3bf951f42c
Files correlati : pdflib Ricompilazione Demo : [ ] Commento : Aggiornata pdflib.dll alla versione 7.0.4 git-svn-id: svn://10.65.10.50/trunk@18580 c028cbd2-c16b-5b4b-a496-9718f37d4682
682 lines
16 KiB
C
Executable File
682 lines
16 KiB
C
Executable File
/*---------------------------------------------------------------------------*
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| PDFlib - A library for generating PDF on the fly |
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+---------------------------------------------------------------------------+
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| Copyright (c) 1997-2006 Thomas Merz and PDFlib GmbH. All rights reserved. |
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+---------------------------------------------------------------------------+
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| This software is subject to the PDFlib license. It is NOT in the |
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| public domain. Extended versions and commercial licenses are |
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| available, please check http://www.pdflib.com. |
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*---------------------------------------------------------------------------*/
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/* $Id: pc_geom.c,v 1.4 2009-03-23 08:51:17 guy Exp $
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*
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* Various geometry routines
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*
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*/
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#include "pc_util.h"
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#include "pc_geom.h"
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/* ---------------------- matrix functions ----------------------------- */
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pdc_bool
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pdc_is_identity_matrix(pdc_matrix *m)
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{
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return PDC_FLOAT_ISNULL(m->a - 1) &&
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PDC_FLOAT_ISNULL(m->b) &&
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PDC_FLOAT_ISNULL(m->c) &&
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PDC_FLOAT_ISNULL(m->d - 1) &&
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PDC_FLOAT_ISNULL(m->e) &&
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PDC_FLOAT_ISNULL(m->f);
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}
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/* identity matrix */
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void
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pdc_identity_matrix(pdc_matrix *M)
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{
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M->a = 1;
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M->b = 0;
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M->c = 0;
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M->d = 1;
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M->e = 0;
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M->f = 0;
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}
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/* translation matrix */
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void
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pdc_translation_matrix(pdc_scalar tx, pdc_scalar ty, pdc_matrix *M)
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{
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M->a = 1;
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M->b = 0;
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M->c = 0;
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M->d = 1;
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M->e = tx;
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M->f = ty;
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}
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/* scale matrix */
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void
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pdc_scale_matrix(pdc_scalar sx, pdc_scalar sy, pdc_matrix *M)
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{
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M->a = sx;
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M->b = 0;
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M->c = 0;
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M->d = sy;
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M->e = 0;
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M->f = 0;
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}
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/* rotation matrix */
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void
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pdc_rotation_matrix(pdc_scalar alpha, pdc_matrix *M)
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{
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pdc_scalar phi, c, s;
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phi = alpha * PDC_DEG2RAD;
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c = cos(phi);
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s = sin(phi);
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M->a = c;
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M->b = s;
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M->c = -s;
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M->d = c;
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M->e = 0;
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M->f = 0;
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}
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/* skew matrix */
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void
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pdc_skew_matrix(pdc_scalar alpha, pdc_scalar beta, pdc_matrix *M)
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{
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M->a = 1;
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M->b = tan(alpha * PDC_DEG2RAD);
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M->c = tan(beta * PDC_DEG2RAD);
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M->d = 1;
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M->e = 0;
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M->f = 0;
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}
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/* N = M * N */
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void
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pdc_multiply_matrix(const pdc_matrix *M, pdc_matrix *N)
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{
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pdc_matrix result;
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result.a = M->a * N->a + M->b * N->c;
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result.b = M->a * N->b + M->b * N->d;
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result.c = M->c * N->a + M->d * N->c;
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result.d = M->c * N->b + M->d * N->d;
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result.e = M->e * N->a + M->f * N->c + N->e;
