forked from KolibriOS/kolibrios
754f9336f0
git-svn-id: svn://kolibrios.org@4349 a494cfbc-eb01-0410-851d-a64ba20cac60
339 lines
11 KiB
C
339 lines
11 KiB
C
/* cairo - a vector graphics library with display and print output
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*
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* Copyright © 2009 Eric Anholt
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* Copyright © 2009 Chris Wilson
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* Copyright © 2005,2010 Red Hat, Inc
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*
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* This library is free software; you can redistribute it and/or
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* modify it either under the terms of the GNU Lesser General Public
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* License version 2.1 as published by the Free Software Foundation
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* (the "LGPL") or, at your option, under the terms of the Mozilla
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* Public License Version 1.1 (the "MPL"). If you do not alter this
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* notice, a recipient may use your version of this file under either
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* the MPL or the LGPL.
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*
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* You should have received a copy of the LGPL along with this library
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* in the file COPYING-LGPL-2.1; if not, write to the Free Software
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* Foundation, Inc., 51 Franklin Street, Suite 500, Boston, MA 02110-1335, USA
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* You should have received a copy of the MPL along with this library
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* in the file COPYING-MPL-1.1
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*
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* The contents of this file are subject to the Mozilla Public License
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* Version 1.1 (the "License"); you may not use this file except in
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* compliance with the License. You may obtain a copy of the License at
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* http://www.mozilla.org/MPL/
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*
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* This software is distributed on an "AS IS" basis, WITHOUT WARRANTY
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* OF ANY KIND, either express or implied. See the LGPL or the MPL for
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* the specific language governing rights and limitations.
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*
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* The Original Code is the cairo graphics library.
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*
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* The Initial Developer of the Original Code is Red Hat, Inc.
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*
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* Contributor(s):
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* Benjamin Otte <otte@gnome.org>
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* Carl Worth <cworth@cworth.org>
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* Chris Wilson <chris@chris-wilson.co.uk>
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* Eric Anholt <eric@anholt.net>
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*/
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#include "cairoint.h"
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#include "cairo-error-private.h"
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#include "cairo-gl-gradient-private.h"
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#include "cairo-gl-private.h"
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static int
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_cairo_gl_gradient_sample_width (unsigned int n_stops,
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const cairo_gradient_stop_t *stops)
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{
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unsigned int n;
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int width;
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width = 8;
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for (n = 1; n < n_stops; n++) {
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double dx = stops[n].offset - stops[n-1].offset;
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double delta, max;
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int ramp;
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if (dx == 0)
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return 1024; /* we need to emulate an infinitely sharp step */
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max = fabs (stops[n].color.red - stops[n-1].color.red);
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delta = fabs (stops[n].color.green - stops[n-1].color.green);
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if (delta > max)
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max = delta;
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delta = fabs (stops[n].color.blue - stops[n-1].color.blue);
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if (delta > max)
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max = delta;
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delta = fabs (stops[n].color.alpha - stops[n-1].color.alpha);
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if (delta > max)
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max = delta;
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ramp = 128 * max / dx;
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if (ramp > width)
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width = ramp;
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}
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return (width + 7) & -8;
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}
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static uint8_t premultiply(double c, double a)
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{
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int v = c * a * 256;
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return v - (v >> 8);
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}
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static uint32_t color_stop_to_pixel(const cairo_gradient_stop_t *stop)
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{
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uint8_t a, r, g, b;
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a = stop->color.alpha_short >> 8;
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r = premultiply(stop->color.red, stop->color.alpha);
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g = premultiply(stop->color.green, stop->color.alpha);
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b = premultiply(stop->color.blue, stop->color.alpha);
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if (_cairo_is_little_endian ())
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return a << 24 | r << 16 | g << 8 | b << 0;
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else
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return a << 0 | r << 8 | g << 16 | b << 24;
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}
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static cairo_status_t
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_cairo_gl_gradient_render (const cairo_gl_context_t *ctx,
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unsigned int n_stops,
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const cairo_gradient_stop_t *stops,
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void *bytes,
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int width)
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{
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pixman_image_t *gradient, *image;
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pixman_gradient_stop_t pixman_stops_stack[32];
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pixman_gradient_stop_t *pixman_stops;
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pixman_point_fixed_t p1, p2;
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unsigned int i;
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pixman_format_code_t gradient_pixman_format;
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/*
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* Ensure that the order of the gradient's components in memory is BGRA.
