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/* Copyright (C) 1993, 1994, 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: gdevmpla.c,v 1.5 2002/09/21 00:26:04 dan Exp $ */
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/* Any-depth planar "memory" (stored bitmap) device */
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#include "memory_.h"
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#include "gx.h"
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#include "gserrors.h"
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#include "gsbitops.h"
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#include "gxdevice.h"
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#include "gxdevmem.h" /* semi-public definitions */
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#include "gxgetbit.h"
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#include "gdevmem.h" /* private definitions */
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#include "gdevmpla.h" /* interface */
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/* procedures */
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private dev_proc_open_device(mem_planar_open);
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declare_mem_procs(mem_planar_copy_mono, mem_planar_copy_color, mem_planar_fill_rectangle);
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private dev_proc_strip_tile_rectangle(mem_planar_strip_tile_rectangle);
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private dev_proc_get_bits_rectangle(mem_planar_get_bits_rectangle);
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/*
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* Set up a planar memory device, after calling gs_make_mem_device but
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* before opening the device. The pre-existing device provides the color
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* mapping procedures, but not the drawing procedures. Requires: num_planes
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* > 0, plane_depths[0 .. num_planes - 1] > 0, sum of plane depths =
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* mdev->color_info.depth.
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*
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* Note that this is the only public procedure in this file, and the only
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* sanctioned way to set up a planar memory device.
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*/
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int
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gdev_mem_set_planar(gx_device_memory * mdev, int num_planes,
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const gx_render_plane_t *planes /*[num_planes]*/)
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{
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int total_depth;
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int same_depth = planes[0].depth;
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gx_color_index covered = 0;
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int pi;
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if (num_planes < 1 || num_planes > GX_DEVICE_COLOR_MAX_COMPONENTS)
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return_error(gs_error_rangecheck);
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for (pi = 0, total_depth = 0; pi < num_planes; ++pi) {
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int shift = planes[pi].shift;
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int plane_depth = planes[pi].depth;
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gx_color_index mask;
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if (shift < 0 || plane_depth > 16 ||
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!gdev_mem_device_for_bits(plane_depth))
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return_error(gs_error_rangecheck);
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mask = (((gx_color_index)1 << plane_depth) - 1) << shift;
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if (covered & mask)
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return_error(gs_error_rangecheck);
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covered |= mask;
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if (plane_depth != same_depth)
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same_depth = 0;
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total_depth += plane_depth;
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}
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if (total_depth > mdev->color_info.depth)
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return_error(gs_error_rangecheck);
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mdev->num_planes = num_planes;
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memcpy(mdev->planes, planes, num_planes * sizeof(planes[0]));
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mdev->plane_depth = same_depth;
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/* Change the drawing procedures. */
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set_dev_proc(mdev, open_device, mem_planar_open);
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set_dev_proc(mdev, fill_rectangle, mem_planar_fill_rectangle);
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set_dev_proc(mdev, copy_mono, mem_planar_copy_mono);
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set_dev_proc(mdev, copy_color, mem_planar_copy_color);
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set_dev_proc(mdev, copy_alpha, gx_default_copy_alpha);
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set_dev_proc(mdev, strip_tile_rectangle, mem_planar_strip_tile_rectangle);
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set_dev_proc(mdev, strip_copy_rop, gx_default_strip_copy_rop);
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set_dev_proc(mdev, get_bits_rectangle, mem_planar_get_bits_rectangle);
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return 0;
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}
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/* Open a planar memory device. */
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private int
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mem_planar_open(gx_device * dev)
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{
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gx_device_memory *const mdev = (gx_device_memory *)dev;
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/* Check that we aren't trying to open a chunky device as planar. */
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if (mdev->num_planes == 0)
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return_error(gs_error_rangecheck);
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return gdev_mem_open_scan_lines(mdev, dev->height);
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}
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/*
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* We execute drawing operations by patching a few parameters in the
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* device structure and then calling the procedure appropriate to the
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* plane depth.
