1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 16 17 18 19 20 21 22 23 24 25 26 27 28 29 30 31 32 33 34 35 36 37 38 39 40 41 42 43 44 45 46 47 48 49 50 51 52 53 54 55 56 57 58 59 60 61 62 63 64 65 66 67 68 69 70 71 72 73 74 75 76 77 78 79 80 81 82 83 84 85 86 87 88 89 90 91 92 93 94 95 96 97 98 99 100 101 102 103 104 105 106 107 108 109 110 111 112 113 114 115 116 117 118 119 120 121 122 123 124 125 126 127 128 129 130 131 132 133 134 135 136 137 138 139 140 141 142 143 144 145 146 147 148 149 150 151 152 153 154 155 156 157 158 159 160 161 162 163 164 165 166 167 168 169 170 171 172 173 174 175 176 177 178 179 180 181 182 183 184 185 186 187 188 189 190 191 192 193 194 195 196 197 198 199 200 201 202 203 204 205 206 207 208 209 210 211 212 213 214 215 216 217 218 219 220 221 222 223 224 225 226 227 228 229 230 231 232 233 234 235 236 237 238 239 240 241 242 243 244 245 246 247 248 249 250 251 252 253 254 255 256 257 258 259 260 261 262 263 264 265 266 267 268 269 270 271 272 273 274 275 276 277 278 279 280 281 282 283 284
|
/* Copyright (C) 2001-2006 Artifex Software, Inc.
All Rights Reserved.
This software is provided AS-IS with no warranty, either express or
implied.
This software is distributed under license and may not be copied, modified
or distributed except as expressly authorized under the terms of that
license. Refer to licensing information at http://www.artifex.com/
or contact Artifex Software, Inc., 7 Mt. Lassen Drive - Suite A-134,
San Rafael, CA 94903, U.S.A., +1(415)492-9861, for further information.
*/
/* $Id: gdevmr1.c 10526 2009-12-18 21:14:17Z giles $ */
/* RasterOp implementation for monobit memory devices */
#include "memory_.h"
#include "gx.h"
#include "gsbittab.h"
#include "gserrors.h"
#include "gsropt.h"
#include "gxcindex.h"
#include "gxdcolor.h"
#include "gxdevice.h"
#include "gxdevmem.h"
#include "gxdevrop.h"
#include "gdevmem.h"
#include "gdevmrop.h"
/* Calculate the X offset for a given Y value, */
/* taking shift into account if necessary. */
#define x_offset(px, ty, textures)\
((textures)->shift == 0 ? (px) :\
(px) + (ty) / (textures)->rep_height * (textures)->rep_shift)
/* ---------------- Monobit RasterOp ---------------- */
int
mem_mono_strip_copy_rop(gx_device * dev,
const byte * sdata, int sourcex, uint sraster, gx_bitmap_id id,
const gx_color_index * scolors,
const gx_strip_bitmap * textures, const gx_color_index * tcolors,
int x, int y, int width, int height,
int phase_x, int phase_y, gs_logical_operation_t lop)
{
gx_device_memory *mdev = (gx_device_memory *) dev;
gs_rop3_t rop = gs_transparent_rop(lop); /* handle transparency */
gx_strip_bitmap no_texture;
bool invert;
uint draster = mdev->raster;
uint traster;
int line_count;
byte *drow;
const byte *srow;
int ty;
/* If map_rgb_color isn't the default one for monobit memory */
/* devices, palette might not be set; set it now if needed. */
if (mdev->palette.data == 0) {
gx_color_value cv[3];
cv[0] = cv[1] = cv[2] = 0;
gdev_mem_mono_set_inverted(mdev,
(*dev_proc(dev, map_rgb_color))
(dev, cv) != 0);
}
invert = mdev->palette.data[0] != 0;
#ifdef DEBUG
if (gs_debug_c('b'))
trace_copy_rop("mem_mono_strip_copy_rop",
dev, sdata, sourcex, sraster,
id, scolors, textures, tcolors,
x, y, width, height, phase_x, phase_y, lop);
if (gs_debug_c('B'))
debug_dump_bitmap(scan_line_base(mdev, y), mdev->raster,
height, "initial dest bits");
#endif
/*
* RasterOp is defined as operating in RGB space; in the monobit
* case, this means black = 0, white = 1. However, most monobit
* devices use the opposite convention. To make this work,
* we must precondition the Boolean operation by swapping the
* order of bits end-for-end and then inverting.
*/
if (invert)
rop = byte_reverse_bits[rop] ^ 0xff;
/*
* From this point on, rop works in terms of device pixel values,
* not RGB-space values.
