[175] | 1 |
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| 2 | /*
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| 3 | * bltUnixImage.c --
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| 4 | *
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| 5 | * This module implements image processing procedures for the BLT
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| 6 | * toolkit.
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| 7 | *
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| 8 | * Copyright 1997-1998 Lucent Technologies, Inc.
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| 9 | *
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| 10 | * Permission to use, copy, modify, and distribute this software and
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| 11 | * its documentation for any purpose and without fee is hereby
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| 12 | * granted, provided that the above copyright notice appear in all
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| 13 | * copies and that both that the copyright notice and warranty
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| 14 | * disclaimer appear in supporting documentation, and that the names
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| 15 | * of Lucent Technologies any of their entities not be used in
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| 16 | * advertising or publicity pertaining to distribution of the software
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| 17 | * without specific, written prior permission.
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| 18 | *
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| 19 | * Lucent Technologies disclaims all warranties with regard to this
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| 20 | * software, including all implied warranties of merchantability and
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| 21 | * fitness. In no event shall Lucent Technologies be liable for any
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| 22 | * special, indirect or consequential damages or any damages
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| 23 | * whatsoever resulting from loss of use, data or profits, whether in
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| 24 | * an action of contract, negligence or other tortuous action, arising
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| 25 | * out of or in connection with the use or performance of this
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| 26 | * software.
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| 27 | */
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| 28 |
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| 29 | #include "bltInt.h"
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| 30 | #include "bltImage.h"
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| 31 | #include "bltHash.h"
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| 32 | #include <X11/Xutil.h>
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| 33 | #include <X11/Xproto.h>
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| 34 |
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| 35 | #define CLAMP(c) ((((c) < 0.0) ? 0.0 : ((c) > 255.0) ? 255.0 : (c)))
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| 36 |
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| 37 | int redAdjust, greenAdjust, blueAdjust;
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| 38 | int redMaskShift, greenMaskShift, blueMaskShift;
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| 39 |
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| 40 |
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| 41 | /*
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| 42 | *----------------------------------------------------------------------
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| 43 | *
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| 44 | * ShiftCount --
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| 45 | *
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| 46 | * Returns the position of the least significant (low) bit in
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| 47 | * the given mask.
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| 48 | *
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| 49 | * For TrueColor and DirectColor visuals, a pixel value is
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| 50 | * formed by OR-ing the red, green, and blue colormap indices
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| 51 | * into a single 32-bit word. The visual's color masks tell
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| 52 | * you where in the word the indices are supposed to be. The
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| 53 | * masks contain bits only where the index is found. By counting
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| 54 | * the leading zeros in the mask, we know how many bits to shift
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| 55 | * to the individual red, green, and blue values to form a pixel.
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| 56 | *
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| 57 | * Results:
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| 58 | * The number of the least significant bit.
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| 59 | *
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| 60 | *----------------------------------------------------------------------
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| 61 | */
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| 62 | static int
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| 63 | ShiftCount(mask)
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| 64 | register unsigned int mask;
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| 65 | {
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| 66 | register int count;
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| 67 |
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| 68 | for (count = 0; count < 32; count++) {
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| 69 | if (mask & 0x01) {
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| 70 | break;
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| 71 | }
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| 72 | mask >>= 1;
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| 73 | }
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| 74 | return count;
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| 75 | }
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| 76 |
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| 77 | /*
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| 78 | *----------------------------------------------------------------------
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| 79 | *
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| 80 | * CountBits --
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| 81 | *
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| 82 | * Returns the number of bits set in the given mask.
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| 83 | *
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| 84 | * Reference: Graphics Gems Volume 2.
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| 85 | *
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| 86 | * Results:
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| 87 | * The number of bits to set in the mask.
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| 88 | *
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| 89 | *
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| 90 | *----------------------------------------------------------------------
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| 91 | */
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| 92 | static int
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| 93 | CountBits(mask)
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| 94 | register unsigned long mask; /* 32 1-bit tallies */
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| 95 | {
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| 96 | /* 16 2-bit tallies */
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| 97 | mask = (mask & 0x55555555) + ((mask >> 1) & (0x55555555));
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| 98 | /* 8 4-bit tallies */
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| 99 | mask = (mask & 0x33333333) + ((mask >> 2) & (0x33333333));
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| 100 | /* 4 8-bit tallies */
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| 101 | mask = (mask & 0x07070707) + ((mask >> 4) & (0x07070707));
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| 102 | /* 2 16-bit tallies */
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| 103 | mask = (mask & 0x000F000F) + ((mask >> 8) & (0x000F000F));
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| 104 | /* 1 32-bit tally */
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| 105 | mask = (mask & 0x0000001F) + ((mask >> 16) & (0x0000001F));
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| 106 | return mask;
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| 107 | }
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| 108 |
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| 109 | static void
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| 110 | ComputeMasks(visualPtr)
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| 111 | Visual *visualPtr;
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| 112 | {
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| 113 | int count;
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| 114 |
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| 115 | redMaskShift = ShiftCount((unsigned int)visualPtr->red_mask);
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| 116 | greenMaskShift = ShiftCount((unsigned int)visualPtr->green_mask);
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| 117 | blueMaskShift = ShiftCount((unsigned int)visualPtr->blue_mask);
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| 118 |
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| 119 | redAdjust = greenAdjust = blueAdjust = 0;
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| 120 | count = CountBits((unsigned long)visualPtr->red_mask);
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| 121 | if (count < 8) {
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| 122 | redAdjust = 8 - count;
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| 123 | }
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| 124 | count = CountBits((unsigned long)visualPtr->green_mask);
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| 125 | if (count < 8) {
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| 126 | greenAdjust = 8 - count;
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| 127 | }
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| 128 | count = CountBits((unsigned long)visualPtr->blue_mask);
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| 129 | if (count < 8) {
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| 130 | blueAdjust = 8 - count;
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| 131 | }
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| 132 | }
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| 133 |
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| 134 | /*
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| 135 | *----------------------------------------------------------------------
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| 136 | *
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| 137 | * TrueColorPixel --
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| 138 | *
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| 139 | * Computes a pixel index from the 3 component RGB values.
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| 140 | *
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| 141 | * Results:
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| 142 | * The pixel index is returned.
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| 143 | *
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| 144 | *----------------------------------------------------------------------
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| 145 | */
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| 146 | static INLINE unsigned int
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| 147 | TrueColorPixel(visualPtr, pixelPtr)
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| 148 | Visual *visualPtr;
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| 149 | Pix32 *pixelPtr;
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| 150 | {
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| 151 | unsigned int red, green, blue;
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| 152 |
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| 153 | /*
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| 154 | * The number of bits per color may be less than eight. For example,
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| 155 | * 15/16 bit displays (hi-color) use only 5 bits, 8-bit displays
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| 156 | * use 2 or 3 bits (don't ask me why you'd have an 8-bit TrueColor
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| 157 | * display). So shift off the least significant bits.
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| 158 | */
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| 159 | red = ((unsigned int)pixelPtr->Red >> redAdjust);
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| 160 | green = ((unsigned int)pixelPtr->Green >> greenAdjust);
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| 161 | blue = ((unsigned int)pixelPtr->Blue >> blueAdjust);
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| 162 |
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| 163 | /* Shift each color into the proper location of the pixel index. */
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| 164 | red = (red << redMaskShift) & visualPtr->red_mask;
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| 165 | green = (green << greenMaskShift) & visualPtr->green_mask;
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| 166 | blue = (blue << blueMaskShift) & visualPtr->blue_mask;
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| 167 | return (red | green | blue);
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| 168 | }
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| 169 |
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| 170 | /*
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| 171 | *----------------------------------------------------------------------
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| 172 | *
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| 173 | * DirectColorPixel --
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| 174 | *
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| 175 | * Translates the 3 component RGB values into a pixel index.
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| 176 | * This differs from TrueColor only in that it first translates
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| 177 | * the RGB values through a color table.
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| 178 | *
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| 179 | * Results:
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| 180 | * The pixel index is returned.