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*/
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typedef struct mem_save_params_s {
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int depth; /* color_info.depth */
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byte *base;
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byte **line_ptrs;
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} mem_save_params_t;
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#define MEM_SAVE_PARAMS(mdev, msp)\
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(msp.depth = mdev->color_info.depth,\
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msp.base = mdev->base,\
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msp.line_ptrs = mdev->line_ptrs)
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#define MEM_SET_PARAMS(mdev, plane_depth)\
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(mdev->color_info.depth = plane_depth, /* maybe not needed */\
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mdev->base = mdev->line_ptrs[0],\
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mdev->raster = bitmap_raster(mdev->width * plane_depth))
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#define MEM_RESTORE_PARAMS(mdev, msp)\
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(mdev->color_info.depth = msp.depth,\
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mdev->base = msp.base,\
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mdev->line_ptrs = msp.line_ptrs)
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/* Fill a rectangle with a color. */
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private int
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mem_planar_fill_rectangle(gx_device * dev, int x, int y, int w, int h,
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gx_color_index color)
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{
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gx_device_memory * const mdev = (gx_device_memory *)dev;
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mem_save_params_t save;
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int pi;
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MEM_SAVE_PARAMS(mdev, save);
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for (pi = 0; pi < mdev->num_planes; ++pi) {
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int plane_depth = mdev->planes[pi].depth;
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gx_color_index mask = ((gx_color_index)1 << plane_depth) - 1;
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const gx_device_memory *mdproto =
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gdev_mem_device_for_bits(plane_depth);
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MEM_SET_PARAMS(mdev, plane_depth);
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dev_proc(mdproto, fill_rectangle)(dev, x, y, w, h,
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(color >> mdev->planes[pi].shift) &
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mask);
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mdev->line_ptrs += mdev->height;
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}
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MEM_RESTORE_PARAMS(mdev, save);
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return 0;
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}
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/* Copy a bitmap. */
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private int
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mem_planar_copy_mono(gx_device * dev, const byte * base, int sourcex,
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int sraster, gx_bitmap_id id, int x, int y, int w, int h,
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gx_color_index color0, gx_color_index color1)
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{
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gx_device_memory * const mdev = (gx_device_memory *)dev;
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mem_save_params_t save;
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int pi;
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MEM_SAVE_PARAMS(mdev, save);
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for (pi = 0; pi < mdev->num_planes; ++pi) {
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int plane_depth = mdev->planes[pi].depth;
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int shift = mdev->planes[pi].shift;
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gx_color_index mask = ((gx_color_index)1 << plane_depth) - 1;
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const gx_device_memory *mdproto =
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gdev_mem_device_for_bits(plane_depth);
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gx_color_index c0 =
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(color0 == gx_no_color_index ? gx_no_color_index :
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(color0 >> shift) & mask);
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gx_color_index c1 =
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(color1 == gx_no_color_index ? gx_no_color_index :
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(color1 >> shift) & mask);
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MEM_SET_PARAMS(mdev, plane_depth);
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if (c0 == c1)
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dev_proc(mdproto, fill_rectangle)(dev, x, y, w, h, c0);
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else
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dev_proc(mdproto, copy_mono)
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(dev, base, sourcex, sraster, id, x, y, w, h, c0, c1);
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mdev->line_ptrs += mdev->height;
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}
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MEM_RESTORE_PARAMS(mdev, save);
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return 0;
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}
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/* Copy a color bitmap. */
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/* This is slow and messy. */
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private int
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mem_planar_copy_color(gx_device * dev, const byte * base, int sourcex,
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int sraster, gx_bitmap_id id,
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int x, int y, int w, int h)
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{
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gx_device_memory * const mdev = (gx_device_memory *)dev;
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#define BUF_LONGS 100 /* arbitrary, >= 1 */
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#define BUF_BYTES (BUF_LONGS * ARCH_SIZEOF_LONG)
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union b_ {
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ulong l[BUF_LONGS];
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byte b[BUF_BYTES];
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} buf;
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int source_depth = dev->color_info.depth;
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mem_save_params_t save;
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int pi;
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fit_copy(dev, base, sourcex, sraster, id, x, y, w, h);
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MEM_SAVE_PARAMS(mdev, save);
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for (pi = 0; pi < mdev->num_planes; ++pi) {
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int plane_depth = mdev->planes[pi].depth;
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int shift = mdev->planes[pi].shift;
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gx_color_index mask = ((gx_color_index)1 << plane_depth) - 1;
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const gx_device_memory *mdproto =
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gdev_mem_device_for_bits(plane_depth);
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/*
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* Divide up the transfer into chunks that can be assembled
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* within the fixed-size buffer. This code can be simplified
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* a lot if all planes have the same depth, by simply using
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* copy_color to transfer one column at a time, but it might
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* be very inefficient.