*/
/* Modify the raster operation according to the source palette. */
if (scolors != 0) { /* Source with palette. */
switch ((int)((scolors[1] << 1) + scolors[0])) {
case 0:
rop = rop3_know_S_0(rop);
break;
case 1:
rop = rop3_invert_S(rop);
break;
case 2:
break;
case 3:
rop = rop3_know_S_1(rop);
break;
}
}
/* Modify the raster operation according to the texture palette. */
if (tcolors != 0) { /* Texture with palette. */
switch ((int)((tcolors[1] << 1) + tcolors[0])) {
case 0:
rop = rop3_know_T_0(rop);
break;
case 1:
rop = rop3_invert_T(rop);
break;
case 2:
break;
case 3:
rop = rop3_know_T_1(rop);
break;
}
}
/* Handle constant source and/or texture, and other special cases. */
{
gx_color_index color0, color1;
switch (rop_usage_table[rop]) {
case rop_usage_none:
/* We're just filling with a constant. */
return (*dev_proc(dev, fill_rectangle))
(dev, x, y, width, height, (gx_color_index) (rop & 1));
case rop_usage_D:
/* This is either D (no-op) or ~D. */
if (rop == rop3_D)
return 0;
/* Code no_S inline, then finish with no_T. */
fit_fill(dev, x, y, width, height);
sdata = scan_line_base(mdev, 0);
sourcex = x;
sraster = 0;
goto no_T;
case rop_usage_S:
/* This is either S or ~S, which copy_mono can handle. */
if (rop == rop3_S)
color0 = 0, color1 = 1;
else
color0 = 1, color1 = 0;
do_copy:return (*dev_proc(dev, copy_mono))
(dev, sdata, sourcex, sraster, id, x, y, width, height,
color0, color1);
case rop_usage_DS:
/* This might be a case that copy_mono can handle. */
#define copy_case(c0, c1) color0 = c0, color1 = c1; goto do_copy;
switch ((uint) rop) { /* cast shuts up picky compilers */
case rop3_D & rop3_not(rop3_S):
copy_case(gx_no_color_index, 0);
case rop3_D | rop3_S:
copy_case(gx_no_color_index, 1);
case rop3_D & rop3_S:
copy_case(0, gx_no_color_index);
case rop3_D | rop3_not(rop3_S):
copy_case(1, gx_no_color_index);
default:;
}
#undef copy_case
fit_copy(dev, sdata, sourcex, sraster, id, x, y, width, height);
no_T: /* Texture is not used; textures may be garbage. */
no_texture.data = scan_line_base(mdev, 0); /* arbitrary */
no_texture.raster = 0;
no_texture.size.x = width;
no_texture.size.y = height;
no_texture.rep_width = no_texture.rep_height = 1;
no_texture.rep_shift = no_texture.shift = 0;
textures = &no_texture;
break;
case rop_usage_T:
/* This is either T or ~T, which tile_rectangle can handle. */
if (rop == rop3_T)
color0 = 0, color1 = 1;
else
color0 = 1, color1 = 0;
do_tile:return (*dev_proc(dev, strip_tile_rectangle))
(dev, textures, x, y, width, height, color0, color1,
phase_x, phase_y);
case rop_usage_DT:
/* This might be a case that tile_rectangle can handle. */
#define tile_case(c0, c1) color0 = c0, color1 = c1; goto do_tile;
switch ((uint) rop) { /* cast shuts up picky compilers */
case rop3_D & rop3_not(rop3_T):
tile_case(gx_no_color_index, 0);
case rop3_D | rop3_T:
tile_case(gx_no_color_index, 1);
case rop3_D & rop3_T:
tile_case(0, gx_no_color_index);
case rop3_D | rop3_not(rop3_T):
tile_case(1, gx_no_color_index);
default:;
}
#undef tile_case
fit_fill(dev, x, y, width, height);
/* Source is not used; sdata et al may be garbage. */
sdata = mdev->base; /* arbitrary, as long as all */
/* accesses are valid */
sourcex = x; /* guarantee no source skew */
sraster = 0;
break;
default: /* rop_usage_[D]ST */
fit_copy(dev, sdata, sourcex, sraster, id, x, y, width, height);
}
}
#ifdef DEBUG
if_debug1('b', "final rop=0x%x\n", rop);
#endif
/* Set up transfer parameters. */
line_count = height;
srow = sdata;
drow = scan_line_base(mdev, y);
traster = textures->raster;
ty = y + phase_y;
/* Loop over scan lines. */
for (; line_count-- > 0; drow += draster, srow += sraster, ++ty) {
int sx = sourcex;
int dx = x;
int w = width;
const byte *trow =
textures->data + (ty % textures->rep_height) * traster;
int xoff = x_offset(phase_x, ty, textures);
int nw;
/* Loop over (horizontal) copies of the tile. */
for (; w > 0; sx += nw, dx += nw, w -= nw) {
int dbit = dx & 7;
int sbit = sx & 7;
int sskew = sbit - dbit;
int tx = (dx + xoff) % textures->rep_width;
int tbit = tx & 7;
int tskew = tbit - dbit;
int left = nw = min(w, textures->size.x - tx);
byte lmask = 0xff >> dbit;
byte rmask = 0xff << (~(dbit + nw - 1) & 7);
byte mask = lmask;
int nx = 8 - dbit;
byte *dptr = drow + (dx >> 3);
const byte *sptr = srow + (sx >> 3);
const byte *tptr = trow + (tx >> 3);
if (sskew < 0)
--sptr, sskew += 8;
if (tskew < 0)
--tptr, tskew += 8;
for (; left > 0;
left -= nx, mask = 0xff, nx = 8,
++dptr, ++sptr, ++tptr
) {
byte dbyte = *dptr;
#define fetch1(ptr, skew)\
(skew ? (ptr[0] << skew) + (ptr[1] >> (8 - skew)) : *ptr)
byte sbyte = fetch1(sptr, sskew);
byte tbyte = fetch1(tptr, tskew);
#undef fetch1
byte result =
(*rop_proc_table[rop]) (dbyte, sbyte, tbyte);
if (left <= nx)
mask &= rmask;
*dptr = (mask == 0xff ? result :
(result & mask) | (dbyte & ~mask));
}
}
}
#ifdef DEBUG
if (gs_debug_c('B'))
debug_dump_bitmap(scan_line_base(mdev, y), mdev->raster,
height, "final dest bits");
#endif
return 0;
}
|