll(pixd);
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else
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pixSetAll(pixd);
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}
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/* Scan over the dest pixels */
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datas = pixGetData(pixs);
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wpls = pixGetWpl(pixs);
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datad = pixGetData(pixd);
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wpld = pixGetWpl(pixd);
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for (i = 0; i < h; i++) {
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lined = datad + i * wpld;
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for (j = 0; j < w; j++) {
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projectiveXformSampledPt(vc, j, i, &x, &y);
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if (x < 0 || y < 0 || x >=w || y >= h)
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continue;
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lines = datas + y * wpls;
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if (d == 1) {
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val = GET_DATA_BIT(lines, x);
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SET_DATA_BIT_VAL(lined, j, val);
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}
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else if (d == 8) {
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val = GET_DATA_BYTE(lines, x);
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SET_DATA_BYTE(lined, j, val);
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}
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else if (d == 32) {
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lined[j] = lines[x];
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}
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else if (d == 2) {
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val = GET_DATA_DIBIT(lines, x);
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SET_DATA_DIBIT(lined, j, val);
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}
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else if (d == 4) {
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val = GET_DATA_QBIT(lines, x);
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SET_DATA_QBIT(lined, j, val);
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}
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}
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}
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return pixd;
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}
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/*---------------------------------------------------------------------*
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* Interpolated projective image transformation *
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*---------------------------------------------------------------------*/
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/*!
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* pixProjectivePta()
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*
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* Input: pixs (all depths; colormap ok)
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* ptad (4 pts of final coordinate space)
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* ptas (4 pts of initial coordinate space)
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* incolor (L_BRING_IN_WHITE, L_BRING_IN_BLACK)
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* Return: pixd, or null on error
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*
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* Notes:
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* (1) Brings in either black or white pixels from the boundary
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* (2) Removes any existing colormap, if necessary, before transforming
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*/
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PIX *
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pixProjectivePta(PIX *pixs,
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PTA *ptad,
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PTA *ptas,
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l_int32 incolor)
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{
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l_int32 d;
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l_uint32 colorval;
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PIX *pixt1, *pixt2, *pixd;
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PROCNAME("pixProjectivePta");
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if (!pixs)
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return (PIX *)ERROR_PTR("pixs not defined", procName, NULL);
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if (!ptas)
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return (PIX *)ERROR_PTR("ptas not defined", procName, NULL);
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if (!ptad)
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return (PIX *)ERROR_PTR("ptad not defined", procName, NULL);
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if (incolor != L_BRING_IN_WHITE && incolor != L_BRING_IN_BLACK)
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return (PIX *)ERROR_PTR("invalid incolor", procName, NULL);
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if (ptaGetCount(ptas) != 4)
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return (PIX *)ERROR_PTR("ptas count not 4", procName, NULL);
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if (ptaGetCount(ptad) != 4)
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return (PIX *)ERROR_PTR("ptad count not 4", procName, NULL);
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if (pixGetDepth(pixs) == 1)
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return pixProjectiveSampledPta(pixs, ptad, ptas, incolor);
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/* Remove cmap if it exists, and unpack to 8 bpp if necessary */
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pixt1 = pixRemoveColormap(pixs, REMOVE_CMAP_BASED_ON_SRC);
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d = pixGetDepth(pixt1);
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if (d < 8)
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pixt2 = pixConvertTo8(pixt1, FALSE);
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else
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pixt2 = pixClone(pixt1);
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d = pixGetDepth(pixt2);
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/* Compute actual color to bring in from edges */
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colorval = 0;
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if (incolor == L_BRING_IN_WHITE) {
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if (d == 8)
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colorval = 255;
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else /* d == 32 */
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colorval = 0xffffff00;
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}
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if (d == 8)
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pixd = pixProjectivePtaGray(pixt2, ptad, ptas, colorval);
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else /* d == 32 */
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pixd = pixProjectivePtaColor(pixt2, ptad, ptas, colorval);
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pixDestroy(&pixt1);
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pixDestroy(&pixt2);
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return pixd;
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}
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/*!