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*/
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uint plane_raster = bitmap_raster(plane_depth * w);
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int br, bw, bh, cx, cy, cw, ch, ix, iy;
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MEM_SET_PARAMS(mdev, plane_depth);
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if (plane_raster > BUF_BYTES) {
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br = BUF_BYTES;
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bw = BUF_BYTES * 8 / plane_depth;
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bh = 1;
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} else {
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br = plane_raster;
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bw = w;
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bh = BUF_BYTES / plane_raster;
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}
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/*
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* We could do the extraction with get_bits_rectangle
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* selecting a single plane, but this is critical enough
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* code that we more or less replicate it here.
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*/
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for (cy = y; cy < y + h; cy += ch) {
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ch = min(bh, y + h - cy);
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for (cx = x; cx < x + w; cx += cw) {
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int sx = sourcex + cx - x;
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const byte *source_base = base + sraster * (cy - y);
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int source_bit = 0;
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cw = min(bw, x + w - cx);
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if (sx) {
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int xbit = sx * source_depth;
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source_base += xbit >> 3;
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source_bit = xbit & 7;
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}
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for (iy = 0; iy < ch; ++iy) {
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sample_load_declare_setup(sptr, sbit, source_base,
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source_bit, source_depth);
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sample_store_declare_setup(dptr, dbit, dbbyte,
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buf.b + br * iy,
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0, plane_depth);
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for (ix = 0; ix < cw; ++ix) {
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gx_color_index value;
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sample_load_next_any(value, sptr, sbit, source_depth);
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value = (value >> shift) & mask;
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sample_store_next16(value, dptr, dbit, plane_depth,
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dbbyte);
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}
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sample_store_flush(dptr, dbit, plane_depth, dbbyte);
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source_base += sraster;
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}
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/*
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* Detect and bypass the possibility that copy_color is
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* defined in terms of copy_mono.
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*/
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if (plane_depth == 1)
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dev_proc(mdproto, copy_mono)
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(dev, buf.b, 0, br, gx_no_bitmap_id, cx, cy, cw, ch,
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(gx_color_index)0, (gx_color_index)1);
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else
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dev_proc(mdproto, copy_color)
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(dev, buf.b, 0, br, gx_no_bitmap_id, cx, cy, cw, ch);
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}
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}
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mdev->line_ptrs += mdev->height;
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}
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MEM_RESTORE_PARAMS(mdev, save);
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return 0;
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#undef BUF_BYTES
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#undef BUF_LONGS
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}
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private int
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mem_planar_strip_tile_rectangle(gx_device * dev, const gx_strip_bitmap * tiles,
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int x, int y, int w, int h,
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gx_color_index color0, gx_color_index color1,
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int px, int py)
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{
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gx_device_memory * const mdev = (gx_device_memory *)dev;
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mem_save_params_t save;
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int pi;
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/* We can't split up the transfer if the tile is colored. */
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if (color0 == gx_no_color_index && color1 == gx_no_color_index)
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return gx_default_strip_tile_rectangle
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(dev, tiles, x, y, w, h, color0, color1, px, py);
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MEM_SAVE_PARAMS(mdev, save);
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for (pi = 0; pi < mdev->num_planes; ++pi) {
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int plane_depth = mdev->planes[pi].depth;
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int shift = mdev->planes[pi].shift;
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gx_color_index mask = ((gx_color_index)1 << plane_depth) - 1;
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const gx_device_memory *mdproto =
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gdev_mem_device_for_bits(plane_depth);
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gx_color_index c0 =
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(color0 == gx_no_color_index ? gx_no_color_index :
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(color0 >> shift) & mask);
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gx_color_index c1 =
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(color1 == gx_no_color_index ? gx_no_color_index :
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(color1 >> shift) & mask);
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317 |
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318 |
MEM_SET_PARAMS(mdev, plane_depth);
|
|
|
319 |
if (c0 == c1)
|
|
|
320 |
dev_proc(mdproto, fill_rectangle)(dev, x, y, w, h, c0);
|
|
|
321 |
else {
|
|
|
322 |
/*
|
|
|
323 |
* Temporarily replace copy_mono in case strip_tile_rectangle is
|
|
|
324 |
* defined in terms of it.