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| 181 | *
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| 182 | *----------------------------------------------------------------------
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| 183 | */
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| 184 | static INLINE unsigned int
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| 185 | DirectColorPixel(colorTabPtr, pixelPtr)
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| 186 | struct ColorTableStruct *colorTabPtr;
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| 187 | Pix32 *pixelPtr;
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| 188 | {
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| 189 | unsigned int red, green, blue;
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| 190 |
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| 191 | red = colorTabPtr->red[pixelPtr->Red];
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| 192 | green = colorTabPtr->green[pixelPtr->Green];
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| 193 | blue = colorTabPtr->blue[pixelPtr->Blue];
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| 194 | return (red | green | blue);
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| 195 | }
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| 196 |
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| 197 | /*
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| 198 | *----------------------------------------------------------------------
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| 199 | *
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| 200 | * PseudoColorPixel --
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| 201 | *
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| 202 | * Translates the 3 component RGB values into a pixel index.
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| 203 | * This differs from TrueColor only in that it first translates
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| 204 | * the RGB values through a color table.
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| 205 | *
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| 206 | * Results:
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| 207 | * The pixel index is returned.
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| 208 | *
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| 209 | *----------------------------------------------------------------------
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| 210 | */
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| 211 | static INLINE unsigned int
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| 212 | PseudoColorPixel(pixelPtr, lut)
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| 213 | Pix32 *pixelPtr;
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| 214 | unsigned int *lut;
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| 215 | {
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| 216 | int red, green, blue;
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| 217 | int pixel;
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| 218 |
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| 219 | red = (pixelPtr->Red >> 3) + 1;
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| 220 | green = (pixelPtr->Green >> 3) + 1;
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| 221 | blue = (pixelPtr->Blue >> 3) + 1;
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| 222 | pixel = RGBIndex(red, green, blue);
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| 223 | return lut[pixel];
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| 224 | }
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| 225 |
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| 226 | /*
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| 227 | *----------------------------------------------------------------------
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| 228 | *
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| 229 | * Blt_ColorImageToPixmap --
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| 230 | *
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| 231 | * Converts a color image into a pixmap.
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| 232 | *
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| 233 | * Right now this only handles TrueColor visuals.
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| 234 | *
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| 235 | * Results:
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| 236 | * The new pixmap is returned.
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| 237 | *
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| 238 | *----------------------------------------------------------------------
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| 239 | */
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| 240 | Pixmap
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| 241 | Blt_ColorImageToPixmap(interp, tkwin, image, colorTablePtr)
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| 242 | Tcl_Interp *interp;
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| 243 | Tk_Window tkwin;
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| 244 | Blt_ColorImage image;
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| 245 | ColorTable *colorTablePtr; /* Points to array of colormap indices */
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| 246 | {
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| 247 | Display *display;
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| 248 | int width, height;
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| 249 | Pixmap pixmap;
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| 250 | GC pixmapGC;
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| 251 | Visual *visualPtr;
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| 252 | XImage *imagePtr;
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| 253 | int nPixels;
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| 254 |
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| 255 | visualPtr = Tk_Visual(tkwin);
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| 256 | width = Blt_ColorImageWidth(image);
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| 257 | height = Blt_ColorImageHeight(image);
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| 258 | display = Tk_Display(tkwin);
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| 259 |
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| 260 | ComputeMasks(visualPtr);
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| 261 |
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| 262 | *colorTablePtr = NULL;
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| 263 | imagePtr = XCreateImage(Tk_Display(tkwin), visualPtr, Tk_Depth(tkwin),
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| 264 | ZPixmap, 0, (char *)NULL, width, height, 32, 0);
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| 265 | assert(imagePtr);
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| 266 |
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| 267 | nPixels = width * height;
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| 268 | imagePtr->data = Blt_Malloc(sizeof(Pix32) * nPixels);
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| 269 | assert(imagePtr->data);
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| 270 |
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| 271 | imagePtr->byte_order = MSBFirst; /* Force the byte order */
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| 272 | imagePtr->bitmap_bit_order = imagePtr->byte_order;
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| 273 | imagePtr->bytes_per_line = width * sizeof(Pix32);
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| 274 |
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| 275 | switch (visualPtr->class) {
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| 276 | case TrueColor:
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| 277 | {
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| 278 | register int x, y;
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| 279 | register Pix32 *srcPtr;
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| 280 | register char *destPtr;
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| 281 | unsigned int pixel;
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| 282 | int rowOffset;
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| 283 |
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| 284 | /*
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| 285 | * Compute the colormap locations directly from pixel RGB values.
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| 286 | */
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| 287 | srcPtr = Blt_ColorImageBits(image);
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| 288 | rowOffset = 0;
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| 289 | for (y = 0; y < height; y++) {
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| 290 | destPtr = imagePtr->data + rowOffset;
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| 291 | for (x = 0; x < width; x++, srcPtr++) {
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| 292 | pixel = TrueColorPixel(visualPtr, srcPtr);
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| 293 | switch (imagePtr->bits_per_pixel) {
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| 294 | case 32:
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| 295 | *destPtr++ = (pixel >> 24) & 0xFF;
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| 296 | /*FALLTHRU*/
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| 297 | case 24:
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| 298 | *destPtr++ = (pixel >> 16) & 0xFF;
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| 299 | /*FALLTHRU*/
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| 300 | case 16:
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| 301 | *destPtr++ = (pixel >> 8) & 0xFF;
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| 302 | /*FALLTHRU*/
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| 303 | case 8:
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| 304 | *destPtr++ = pixel & 0xFF;
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| 305 | /*FALLTHRU*/
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| 306 | }
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| 307 | }
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| 308 | rowOffset += imagePtr->bytes_per_line;
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| 309 | }
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| 310 | }
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| 311 | break;
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| 312 |
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| 313 | case DirectColor:
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| 314 | {
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| 315 | register int x, y;
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| 316 | register Pix32 *srcPtr;
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| 317 | register char *destPtr;
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| 318 | unsigned int pixel;
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| 319 | int rowOffset;
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| 320 | struct ColorTableStruct *colorTabPtr;
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| 321 |
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| 322 | /* Build a color table first */
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| 323 | colorTabPtr = Blt_DirectColorTable(interp, tkwin, image);
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| 324 |
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| 325 | /*
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| 326 | * Compute the colormap locations directly from pixel RGB values.