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* pixProjective()
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*
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* Input: pixs (all depths; colormap ok)
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* vc (vector of 8 coefficients for affine transformation)
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* incolor (L_BRING_IN_WHITE, L_BRING_IN_BLACK)
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* Return: pixd, or null on error
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*
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* Notes:
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* (1) Brings in either black or white pixels from the boundary
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* (2) Removes any existing colormap, if necessary, before transforming
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*/
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PIX *
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pixProjective(PIX *pixs,
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l_float32 *vc,
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l_int32 incolor)
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{
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l_int32 d;
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l_uint32 colorval;
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PIX *pixt1, *pixt2, *pixd;
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PROCNAME("pixProjective");
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if (!pixs)
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return (PIX *)ERROR_PTR("pixs not defined", procName, NULL);
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if (!vc)
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return (PIX *)ERROR_PTR("vc not defined", procName, NULL);
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if (pixGetDepth(pixs) == 1)
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return pixProjectiveSampled(pixs, vc, incolor);
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/* Remove cmap if it exists, and unpack to 8 bpp if necessary */
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pixt1 = pixRemoveColormap(pixs, REMOVE_CMAP_BASED_ON_SRC);
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d = pixGetDepth(pixt1);
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if (d < 8)
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pixt2 = pixConvertTo8(pixt1, FALSE);
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else
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pixt2 = pixClone(pixt1);
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d = pixGetDepth(pixt2);
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/* Compute actual color to bring in from edges */
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colorval = 0;
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if (incolor == L_BRING_IN_WHITE) {
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if (d == 8)
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colorval = 255;
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else /* d == 32 */
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colorval = 0xffffff00;
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}
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if (d == 8)
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pixd = pixProjectiveGray(pixt2, vc, colorval);
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else /* d == 32 */
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pixd = pixProjectiveColor(pixt2, vc, colorval);
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pixDestroy(&pixt1);
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pixDestroy(&pixt2);
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return pixd;
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}
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/*!
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* pixProjectivePtaColor()
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*
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* Input: pixs (32 bpp)
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* ptad (4 pts of final coordinate space)
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* ptas (4 pts of initial coordinate space)
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* colorval (e.g., 0 to bring in BLACK, 0xffffff00 for WHITE)
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* Return: pixd, or null on error
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*/
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PIX *
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pixProjectivePtaColor(PIX *pixs,
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PTA *ptad,
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PTA *ptas,
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l_uint32 colorval)
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{
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l_float32 *vc;
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PIX *pixd;
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PROCNAME("pixProjectivePtaColor");
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if (!pixs)
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return (PIX *)ERROR_PTR("pixs not defined", procName, NULL);
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if (!ptas)
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return (PIX *)ERROR_PTR("ptas not defined", procName, NULL);
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if (!ptad)
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return (PIX *)ERROR_PTR("ptad not defined", procName, NULL);
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if (pixGetDepth(pixs) != 32)
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return (PIX *)ERROR_PTR("pixs must be 32 bpp", procName, NULL);
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if (ptaGetCount(ptas) != 4)
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return (PIX *)ERROR_PTR("ptas count not 4", procName, NULL);
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if (ptaGetCount(ptad) != 4)
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return (PIX *)ERROR_PTR("ptad count not 4", procName, NULL);
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/* Get backwards transform from dest to src, and apply it */
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getProjectiveXformCoeffs(ptad, ptas, &vc);
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pixd = pixProjectiveColor(pixs, vc, colorval);
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FREE(vc);
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return pixd;
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}
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/*!
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* pixProjectiveColor()
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*
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* Input: pixs (32 bpp)
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* vc (vector of 6 coefficients for affine transformation)
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* colorval (e.g., 0 to bring in BLACK, 0xffffff00 for WHITE)
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* Return: pixd, or null on error
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*/
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PIX *
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pixProjectiveColor(PIX *pixs,
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l_float32 *vc,
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l_uint32 colorval)
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{
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l_int32 i, j, w, h, d, wpls, wpld;
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l_uint32 val;
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l_uint32 *datas, *datad, *lined;
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l_float32 x, y;
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PIX *pixd;
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PROCNAME("pixProjectiveColor");
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if (!pixs)
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return (PIX *)ERROR_PTR("pixs not defined", procName, NULL);
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pixGetDimensions(pixs, &w, &h, &d);
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if (d != 32)
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return (PIX *)ERROR_PTR("pixs must be 32 bpp", procName, NULL);
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if (!vc)
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return (PIX *)ERROR_PTR("vc not defined", procName, NULL);
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datas = pixGetData(pixs);
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wpls = pixGetWpl(pixs);
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pixd = pixCreateTemplate(pixs);
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pixSetAllArbitrary(pixd, colorval);
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datad = pixGetData(pixd);
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wpld = pixGetWpl(pixd);
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/* Iterate over destination pixels */
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for (i = 0; i < h; i++) {
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lined = datad + i * wpld;
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for (j = 0; j < w; j++) {
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/* Compute float src pixel location corresponding to (i,j) */
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projectiveXformPt(vc, j, i, &x, &y);
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linearInterpolatePixelColor(datas, wpls, w, h, x, y, colorval,
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&val);
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*(lined + j) = val;
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}
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}
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return pixd;
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}
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/*!