|
|
|
325 |
*/
|
|
|
326 |
set_dev_proc(dev, copy_mono, dev_proc(mdproto, copy_mono));
|
|
|
327 |
dev_proc(mdproto, strip_tile_rectangle)
|
|
|
328 |
(dev, tiles, x, y, w, h, c0, c1, px, py);
|
|
|
329 |
}
|
|
|
330 |
mdev->line_ptrs += mdev->height;
|
|
|
331 |
}
|
|
|
332 |
MEM_RESTORE_PARAMS(mdev, save);
|
|
|
333 |
set_dev_proc(dev, copy_mono, mem_planar_copy_mono);
|
|
|
334 |
return 0;
|
|
|
335 |
}
|
|
|
336 |
|
|
|
337 |
/*
|
|
|
338 |
* Repack planar into chunky format. This is an internal procedure that
|
|
|
339 |
* implements the straightforward chunky case of get_bits_rectangle, and
|
|
|
340 |
* is also used for the general cases.
|
|
|
341 |
*/
|
|
|
342 |
private int
|
|
|
343 |
planar_to_chunky(gx_device_memory *mdev, int x, int y, int w, int h,
|
|
|
344 |
int offset, uint draster, byte *dest)
|
|
|
345 |
{
|
|
|
346 |
int num_planes = mdev->num_planes;
|
|
|
347 |
sample_load_declare(sptr[GX_DEVICE_COLOR_MAX_COMPONENTS],
|
|
|
348 |
sbit[GX_DEVICE_COLOR_MAX_COMPONENTS]);
|
|
|
349 |
sample_store_declare(dptr, dbit, dbbyte);
|
|
|
350 |
int ddepth = mdev->color_info.depth;
|
|
|
351 |
int direct =
|
|
|
352 |
(mdev->color_info.depth != num_planes * mdev->plane_depth ? 0 :
|
|
|
353 |
mdev->planes[0].shift == 0 ? -mdev->plane_depth : mdev->plane_depth);
|
|
|
354 |
int pi, ix, iy;
|
|
|
355 |
|
|
|
356 |
/* Check whether the planes are of equal size and sequential. */
|
|
|
357 |
/* If direct != 0, we already know they exactly fill the depth. */
|
|
|
358 |
if (direct < 0) {
|
|
|
359 |
for (pi = 0; pi < num_planes; ++pi)
|
|
|
360 |
if (mdev->planes[pi].shift != pi * -direct) {
|
|
|
361 |
direct = 0; break;
|
|
|
362 |
}
|
|
|
363 |
} else if (direct > 0) {
|
|
|
364 |
for (pi = 0; pi < num_planes; ++pi)
|
|
|
365 |
if (mdev->planes[num_planes - 1 - pi].shift != pi * direct) {
|
|
|
366 |
direct = 0; break;
|
|
|
367 |
}
|
|
|
368 |
}
|
|
|
369 |
for (iy = y; iy < y + h; ++iy) {
|
|
|
370 |
byte **line_ptr = mdev->line_ptrs + iy;
|
|
|
371 |
|
|
|
372 |
for (pi = 0; pi < num_planes; ++pi, line_ptr += mdev->height) {
|
|
|
373 |
int plane_depth = mdev->planes[pi].depth;
|
|
|
374 |
int xbit = x * plane_depth;
|
|
|
375 |
|
|
|
376 |
sptr[pi] = *line_ptr + (xbit >> 3);
|
|
|
377 |
sample_load_setup(sbit[pi], xbit & 7, plane_depth);
|
|
|
378 |
}
|
|
|
379 |
{
|
|
|
380 |
int xbit = offset * ddepth;
|
|
|
381 |
|
|
|
382 |
dptr = dest + (iy - y) * draster + (xbit >> 3);
|
|
|
383 |
sample_store_setup(dbit, xbit & 7, ddepth);