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| 327 | */
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| 328 | srcPtr = Blt_ColorImageBits(image);
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| 329 | rowOffset = 0;
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| 330 | for (y = 0; y < height; y++) {
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| 331 | destPtr = imagePtr->data + rowOffset;
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| 332 | for (x = 0; x < width; x++, srcPtr++) {
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| 333 | pixel = DirectColorPixel(colorTabPtr, srcPtr);
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| 334 | switch (imagePtr->bits_per_pixel) {
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| 335 | case 32:
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| 336 | *destPtr++ = (pixel >> 24) & 0xFF;
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| 337 | /*FALLTHRU*/
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| 338 | case 24:
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| 339 | *destPtr++ = (pixel >> 16) & 0xFF;
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| 340 | /*FALLTHRU*/
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| 341 | case 16:
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| 342 | *destPtr++ = (pixel >> 8) & 0xFF;
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| 343 | /*FALLTHRU*/
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| 344 | case 8:
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| 345 | *destPtr++ = pixel & 0xFF;
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| 346 | /*FALLTHRU*/
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| 347 | }
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| 348 | }
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| 349 | rowOffset += imagePtr->bytes_per_line;
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| 350 | }
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| 351 | *colorTablePtr = colorTabPtr;
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| 352 | }
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| 353 | break;
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| 354 |
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| 355 | case GrayScale:
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| 356 | case StaticGray:
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| 357 | case PseudoColor:
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| 358 | case StaticColor:
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| 359 | {
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| 360 | register int x, y;
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| 361 | register Pix32 *srcPtr;
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| 362 | register char *destPtr;
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| 363 | unsigned int pixel;
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| 364 | int rowOffset;
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| 365 | struct ColorTableStruct *colorTabPtr;
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| 366 |
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| 367 | colorTabPtr = Blt_PseudoColorTable(interp, tkwin, image);
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| 368 |
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| 369 | srcPtr = Blt_ColorImageBits(image);
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| 370 | rowOffset = 0;
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| 371 | for (y = 0; y < height; y++) {
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| 372 | destPtr = imagePtr->data + rowOffset;
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| 373 | for (x = 0; x < width; x++, srcPtr++) {
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| 374 | pixel = PseudoColorPixel(srcPtr, colorTabPtr->lut);
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| 375 | switch (imagePtr->bits_per_pixel) {
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| 376 | case 32:
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| 377 | *destPtr++ = (pixel >> 24) & 0xFF;
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| 378 | /*FALLTHRU*/
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| 379 | case 24:
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| 380 | *destPtr++ = (pixel >> 16) & 0xFF;
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| 381 | /*FALLTHRU*/
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| 382 | case 16:
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| 383 | *destPtr++ = (pixel >> 8) & 0xFF;
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| 384 | /*FALLTHRU*/
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| 385 | case 8:
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| 386 | *destPtr++ = pixel & 0xFF;
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| 387 | /*FALLTHRU*/
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| 388 | }
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| 389 | }
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| 390 | rowOffset += imagePtr->bytes_per_line;
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| 391 | }
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| 392 | Blt_Free(colorTabPtr->lut);
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| 393 | *colorTablePtr = colorTabPtr;
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| 394 | }
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| 395 | break;
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| 396 | default:
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| 397 | return None; /* Bad or unknown visual class. */
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| 398 | }
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| 399 | pixmapGC = Tk_GetGC(tkwin, 0L, (XGCValues *)NULL);
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| 400 | pixmap = Tk_GetPixmap(display, Tk_WindowId(tkwin), width, height,
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| 401 | Tk_Depth(tkwin));
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| 402 | XPutImage(display, pixmap, pixmapGC, imagePtr, 0, 0, 0, 0, width, height);
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| 403 | XDestroyImage(imagePtr);
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| 404 | Tk_FreeGC(display, pixmapGC);
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| 405 | return pixmap;
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| 406 | }
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| 407 |
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| 408 | /* ARGSUSED */
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| 409 | static int
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| 410 | XGetImageErrorProc(clientData, errEventPtr)
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| 411 | ClientData clientData;
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| 412 | XErrorEvent *errEventPtr;
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| 413 | {
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| 414 | int *errorPtr = clientData;
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| 415 |
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| 416 | *errorPtr = TCL_ERROR;
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| 417 | return 0;
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| 418 | }
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| 419 |
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| 420 | /*
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| 421 | *----------------------------------------------------------------------
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| 422 | *
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| 423 | * Blt_DrawableToColorImage --
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| 424 | *
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| 425 | * Takes a snapshot of an X drawable (pixmap or window) and
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| 426 | * converts it to a color image.
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| 427 | *
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| 428 | * The trick here is to efficiently convert the pixel values
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| 429 | * (indices into the color table) into RGB color values. In the
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| 430 | * days of 8-bit displays, it was simpler to get RGB values for
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| 431 | * all 256 indices into the colormap. Instead we'll build a
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| 432 | * hashtable of unique pixels and from that an array of pixels to
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| 433 | * pass to XQueryColors. For TrueColor visuals, we'll simple
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| 434 | * compute the colors from the pixel.
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| 435 | *
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| 436 | * [I don't know how much faster it would be to take advantage
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| 437 | * of all the different visual types. This pretty much depends
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| 438 | * on the size of the image and the number of colors it uses.]
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| 439 | *
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| 440 | * Results:
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| 441 | * Returns a color image of the drawable. If an error occurred,
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| 442 | * NULL is returned.
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| 443 | *
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| 444 | *----------------------------------------------------------------------
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| 445 | */
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| 446 | Blt_ColorImage
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| 447 | Blt_DrawableToColorImage(tkwin, drawable, x, y, width, height, inputGamma)
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| 448 | Tk_Window tkwin;
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| 449 | Drawable drawable;
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| 450 | register int x, y; /* Offset of image from the drawable's
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| 451 | * origin. */
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| 452 | int width, height; /* Dimension of the image. Image must
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| 453 | * be completely contained by the
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| 454 | * drawable. */
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| 455 | double inputGamma;
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| 456 | {
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| 457 | XImage *imagePtr;
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| 458 | Blt_ColorImage image;
|
---|
| 459 | register Pix32 *destPtr;
|
---|
| 460 | unsigned long pixel;
|
---|
| 461 | int result = TCL_OK;
|
---|
| 462 | Tk_ErrorHandler errHandler;
|
---|
| 463 | Visual *visualPtr;
|
---|
| 464 | unsigned char lut[256];
|
---|
| 465 |
|
---|
| 466 | errHandler = Tk_CreateErrorHandler(Tk_Display(tkwin), BadMatch,
|
---|
| 467 | X_GetImage, -1, XGetImageErrorProc, &result);
|
---|
| 468 | imagePtr = XGetImage(Tk_Display(tkwin), drawable, x, y, width, height,
|
---|
| 469 | AllPlanes, ZPixmap);
|
---|
| 470 | Tk_DeleteErrorHandler(errHandler);
|
---|
| 471 | XSync(Tk_Display(tkwin), False);
|
---|
| 472 | if (result != TCL_OK) {
|
---|
| 473 | return NULL;
|
---|
| 474 | }
|
---|
| 475 |
|
---|
| 476 | {
|
---|
| 477 | register int i;
|
---|
| 478 | double value;
|
---|
| 479 |
|
---|
| 480 | for (i = 0; i < 256; i++) {
|
---|
| 481 | value = pow(i / 255.0, inputGamma) * 255.0 + 0.5;
|
---|
| 482 | lut[i] = (unsigned char)CLAMP(value);
|
---|
| 483 | }
|
---|
| 484 | }
|
---|
| 485 | /*
|
---|
| 486 | * First allocate a color image to hold the screen snapshot.
|
---|
| 487 | */
|
---|
| 488 | image = Blt_CreateColorImage(width, height);
|
---|
| 489 | visualPtr = Tk_Visual(tkwin);
|
---|
| 490 | if (visualPtr->class == TrueColor) {
|
---|
| 491 | unsigned int red, green, blue;
|
---|
| 492 | /*
|
---|
| 493 | * Directly compute the RGB color values from the pixel index
|
---|
| 494 | * rather than of going through XQueryColors.
|
---|
| 495 | */
|
---|
| 496 | ComputeMasks(visualPtr);
|
---|
| 497 | destPtr = Blt_ColorImageBits(image);
|
---|
| 498 | for (y = 0; y < height; y++) {
|
---|
| 499 | for (x = 0; x < width; x++) {
|
---|
| 500 | pixel = XGetPixel(imagePtr, x, y);
|
---|
| 501 |
|
---|
| 502 | red = ((pixel & visualPtr->red_mask) >> redMaskShift) << redAdjust;
|
---|
| 503 | green = ((pixel & visualPtr->green_mask) >> greenMaskShift) << greenAdjust;
|
---|
| 504 | blue = ((pixel & visualPtr->blue_mask) >> blueMaskShift) << blueAdjust;
|
---|
| 505 |
|
---|
| 506 | /*
|
---|
| 507 | * The number of bits per color in the pixel may be
|
---|
| 508 | * less than eight. For example, 15/16 bit displays
|
---|
| 509 | * (hi-color) use only 5 bits, 8-bit displays use 2 or
|
---|
| 510 | * 3 bits (don't ask me why you'd have an 8-bit
|
---|
| 511 | * TrueColor display). So shift back the least
|
---|
| 512 | * significant bits.
|
---|
| 513 | */
|
---|
| 514 | destPtr->Red = lut[red];
|
---|
| 515 | destPtr->Green = lut[green];
|
---|
| 516 | destPtr->Blue = lut[blue];
|
---|
| 517 | destPtr->Alpha = (unsigned char)-1;
|
---|
| 518 | destPtr++;
|
---|
| 519 | }
|
---|
| 520 | }
|
---|
| 521 | XDestroyImage(imagePtr);
|
---|
| 522 | } else {
|
---|
| 523 | Blt_HashEntry *hPtr;
|
---|
| 524 | Blt_HashSearch cursor;
|
---|
| 525 | Blt_HashTable pixelTable;
|
---|
| 526 | XColor *colorPtr, *colorArr;
|
---|
| 527 | Pix32 *endPtr;
|
---|
| 528 | int nPixels;
|
---|
| 529 | int nColors;
|
---|
| 530 | int isNew;
|
---|
| 531 |
|
---|
| 532 | /*
|
---|
| 533 | * Fill the array with each pixel of the image. At the same time, build
|
---|
| 534 | * up a hashtable of the pixels used.