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* This is done so that the gradient's pixel data is always suitable for
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* texture upload using format=GL_BGRA and type=GL_UNSIGNED_BYTE.
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*/
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if (_cairo_is_little_endian ())
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gradient_pixman_format = PIXMAN_a8r8g8b8;
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else
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gradient_pixman_format = PIXMAN_b8g8r8a8;
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pixman_stops = pixman_stops_stack;
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if (unlikely (n_stops > ARRAY_LENGTH (pixman_stops_stack))) {
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pixman_stops = _cairo_malloc_ab (n_stops,
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sizeof (pixman_gradient_stop_t));
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if (unlikely (pixman_stops == NULL))
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return _cairo_error (CAIRO_STATUS_NO_MEMORY);
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}
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for (i = 0; i < n_stops; i++) {
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pixman_stops[i].x = _cairo_fixed_16_16_from_double (stops[i].offset);
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pixman_stops[i].color.red = stops[i].color.red_short;
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pixman_stops[i].color.green = stops[i].color.green_short;
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pixman_stops[i].color.blue = stops[i].color.blue_short;
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pixman_stops[i].color.alpha = stops[i].color.alpha_short;
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}
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p1.x = _cairo_fixed_16_16_from_double (0.5);
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p1.y = 0;
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p2.x = _cairo_fixed_16_16_from_double (width - 0.5);
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p2.y = 0;
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gradient = pixman_image_create_linear_gradient (&p1, &p2,
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pixman_stops,
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n_stops);
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if (pixman_stops != pixman_stops_stack)
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free (pixman_stops);
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if (unlikely (gradient == NULL))
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return _cairo_error (CAIRO_STATUS_NO_MEMORY);
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pixman_image_set_filter (gradient, PIXMAN_FILTER_BILINEAR, NULL, 0);
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pixman_image_set_repeat (gradient, PIXMAN_REPEAT_PAD);
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image = pixman_image_create_bits (gradient_pixman_format, width, 1,
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bytes, sizeof(uint32_t)*width);
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if (unlikely (image == NULL)) {
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pixman_image_unref (gradient);
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return _cairo_error (CAIRO_STATUS_NO_MEMORY);
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}
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pixman_image_composite32 (PIXMAN_OP_SRC,
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gradient, NULL, image,
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0, 0,
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0, 0,
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0, 0,
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width, 1);
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pixman_image_unref (gradient);
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pixman_image_unref (image);
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/* We need to fudge pixel 0 to hold the left-most color stop and not
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* the neareset stop to the zeroth pixel centre in order to correctly
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* populate the border color. For completeness, do both edges.
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*/
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((uint32_t*)bytes)[0] = color_stop_to_pixel(&stops[0]);
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((uint32_t*)bytes)[width-1] = color_stop_to_pixel(&stops[n_stops-1]);
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return CAIRO_STATUS_SUCCESS;
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}
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static unsigned long
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_cairo_gl_gradient_hash (unsigned int n_stops,
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const cairo_gradient_stop_t *stops)
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{
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return _cairo_hash_bytes (n_stops,
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stops,
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sizeof (cairo_gradient_stop_t) * n_stops);
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}
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static cairo_gl_gradient_t *
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_cairo_gl_gradient_lookup (cairo_gl_context_t *ctx,
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unsigned long hash,
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unsigned int n_stops,
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const cairo_gradient_stop_t *stops)
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{
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cairo_gl_gradient_t lookup;
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lookup.cache_entry.hash = hash,
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lookup.n_stops = n_stops;
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lookup.stops = stops;
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return _cairo_cache_lookup (&ctx->gradients, &lookup.cache_entry);
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}
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cairo_bool_t
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_cairo_gl_gradient_equal (const void *key_a, const void *key_b)
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{
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const cairo_gl_gradient_t *a = key_a;
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const cairo_gl_gradient_t *b = key_b;
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if (a->n_stops != b->n_stops)
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return FALSE;
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return memcmp (a->stops, b->stops, a->n_stops * sizeof (cairo_gradient_stop_t)) == 0;
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}
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cairo_int_status_t
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_cairo_gl_gradient_create (cairo_gl_context_t *ctx,
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unsigned int n_stops,
