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/* Copyright (C) 1992, 1995, 1996, 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: zht2.c,v 1.14 2005/10/11 10:04:28 leonardo Exp $ */
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/* Level 2 sethalftone operator */
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#include "ghost.h"
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#include "oper.h"
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#include "gsstruct.h"
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#include "gxdevice.h" /* for gzht.h */
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#include "gzht.h"
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#include "estack.h"
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#include "ialloc.h"
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#include "iddict.h"
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#include "idparam.h"
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#include "igstate.h"
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#include "icolor.h"
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#include "iht.h"
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#include "store.h"
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#include "iname.h"
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#include "zht2.h"
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/* Forward references */
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private int dict_spot_params(const ref *, gs_spot_halftone *, ref *, ref *);
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private int dict_spot_results(i_ctx_t *, ref *, const gs_spot_halftone *);
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private int dict_threshold_params(const ref *, gs_threshold_halftone *,
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ref *);
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private int dict_threshold2_params(const ref *, gs_threshold2_halftone *,
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ref *, gs_memory_t *);
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/*
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* This routine translates a gs_separation_name value into a character string
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* pointer and a string length.
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*/
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int
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gs_get_colorname_string(const gs_memory_t *mem, gs_separation_name colorname_index,
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unsigned char **ppstr, unsigned int *pname_size)
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{
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ref nref;
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name_index_ref(mem, colorname_index, &nref);
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name_string_ref(mem, &nref, &nref);
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return obj_string_data(mem, &nref, (const unsigned char**) ppstr, pname_size);
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}
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/* Dummy spot function */
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private float
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spot1_dummy(floatp x, floatp y)
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{
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return (x + y) / 2;
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}
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/* <dict> <dict5> .sethalftone5 - */
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private int sethalftone_finish(i_ctx_t *);
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private int sethalftone_cleanup(i_ctx_t *);
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private int
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zsethalftone5(i_ctx_t *i_ctx_p)
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{
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os_ptr op = osp;
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uint count;
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gs_halftone_component *phtc;
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gs_halftone_component *pc;
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int code = 0;
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int j;
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gs_halftone *pht;
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gx_device_halftone *pdht;
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ref sprocs[GS_CLIENT_COLOR_MAX_COMPONENTS + 1];
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ref tprocs[GS_CLIENT_COLOR_MAX_COMPONENTS + 1];
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gs_memory_t *mem;
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uint edepth = ref_stack_count(&e_stack);
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int npop = 2;
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int dict_enum = dict_first(op);
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ref rvalue[2];
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int cname, colorant_number;
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byte * pname;
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uint name_size;
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int halftonetype, type = 0;
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gs_state *pgs = igs;
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int space_index = r_space_index(op - 1);
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mem = (gs_memory_t *) idmemory->spaces_indexed[space_index];
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check_type(*op, t_dictionary);
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check_dict_read(*op);
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check_type(op[-1], t_dictionary);
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check_dict_read(op[-1]);
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/*
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* We think that Type 2 and Type 4 halftones, like
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* screens set by setcolorscreen, adapt automatically to
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* the device color space, so we need to mark them
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* with a different internal halftone type.
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*/
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dict_int_param(op - 1, "HalftoneType", 1, 5, 0, &type);
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halftonetype = (type == 2 || type == 4)
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? ht_type_multiple_colorscreen
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: ht_type_multiple;
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/* Count how many components that we will actually use. */
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for (count = 0; ;) {
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bool have_default = false;
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/* Move to next element in the dictionary */
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if ((dict_enum = dict_next(op, dict_enum, rvalue)) == -1)
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break;
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/*
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* Verify that we have a valid component. We may have a
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* /HalfToneType entry.
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*/
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if (!r_has_type(&rvalue[1], t_dictionary))
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continue;
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/* Get the name of the component verify that we will use it. */
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cname = name_index(mem, &rvalue[0]);
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code = gs_get_colorname_string(mem, cname, &pname, &name_size);
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if (code < 0)
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break;
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colorant_number = gs_cname_to_colorant_number(pgs, pname, name_size,
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halftonetype);
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if (colorant_number < 0)
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continue;
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else if (colorant_number == GX_DEVICE_COLOR_MAX_COMPONENTS) {
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/* If here then we have the "Default" component */
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if (have_default)
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return_error(e_rangecheck);
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have_default = true;
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}
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count++;
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/*
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* Check to see if we have already reached the legal number of
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* components.