|
---|
| 535 | */
|
---|
| 536 | nPixels = width * height;
|
---|
| 537 | Blt_InitHashTableWithPool(&pixelTable, BLT_ONE_WORD_KEYS);
|
---|
| 538 | destPtr = Blt_ColorImageBits(image);
|
---|
| 539 | for (y = 0; y < height; y++) {
|
---|
| 540 | for (x = 0; x < width; x++) {
|
---|
| 541 | pixel = XGetPixel(imagePtr, x, y);
|
---|
| 542 | hPtr = Blt_CreateHashEntry(&pixelTable, (char *)pixel, &isNew);
|
---|
| 543 | if (isNew) {
|
---|
| 544 | Blt_SetHashValue(hPtr, (char *)pixel);
|
---|
| 545 | }
|
---|
| 546 | destPtr->value = pixel;
|
---|
| 547 | destPtr++;
|
---|
| 548 | }
|
---|
| 549 | }
|
---|
| 550 | XDestroyImage(imagePtr);
|
---|
| 551 |
|
---|
| 552 | /*
|
---|
| 553 | * Convert the hashtable of pixels into an array of XColors so
|
---|
| 554 | * that we can call XQueryColors with it. XQueryColors will
|
---|
| 555 | * convert the pixels into their RGB values.
|
---|
| 556 | */
|
---|
| 557 | nColors = pixelTable.numEntries;
|
---|
| 558 | colorArr = Blt_Malloc(sizeof(XColor) * nColors);
|
---|
| 559 | assert(colorArr);
|
---|
| 560 |
|
---|
| 561 | colorPtr = colorArr;
|
---|
| 562 | for (hPtr = Blt_FirstHashEntry(&pixelTable, &cursor); hPtr != NULL;
|
---|
| 563 | hPtr = Blt_NextHashEntry(&cursor)) {
|
---|
| 564 | colorPtr->pixel = (unsigned long)Blt_GetHashValue(hPtr);
|
---|
| 565 | Blt_SetHashValue(hPtr, (char *)colorPtr);
|
---|
| 566 | colorPtr++;
|
---|
| 567 | }
|
---|
| 568 | XQueryColors(Tk_Display(tkwin), Tk_Colormap(tkwin), colorArr, nColors);
|
---|
| 569 |
|
---|
| 570 | /*
|
---|
| 571 | * Go again through the array of pixels, replacing each pixel
|
---|
| 572 | * of the image with its RGB value.
|
---|
| 573 | */
|
---|
| 574 | destPtr = Blt_ColorImageBits(image);
|
---|
| 575 | endPtr = destPtr + nPixels;
|
---|
| 576 | for (/* empty */; destPtr < endPtr; destPtr++) {
|
---|
| 577 | hPtr = Blt_FindHashEntry(&pixelTable, (char *)destPtr->value);
|
---|
| 578 | colorPtr = (XColor *)Blt_GetHashValue(hPtr);
|
---|
| 579 | destPtr->Red = lut[colorPtr->red >> 8];
|
---|
| 580 | destPtr->Green = lut[colorPtr->green >> 8];
|
---|
| 581 | destPtr->Blue = lut[colorPtr->blue >> 8];
|
---|
| 582 | destPtr->Alpha = (unsigned char)-1;
|
---|
| 583 | }
|
---|
| 584 | Blt_Free(colorArr);
|
---|
| 585 | Blt_DeleteHashTable(&pixelTable);
|
---|
| 586 | }
|
---|
| 587 | return image;
|
---|
| 588 | }
|
---|
| 589 |
|
---|
| 590 |
|
---|
| 591 | Pixmap
|
---|
| 592 | Blt_PhotoImageMask(tkwin, src)
|
---|
| 593 | Tk_Window tkwin;
|
---|
| 594 | Tk_PhotoImageBlock src;
|
---|
| 595 | {
|
---|
| 596 | Pixmap bitmap;
|
---|
| 597 | int arraySize, bytes_per_line;
|
---|
| 598 | int offset, count;
|
---|
| 599 | int value, bitMask;
|
---|
| 600 | register int x, y;
|
---|
| 601 | unsigned char *bits;
|
---|
| 602 | unsigned char *srcPtr;
|
---|
| 603 | unsigned char *destPtr;
|
---|
| 604 | unsigned long pixel;
|
---|
| 605 |
|
---|
| 606 | bytes_per_line = (src.width + 7) / 8;
|
---|
| 607 | arraySize = src.height * bytes_per_line;
|
---|
| 608 | bits = Blt_Malloc(sizeof(unsigned char) * arraySize);
|
---|
| 609 | assert(bits);
|
---|
| 610 | destPtr = bits;
|
---|
| 611 | offset = count = 0;
|
---|
| 612 | for (y = 0; y < src.height; y++) {
|
---|
| 613 | value = 0, bitMask = 1;
|
---|
| 614 | srcPtr = src.pixelPtr + offset;
|
---|
| 615 | for (x = 0; x < src.width; /*empty*/ ) {
|
---|
| 616 | pixel = (srcPtr[src.offset[3]] != 0x00);
|
---|
| 617 | if (pixel) {
|
---|
| 618 | value |= bitMask;
|
---|
| 619 | } else {
|
---|
| 620 | count++; /* Count the number of transparent pixels. */
|
---|
| 621 | }
|
---|
| 622 | bitMask <<= 1;
|
---|
| 623 | x++;
|
---|
| 624 | if (!(x & 7)) {
|
---|
| 625 | *destPtr++ = (unsigned char)value;
|
---|
| 626 | value = 0, bitMask = 1;
|
---|
| 627 | }
|
---|
| 628 | srcPtr += src.pixelSize;
|
---|
| 629 | }
|
---|
| 630 | if (x & 7) {
|
---|
| 631 | *destPtr++ = (unsigned char)value;
|
---|
| 632 | }
|
---|
| 633 | offset += src.pitch;
|
---|
| 634 | }
|
---|
| 635 | if (count > 0) {
|
---|
| 636 | Tk_MakeWindowExist(tkwin);
|
---|
| 637 | bitmap = XCreateBitmapFromData(Tk_Display(tkwin), Tk_WindowId(tkwin),
|
---|
| 638 | (char *)bits, (unsigned int)src.width, (unsigned int)src.height);
|
---|
| 639 | } else {
|
---|
| 640 | bitmap = None; /* Image is opaque. */
|
---|
| 641 | }
|
---|
| 642 | Blt_Free(bits);
|
---|
| 643 | return bitmap;
|
---|
| 644 | }
|
---|
| 645 |
|
---|
| 646 | Pixmap
|
---|
| 647 | Blt_ColorImageMask(tkwin, image)
|
---|
| 648 | Tk_Window tkwin;
|
---|
| 649 | Blt_ColorImage image;
|
---|
| 650 | {
|
---|
| 651 | Pixmap bitmap;
|
---|
| 652 | int arraySize, bytes_per_line;
|
---|
| 653 | int count;
|
---|
| 654 | int value, bitMask;
|
---|
| 655 | register int x, y;
|
---|
| 656 | unsigned char *bits;
|
---|
| 657 | Pix32 *srcPtr;
|
---|
| 658 | unsigned char *destPtr;
|
---|
| 659 | unsigned long pixel;
|
---|
| 660 | int width, height;
|
---|
| 661 |
|
---|
| 662 | width = Blt_ColorImageWidth(image);
|
---|
| 663 | height = Blt_ColorImageHeight(image);
|
---|
| 664 | bytes_per_line = (width + 7) / 8;
|
---|
| 665 | arraySize = height * bytes_per_line;
|
---|
| 666 | bits = Blt_Malloc(sizeof(unsigned char) * arraySize);
|
---|
| 667 | assert(bits);
|
---|
| 668 | destPtr = bits;
|
---|
| 669 | count = 0;
|
---|
| 670 | srcPtr = Blt_ColorImageBits(image);
|
---|
| 671 | for (y = 0; y < height; y++) {
|
---|
| 672 | value = 0, bitMask = 1;
|
---|
| 673 | for (x = 0; x < width; /*empty*/ ) {
|
---|
| 674 | pixel = (srcPtr->Alpha != 0x00);
|
---|
| 675 | if (pixel) {
|
---|
| 676 | value |= bitMask;
|
---|
| 677 | } else {
|
---|
| 678 | count++; /* Count the number of transparent pixels. */
|
---|
| 679 | }
|
---|
| 680 | bitMask <<= 1;
|
---|
| 681 | x++;
|
---|
| 682 | if (!(x & 7)) {
|
---|
| 683 | *destPtr++ = (unsigned char)value;
|
---|
| 684 | value = 0, bitMask = 1;
|
---|
| 685 | }
|
---|
| 686 | srcPtr++;
|
---|
| 687 | }
|
---|
| 688 | if (x & 7) {
|
---|
| 689 | *destPtr++ = (unsigned char)value;
|
---|
| 690 | }
|
---|
| 691 | }
|
---|
| 692 | if (count > 0) {
|
---|
| 693 | Tk_MakeWindowExist(tkwin);
|
---|
| 694 | bitmap = XCreateBitmapFromData(Tk_Display(tkwin), Tk_WindowId(tkwin),
|
---|
| 695 | (char *)bits, (unsigned int)width, (unsigned int)height);
|
---|
| 696 | } else {
|
---|
| 697 | bitmap = None; /* Image is opaque. */
|
---|
| 698 | }
|
---|
| 699 | Blt_Free(bits);
|
---|
| 700 | return bitmap;
|
---|
| 701 | }
|
---|
| 702 |
|
---|
| 703 | /*
|
---|
| 704 | * -----------------------------------------------------------------
|
---|
| 705 | *
|
---|
| 706 | * Blt_RotateBitmap --
|
---|
| 707 | *
|
---|
| 708 | * Creates a new bitmap containing the rotated image of the given
|
---|
| 709 | * bitmap. We also need a special GC of depth 1, so that we do
|
---|
| 710 | * not need to rotate more than one plane of the bitmap.