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const cairo_gradient_stop_t *stops,
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cairo_gl_gradient_t **gradient_out)
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{
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unsigned long hash;
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cairo_gl_gradient_t *gradient;
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cairo_status_t status;
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int tex_width;
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GLint internal_format;
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void *data;
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if ((unsigned int) ctx->max_texture_size / 2 <= n_stops)
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return CAIRO_INT_STATUS_UNSUPPORTED;
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hash = _cairo_gl_gradient_hash (n_stops, stops);
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gradient = _cairo_gl_gradient_lookup (ctx, hash, n_stops, stops);
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if (gradient) {
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*gradient_out = _cairo_gl_gradient_reference (gradient);
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return CAIRO_STATUS_SUCCESS;
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}
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gradient = malloc (sizeof (cairo_gl_gradient_t) + sizeof (cairo_gradient_stop_t) * (n_stops - 1));
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if (gradient == NULL)
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return _cairo_error (CAIRO_STATUS_NO_MEMORY);
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tex_width = _cairo_gl_gradient_sample_width (n_stops, stops);
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if (tex_width > ctx->max_texture_size)
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tex_width = ctx->max_texture_size;
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CAIRO_REFERENCE_COUNT_INIT (&gradient->ref_count, 2);
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gradient->cache_entry.hash = hash;
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gradient->cache_entry.size = tex_width;
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gradient->device = &ctx->base;
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gradient->n_stops = n_stops;
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gradient->stops = gradient->stops_embedded;
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memcpy (gradient->stops_embedded, stops, n_stops * sizeof (cairo_gradient_stop_t));
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glGenTextures (1, &gradient->tex);
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_cairo_gl_context_activate (ctx, CAIRO_GL_TEX_TEMP);
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glBindTexture (ctx->tex_target, gradient->tex);
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data = _cairo_malloc_ab (tex_width, sizeof (uint32_t));
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if (unlikely (data == NULL)) {
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status = _cairo_error (CAIRO_STATUS_NO_MEMORY);
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goto cleanup_gradient;
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}
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status = _cairo_gl_gradient_render (ctx, n_stops, stops, data, tex_width);
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if (unlikely (status))
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goto cleanup_data;
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/*
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* In OpenGL ES 2.0 no format conversion is allowed i.e. 'internalFormat'
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* must match 'format' in glTexImage2D.
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*/
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if (_cairo_gl_get_flavor () == CAIRO_GL_FLAVOR_ES)
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internal_format = GL_BGRA;
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else
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internal_format = GL_RGBA;
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glTexImage2D (ctx->tex_target, 0, internal_format, tex_width, 1, 0,
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GL_BGRA, GL_UNSIGNED_BYTE, data);
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free (data);
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/* we ignore errors here and just return an uncached gradient */
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if (unlikely (_cairo_cache_insert (&ctx->gradients, &gradient->cache_entry)))
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CAIRO_REFERENCE_COUNT_INIT (&gradient->ref_count, 1);
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*gradient_out = gradient;
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return CAIRO_STATUS_SUCCESS;
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cleanup_data:
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free (data);
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cleanup_gradient:
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free (gradient);
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return status;
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}
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cairo_gl_gradient_t *
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_cairo_gl_gradient_reference (cairo_gl_gradient_t *gradient)
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{
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assert (CAIRO_REFERENCE_COUNT_HAS_REFERENCE (&gradient->ref_count));
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_cairo_reference_count_inc (&gradient->ref_count);
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return gradient;
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}
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void
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_cairo_gl_gradient_destroy (cairo_gl_gradient_t *gradient)
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{
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cairo_gl_context_t *ctx;
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cairo_status_t ignore;
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assert (CAIRO_REFERENCE_COUNT_HAS_REFERENCE (&gradient->ref_count));
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if (! _cairo_reference_count_dec_and_test (&gradient->ref_count))
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return;
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if (_cairo_gl_context_acquire (gradient->device, &ctx) == CAIRO_STATUS_SUCCESS) {
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/* The gradient my still be active in the last operation, so flush */
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_cairo_gl_composite_flush (ctx);
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glDeleteTextures (1, &gradient->tex);
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ignore = _cairo_gl_context_release (ctx, CAIRO_STATUS_SUCCESS);
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}
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free (gradient);
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}
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