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/* Copyright (C) 1997, 1998, 1999 Aladdin Enterprises. All rights reserved.
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This software is provided AS-IS with no warranty, either express or
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implied.
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This software is distributed under license and may not be copied,
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modified or distributed except as expressly authorized under the terms
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of the license contained in the file LICENSE in this distribution.
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For more information about licensing, please refer to
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http://www.ghostscript.com/licensing/. For information on
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commercial licensing, go to http://www.artifex.com/licensing/ or
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contact Artifex Software, Inc., 101 Lucas Valley Road #110,
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San Rafael, CA 94903, U.S.A., +1(415)492-9861.
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*/
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/* $Id: zdpnext.c,v 1.8 2005/03/14 18:08:37 dan Exp $ */
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/* NeXT Display PostScript extensions */
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#include "math_.h"
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#include "ghost.h"
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#include "oper.h"
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#include "gscoord.h"
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#include "gscspace.h" /* for iimage.h */
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#include "gsdpnext.h"
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#include "gsmatrix.h"
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#include "gsiparam.h" /* for iimage.h */
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#include "gsiparm2.h"
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#include "gspath2.h"
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#include "gxcvalue.h"
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#include "gxdevice.h"
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#include "gxsample.h"
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#include "ialloc.h"
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#include "igstate.h"
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#include "iimage.h"
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#include "iimage2.h"
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#include "store.h"
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/* ------ alpha channel ------ */
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/* - currentalpha <alpha> */
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private int
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zcurrentalpha(i_ctx_t *i_ctx_p)
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{
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os_ptr op = osp;
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push(1);
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make_real(op, gs_currentalpha(igs));
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return 0;
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}
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/* <alpha> setalpha - */
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private int
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zsetalpha(i_ctx_t *i_ctx_p)
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{
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os_ptr op = osp;
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double alpha;
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int code;
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if (real_param(op, &alpha) < 0)
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return_op_typecheck(op);
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if ((code = gs_setalpha(igs, alpha)) < 0)
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return code;
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pop(1);
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return 0;
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}
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/* ------ Imaging/compositing ------ */
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/*
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* Miscellaneous notes:
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*
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* composite / dissolve respect destination clipping (both clip & viewclip),
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* but ignore source clipping.
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* composite / dissolve must handle overlapping source/destination correctly.
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* compositing converts the source to the destination's color model
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* (including halftoning if needed).
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*/
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/*
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* Define the operand and bookeeping structure for a compositing operation.
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*/
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typedef struct alpha_composite_state_s {
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/* Compositing parameters */
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gs_composite_alpha_params_t params;
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/* Temporary structures */
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gs_composite_t *pcte;
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gx_device *cdev;
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gx_device *orig_dev;
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} alpha_composite_state_t;
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/* Forward references */
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private int begin_composite(i_ctx_t *, alpha_composite_state_t *);
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private void end_composite(i_ctx_t *, alpha_composite_state_t *);
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private int xywh_param(os_ptr, double[4]);
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/* <dict> .alphaimage - */
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/* This is the dictionary version of the alphaimage operator, which is */
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/* now a pseudo-operator (see gs_dpnxt.ps). */
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private int
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zalphaimage(i_ctx_t *i_ctx_p)
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{
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return image1_setup(i_ctx_p, true);
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}
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/* <destx> <desty> <width> <height> <op> compositerect - */
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private int
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zcompositerect(i_ctx_t *i_ctx_p)
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{
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os_ptr op = osp;
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double dest_rect[4];
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alpha_composite_state_t cstate;
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int code = xywh_param(op - 1, dest_rect);
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if (code < 0)
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return code;
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check_int_leu(*op, compositerect_last);
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cstate.params.op = (gs_composite_op_t) op->value.intval;
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code = begin_composite(i_ctx_p, &cstate);
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if (code < 0)
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return code;
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{
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gs_rect rect;
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rect.q.x = (rect.p.x = dest_rect[0]) + dest_rect[2];
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rect.q.y = (rect.p.y = dest_rect[1]) + dest_rect[3];