|
---|
| 711 | *
|
---|
| 712 | * Results:
|
---|
| 713 | * Returns a new bitmap containing the rotated image.
|
---|
| 714 | *
|
---|
| 715 | * -----------------------------------------------------------------
|
---|
| 716 | */
|
---|
| 717 | Pixmap
|
---|
| 718 | Blt_RotateBitmap(tkwin, srcBitmap, srcWidth, srcHeight, theta,
|
---|
| 719 | destWidthPtr, destHeightPtr)
|
---|
| 720 | Tk_Window tkwin;
|
---|
| 721 | Pixmap srcBitmap; /* Source bitmap to be rotated */
|
---|
| 722 | int srcWidth, srcHeight; /* Width and height of the source bitmap */
|
---|
| 723 | double theta; /* Right angle rotation to perform */
|
---|
| 724 | int *destWidthPtr, *destHeightPtr;
|
---|
| 725 | {
|
---|
| 726 | Display *display; /* X display */
|
---|
| 727 | Window root; /* Root window drawable */
|
---|
| 728 | Pixmap destBitmap;
|
---|
| 729 | int destWidth, destHeight;
|
---|
| 730 | XImage *src, *dest;
|
---|
| 731 | register int x, y; /* Destination bitmap coordinates */
|
---|
| 732 | register int sx, sy; /* Source bitmap coordinates */
|
---|
| 733 | unsigned long pixel;
|
---|
| 734 | GC bitmapGC;
|
---|
| 735 | double rotWidth, rotHeight;
|
---|
| 736 |
|
---|
| 737 | display = Tk_Display(tkwin);
|
---|
| 738 | root = RootWindow(Tk_Display(tkwin), Tk_ScreenNumber(tkwin));
|
---|
| 739 |
|
---|
| 740 | /* Create a bitmap and image big enough to contain the rotated text */
|
---|
| 741 | Blt_GetBoundingBox(srcWidth, srcHeight, theta, &rotWidth, &rotHeight,
|
---|
| 742 | (Point2D *)NULL);
|
---|
| 743 | destWidth = ROUND(rotWidth);
|
---|
| 744 | destHeight = ROUND(rotHeight);
|
---|
| 745 | destBitmap = Tk_GetPixmap(display, root, destWidth, destHeight, 1);
|
---|
| 746 | bitmapGC = Blt_GetBitmapGC(tkwin);
|
---|
| 747 | XSetForeground(display, bitmapGC, 0x0);
|
---|
| 748 | XFillRectangle(display, destBitmap, bitmapGC, 0, 0, destWidth, destHeight);
|
---|
| 749 |
|
---|
| 750 | src = XGetImage(display, srcBitmap, 0, 0, srcWidth, srcHeight, 1, ZPixmap);
|
---|
| 751 | dest = XGetImage(display, destBitmap, 0, 0, destWidth, destHeight, 1,
|
---|
| 752 | ZPixmap);
|
---|
| 753 | theta = FMOD(theta, 360.0);
|
---|
| 754 | if (FMOD(theta, (double)90.0) == 0.0) {
|
---|
| 755 | int quadrant;
|
---|
| 756 |
|
---|
| 757 | /* Handle right-angle rotations specifically */
|
---|
| 758 |
|
---|
| 759 | quadrant = (int)(theta / 90.0);
|
---|
| 760 | switch (quadrant) {
|
---|
| 761 | case ROTATE_270: /* 270 degrees */
|
---|
| 762 | for (y = 0; y < destHeight; y++) {
|
---|
| 763 | sx = y;
|
---|
| 764 | for (x = 0; x < destWidth; x++) {
|
---|
| 765 | sy = destWidth - x - 1;
|
---|
| 766 | pixel = XGetPixel(src, sx, sy);
|
---|
| 767 | if (pixel) {
|
---|
| 768 | XPutPixel(dest, x, y, pixel);
|
---|
| 769 | }
|
---|
| 770 | }
|
---|
| 771 | }
|
---|
| 772 | break;
|
---|
| 773 |
|
---|
| 774 | case ROTATE_180: /* 180 degrees */
|
---|
| 775 | for (y = 0; y < destHeight; y++) {
|
---|
| 776 | sy = destHeight - y - 1;
|
---|
| 777 | for (x = 0; x < destWidth; x++) {
|
---|
| 778 | sx = destWidth - x - 1,
|
---|
| 779 | pixel = XGetPixel(src, sx, sy);
|
---|
| 780 | if (pixel) {
|
---|
| 781 | XPutPixel(dest, x, y, pixel);
|
---|
| 782 | }
|
---|
| 783 | }
|
---|
| 784 | }
|
---|
| 785 | break;
|
---|
| 786 |
|
---|
| 787 | case ROTATE_90: /* 90 degrees */
|
---|
| 788 | for (y = 0; y < destHeight; y++) {
|
---|
| 789 | sx = destHeight - y - 1;
|
---|
| 790 | for (x = 0; x < destWidth; x++) {
|
---|
| 791 | sy = x;
|
---|
| 792 | pixel = XGetPixel(src, sx, sy);
|
---|
| 793 | if (pixel) {
|
---|
| 794 | XPutPixel(dest, x, y, pixel);
|
---|
| 795 | }
|
---|
| 796 | }
|
---|
| 797 | }
|
---|
| 798 | break;
|
---|
| 799 |
|
---|
| 800 | case ROTATE_0: /* 0 degrees */
|
---|
| 801 | for (y = 0; y < destHeight; y++) {
|
---|
| 802 | for (x = 0; x < destWidth; x++) {
|
---|
| 803 | pixel = XGetPixel(src, x, y);
|
---|
| 804 | if (pixel) {
|
---|
| 805 | XPutPixel(dest, x, y, pixel);
|
---|
| 806 | }
|
---|
| 807 | }
|
---|
| 808 | }
|
---|
| 809 | break;
|
---|
| 810 |
|
---|
| 811 | default:
|
---|
| 812 | /* The calling routine should never let this happen. */
|
---|
| 813 | break;
|
---|
| 814 | }
|
---|
| 815 | } else {
|
---|
| 816 | double radians, sinTheta, cosTheta;
|
---|
| 817 | double sox, soy; /* Offset from the center of
|
---|
| 818 | * the source rectangle. */
|
---|
| 819 | double destCX, destCY; /* Offset to the center of the destination
|
---|
| 820 | * rectangle. */
|
---|
| 821 | double tx, ty; /* Translated coordinates from center */
|
---|
| 822 | double rx, ry; /* Angle of rotation for x and y coordinates */
|
---|
| 823 |
|
---|
| 824 | radians = (theta / 180.0) * M_PI;
|
---|
| 825 | sinTheta = sin(radians), cosTheta = cos(radians);
|
---|
| 826 |
|
---|
| 827 | /*
|
---|
| 828 | * Coordinates of the centers of the source and destination rectangles
|
---|
| 829 | */
|
---|
| 830 | sox = srcWidth * 0.5;
|
---|
| 831 | soy = srcHeight * 0.5;
|
---|
| 832 | destCX = destWidth * 0.5;
|
---|
| 833 | destCY = destHeight * 0.5;
|
---|
| 834 |
|
---|
| 835 | /* For each pixel of the destination image, transform back to the
|
---|
| 836 | * associated pixel in the source image. */
|
---|
| 837 |
|
---|
| 838 | for (y = 0; y < destHeight; y++) {
|
---|
| 839 | ty = y - destCY;
|
---|
| 840 | for (x = 0; x < destWidth; x++) {
|
---|
| 841 |
|
---|
| 842 | /* Translate origin to center of destination image. */