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* pixProjectivePtaGray()
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*
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* Input: pixs (8 bpp)
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* ptad (4 pts of final coordinate space)
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* ptas (4 pts of initial coordinate space)
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* grayval (0 to bring in BLACK, 255 for WHITE)
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* Return: pixd, or null on error
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*/
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PIX *
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pixProjectivePtaGray(PIX *pixs,
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PTA *ptad,
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PTA *ptas,
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l_uint8 grayval)
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{
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l_float32 *vc;
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PIX *pixd;
|
|
|
|
PROCNAME("pixProjectivePtaGray");
|
|
|
|
if (!pixs)
|
|
return (PIX *)ERROR_PTR("pixs not defined", procName, NULL);
|
|
if (!ptas)
|
|
return (PIX *)ERROR_PTR("ptas not defined", procName, NULL);
|
|
if (!ptad)
|
|
return (PIX *)ERROR_PTR("ptad not defined", procName, NULL);
|
|
if (pixGetDepth(pixs) != 8)
|
|
return (PIX *)ERROR_PTR("pixs must be 8 bpp", procName, NULL);
|
|
if (ptaGetCount(ptas) != 4)
|
|
return (PIX *)ERROR_PTR("ptas count not 4", procName, NULL);
|
|
if (ptaGetCount(ptad) != 4)
|
|
return (PIX *)ERROR_PTR("ptad count not 4", procName, NULL);
|
|
|
|
/* Get backwards transform from dest to src, and apply it */
|
|
getProjectiveXformCoeffs(ptad, ptas, &vc);
|
|
pixd = pixProjectiveGray(pixs, vc, grayval);
|
|
FREE(vc);
|
|
|
|
return pixd;
|
|
}
|
|
|
|
|
|
|
|
/*!
|
|
* pixProjectiveGray()
|
|
*
|
|
* Input: pixs (8 bpp)
|
|
* vc (vector of 8 coefficients for affine transformation)
|
|
* grayval (0 to bring in BLACK, 255 for WHITE)
|
|
* Return: pixd, or null on error
|
|
*/
|
|
PIX *
|
|
pixProjectiveGray(PIX *pixs,
|
|
l_float32 *vc,
|
|
l_uint8 grayval)
|
|
{
|
|
l_int32 i, j, w, h, wpls, wpld, val;
|
|
l_uint32 *datas, *datad, *lined;
|
|
l_float32 x, y;
|
|
PIX *pixd;
|
|
|
|
PROCNAME("pixProjectiveGray");
|
|
|
|
if (!pixs)
|
|
return (PIX *)ERROR_PTR("pixs not defined", procName, NULL);
|
|
pixGetDimensions(pixs, &w, &h, NULL);
|
|
if (pixGetDepth(pixs) != 8)
|
|
return (PIX *)ERROR_PTR("pixs must be 8 bpp", procName, NULL);
|
|
if (!vc)
|
|
return (PIX *)ERROR_PTR("vc not defined", procName, NULL);
|
|
|
|
datas = pixGetData(pixs);
|
|
wpls = pixGetWpl(pixs);
|
|
pixd = pixCreateTemplate(pixs);
|
|
pixSetAllArbitrary(pixd, grayval);
|
|
datad = pixGetData(pixd);
|
|
wpld = pixGetWpl(pixd);
|
|
|
|
/* Iterate over destination pixels */
|
|
for (i = 0; i < h; i++) {
|
|
lined = datad + i * wpld;
|
|
for (j = 0; j < w; j++) {
|
|
/* Compute float src pixel location corresponding to (i,j) */
|
|
projectiveXformPt(vc, j, i, &x, &y);
|
|
linearInterpolatePixelGray(datas, wpls, w, h, x, y, grayval, &val);
|
|
SET_DATA_BYTE(lined, j, val);
|
|
}
|
|
}
|
|
|
|
return pixd;
|
|
}
|
|
|
|
|
|
/*-------------------------------------------------------------*
|
|
* Projective coordinate transformation *
|
|
*-------------------------------------------------------------*/
|
|
/*!