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result.f = M->e * N->b + M->f * N->d + N->f;
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*N = result;
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}
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/* L = M * N */
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void
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pdc_multiply_matrix3(pdc_matrix *L, const pdc_matrix *M, const pdc_matrix *N)
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{
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L->a = M->a * N->a + M->b * N->c;
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L->b = M->a * N->b + M->b * N->d;
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L->c = M->c * N->a + M->d * N->c;
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L->d = M->c * N->b + M->d * N->d;
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L->e = M->e * N->a + M->f * N->c + N->e;
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L->f = M->e * N->b + M->f * N->d + N->f;
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}
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/* M = [a b c d e f] * M; */
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void
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pdc_multiply_6s_matrix(pdc_matrix *M, pdc_scalar a, pdc_scalar b, pdc_scalar c,
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pdc_scalar d, pdc_scalar e, pdc_scalar f)
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{
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pdc_matrix result;
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result.a = a * M->a + b * M->c;
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result.b = a * M->b + b * M->d;
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result.c = c * M->a + d * M->c;
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result.d = c * M->b + d * M->d;
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result.e = e * M->a + f * M->c + M->e;
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result.f = e * M->b + f * M->d + M->f;
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*M = result;
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}
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/* invert M and store the result in N */
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void
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pdc_invert_matrix(pdc_core *pdc, pdc_matrix *N, pdc_matrix *M)
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{
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pdc_scalar det = M->a * M->d - M->b * M->c;
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if (fabs(det) < PDC_SMALLREAL * PDC_SMALLREAL)
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pdc_error(pdc, PDC_E_INT_INVMATRIX,
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pdc_errprintf(pdc, "%f %f %f %f %f %f",
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M->a, M->b, M->c, M->d, M->e, M->f),
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0, 0, 0);
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N->a = M->d/det;
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N->b = -M->b/det;
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N->c = -M->c/det;
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N->d = M->a/det;
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N->e = -(M->e * N->a + M->f * N->c);
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N->f = -(M->e * N->b + M->f * N->d);
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}
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/* debug print */
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void
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pdc_print_matrix(const char *name, const pdc_matrix *M)
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{
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printf("%s: a=%g, b=%g, c=%g, d=%g, e=%g, f=%g\n",
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name, M->a, M->b, M->c, M->d, M->e, M->f);
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}
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/* transform scalar */
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pdc_scalar
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pdc_transform_scalar(const pdc_matrix *M, pdc_scalar s)
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{
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pdc_scalar det = M->a * M->d - M->b * M->c;
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return sqrt(fabs(det)) * s;
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}
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/* transform point */
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void
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pdc_transform_point(const pdc_matrix *M, pdc_scalar x, pdc_scalar y,
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pdc_scalar *tx, pdc_scalar *ty)
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{
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*tx = M->a * x + M->c * y + M->e;
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*ty = M->b * x + M->d * y + M->f;
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}
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/* transform vector */
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void
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pdc_transform_vector(const pdc_matrix *M, pdc_vector *v, pdc_vector *tv)
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{
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pdc_scalar tx = M->a * v->x + M->c * v->y + M->e;
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pdc_scalar ty = M->b * v->x + M->d * v->y + M->f;
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if (tv)
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{
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tv->x = tx;
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tv->y = ty;
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}
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else
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{
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v->x = tx;
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v->y = ty;
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}
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}
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/* transform relative vector */
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void
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pdc_transform_rvector(const pdc_matrix *M, pdc_vector *v, pdc_vector *tv)
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{
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pdc_scalar tx = M->a * v->x + M->c * v->y;
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pdc_scalar ty = M->b * v->x + M->d * v->y;
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if (tv)
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{
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tv->x = tx;
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tv->y = ty;
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}
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else
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{