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*/
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if (count > GS_CLIENT_COLOR_MAX_COMPONENTS + 1) {
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code = gs_note_error(e_rangecheck);
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break;
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}
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}
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check_estack(5); /* for sampling Type 1 screens */
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refset_null(sprocs, count);
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refset_null(tprocs, count);
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rc_alloc_struct_0(pht, gs_halftone, &st_halftone,
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imemory, pht = 0, ".sethalftone5");
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phtc = gs_alloc_struct_array(mem, count, gs_halftone_component,
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&st_ht_component_element,
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".sethalftone5");
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rc_alloc_struct_0(pdht, gx_device_halftone, &st_device_halftone,
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imemory, pdht = 0, ".sethalftone5");
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if (pht == 0 || phtc == 0 || pdht == 0) {
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j = 0; /* Quiet the compiler:
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gs_note_error isn't necessarily identity,
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so j could be left ununitialized. */
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code = gs_note_error(e_VMerror);
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} else {
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dict_enum = dict_first(op);
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for (j = 0, pc = phtc; ;) {
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int type;
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/* Move to next element in the dictionary */
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if ((dict_enum = dict_next(op, dict_enum, rvalue)) == -1)
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break;
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/*
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* Verify that we have a valid component. We may have a
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* /HalfToneType entry.
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*/
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if (!r_has_type(&rvalue[1], t_dictionary))
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continue;
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/* Get the name of the component */
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cname = name_index(mem, &rvalue[0]);
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code = gs_get_colorname_string(mem, cname, &pname, &name_size);
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if (code < 0)
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break;
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colorant_number = gs_cname_to_colorant_number(pgs, pname, name_size,
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halftonetype);
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if (colorant_number < 0)
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continue; /* Do not use this component */
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pc->cname = cname;
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pc->comp_number = colorant_number;
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/* Now process the component dictionary */
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check_dict_read(rvalue[1]);
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if (dict_int_param(&rvalue[1], "HalftoneType", 1, 7, 0, &type) < 0) {
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code = gs_note_error(e_typecheck);
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break;
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}
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switch (type) {
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default:
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code = gs_note_error(e_rangecheck);
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break;
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case 1:
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code = dict_spot_params(&rvalue[1], &pc->params.spot,
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sprocs + j, tprocs + j);
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pc->params.spot.screen.spot_function = spot1_dummy;
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pc->type = ht_type_spot;
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break;
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case 3:
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code = dict_threshold_params(&rvalue[1], &pc->params.threshold,
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tprocs + j);
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pc->type = ht_type_threshold;
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break;
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case 7:
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code = dict_threshold2_params(&rvalue[1], &pc->params.threshold2,
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tprocs + j, imemory);
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pc->type = ht_type_threshold2;
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break;
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}
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if (code < 0)
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break;
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pc++;
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j++;
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}
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}
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if (code >= 0) {
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pht->type = halftonetype;
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pht->params.multiple.components = phtc;
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pht->params.multiple.num_comp = j;
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pht->params.multiple.get_colorname_string = gs_get_colorname_string;
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code = gs_sethalftone_prepare(igs, pht, pdht);
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}
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if (code >= 0) {
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/*
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* Put the actual frequency and angle in the spot function component dictionaries.
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*/
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dict_enum = dict_first(op);
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for (pc = phtc; ; ) {
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/* Move to next element in the dictionary */
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if ((dict_enum = dict_next(op, dict_enum, rvalue)) == -1)
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break;
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/* Verify that we have a valid component */
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if (!r_has_type(&rvalue[1], t_dictionary))
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continue;
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/* Get the name of the component and verify that we will use it. */
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cname = name_index(mem, &rvalue[0]);
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code = gs_get_colorname_string(mem, cname, &pname, &name_size);
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if (code < 0)
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break;
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colorant_number = gs_cname_to_colorant_number(pgs, pname, name_size,
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halftonetype);
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if (colorant_number < 0)
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continue;
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if (pc->type == ht_type_spot) {
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code = dict_spot_results(i_ctx_p, &rvalue[1], &pc->params.spot);
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if (code < 0)
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break;
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}
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pc++;
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}
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}
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if (code >= 0) {
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/*
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* Schedule the sampling of any Type 1 screens,
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* and any (Type 1 or Type 3) TransferFunctions.
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* Save the stack depths in case we have to back out.