|
|
* getProjectiveXformCoeffs()
|
|
*
|
|
* Input: ptas (source 4 points; unprimed)
|
|
* ptad (transformed 4 points; primed)
|
|
* &vc (<return> vector of coefficients of transform)
|
|
* Return: 0 if OK; 1 on error
|
|
*
|
|
* We have a set of 8 equations, describing the projective
|
|
* transformation that takes 4 points (ptas) into 4 other
|
|
* points (ptad). These equations are:
|
|
*
|
|
* x1' = (c[0]*x1 + c[1]*y1 + c[2]) / (c[6]*x1 + c[7]*y1 + 1)
|
|
* y1' = (c[3]*x1 + c[4]*y1 + c[5]) / (c[6]*x1 + c[7]*y1 + 1)
|
|
* x2' = (c[0]*x2 + c[1]*y2 + c[2]) / (c[6]*x2 + c[7]*y2 + 1)
|
|
* y2' = (c[3]*x2 + c[4]*y2 + c[5]) / (c[6]*x2 + c[7]*y2 + 1)
|
|
* x3' = (c[0]*x3 + c[1]*y3 + c[2]) / (c[6]*x3 + c[7]*y3 + 1)
|
|
* y3' = (c[3]*x3 + c[4]*y3 + c[5]) / (c[6]*x3 + c[7]*y3 + 1)
|
|
* x4' = (c[0]*x4 + c[1]*y4 + c[2]) / (c[6]*x4 + c[7]*y4 + 1)
|
|
* y4' = (c[3]*x4 + c[4]*y4 + c[5]) / (c[6]*x4 + c[7]*y4 + 1)
|
|
*
|
|
* Multiplying both sides of each eqn by the denominator, we get
|
|
*
|
|
* AC = B
|
|
*
|
|
* where B and C are column vectors
|
|
*
|
|
* B = [ x1' y1' x2' y2' x3' y3' x4' y4' ]
|
|
* C = [ c[0] c[1] c[2] c[3] c[4] c[5] c[6] c[7] ]
|
|
*
|
|
* and A is the 8x8 matrix
|
|
*
|
|
* x1 y1 1 0 0 0 -x1*x1' -y1*x1'
|
|
* 0 0 0 x1 y1 1 -x1*y1' -y1*y1'
|
|
* x2 y2 1 0 0 0 -x2*x2' -y2*x2'
|
|
* 0 0 0 x2 y2 1 -x2*y2' -y2*y2'
|
|
* x3 y3 1 0 0 0 -x3*x3' -y3*x3'
|
|
* 0 0 0 x3 y3 1 -x3*y3' -y3*y3'
|
|
* x4 y4 1 0 0 0 -x4*x4' -y4*x4'
|
|
* 0 0 0 x4 y4 1 -x4*y4' -y4*y4'
|
|
*
|
|
* These eight equations are solved here for the coefficients C.
|
|
*
|
|
* These eight coefficients can then be used to find the mapping
|
|
* (x,y) --> (x',y'):
|
|
*
|
|
* x' = (c[0]x + c[1]y + c[2]) / (c[6]x + c[7]y + 1)
|
|
* y' = (c[3]x + c[4]y + c[5]) / (c[6]x + c[7]y + 1)
|
|
*
|
|
* that is implemented in projectiveXformSampled() and
|
|
* projectiveXFormInterpolated().
|
|
*/
|
|
l_int32
|
|
getProjectiveXformCoeffs(PTA *ptas,
|
|
PTA *ptad,
|
|
l_float32 **pvc)
|
|
{
|
|
l_int32 i;
|
|
l_float32 x1, y1, x2, y2, x3, y3, x4, y4;
|
|
l_float32 *b; /* rhs vector of primed coords X'; coeffs returned in *pvc */
|
|
l_float32 *a[8]; /* 8x8 matrix A */
|
|
|
|
PROCNAME("getProjectiveXformCoeffs");
|
|
|
|
if (!ptas)
|
|
return ERROR_INT("ptas not defined", procName, 1);
|
|
if (!ptad)
|
|
return ERROR_INT("ptad not defined", procName, 1);
|
|
if (!pvc)
|
|
return ERROR_INT("&vc not defined", procName, 1);
|
|
|
|
if ((b = (l_float32 *)CALLOC(8, sizeof(l_float32))) == NULL)
|
|
return ERROR_INT("b not made", procName, 1);
|
|
*pvc = b;
|
|
|
|
ptaGetPt(ptas, 0, &x1, &y1);
|
|
ptaGetPt(ptas, 1, &x2, &y2);
|
|
ptaGetPt(ptas, 2, &x3, &y3);
|
|
ptaGetPt(ptas, 3, &x4, &y4);
|
|
ptaGetPt(ptad, 0, &b[0], &b[1]);
|
|
ptaGetPt(ptad, 1, &b[2], &b[3]);
|
|
ptaGetPt(ptad, 2, &b[4], &b[5]);