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v->x = tx;
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v->y = ty;
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}
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}
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/* get length of vector */
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pdc_scalar
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pdc_get_vector_length(pdc_vector *start, pdc_vector *end)
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{
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pdc_scalar dx = end->x - start->x;
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pdc_scalar dy = end->y - start->y;
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return sqrt(dx * dx + dy * dy);
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}
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/* ---------------------- utility functions ----------------------------- */
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void
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pdc_place_element(pdc_fitmethod method, pdc_scalar minfscale,
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const pdc_box *fitbox, const pdc_vector *fitrelpos,
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const pdc_vector *elemsize, const pdc_vector *elemrelpos,
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pdc_box *elembox, pdc_vector *scale)
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{
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pdc_vector refpos;
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pdc_scalar width, height, det, fscale = 1.0;
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pdc_bool xscaling = pdc_false;
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/* reference position in fitbox */
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width = fitbox->ur.x - fitbox->ll.x;
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height = fitbox->ur.y - fitbox->ll.y;
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refpos.x = fitbox->ll.x + fitrelpos->x * width;
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refpos.y = fitbox->ll.y + fitrelpos->y * height;
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/* first check */
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switch (method)
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{
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case pdc_entire:
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case pdc_slice:
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case pdc_meet:
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case pdc_tauto:
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if (fabs(width) > PDC_FLOAT_PREC && fabs(height) > PDC_FLOAT_PREC)
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{
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if (method != pdc_entire)
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{
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det = elemsize->x * height - elemsize->y * width;
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xscaling = (method == pdc_slice && det <= 0) ||
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((method == pdc_meet || method == pdc_tauto) &&
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det > 0) ? pdc_true : pdc_false;
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if (xscaling)
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fscale = width / elemsize->x;
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else
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fscale = height / elemsize->y;
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}
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if (method == pdc_tauto)
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{
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if(fscale >= 1.0)
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{
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method = pdc_nofit;
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}
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else if (fscale < minfscale)
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{
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method = pdc_meet;
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}
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}
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}
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else
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{
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method = pdc_nofit;
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}
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break;
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default:
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break;
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}
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/* calculation */
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switch (method)
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{
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/* entire box is covered by entire element */
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case pdc_entire:
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*elembox = *fitbox;
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scale->x = width / elemsize->x;
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scale->y = height / elemsize->y;
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return;
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/* fit into and preserve aspect ratio */
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case pdc_slice:
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case pdc_meet:
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if (xscaling)
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height = fscale * elemsize->y;
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else
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width = fscale * elemsize->x;
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scale->x = fscale;
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scale->y = fscale;
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break;
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/* fit into and doesn't preserve aspect ratio */
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case pdc_tauto:
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if (xscaling)
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{
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height = elemsize->y;
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scale->x = fscale;
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scale->y = 1.0;
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}
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else
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{
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width = elemsize->x;
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scale->x = 1.0;
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scale->y = fscale;
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}
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break;