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*/
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uint odepth = ref_stack_count(&o_stack);
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ref odict, odict5;
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odict = op[-1];
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odict5 = *op;
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pop(2);
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op = osp;
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esp += 5;
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make_mark_estack(esp - 4, es_other, sethalftone_cleanup);
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esp[-3] = odict;
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make_istruct(esp - 2, 0, pht);
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make_istruct(esp - 1, 0, pdht);
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make_op_estack(esp, sethalftone_finish);
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for (j = 0; j < count; j++) {
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gx_ht_order *porder = NULL;
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if (pdht->components == 0)
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porder = &pdht->order;
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else {
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/* Find the component in pdht that matches component j in
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the pht; gs_sethalftone_prepare() may permute these. */
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int k;
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int comp_number = phtc[j].comp_number;
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for (k = 0; k < count; k++) {
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if (pdht->components[k].comp_number == comp_number) {
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porder = &pdht->components[k].corder;
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break;
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}
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}
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}
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303 |
switch (phtc[j].type) {
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case ht_type_spot:
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code = zscreen_enum_init(i_ctx_p, porder,
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&phtc[j].params.spot.screen,
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&sprocs[j], 0, 0, space_index);
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308 |
if (code < 0)
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break;
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310 |
/* falls through */
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311 |
case ht_type_threshold:
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if (!r_has_type(tprocs + j, t__invalid)) {
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313 |
/* Schedule TransferFunction sampling. */
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314 |
/****** check_xstack IS WRONG ******/
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315 |
check_ostack(zcolor_remap_one_ostack);
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316 |
check_estack(zcolor_remap_one_estack);
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317 |
code = zcolor_remap_one(i_ctx_p, tprocs + j,
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porder->transfer, igs,
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zcolor_remap_one_finish);
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op = osp;
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321 |
}
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322 |
break;
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323 |
default: /* not possible here, but to keep */
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324 |
/* the compilers happy.... */
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;
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326 |
}
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327 |
if (code < 0) { /* Restore the stack. */
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328 |