|
|
ptaGetPt(ptad, 3, &b[6], &b[7]);
|
|
|
|
for (i = 0; i < 8; i++) {
|
|
if ((a[i] = (l_float32 *)CALLOC(8, sizeof(l_float32))) == NULL)
|
|
return ERROR_INT("a[i] not made", procName, 1);
|
|
}
|
|
|
|
a[0][0] = x1;
|
|
a[0][1] = y1;
|
|
a[0][2] = 1.;
|
|
a[0][6] = -x1 * b[0];
|
|
a[0][7] = -y1 * b[0];
|
|
a[1][3] = x1;
|
|
a[1][4] = y1;
|
|
a[1][5] = 1;
|
|
a[1][6] = -x1 * b[1];
|
|
a[1][7] = -y1 * b[1];
|
|
a[2][0] = x2;
|
|
a[2][1] = y2;
|
|
a[2][2] = 1.;
|
|
a[2][6] = -x2 * b[2];
|
|
a[2][7] = -y2 * b[2];
|
|
a[3][3] = x2;
|
|
a[3][4] = y2;
|
|
a[3][5] = 1;
|
|
a[3][6] = -x2 * b[3];
|
|
a[3][7] = -y2 * b[3];
|
|
a[4][0] = x3;
|
|
a[4][1] = y3;
|
|
a[4][2] = 1.;
|
|
a[4][6] = -x3 * b[4];
|
|
a[4][7] = -y3 * b[4];
|
|
a[5][3] = x3;
|
|
a[5][4] = y3;
|
|
a[5][5] = 1;
|
|
a[5][6] = -x3 * b[5];
|
|
a[5][7] = -y3 * b[5];
|
|
a[6][0] = x4;
|
|
a[6][1] = y4;
|
|
a[6][2] = 1.;
|
|
a[6][6] = -x4 * b[6];
|
|
a[6][7] = -y4 * b[6];
|
|
a[7][3] = x4;
|
|
a[7][4] = y4;
|
|
a[7][5] = 1;
|
|
a[7][6] = -x4 * b[7];
|
|
a[7][7] = -y4 * b[7];
|
|
|
|
gaussjordan(a, b, 8);
|
|
|
|
for (i = 0; i < 8; i++)
|
|
FREE(a[i]);
|
|
|
|
return 0;
|
|
}
|
|
|
|
|
|
/*!
|
|
* projectiveXformSampledPt()
|
|
*
|
|
* Input: vc (vector of 8 coefficients)
|
|
* (x, y) (initial point)
|
|
* (&xp, &yp) (<return> transformed point)
|
|
* Return: 0 if OK; 1 on error
|
|
*
|
|
* Notes:
|
|
* (1) This finds the nearest pixel coordinates of the transformed point.
|
|
* (2) It does not check ptrs for returned data!
|
|
*/
|
|
l_int32
|
|
projectiveXformSampledPt(l_float32 *vc,
|
|
l_int32 x,
|
|
l_int32 y,
|
|
l_int32 *pxp,
|
|
l_int32 *pyp)
|
|
{
|
|
l_float32 factor;
|
|
|
|
PROCNAME("projectiveXformSampledPt");
|
|
|
|
if (!vc)
|
|
return ERROR_INT("vc not defined", procName, 1);
|
|
|
|
factor = 1. / (vc[6] * x + vc[7] * y + 1.);
|
|
*pxp = (l_int32)(factor * (vc[0] * x + vc[1] * y + vc[2]) + 0.5);
|
|
*pyp = (l_int32)(factor * (vc[3] * x + vc[4] * y + vc[5]) + 0.5);
|
|
return 0;
|
|
}
|
|
|
|
|
|
/*!
|
|
* projectiveXformPt()
|
|
*
|
|
* Input: vc (vector of 8 coefficients)
|
|
* (x, y) (initial point)
|
|
* (&xp, &yp) (<return> transformed point)
|
|
* Return: 0 if OK; 1 on error
|
|
*
|
|
* Notes:
|
|
* (1) This computes the floating point location of the transformed point.
|
|
* (2) It does not check ptrs for returned data!
|
|
*/
|
|
l_int32
|
|
projectiveXformPt(l_float32 *vc,
|
|
l_int32 x,
|
|
l_int32 y,
|
|
l_float32 *pxp,
|
|
l_float32 *pyp)
|
|
{
|
|
l_float32 factor;
|
|
|
|
PROCNAME("projectiveXformPt");
|
|
|
|
if (!vc)
|
|
return ERROR_INT("vc not defined", procName, 1);
|
|
|
|
factor = 1. / (vc[6] * x + vc[7] * y + 1.);
|
|
*pxp = factor * (vc[0] * x + vc[1] * y + vc[2]);
|
|
*pyp = factor * (vc[3] * x + vc[4] * y + vc[5]);
|
|
return 0;
|
|
}
|
|
|
|
|