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/* only positioning */
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case pdc_nofit:
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case pdc_clip:
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width = elemsize->x;
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height = elemsize->y;
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scale->x = 1.0;
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scale->y = 1.0;
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break;
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}
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/* placed element box */
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elembox->ll.x = refpos.x - elemrelpos->x * width;
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elembox->ll.y = refpos.y - elemrelpos->y * height;
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elembox->ur.x = refpos.x + (1.0 - elemrelpos->x) * width;
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elembox->ur.y = refpos.y + (1.0 - elemrelpos->y) * height;
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}
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void
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pdc_box2polyline(const pdc_matrix *M, const pdc_box *box, pdc_vector *polyline)
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{
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pdc_scalar x[4], y[4];
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/* counterclockwise order */
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if (M != NULL)
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{
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pdc_transform_point(M, box->ll.x, box->ll.y, &x[0], &y[0]);
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pdc_transform_point(M, box->ur.x, box->ll.y, &x[1], &y[1]);
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pdc_transform_point(M, box->ur.x, box->ur.y, &x[2], &y[2]);
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pdc_transform_point(M, box->ll.x, box->ur.y, &x[3], &y[3]);
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polyline[0].x = x[0];
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polyline[0].y = y[0];
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polyline[1].x = x[1];
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polyline[1].y = y[1];
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polyline[2].x = x[2];
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polyline[2].y = y[2];
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polyline[3].x = x[3];
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polyline[3].y = y[3];
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polyline[4] = polyline[0];
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}
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else
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{
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polyline[0].x = box->ll.x;
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polyline[0].y = box->ll.y;
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polyline[1].x = box->ur.x;
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polyline[1].y = box->ll.y;
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polyline[2].x = box->ur.x;
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polyline[2].y = box->ur.y;
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polyline[3].x = box->ll.x;
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polyline[3].y = box->ur.y;
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polyline[4] = polyline[0];
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}
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}
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void *
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pdc_delete_polylinelist(pdc_core *pdc, pdc_polyline *polylinelist, int nplines)
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{
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int i;
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if (polylinelist != NULL)
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{
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for (i = 0; i < nplines; i++)
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pdc_free(pdc, polylinelist[i].p);
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pdc_free(pdc, polylinelist);
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}
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return NULL;
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}
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void
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pdc_init_box(pdc_box *box)
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{
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box->ll.x = PDC_FLOAT_MAX;
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box->ll.y = PDC_FLOAT_MAX;
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box->ur.x = PDC_FLOAT_MIN;
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box->ur.y = PDC_FLOAT_MIN;
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}
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void
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pdc_adapt_box(pdc_box *box, const pdc_vector *v)
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{
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if (v->x < box->ll.x)
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box->ll.x = v->x;
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if (v->y < box->ll.y)
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box->ll.y = v->y;
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if (v->x > box->ur.x)
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box->ur.x = v->x;
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if (v->y > box->ur.y)
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box->ur.y = v->y;
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}
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void
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pdc_normalize_box(pdc_box *box, pdc_scalar ydir)
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{
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pdc_scalar sxy;
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if (box->ll.x > box->ur.x)
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{
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sxy = box->ll.x;
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box->ll.x = box->ur.x;
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box->ur.x = sxy;
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}
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if (ydir * box->ll.y > ydir * box->ur.y)
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{
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sxy = box->ll.y;
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box->ll.y = box->ur.y;
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box->ur.y = sxy;
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}
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}
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void
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pdc_transform_box(const pdc_matrix *M, pdc_box *box, pdc_box *tbox)
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{