|
---|
| 843 | tx = x - destCX;
|
---|
| 844 |
|
---|
| 845 | /* Rotate the coordinates about the origin. */
|
---|
| 846 | rx = (tx * cosTheta) - (ty * sinTheta);
|
---|
| 847 | ry = (tx * sinTheta) + (ty * cosTheta);
|
---|
| 848 |
|
---|
| 849 | /* Translate back to the center of the source image. */
|
---|
| 850 | rx += sox;
|
---|
| 851 | ry += soy;
|
---|
| 852 |
|
---|
| 853 | sx = ROUND(rx);
|
---|
| 854 | sy = ROUND(ry);
|
---|
| 855 |
|
---|
| 856 | /*
|
---|
| 857 | * Verify the coordinates, since the destination image can be
|
---|
| 858 | * bigger than the source.
|
---|
| 859 | */
|
---|
| 860 |
|
---|
| 861 | if ((sx >= srcWidth) || (sx < 0) || (sy >= srcHeight) ||
|
---|
| 862 | (sy < 0)) {
|
---|
| 863 | continue;
|
---|
| 864 | }
|
---|
| 865 | pixel = XGetPixel(src, sx, sy);
|
---|
| 866 | if (pixel) {
|
---|
| 867 | XPutPixel(dest, x, y, pixel);
|
---|
| 868 | }
|
---|
| 869 | }
|
---|
| 870 | }
|
---|
| 871 | }
|
---|
| 872 | /* Write the rotated image into the destination bitmap. */
|
---|
| 873 | XPutImage(display, destBitmap, bitmapGC, dest, 0, 0, 0, 0, destWidth,
|
---|
| 874 | destHeight);
|
---|
| 875 |
|
---|
| 876 | /* Clean up the temporary resources used. */
|
---|
| 877 | XDestroyImage(src), XDestroyImage(dest);
|
---|
| 878 | *destWidthPtr = destWidth;
|
---|
| 879 | *destHeightPtr = destHeight;
|
---|
| 880 | return destBitmap;
|
---|
| 881 | }
|
---|
| 882 |
|
---|
| 883 | /*
|
---|
| 884 | * -----------------------------------------------------------------------
|
---|
| 885 | *
|
---|
| 886 | * Blt_ScaleBitmap --
|
---|
| 887 | *
|
---|
| 888 | * Creates a new scaled bitmap from another bitmap. The new bitmap
|
---|
| 889 | * is bounded by a specified region. Only this portion of the bitmap
|
---|
| 890 | * is scaled from the original bitmap.
|
---|
| 891 | *
|
---|
| 892 | * By bounding scaling to a region we can generate a new bitmap
|
---|
| 893 | * which is no bigger than the specified viewport.
|
---|
| 894 | *
|
---|
| 895 | * Results:
|
---|
| 896 | * The new scaled bitmap is returned.
|
---|
| 897 | *
|
---|
| 898 | * Side Effects:
|
---|
| 899 | * A new pixmap is allocated. The caller must release this.
|
---|
| 900 | *
|
---|
| 901 | * -----------------------------------------------------------------------
|
---|
| 902 | */
|
---|
| 903 | Pixmap
|
---|
| 904 | Blt_ScaleBitmap(tkwin, srcBitmap, srcWidth, srcHeight, destWidth, destHeight)
|
---|
| 905 | Tk_Window tkwin;
|
---|
| 906 | Pixmap srcBitmap;
|
---|
| 907 | int srcWidth, srcHeight, destWidth, destHeight;
|
---|
| 908 | {
|
---|
| 909 | Display *display;
|
---|
| 910 | GC bitmapGC;
|
---|
| 911 | Pixmap destBitmap;
|
---|
| 912 | Window root;
|
---|
| 913 | XImage *src, *dest;
|
---|
| 914 | double xScale, yScale;
|
---|
| 915 | register int sx, sy; /* Source bitmap coordinates */
|
---|
| 916 | register int x, y; /* Destination bitmap coordinates */
|
---|
| 917 | unsigned long pixel;
|
---|
| 918 |
|
---|
| 919 | /* Create a new bitmap the size of the region and clear it */
|
---|
| 920 |
|
---|
| 921 | display = Tk_Display(tkwin);
|
---|
| 922 |
|
---|
| 923 | root = RootWindow(Tk_Display(tkwin), Tk_ScreenNumber(tkwin));
|
---|
| 924 | destBitmap = Tk_GetPixmap(display, root, destWidth, destHeight, 1);
|
---|
| 925 | bitmapGC = Blt_GetBitmapGC(tkwin);
|
---|
| 926 | XSetForeground(display, bitmapGC, 0x0);
|
---|
| 927 | XFillRectangle(display, destBitmap, bitmapGC, 0, 0, destWidth, destHeight);
|
---|
| 928 |
|
---|
| 929 | src = XGetImage(display, srcBitmap, 0, 0, srcWidth, srcHeight, 1, ZPixmap);
|
---|
| 930 | dest = XGetImage(display, destBitmap, 0, 0, destWidth, destHeight, 1,
|
---|
| 931 | ZPixmap);
|
---|
| 932 |
|
---|
| 933 | /*
|
---|
| 934 | * Scale each pixel of destination image from results of source
|
---|
| 935 | * image. Verify the coordinates, since the destination image can
|
---|
| 936 | * be bigger than the source
|
---|
| 937 | */
|
---|
| 938 | xScale = (double)srcWidth / (double)destWidth;
|
---|
| 939 | yScale = (double)srcHeight / (double)destHeight;
|
---|
| 940 |
|
---|
| 941 | /* Map each pixel in the destination image back to the source. */
|
---|
| 942 | for (y = 0; y < destHeight; y++) {
|
---|
| 943 | sy = (int)(yScale * (double)y);
|
---|
| 944 | for (x = 0; x < destWidth; x++) {
|
---|
| 945 | sx = (int)(xScale * (double)x);
|
---|
| 946 | pixel = XGetPixel(src, sx, sy);
|
---|
| 947 | if (pixel) {
|
---|
| 948 | XPutPixel(dest, x, y, pixel);
|
---|
| 949 | }
|
---|
| 950 | }
|
---|
| 951 | }
|
---|
| 952 | /* Write the scaled image into the destination bitmap */
|
---|
| 953 |
|
---|
| 954 | XPutImage(display, destBitmap, bitmapGC, dest, 0, 0, 0, 0,
|
---|
| 955 | destWidth, destHeight);
|
---|
| 956 | XDestroyImage(src), XDestroyImage(dest);
|
---|
| 957 | return destBitmap;
|
---|
| 958 | }
|
---|
| 959 |
|
---|
| 960 |
|
---|
| 961 | /*
|
---|
| 962 | * -----------------------------------------------------------------------
|
---|
| 963 | *
|
---|
| 964 | * Blt_RotateScaleBitmapRegion --
|
---|
| 965 | *
|
---|
| 966 | * Creates a scaled and rotated bitmap from a given bitmap. The
|
---|
| 967 | * caller also provides (offsets and dimensions) the region of
|
---|
| 968 | * interest in the destination bitmap. This saves having to
|
---|
| 969 | * process the entire destination bitmap is only part of it is
|
---|
| 970 | * showing in the viewport.