|
|
|
384 |
}
|
|
|
385 |
if (direct == -8) {
|
|
|
386 |
/* 1 byte per component, lsb first. */
|
|
|
387 |
switch (num_planes) {
|
|
|
388 |
case 3: {
|
|
|
389 |
const byte *p0 = sptr[2];
|
|
|
390 |
const byte *p1 = sptr[1];
|
|
|
391 |
const byte *p2 = sptr[0];
|
|
|
392 |
|
|
|
393 |
for (ix = w; ix > 0; --ix, dptr += 3) {
|
|
|
394 |
dptr[0] = *p0++;
|
|
|
395 |
dptr[1] = *p1++;
|
|
|
396 |
dptr[2] = *p2++;
|
|
|
397 |
}
|
|
|
398 |
}
|
|
|
399 |
continue;
|
|
|
400 |
case 4:
|
|
|
401 |
for (ix = w; ix > 0; --ix, dptr += 4) {
|
|
|
402 |
dptr[0] = *sptr[3]++;
|
|
|
403 |
dptr[1] = *sptr[2]++;
|
|
|
404 |
dptr[2] = *sptr[1]++;
|
|
|
405 |
dptr[3] = *sptr[0]++;
|
|
|
406 |
}
|
|
|
407 |
continue;
|
|
|
408 |
default:
|
|
|
409 |
break;
|
|
|
410 |
}
|
|
|
411 |
}
|
|
|
412 |
sample_store_preload(dbbyte, dptr, dbit, ddepth);
|
|
|
413 |
for (ix = w; ix > 0; --ix) {
|
|
|
414 |
gx_color_index color = 0;
|
|
|
415 |
|
|
|
416 |
for (pi = 0; pi < num_planes; ++pi) {
|
|
|
417 |
int plane_depth = mdev->planes[pi].depth;
|
|
|
418 |
uint value;
|
|
|
419 |
|
|
|
420 |
sample_load_next16(value, sptr[pi], sbit[pi], plane_depth);
|
|
|
421 |
color |= (gx_color_index)value << mdev->planes[pi].shift;
|
|
|
422 |
}
|
|
|
423 |
sample_store_next_any(color, dptr, dbit, ddepth, dbbyte);
|
|
|
424 |
}
|
|
|
425 |
sample_store_flush(dptr, dbit, ddepth, dbbyte);
|
|
|
426 |
}
|
|
|
427 |
return 0;
|
|
|
428 |
}
|
|
|
429 |
|
|
|
430 |
/* Copy bits back from a planar memory device. */
|
|
|
431 |
private int
|
|
|
432 |
mem_planar_get_bits_rectangle(gx_device * dev, const gs_int_rect * prect,
|
|
|
433 |
gs_get_bits_params_t * params,
|
|
|
434 |
gs_int_rect ** unread)
|
|
|
435 |
{
|
|
|
436 |
/* This duplicates most of mem_get_bits_rectangle. Tant pis. */
|
|
|
437 |
gx_device_memory * const mdev = (gx_device_memory *)dev;
|
|
|
438 |
gs_get_bits_options_t options = params->options;
|
|
|
439 |
int x = prect->p.x, w = prect->q.x - x, y = prect->p.y, h = prect->q.y - y;
|
|
|
440 |
int num_planes = mdev->num_planes;
|
|
|
441 |
gs_get_bits_params_t copy_params;
|
|
|
442 |
int code;
|
|
|
443 |
|
|
|
444 |
if (options == 0) {
|
|
|
445 |
/*
|
|
|
446 |
* Unfortunately, as things stand, we have to support
|
|
|
447 |
* GB_PACKING_CHUNKY. In fact, we can't even claim to support
|
|
|
448 |
* GB_PACKING_PLANAR, because there is currently no way to
|
|
|
449 |
* describe the particular planar packing format that the device
|
|
|
450 |
* actually stores.