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pdc_vector polyline[5];
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pdc_box tmpbox;
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int i;
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pdc_box2polyline(NULL, box, polyline);
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pdc_init_box(&tmpbox);
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for (i = 0; i < 4; i++)
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{
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pdc_transform_vector(M, &polyline[i], NULL);
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pdc_adapt_box(&tmpbox, &polyline[i]);
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}
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if (tbox)
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*tbox = tmpbox;
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else
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*box = tmpbox;
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}
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/* --------------------------- rectangles --------------------------- */
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pdc_bool
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pdc_rect_isnull(const pdc_rectangle *r)
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{
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if (!r)
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return pdc_true;
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return
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(r->llx == 0 && r->lly == 0 &&
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r->urx == 0 && r->ury == 0);
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}
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pdc_bool
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pdc_rect_contains(const pdc_rectangle *r1, const pdc_rectangle *r2)
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{
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return
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(r1->llx <= r2->llx && r1->lly <= r2->lly &&
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r1->urx >= r2->urx && r1->ury >= r2->ury);
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}
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void
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pdc_rect_copy(pdc_rectangle *r1, const pdc_rectangle *r2)
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{
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r1->llx = r2->llx;
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r1->lly = r2->lly;
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r1->urx = r2->urx;
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r1->ury = r2->ury;
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}
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void
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pdc_rect_init(pdc_rectangle *r, pdc_scalar llx, pdc_scalar lly,
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pdc_scalar urx, pdc_scalar ury)
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{
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r->llx = llx;
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r->lly = lly;
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r->urx = urx;
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r->ury = ury;
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}
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pdc_bool
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pdc_rect_intersect(
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pdc_rectangle *result,
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const pdc_rectangle *r1,
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const pdc_rectangle *r2)
|
|
{
|
|
if (r1->urx <= r2->llx ||
|
|
r2->urx <= r1->llx ||
|
|
r1->ury <= r2->lly ||
|
|
r2->ury <= r1->lly)
|
|
{
|
|
if (result)
|
|
{
|
|
result->llx = result->lly = result->urx = result->ury = 0;
|
|
}
|
|
|
|
return pdc_false;
|
|
}
|
|
|
|
if (result)
|
|
{
|
|
result->llx = MAX(r1->llx, r2->llx);
|
|
result->urx = MIN(r1->urx, r2->urx);
|
|
result->lly = MAX(r1->lly, r2->lly);
|
|
result->ury = MIN(r1->ury, r2->ury);
|
|
}
|
|
|
|
return pdc_true;
|
|
}
|
|
|
|
void
|
|
pdc_rect_transform(const pdc_matrix *M, const pdc_rectangle *r1,
|
|
pdc_rectangle *r2)
|
|
{
|
|
pdc_scalar x[4], y[4];
|
|
int i;
|
|
|
|
pdc_transform_point(M, r1->llx, r1->lly, &x[0], &y[0]);
|
|
pdc_transform_point(M, r1->urx, r1->lly, &x[1], &y[1]);
|
|
pdc_transform_point(M, r1->urx, r1->ury, &x[2], &y[2]);
|
|
pdc_transform_point(M, r1->llx, r1->ury, &x[3], &y[3]);
|
|
|
|
pdc_rect_init(r2, PDC_FLOAT_MAX, PDC_FLOAT_MAX,
|
|
PDC_FLOAT_MIN, PDC_FLOAT_MIN);
|
|
|
|
for (i = 0; i < 4; i++)
|
|
{
|
|
if (x[i] < r2->llx)
|
|
r2->llx = x[i];
|
|
if (y[i] < r2->lly)
|
|
r2->lly = y[i];
|
|
|
|
if (x[i] > r2->urx)
|
|
r2->urx = x[i];
|
|
if (y[i] > r2->ury)
|
|
r2->ury = y[i];
|
|
}
|
|
}
|
|
|
|
void pdc_rect_normalize(pdc_rectangle *r)
|
|
{
|
|
double aux;
|
|
|
|
if (r->urx < r->llx)
|
|
{
|
|
aux = r->llx; r->llx = r->urx; r->urx = aux;
|
|
}
|
|
|
|
if (r->ury < r->lly)
|
|
{
|
|
aux = r->lly; r->lly = r->ury; r->ury = aux;
|
|
}
|
|
}
|
|
|
|
void pdc_rect_normalize2(pdc_rectangle *dst, const pdc_rectangle *src)
|
|
{
|
|
if (src->llx < src->urx)
|
|
{
|
|
dst->llx = src->llx;
|
|
dst->urx = src->urx;
|
|
}
|
|
else
|
|
{
|
|
dst->llx = src->urx;
|
|
dst->urx = src->llx;
|
|
}
|
|
|
|
if (src->lly < src->ury)
|
|
{
|
|
dst->lly = src->lly;
|
|
dst->ury = src->ury;
|
|
}
|
|
else
|
|
{
|
|
dst->lly = src->ury;
|
|
dst->ury = src->lly;
|
|
}
|
|
}
|
|
|
|
void
|
|
pdc_polyline2rect(const pdc_vector *polyline, int np, pdc_rectangle *r)
|
|
{
|
|
int i;
|
|
|
|
pdc_rect_init(r, PDC_FLOAT_MAX, PDC_FLOAT_MAX,
|
|
PDC_FLOAT_MIN, PDC_FLOAT_MIN);
|
|
|
|
for (i = 0; i < np; i++)
|
|
{
|
|
if (polyline[i].x < r->llx)
|
|
r->llx = polyline[i].x;
|
|
if (polyline[i].y < r->lly)
|
|
r->lly = polyline[i].y;
|
|
|
|
if (polyline[i].x > r->urx)
|
|
r->urx = polyline[i].x;
|
|
if (polyline[i].y > r->ury)
|
|
r->ury = polyline[i].y;
|
|
}
|
|
}
|
|
|
|
void
|
|
pdc_rect2polyline(const pdc_matrix *M, const pdc_rectangle *r,
|
|
pdc_vector *polyline)
|
|
{
|
|
pdc_scalar x[4], y[4];
|
|
|
|
/* counterclockwise order */
|
|
if (M != NULL)
|
|
{
|
|
pdc_transform_point(M, r->llx, r->lly, &x[0], &y[0]);
|
|
pdc_transform_point(M, r->urx, r->lly, &x[1], &y[1]);
|
|
pdc_transform_point(M, r->urx, r->ury, &x[2], &y[2]);
|
|
pdc_transform_point(M, r->llx, r->ury, &x[3], &y[3]);
|
|
|
|
polyline[0].x = x[0];
|
|
polyline[0].y = y[0];
|
|
polyline[1].x = x[1];
|
|
polyline[1].y = y[1];
|
|
polyline[2].x = x[2];
|
|
polyline[2].y = y[2];
|
|
polyline[3].x = x[3];
|
|
polyline[3].y = y[3];
|
|
polyline[4] = polyline[0];
|
|
}
|
|
else
|
|
{
|
|
polyline[0].x = r->llx;
|
|
polyline[0].y = r->lly;
|
|
polyline[1].x = r->urx;
|
|
polyline[1].y = r->lly;
|
|
polyline[2].x = r->urx;
|
|
polyline[2].y = r->ury;
|
|
polyline[3].x = r->llx;
|
|
polyline[3].y = r->ury;
|
|
polyline[4] = polyline[0];
|
|
}
|
|
}
|
|
|
|
/* debug print */
|
|
void
|
|
pdc_print_rectangle(const char *name, const pdc_rectangle *r)
|
|
{
|
|
printf("%s: llx=%g, lly=%g, urx=%g, ury=%g\n",
|
|
name, r->llx, r->lly, r->urx, r->ury);
|
|
}
|