|
---|
| 971 | *
|
---|
| 972 | * This uses a simple rotation/scaling of each pixel in the
|
---|
| 973 | * destination image. For each pixel, the corresponding
|
---|
| 974 | * pixel in the source bitmap is used. This means that
|
---|
| 975 | * destination coordinates are first scaled to the size of
|
---|
| 976 | * the rotated source bitmap. These coordinates are then
|
---|
| 977 | * rotated back to their original orientation in the source.
|
---|
| 978 | *
|
---|
| 979 | * Results:
|
---|
| 980 | * The new rotated and scaled bitmap is returned.
|
---|
| 981 | *
|
---|
| 982 | * Side Effects:
|
---|
| 983 | * A new pixmap is allocated. The caller must release this.
|
---|
| 984 | *
|
---|
| 985 | * -----------------------------------------------------------------------
|
---|
| 986 | */
|
---|
| 987 | Pixmap
|
---|
| 988 | Blt_ScaleRotateBitmapRegion(
|
---|
| 989 | Tk_Window tkwin,
|
---|
| 990 | Pixmap srcBitmap, /* Source bitmap. */
|
---|
| 991 | unsigned int srcWidth,
|
---|
| 992 | unsigned int srcHeight, /* Size of source bitmap */
|
---|
| 993 | int regionX,
|
---|
| 994 | int regionY, /* Offset of region in virtual
|
---|
| 995 | * destination bitmap. */
|
---|
| 996 | unsigned int regionWidth,
|
---|
| 997 | unsigned int regionHeight, /* Desire size of bitmap region. */
|
---|
| 998 | unsigned int destWidth,
|
---|
| 999 | unsigned int destHeight, /* Virtual size of destination bitmap. */
|
---|
| 1000 | double theta) /* Angle to rotate bitmap. */
|
---|
| 1001 | {
|
---|
| 1002 | Display *display; /* X display */
|
---|
| 1003 | Window root; /* Root window drawable */
|
---|
| 1004 | Pixmap destBitmap;
|
---|
| 1005 | XImage *src, *dest;
|
---|
| 1006 | register int x, y; /* Destination bitmap coordinates */
|
---|
| 1007 | register int sx, sy; /* Source bitmap coordinates */
|
---|
| 1008 | unsigned long pixel;
|
---|
| 1009 | double xScale, yScale;
|
---|
| 1010 | double rotWidth, rotHeight;
|
---|
| 1011 | GC bitmapGC;
|
---|
| 1012 |
|
---|
| 1013 | display = Tk_Display(tkwin);
|
---|
| 1014 | root = RootWindow(Tk_Display(tkwin), Tk_ScreenNumber(tkwin));
|
---|
| 1015 |
|
---|
| 1016 | /* Create a bitmap and image big enough to contain the rotated text */
|
---|
| 1017 | bitmapGC = Blt_GetBitmapGC(tkwin);
|
---|
| 1018 | destBitmap = Tk_GetPixmap(display, root, regionWidth, regionHeight, 1);
|
---|
| 1019 | XSetForeground(display, bitmapGC, 0x0);
|
---|
| 1020 | XFillRectangle(display, destBitmap, bitmapGC, 0, 0, regionWidth,
|
---|
| 1021 | regionHeight);
|
---|
| 1022 |
|
---|
| 1023 | src = XGetImage(display, srcBitmap, 0, 0, srcWidth, srcHeight, 1, ZPixmap);
|
---|
| 1024 | dest = XGetImage(display, destBitmap, 0, 0, regionWidth, regionHeight, 1,
|
---|
| 1025 | ZPixmap);
|
---|
| 1026 | theta = FMOD(theta, 360.0);
|
---|
| 1027 |
|
---|
| 1028 | Blt_GetBoundingBox(srcWidth, srcHeight, theta, &rotWidth, &rotHeight,
|
---|
| 1029 | (Point2D *)NULL);
|
---|
| 1030 | xScale = rotWidth / (double)destWidth;
|
---|
| 1031 | yScale = rotHeight / (double)destHeight;
|
---|
| 1032 |
|
---|
| 1033 | if (FMOD(theta, (double)90.0) == 0.0) {
|
---|
| 1034 | int quadrant;
|
---|
| 1035 |
|
---|
| 1036 | /* Handle right-angle rotations specifically */
|
---|
| 1037 |
|
---|
| 1038 | quadrant = (int)(theta / 90.0);
|
---|
| 1039 | switch (quadrant) {
|
---|
| 1040 | case ROTATE_270: /* 270 degrees */
|
---|
| 1041 | for (y = 0; y < regionHeight; y++) {
|
---|
| 1042 | sx = (int)(yScale * (double)(y + regionY));
|
---|
| 1043 | for (x = 0; x < regionWidth; x++) {
|
---|
| 1044 | sy = (int)(xScale *(double)(destWidth - (x + regionX) - 1));
|
---|
| 1045 | pixel = XGetPixel(src, sx, sy);
|
---|
| 1046 | if (pixel) {
|
---|
| 1047 | XPutPixel(dest, x, y, pixel);
|
---|
| 1048 | }
|
---|
| 1049 | }
|
---|
| 1050 | }
|
---|
| 1051 | break;
|
---|
| 1052 |
|
---|
| 1053 | case ROTATE_180: /* 180 degrees */
|
---|
| 1054 | for (y = 0; y < regionHeight; y++) {
|
---|
| 1055 | sy = (int)(yScale * (double)(destHeight - (y + regionY) - 1));
|
---|
| 1056 | for (x = 0; x < regionWidth; x++) {
|
---|
| 1057 | sx = (int)(xScale *(double)(destWidth - (x + regionX) - 1));
|
---|
| 1058 | pixel = XGetPixel(src, sx, sy);
|
---|
| 1059 | if (pixel) {
|
---|
| 1060 | XPutPixel(dest, x, y, pixel);
|
---|
| 1061 | }
|
---|
| 1062 | }
|
---|
| 1063 | }
|
---|
| 1064 | break;
|
---|
| 1065 |
|
---|
| 1066 | case ROTATE_90: /* 90 degrees */
|
---|
| 1067 | for (y = 0; y < regionHeight; y++) {
|
---|
| 1068 | sx = (int)(yScale * (double)(destHeight - (y + regionY) - 1));
|
---|
| 1069 | for (x = 0; x < regionWidth; x++) {
|
---|
| 1070 | sy = (int)(xScale * (double)(x + regionX));
|
---|
| 1071 | pixel = XGetPixel(src, sx, sy);
|
---|
| 1072 | if (pixel) {
|
---|
| 1073 | XPutPixel(dest, x, y, pixel);
|
---|
| 1074 | }
|
---|
| 1075 | }
|
---|
| 1076 | }
|
---|
| 1077 | break;
|
---|
| 1078 |
|
---|
| 1079 | case ROTATE_0: /* 0 degrees */
|
---|
| 1080 | for (y = 0; y < regionHeight; y++) {
|
---|
| 1081 | sy = (int)(yScale * (double)(y + regionY));
|
---|
| 1082 | for (x = 0; x < regionWidth; x++) {
|
---|
| 1083 | sx = (int)(xScale * (double)(x + regionX));
|
---|
| 1084 | pixel = XGetPixel(src, sx, sy);
|
---|
| 1085 | if (pixel) {
|
---|
| 1086 | XPutPixel(dest, x, y, pixel);
|
---|
| 1087 | }
|
---|
| 1088 | }
|
---|
| 1089 | }
|
---|
| 1090 | break;
|
---|
| 1091 |
|
---|
| 1092 | default:
|
---|
| 1093 | /* The calling routine should never let this happen. */
|
---|
| 1094 | break;
|
---|
| 1095 | }
|
---|