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code = gs_rectfill(igs, &rect, 1);
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}
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end_composite(i_ctx_p, &cstate);
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if (code >= 0)
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pop(5);
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return code;
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}
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/* Common code for composite and dissolve. */
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private int
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composite_image(i_ctx_t *i_ctx_p, const gs_composite_alpha_params_t * params)
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{
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os_ptr op = osp;
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alpha_composite_state_t cstate;
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gs_image2_t image;
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double src_rect[4];
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double dest_pt[2];
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gs_matrix save_ctm;
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int code = xywh_param(op - 4, src_rect);
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cstate.params = *params;
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gs_image2_t_init(&image);
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if (code < 0 ||
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(code = num_params(op - 1, 2, dest_pt)) < 0
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)
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return code;
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if (r_has_type(op - 3, t_null))
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image.DataSource = igs;
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else {
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check_stype(op[-3], st_igstate_obj);
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check_read(op[-3]);
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image.DataSource = igstate_ptr(op - 3);
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}
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image.XOrigin = src_rect[0];
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image.YOrigin = src_rect[1];
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image.Width = src_rect[2];
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image.Height = src_rect[3];
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image.PixelCopy = true;
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/* Compute appropriate transformations. */
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gs_currentmatrix(igs, &save_ctm);
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gs_translate(igs, dest_pt[0], dest_pt[1]);
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gs_make_identity(&image.ImageMatrix);
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if (image.DataSource == igs) {
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image.XOrigin -= dest_pt[0];
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image.YOrigin -= dest_pt[1];
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}
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code = begin_composite(i_ctx_p, &cstate);
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if (code >= 0) {
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code = process_non_source_image(i_ctx_p,
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(const gs_image_common_t *)&image,
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"composite_image");
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end_composite(i_ctx_p, &cstate);
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if (code >= 0)
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pop(8);
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}
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gs_setmatrix(igs, &save_ctm);
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return code;
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}
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/* <srcx> <srcy> <width> <height> <srcgstate|null> <destx> <desty> <op> */
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/* composite - */
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private int
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zcomposite(i_ctx_t *i_ctx_p)
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{
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os_ptr op = osp;
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gs_composite_alpha_params_t params;
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check_int_leu(*op, composite_last);
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params.op = (gs_composite_op_t) op->value.intval;
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return composite_image(i_ctx_p, ¶ms);
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}
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/* <srcx> <srcy> <width> <height> <srcgstate|null> <destx> <desty> <delta> */
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/* dissolve - */
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private int
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zdissolve(i_ctx_t *i_ctx_p)
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{
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os_ptr op = osp;
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gs_composite_alpha_params_t params;
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double delta;
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int code = real_param(op, &delta);
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if (code < 0)
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return code;
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if (delta < 0 || delta > 1)
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return_error(e_rangecheck);
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params.op = composite_Dissolve;
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params.delta = delta;
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return composite_image(i_ctx_p, ¶ms);
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}
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/* ------ Image reading ------ */
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private int device_is_true_color(gx_device * dev);
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/* <x> <y> <width> <height> <matrix> .sizeimagebox */
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/* <dev_x> <dev_y> <dev_width> <dev_height> <matrix> */
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private void box_confine(int *pp, int *pq, int wh);
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private int
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zsizeimagebox(i_ctx_t *i_ctx_p)
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{
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os_ptr op = osp;
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const gx_device *dev = gs_currentdevice(igs);
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gs_rect srect, drect;
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gs_matrix mat;
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gs_int_rect rect;
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int w, h;
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int code;
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check_type(op[-4], t_integer);
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check_type(op[-3], t_integer);
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check_type(op[-2], t_integer);
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check_type(op[-1], t_integer);
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srect.p.x = op[-4].value.intval;
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srect.p.y = op[-3].value.intval;
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srect.q.x = srect.p.x + op[-2].value.intval;
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srect.q.y = srect.p.y + op[-1].value.intval;
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gs_currentmatrix(igs, &mat);
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gs_bbox_transform(&srect, &mat, &drect);
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/*
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* We want the dimensions of the image as a source, not a
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* destination, so we need to expand it rather than pixround.