|
|
|
451 |
*/
|
|
|
452 |
params->options =
|
|
|
453 |
(GB_ALIGN_STANDARD | GB_ALIGN_ANY) |
|
|
|
454 |
(GB_RETURN_COPY | GB_RETURN_POINTER) |
|
|
|
455 |
(GB_OFFSET_0 | GB_OFFSET_SPECIFIED | GB_OFFSET_ANY) |
|
|
|
456 |
(GB_RASTER_STANDARD | GB_RASTER_SPECIFIED | GB_RASTER_ANY) |
|
|
|
457 |
/*
|
|
|
458 |
(mdev->num_planes == mdev->color_info.depth ?
|
|
|
459 |
GB_PACKING_CHUNKY | GB_PACKING_PLANAR | GB_PACKING_BIT_PLANAR :
|
|
|
460 |
GB_PACKING_CHUNKY | GB_PACKING_PLANAR)
|
|
|
461 |
*/
|
|
|
462 |
GB_PACKING_CHUNKY |
|
|
|
463 |
GB_COLORS_NATIVE | GB_ALPHA_NONE;
|
|
|
464 |
return_error(gs_error_rangecheck);
|
|
|
465 |
}
|
|
|
466 |
if ((w <= 0) | (h <= 0)) {
|
|
|
467 |
if ((w | h) < 0)
|
|
|
468 |
return_error(gs_error_rangecheck);
|
|
|
469 |
return 0;
|
|
|
470 |
}
|
|
|
471 |
if (x < 0 || w > dev->width - x ||
|
|
|
472 |
y < 0 || h > dev->height - y
|
|
|
473 |
)
|
|
|
474 |
return_error(gs_error_rangecheck);
|
|
|
475 |
|
|
|
476 |
/*
|
|
|
477 |
* If the request is for exactly one plane, hand it off to a device
|
|
|
478 |
* temporarily tweaked to return just that plane.
|
|
|
479 |
*/
|
|
|
480 |
if (!(~options & (GB_PACKING_PLANAR | GB_SELECT_PLANES))) {
|
|
|
481 |
/* Check that only a single plane is being requested. */
|
|
|
482 |
int pi;
|
|
|
483 |
|
|
|
484 |
for (pi = 0; pi < num_planes; ++pi)
|
|
|
485 |
if (params->data[pi] != 0)
|
|
|
486 |
break;
|
|
|
487 |
if (pi < num_planes) {
|
|
|
488 |
int plane = pi++;
|
|
|
489 |
|
|
|
490 |
for (; pi < num_planes; ++pi)
|
|
|
491 |
if (params->data[pi] != 0)
|
|
|
492 |
break;
|
|
|
493 |
if (pi == num_planes) {
|
|
|
494 |
mem_save_params_t save;
|
|
|
495 |
|
|
|
496 |
copy_params = *params;
|
|
|
497 |
copy_params.options =
|
|
|
498 |
(options & ~(GB_PACKING_ALL | GB_SELECT_PLANES)) |
|
|
|
499 |
GB_PACKING_CHUNKY;
|
|
|
500 |
copy_params.data[0] = copy_params.data[plane];
|
|
|
501 |
MEM_SAVE_PARAMS(mdev, save);
|
|
|
502 |
mdev->line_ptrs += mdev->height * plane;
|
|
|
503 |
MEM_SET_PARAMS(mdev, mdev->planes[plane].depth);
|
|
|
504 |
code = mem_get_bits_rectangle(dev, prect, ©_params,
|
|
|
505 |
unread);
|
|
|
506 |
MEM_RESTORE_PARAMS(mdev, save);
|
|
|
507 |
if (code >= 0) {
|
|
|
508 |
params->data[plane] = copy_params.data[0];
|
|
|
509 |
return code;
|
|
|
510 |
}
|
|
|
511 |
}
|
|
|
512 |
}
|
|
|
513 |
}
|
|
|
514 |
/*
|
|
|
515 |
* We can't return the requested plane by itself. Fall back to
|
|
|
516 |
* chunky format. This is somewhat painful.
|
|
|
517 |
*
|
|
|
518 |
* The code here knows how to produce just one chunky format:
|
|
|
519 |
* GB_COLORS_NATIVE, GB_ALPHA_NONE, GB_RETURN_COPY.