ref_stack_pop_to(&o_stack, odepth);
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329 |
ref_stack_pop_to(&e_stack, edepth);
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330 |
op = osp;
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331 |
op[-1] = odict;
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332 |
*op = odict5;
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333 |
break;
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334 |
}
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335 |
npop = 0;
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336 |
}
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337 |
}
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338 |
if (code < 0) {
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339 |
gs_free_object(mem, pdht, ".sethalftone5");
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340 |
gs_free_object(mem, phtc, ".sethalftone5");
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|
341 |
gs_free_object(mem, pht, ".sethalftone5");
|
|
|
342 |
return code;
|
|
|
343 |
}
|
|
|
344 |
pop(npop);
|
|
|
345 |
return (ref_stack_count(&e_stack) > edepth ? o_push_estack : 0);
|
|
|
346 |
}
|
|
|
347 |
|
|
|
348 |
/* Install the halftone after sampling. */
|
|
|
349 |
private int
|
|
|
350 |
sethalftone_finish(i_ctx_t *i_ctx_p)
|
|
|
351 |
{
|
|
|
352 |
gx_device_halftone *pdht = r_ptr(esp, gx_device_halftone);
|
|
|
353 |
int code;
|
|
|
354 |
|
|
|
355 |
if (pdht->components)
|
|
|
356 |
pdht->order = pdht->components[0].corder;
|
|
|
357 |
code = gx_ht_install(igs, r_ptr(esp - 1, gs_halftone), pdht);
|
|
|
358 |
if (code < 0)
|
|
|
359 |
return code;
|
|
|
360 |
istate->halftone = esp[-2];
|
|
|
361 |
esp -= 4;
|
|
|
362 |
sethalftone_cleanup(i_ctx_p);
|
|
|
363 |
return o_pop_estack;
|
|
|
364 |
}
|
|
|
365 |
/* Clean up after installing the halftone. */
|
|
|
366 |
private int
|
|
|
367 |
sethalftone_cleanup(i_ctx_t *i_ctx_p)
|
|
|
368 |
{
|
|
|
369 |
gx_device_halftone *pdht = r_ptr(&esp[4], gx_device_halftone);
|
|
|
370 |
gs_halftone *pht = r_ptr(&esp[3], gs_halftone);
|
|
|
371 |
|
|
|
372 |
gs_free_object(pdht->rc.memory, pdht,
|
|
|
373 |
"sethalftone_cleanup(device halftone)");
|
|
|
374 |
gs_free_object(pht->rc.memory, pht,
|
|
|
375 |
"sethalftone_cleanup(halftone)");
|
|
|
376 |
return 0;
|
|
|
377 |
}
|
|
|
378 |
|
|
|
379 |
/* ------ Initialization procedure ------ */
|
|
|
380 |
|
|
|
381 |
const op_def zht2_l2_op_defs[] =
|
|
|
382 |
{
|
|
|
383 |
op_def_begin_level2(),
|
|
|
384 |
{"2.sethalftone5", zsethalftone5},
|
|
|
385 |
/* Internal operators */
|
|
|
386 |
{"0%sethalftone_finish", sethalftone_finish},
|
|
|
387 |
op_def_end(0)
|
|
|
388 |
};
|
|
|
389 |
|
|
|
390 |
/* ------ Internal routines ------ */
|
|
|
391 |
|
|
|
392 |
/* Extract frequency, angle, spot function, and accurate screens flag */
|
|
|
393 |
/* from a dictionary. */
|
|
|
394 |
private int
|
|
|
395 |
dict_spot_params(const ref * pdict, gs_spot_halftone * psp,
|
|
|
396 |
ref * psproc, ref * ptproc)
|
|
|
397 |
{
|
|
|
398 |
int code;
|
|
|
399 |
|
|
|
400 |
check_dict_read(*pdict);
|
|
|
401 |
if ((code = dict_float_param(pdict, "Frequency", 0.0,
|
|
|
402 |
&psp->screen.frequency)) != 0 ||
|
|
|
403 |
(code = dict_float_param(pdict, "Angle", 0.0,
|
|
|
404 |
&psp->screen.angle)) != 0 ||
|
|
|
405 |
(code = dict_proc_param(pdict, "SpotFunction", psproc, false)) != 0 ||
|
|
|
406 |
(code = dict_bool_param(pdict, "AccurateScreens",
|
|
|
407 |
gs_currentaccuratescreens(),
|
|
|
408 |
&psp->accurate_screens)) < 0 ||
|
|
|
409 |
(code = dict_proc_param(pdict, "TransferFunction", ptproc, false)) < 0
|
|
|
410 |
)
|
|
|
411 |
return (code < 0 ? code : e_undefined);
|
|
|
412 |
psp->transfer = (code > 0 ? (gs_mapping_proc) 0 : gs_mapped_transfer);
|
|
|
413 |
psp->transfer_closure.proc = 0;
|
|
|
414 |
psp->transfer_closure.data = 0;
|
|
|
415 |
return 0;
|
|
|
416 |
}
|
|
|
417 |
|
|
|
418 |
/* Set actual frequency and angle in a dictionary. */
|
|
|
419 |
private int
|
|
|
420 |
dict_real_result(i_ctx_t *i_ctx_p, ref * pdict, const char *kstr, floatp val)
|
|
|
421 |
{
|
|
|
422 |
int code = 0;
|
|
|
423 |
ref *ignore;
|
|
|
424 |
|
|
|
425 |
if (dict_find_string(pdict, kstr, &ignore) > 0) {
|
|
|
426 |
ref rval;
|
|
|
427 |
|
|
|
428 |
check_dict_write(*pdict);