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*/
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rect.p.x = (int)floor(drect.p.x);
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rect.p.y = (int)floor(drect.p.y);
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rect.q.x = (int)ceil(drect.q.x);
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rect.q.y = (int)ceil(drect.q.y);
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/*
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* Clip the rectangle to the device boundaries, since that's what
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* the NeXT implementation does.
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*/
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box_confine(&rect.p.x, &rect.q.x, dev->width);
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box_confine(&rect.p.y, &rect.q.y, dev->height);
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w = rect.q.x - rect.p.x;
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h = rect.q.y - rect.p.y;
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/*
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* The NeXT documentation doesn't specify very clearly what is
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* supposed to be in the matrix: the following produces results
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* that match testing on an actual NeXT system.
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*/
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mat.tx -= rect.p.x;
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mat.ty -= rect.p.y;
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code = write_matrix(op, &mat);
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if (code < 0)
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return code;
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make_int(op - 4, rect.p.x);
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make_int(op - 3, rect.p.y);
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make_int(op - 2, w);
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make_int(op - 1, h);
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return 0;
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}
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private void
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box_confine(int *pp, int *pq, int wh)
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{
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if ( *pq <= 0 )
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*pp = *pq = 0;
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else if ( *pp >= wh )
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*pp = *pq = wh;
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else {
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if ( *pp < 0 )
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*pp = 0;
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if ( *pq > wh )
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*pq = wh;
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}
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}
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/* - .sizeimageparams <bits/sample> <multiproc> <ncolors> */
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private int
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zsizeimageparams(i_ctx_t *i_ctx_p)
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{
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os_ptr op = osp;
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gx_device *dev = gs_currentdevice(igs);
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int ncomp = dev->color_info.num_components;
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int bps;
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push(3);
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if (device_is_true_color(dev))
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bps = dev->color_info.depth / ncomp;
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else {
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/*