|
|
|
520 |
* For any other format, we generate this one in a buffer and
|
|
|
521 |
* hand it off to gx_get_bits_copy. This is *really* painful.
|
|
|
522 |
*/
|
|
|
523 |
if (!(~options & (GB_COLORS_NATIVE | GB_ALPHA_NONE |
|
|
|
524 |
GB_PACKING_CHUNKY | GB_RETURN_COPY))) {
|
|
|
525 |
int offset = (options & GB_OFFSET_SPECIFIED ? params->x_offset : 0);
|
|
|
526 |
uint draster =
|
|
|
527 |
(options & GB_RASTER_SPECIFIED ? params->raster :
|
|
|
528 |
bitmap_raster((offset + w) * mdev->color_info.depth));
|
|
|
529 |
|
|
|
530 |
planar_to_chunky(mdev, x, y, w, h, offset, draster, params->data[0]);
|
|
|
531 |
} else {
|
|
|
532 |
/*
|
|
|
533 |
* Do the transfer through an intermediate buffer.
|
|
|
534 |
* The buffer must be large enough to hold at least one pixel,
|
|
|
535 |
* i.e., GX_DEVICE_COLOR_MAX_COMPONENTS 16-bit values.
|
|
|
536 |
* The algorithms are very similar to those in copy_color.
|
|
|
537 |
*/
|
|
|
538 |
#define BUF_LONGS\
|
|
|
539 |
max(100, (GX_DEVICE_COLOR_MAX_COMPONENTS * 2 + sizeof(long) - 1) /\
|
|
|
540 |
sizeof(long))
|
|
|
541 |
#define BUF_BYTES (BUF_LONGS * ARCH_SIZEOF_LONG)
|
|
|
542 |
union b_ {
|
|
|
543 |
ulong l[BUF_LONGS];
|
|
|
544 |
byte b[BUF_BYTES];
|
|
|
545 |
} buf;
|
|
|
546 |
int br, bw, bh, cx, cy, cw, ch;
|
|
|
547 |
int ddepth = mdev->color_info.depth;
|
|
|
548 |
uint raster = bitmap_raster(ddepth * mdev->width);
|
|
|
549 |
gs_get_bits_params_t dest_params;
|
|
|
550 |
|
|
|
551 |
if (raster > BUF_BYTES) {
|
|
|
552 |
br = BUF_BYTES;
|
|
|
553 |
bw = BUF_BYTES * 8 / ddepth;
|
|
|
554 |
bh = 1;
|
|
|
555 |
} else {
|
|
|
556 |
br = raster;
|
|
|
557 |
bw = w;
|
|
|
558 |
bh = BUF_BYTES / raster;
|
|
|
559 |
}
|
|
|
560 |
copy_params.options =
|
|
|
561 |
GB_COLORS_NATIVE | GB_PACKING_CHUNKY | GB_ALPHA_NONE |
|
|
|
562 |
GB_RASTER_STANDARD;
|
|
|
563 |
copy_params.raster = raster;
|
|
|
564 |
dest_params = *params;
|
|
|
565 |
for (cy = y; cy < y + h; cy += ch) {
|
|
|
566 |
ch = min(bh, y + h - cy);
|
|
|
567 |
for (cx = x; cx < x + w; cx += cw) {
|
|
|
568 |
cw = min(bw, x + w - cx);
|
|
|
569 |
planar_to_chunky(mdev, cx, cy, cw, ch, 0, br, buf.b);
|
|
|
570 |
dest_params.x_offset = params->x_offset + cx - x;
|
|
|
571 |
code = gx_get_bits_copy(dev, 0, cw, ch, &dest_params,
|
|
|
572 |
©_params, buf.b, br);
|
|
|
573 |
if (code < 0)
|
|
|
574 |
return code;
|
|
|
575 |
}
|
|
|
576 |
dest_params.data[0] += ch * raster;
|
|
|
577 |
}
|
|
|
578 |
#undef BUF_BYTES
|
|
|
579 |
#undef BUF_LONGS
|
|
|
580 |
}
|
|
|
581 |
return 0;
|
|
|
582 |
}
|