|
|
|
429 |
make_real(&rval, val);
|
|
|
430 |
code = idict_put_string(pdict, kstr, &rval);
|
|
|
431 |
}
|
|
|
432 |
return code;
|
|
|
433 |
}
|
|
|
434 |
private int
|
|
|
435 |
dict_spot_results(i_ctx_t *i_ctx_p, ref * pdict, const gs_spot_halftone * psp)
|
|
|
436 |
{
|
|
|
437 |
int code;
|
|
|
438 |
|
|
|
439 |
code = dict_real_result(i_ctx_p, pdict, "ActualFrequency",
|
|
|
440 |
psp->screen.actual_frequency);
|
|
|
441 |
if (code < 0)
|
|
|
442 |
return code;
|
|
|
443 |
return dict_real_result(i_ctx_p, pdict, "ActualAngle",
|
|
|
444 |
psp->screen.actual_angle);
|
|
|
445 |
}
|
|
|
446 |
|
|
|
447 |
/* Extract Width, Height, and TransferFunction from a dictionary. */
|
|
|
448 |
private int
|
|
|
449 |
dict_threshold_common_params(const ref * pdict,
|
|
|
450 |
gs_threshold_halftone_common * ptp,
|
|
|
451 |
ref **pptstring, ref *ptproc)
|
|
|
452 |
{
|
|
|
453 |
int code;
|
|
|
454 |
|
|
|
455 |
check_dict_read(*pdict);
|
|
|
456 |
if ((code = dict_int_param(pdict, "Width", 1, 0x7fff, -1,
|
|
|
457 |
&ptp->width)) < 0 ||
|
|
|
458 |
(code = dict_int_param(pdict, "Height", 1, 0x7fff, -1,
|
|
|
459 |
&ptp->height)) < 0 ||
|
|
|
460 |
(code = dict_find_string(pdict, "Thresholds", pptstring)) <= 0 ||
|
|
|
461 |
(code = dict_proc_param(pdict, "TransferFunction", ptproc, false)) < 0
|
|
|
462 |
)
|
|
|
463 |
return (code < 0 ? code : e_undefined);
|
|
|
464 |
ptp->transfer_closure.proc = 0;
|
|
|
465 |
ptp->transfer_closure.data = 0;
|
|
|
466 |
return code;
|
|
|
467 |
}
|
|
|
468 |
|
|
|
469 |
/* Extract threshold common parameters + Thresholds. */
|
|
|
470 |
private int
|
|
|
471 |
dict_threshold_params(const ref * pdict, gs_threshold_halftone * ptp,
|
|
|
472 |
ref * ptproc)
|
|
|
473 |
{
|
|
|
474 |
ref *tstring;
|
|
|
475 |
int code =
|
|
|
476 |
dict_threshold_common_params(pdict,
|
|
|
477 |
(gs_threshold_halftone_common *)ptp,
|
|
|
478 |
&tstring, ptproc);
|
|
|
479 |
|
|
|
480 |
if (code < 0)
|
|
|
481 |
return code;
|
|
|
482 |
check_read_type_only(*tstring, t_string);
|
|
|
483 |
if (r_size(tstring) != (long)ptp->width * ptp->height)
|
|
|
484 |
return_error(e_rangecheck);
|
|
|
485 |
ptp->thresholds.data = tstring->value.const_bytes;
|
|
|
486 |
ptp->thresholds.size = r_size(tstring);
|
|
|
487 |
ptp->transfer = (code > 0 ? (gs_mapping_proc) 0 : gs_mapped_transfer);
|
|
|
488 |
return 0;
|
|
|
489 |
}
|
|
|
490 |
|
|
|
491 |
/* Extract threshold common parameters + Thresholds, Width2, Height2, */
|
|
|
492 |
/* BitsPerSample. */
|
|
|
493 |
private int
|
|
|
494 |
dict_threshold2_params(const ref * pdict, gs_threshold2_halftone * ptp,
|
|
|
495 |
ref * ptproc, gs_memory_t *mem)
|
|
|
496 |
{
|
|
|
497 |
ref *tstring;
|
|
|
498 |
int code =
|
|
|
499 |
dict_threshold_common_params(pdict,
|
|
|
500 |
(gs_threshold_halftone_common *)ptp,
|
|
|
501 |
&tstring, ptproc);
|
|
|
502 |
int bps;
|
|
|
503 |
uint size;
|
|
|
504 |
int cw2, ch2;
|
|
|
505 |
|
|
|
506 |
if (code < 0 ||
|
|
|
507 |
(code = cw2 = dict_int_param(pdict, "Width2", 0, 0x7fff, 0,
|
|
|
508 |
&ptp->width2)) < 0 ||
|
|
|
509 |
(code = ch2 = dict_int_param(pdict, "Height2", 0, 0x7fff, 0,
|
|
|
510 |
&ptp->height2)) < 0 ||
|
|
|
511 |
(code = dict_int_param(pdict, "BitsPerSample", 8, 16, -1, &bps)) < 0
|
|
|
512 |
)
|
|
|
513 |
return code;
|
|
|
514 |
if ((bps != 8 && bps != 16) || cw2 != ch2 ||
|
|
|
515 |
(!cw2 && (ptp->width2 == 0 || ptp->height2 == 0))
|
|
|
516 |
)
|
|
|
517 |
return_error(e_rangecheck);
|
|
|
518 |
ptp->bytes_per_sample = bps / 8;
|
|
|
519 |
switch (r_type(tstring)) {
|
|
|
520 |
case t_string:
|
|
|
521 |
size = r_size(tstring);
|
|
|
522 |
gs_bytestring_from_string(&ptp->thresholds, tstring->value.const_bytes,
|
|
|
523 |
size);
|
|
|
524 |
break;
|
|
|
525 |
case t_astruct:
|
|
|
526 |
if (gs_object_type(mem, tstring->value.pstruct) != &st_bytes)
|
|
|
527 |
return_error(e_typecheck);
|
|
|
528 |
size = gs_object_size(mem, tstring->value.pstruct);
|
|
|
529 |
gs_bytestring_from_bytes(&ptp->thresholds, r_ptr(tstring, byte),
|
|
|
530 |
0, size);
|
|
|
531 |
break;
|
|
|
532 |
default:
|
|
|
533 |
return_error(e_typecheck);
|
|
|
534 |
}
|
|
|
535 |
check_read(*tstring);
|
|
|
536 |
if (size != (ptp->width * ptp->height + ptp->width2 * ptp->height2) *
|
|
|
537 |
ptp->bytes_per_sample)
|
|
|
538 |
return_error(e_rangecheck);
|
|
|
539 |
return 0;
|
|
|
540 |
}
|