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* Set bps to the smallest allowable number of bits that is
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* sufficient to represent the number of different colors.
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*/
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gx_color_value max_value =
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(dev->color_info.num_components == 1 ?
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dev->color_info.max_gray :
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max(dev->color_info.max_gray, dev->color_info.max_color));
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static const gx_color_value sizes[] = {
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1, 2, 4, 8, 12, sizeof(gx_max_color_value) * 8
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};
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int i;
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for (i = 0;; ++i)
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if (max_value <= ((ulong) 1 << sizes[i]) - 1)
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break;
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bps = sizes[i];
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}
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make_int(op - 2, bps);
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make_false(op - 1);
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make_int(op, ncomp);
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return 0;
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}
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/* ------ Initialization procedure ------ */
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330 |
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const op_def zdpnext_op_defs[] =
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{
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{"0currentalpha", zcurrentalpha},
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{"1setalpha", zsetalpha},
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{"1.alphaimage", zalphaimage},
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{"8composite", zcomposite},
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{"5compositerect", zcompositerect},
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{"8dissolve", zdissolve},
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{"5.sizeimagebox", zsizeimagebox},
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{"0.sizeimageparams", zsizeimageparams},
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op_def_end(0)
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};
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343 |
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344 |
/* ------ Internal routines ------ */
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345 |
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346 |
/* Collect a rect operand. */
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347 |
private int
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348 |
xywh_param(os_ptr op, double rect[4])
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349 |
{
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350 |
int code = num_params(op, 4, rect);
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351 |
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|
352 |
if (code < 0)
|
|
|
353 |
return code;
|
|
|
354 |
if (rect[2] < 0)
|
|
|
355 |
rect[0] += rect[2], rect[2] = -rect[2];
|
|
|
356 |
if (rect[3] < 0)
|
|
|
357 |
rect[1] += rect[3], rect[3] = -rect[3];
|
|
|
358 |
return code;
|
|
|
359 |
}
|
|
|
360 |
|
|
|
361 |
/* Begin a compositing operation. */
|
|
|
362 |
private int
|
|
|
363 |
begin_composite(i_ctx_t *i_ctx_p, alpha_composite_state_t * pcp)
|
|
|
364 |
{
|
|
|
365 |
gx_device *dev = gs_currentdevice(igs);
|
|
|
366 |
int code =
|
|
|
367 |
gs_create_composite_alpha(&pcp->pcte, &pcp->params, imemory);
|
|
|
368 |
|
|
|
369 |
if (code < 0)
|
|
|
370 |
return code;
|
|
|
371 |
pcp->orig_dev = pcp->cdev = dev; /* for end_composite */
|
|
|
372 |
code = (*dev_proc(dev, create_compositor))
|
|
|
373 |
(dev, &pcp->cdev, pcp->pcte, (gs_imager_state *)igs, imemory);
|
|
|
374 |
if (code < 0) {
|
|
|
375 |
end_composite(i_ctx_p, pcp);
|
|
|
376 |
return code;
|
|
|
377 |
}
|
|
|
378 |
gs_setdevice_no_init(igs, pcp->cdev);
|
|
|
379 |
return 0;
|
|
|
380 |
}
|
|
|
381 |
|
|
|
382 |
/* End a compositing operation. */
|
|
|
383 |
private void
|
|
|
384 |
end_composite(i_ctx_t *i_ctx_p, alpha_composite_state_t * pcp)
|
|
|
385 |
{
|
|
|
386 |
/* Close and free the compositor and the compositing object. */
|
|
|
387 |
if (pcp->cdev != pcp->orig_dev) {
|
|
|
388 |
gs_closedevice(pcp->cdev); /* also frees the device */
|
|
|
389 |
gs_setdevice_no_init(igs, pcp->orig_dev);
|
|
|
390 |
}
|
|
|
391 |
ifree_object(pcp->pcte, "end_composite(gs_composite_t)");
|
|
|
392 |
}
|
|
|
393 |
|
|
|
394 |
/*
|
|
|
395 |
* Determine whether a device has decomposed pixels with the components
|
|
|
396 |
* in the standard PostScript order, and a 1-for-1 color map
|
|
|
397 |
* (possibly inverted). Return 0 if not true color, 1 if true color,
|
|
|
398 |
* -1 if inverted true color.
|
|
|
399 |
*/
|
|
|
400 |
private int
|
|
|
401 |
device_is_true_color(gx_device * dev)
|
|
|
402 |
{
|
|
|
403 |
int ncomp = dev->color_info.num_components;
|
|
|
404 |
int depth = dev->color_info.depth;
|
|
|
405 |
int i, max_v;
|
|
|
406 |
|
|
|
407 |
#define CV(i) (gx_color_value)((ulong)gx_max_color_value * i / max_v)
|
|
|
408 |
#define CV0 ((gx_color_value)0)
|
|
|
409 |
|
|
|
410 |
/****** DOESN'T HANDLE INVERSION YET ******/
|
|
|
411 |
switch (ncomp) {
|
|
|
412 |
case 1: /* gray-scale */
|
|
|
413 |
max_v = dev->color_info.max_gray;
|
|
|
414 |
if (max_v != (1 << depth) - 1)
|
|
|
415 |
return 0;
|
|
|
416 |
for (i = 0; i <= max_v; ++i) {
|
|
|
417 |
gx_color_value v[3];
|
|
|
418 |
v[0] = v[1] = v[2] = CV(i);
|
|
|
419 |
if ((*dev_proc(dev, map_rgb_color)) (dev, v) != i)
|
|
|
420 |
return 0;
|
|
|
421 |
}
|
|
|
422 |
return true;
|
|
|
423 |
case 3: /* RGB */
|
|
|
424 |
max_v = dev->color_info.max_color;
|
|
|
425 |
if (depth % 3 != 0 || max_v != (1 << (depth / 3)) - 1)
|
|
|
426 |
return false;
|
|
|
427 |
{
|
|
|
428 |
const int gs = depth / 3, rs = gs * 2;
|
|
|
429 |
|
|
|
430 |
for (i = 0; i <= max_v; ++i) {
|
|
|
431 |
gx_color_value red[3];
|
|
|
432 |
gx_color_value green[3];
|
|
|
433 |
gx_color_value blue[3];
|
|
|
434 |
red[0] = CV(i); red[1] = CV0, red[2] = CV0;
|
|
|
435 |
green[0] = CV0; green[1] = CV(i); green[2] = CV0;
|
|
|
436 |
blue[0] = CV0; blue[1] = CV0; blue[2] = CV(i);
|
|
|
437 |
if ((*dev_proc(dev, map_rgb_color)) (dev, red) !=
|
|
|
438 |
i << rs ||
|
|
|
439 |
(*dev_proc(dev, map_rgb_color)) (dev, green) !=
|
|
|
440 |
i << gs ||
|
|
|
441 |
(*dev_proc(dev, map_rgb_color)) (dev, blue) !=
|
|
|
442 |
i /*<< bs */
|
|
|
443 |
)
|
|
|
444 |
return 0;
|
|
|
445 |
}
|
|
|
446 |
}
|
|
|
447 |
return true;
|
|
|
448 |
case 4: /* CMYK */
|
|
|
449 |
max_v = dev->color_info.max_color;
|
|
|
450 |
if ((depth & 3) != 0 || max_v != (1 << (depth / 4)) - 1)
|
|
|
451 |
return false;
|
|
|
452 |
{
|
|
|
453 |
const int ys = depth / 4, ms = ys * 2, cs = ys * 3;
|
|
|
454 |
|
|
|
455 |
for (i = 0; i <= max_v; ++i) {
|
|
|
456 |
|
|
|
457 |
gx_color_value cyan[4];
|
|
|
458 |
gx_color_value magenta[4];
|
|
|
459 |
gx_color_value yellow[4];
|
|
|
460 |
gx_color_value black[4];
|
|
|
461 |
cyan[0] = CV(i); cyan[1] = cyan[2] = cyan[3] = CV0;
|
|
|
462 |
magenta[1] = CV(i); magenta[0] = magenta[2] = magenta[3] = CV0;
|
|
|
463 |
yellow[2] = CV(i); yellow[0] = yellow[1] = yellow[3] = CV0;
|
|
|
464 |
black[3] = CV(i); black[0] = black[1] = black[2] = CV0;
|
|
|
465 |
if ((*dev_proc(dev, map_cmyk_color)) (dev, cyan) !=
|
|
|
466 |
i << cs ||
|
|
|
467 |
(*dev_proc(dev, map_cmyk_color)) (dev, magenta) !=
|
|
|
468 |
i << ms ||
|
|
|
469 |
(*dev_proc(dev, map_cmyk_color)) (dev, yellow) !=
|
|
|
470 |
i << ys ||
|
|
|
471 |
(*dev_proc(dev, map_cmyk_color)) (dev, black) !=
|
|
|
472 |
i /*<< ks */
|
|
|
473 |
)
|
|
|
474 |
return 0;
|
|
|
475 |
}
|
|
|
476 |
}
|
|
|
477 |
return 1;
|
|
|
478 |
default:
|
|
|
479 |
return 0; /* DeviceN */
|
|
|
480 |
}
|
|
|
481 |
#undef CV
|
|
|
482 |
#undef CV0
|
|
|
483 |
}
|