| 1096 | } else {
|
---|
| 1097 | double radians, sinTheta, cosTheta;
|
---|
| 1098 | double sox, soy; /* Offset from the center of the
|
---|
| 1099 | * source rectangle. */
|
---|
| 1100 | double rox, roy; /* Offset to the center of the
|
---|
| 1101 | * rotated rectangle. */
|
---|
| 1102 | double tx, ty; /* Translated coordinates from center */
|
---|
| 1103 | double rx, ry; /* Angle of rotation for x and y coordinates */
|
---|
| 1104 |
|
---|
| 1105 | radians = (theta / 180.0) * M_PI;
|
---|
| 1106 | sinTheta = sin(radians), cosTheta = cos(radians);
|
---|
| 1107 |
|
---|
| 1108 | /*
|
---|
| 1109 | * Coordinates of the centers of the source and destination rectangles
|
---|
| 1110 | */
|
---|
| 1111 | sox = srcWidth * 0.5;
|
---|
| 1112 | soy = srcHeight * 0.5;
|
---|
| 1113 | rox = rotWidth * 0.5;
|
---|
| 1114 | roy = rotHeight * 0.5;
|
---|
| 1115 |
|
---|
| 1116 | /* For each pixel of the destination image, transform back to the
|
---|
| 1117 | * associated pixel in the source image. */
|
---|
| 1118 |
|
---|
| 1119 | for (y = 0; y < regionHeight; y++) {
|
---|
| 1120 | ty = (yScale * (double)(y + regionY)) - roy;
|
---|
| 1121 | for (x = 0; x < regionWidth; x++) {
|
---|
| 1122 |
|
---|
| 1123 | /* Translate origin to center of destination image. */
|
---|
| 1124 | tx = (xScale * (double)(x + regionX)) - rox;
|
---|
| 1125 |
|
---|
| 1126 | /* Rotate the coordinates about the origin. */
|
---|
| 1127 | rx = (tx * cosTheta) - (ty * sinTheta);
|
---|
| 1128 | ry = (tx * sinTheta) + (ty * cosTheta);
|
---|
| 1129 |
|
---|
| 1130 | /* Translate back to the center of the source image. */
|
---|
| 1131 | rx += sox;
|
---|
| 1132 | ry += soy;
|
---|
| 1133 |
|
---|
| 1134 | sx = ROUND(rx);
|
---|
| 1135 | sy = ROUND(ry);
|
---|
| 1136 |
|
---|
| 1137 | /*
|
---|
| 1138 | * Verify the coordinates, since the destination image can be
|
---|
| 1139 | * bigger than the source.
|
---|
| 1140 | */
|
---|
| 1141 |
|
---|
| 1142 | if ((sx >= srcWidth) || (sx < 0) || (sy >= srcHeight) ||
|
---|
| 1143 | (sy < 0)) {
|
---|
| 1144 | continue;
|
---|
| 1145 | }
|
---|
| 1146 | pixel = XGetPixel(src, sx, sy);
|
---|
| 1147 | if (pixel) {
|
---|
| 1148 | XPutPixel(dest, x, y, pixel);
|
---|
| 1149 | }
|
---|
| 1150 | }
|
---|
| 1151 | }
|
---|
| 1152 | }
|
---|
| 1153 | /* Write the rotated image into the destination bitmap. */
|
---|
| 1154 | XPutImage(display, destBitmap, bitmapGC, dest, 0, 0, 0, 0, regionWidth,
|
---|
| 1155 | regionHeight);
|
---|
| 1156 |
|
---|
| 1157 | /* Clean up the temporary resources used. */
|
---|
| 1158 | XDestroyImage(src), XDestroyImage(dest);
|
---|
| 1159 | return destBitmap;
|
---|
| 1160 |
|
---|
| 1161 | }
|
---|
| 1162 |
|
---|
| 1163 | #if HAVE_JPEGLIB_H
|
---|
| 1164 |
|
---|
| 1165 | #undef HAVE_STDLIB_H
|
---|
| 1166 | #undef EXTERN
|
---|
| 1167 | #ifdef WIN32
|
---|
| 1168 | #define XMD_H 1
|
---|
| 1169 | #endif
|
---|
| 1170 | #include "jpeglib.h"
|
---|
| 1171 | #include <setjmp.h>
|
---|
| 1172 |
|
---|
| 1173 | typedef struct {
|
---|
| 1174 | struct jpeg_error_mgr pub; /* "public" fields */
|
---|
| 1175 | jmp_buf jmpBuf;
|
---|
| 1176 | Tcl_DString dString;
|
---|
| 1177 | } ReaderHandler;
|
---|
| 1178 |
|
---|
| 1179 | static void ErrorProc _ANSI_ARGS_((j_common_ptr jpegInfo));
|
---|
| 1180 | static void MessageProc _ANSI_ARGS_((j_common_ptr jpegInfo));
|
---|
| 1181 |
|
---|
| 1182 | /*
|
---|
| 1183 | * Here's the routine that will replace the standard error_exit method:
|
---|
| 1184 | */
|
---|
| 1185 |
|
---|
| 1186 | static void
|
---|
| 1187 | ErrorProc(jpgPtr)
|
---|
| 1188 | j_common_ptr jpgPtr;
|
---|
| 1189 | {
|
---|
| 1190 | ReaderHandler *handlerPtr = (ReaderHandler *)jpgPtr->err;
|
---|
| 1191 |
|
---|
| 1192 | (*handlerPtr->pub.output_message) (jpgPtr);
|
---|
| 1193 | longjmp(handlerPtr->jmpBuf, 1);
|
---|
| 1194 | }
|
---|
| 1195 |
|
---|
| 1196 | static void
|
---|
| 1197 | MessageProc(jpgPtr)
|
---|
| 1198 | j_common_ptr jpgPtr;
|
---|
| 1199 | {
|
---|
| 1200 | ReaderHandler *handlerPtr = (ReaderHandler *)jpgPtr->err;
|
---|
| 1201 | char buffer[JMSG_LENGTH_MAX];
|
---|
| 1202 |
|
---|
| 1203 | /* Create the message and append it into the dynamic string. */
|
---|
| 1204 | (*handlerPtr->pub.format_message) (jpgPtr, buffer);
|
---|
| 1205 | Tcl_DStringAppend(&(handlerPtr->dString), " ", -1);
|
---|
| 1206 | Tcl_DStringAppend(&(handlerPtr->dString), buffer, -1);
|
---|
| 1207 | }
|
---|
| 1208 |
|
---|
| 1209 | /*
|
---|
| 1210 | *----------------------------------------------------------------------
|
---|
| 1211 | *
|
---|
| 1212 | * Blt_JPEGToColorImage --
|
---|
| 1213 | *
|
---|
| 1214 | * Reads a JPEG file and converts it into a color image.
|
---|
| 1215 | *
|
---|
| 1216 | * Results:
|
---|
| 1217 | * The color image is returned. If an error occured, such
|
---|
| 1218 | * as the designated file could not be opened, NULL is returned.
|
---|
| 1219 | *
|
---|
| 1220 | *----------------------------------------------------------------------
|
---|
| 1221 | */
|
---|
| 1222 | Blt_ColorImage
|
---|
| 1223 | Blt_JPEGToColorImage(interp, fileName)
|
---|
| 1224 | Tcl_Interp *interp;
|
---|
| 1225 | char *fileName;
|
---|
| 1226 | {
|
---|
| 1227 | struct jpeg_decompress_struct jpg;
|
---|
| 1228 | Blt_ColorImage image;
|
---|
| 1229 | unsigned int imageWidth, imageHeight;
|
---|
| 1230 | register Pix32 *destPtr;
|
---|
| 1231 | ReaderHandler handler;
|
---|
| 1232 | FILE *f;
|
---|
| 1233 | JSAMPLE **readBuffer;
|
---|
| 1234 | int row_stride;
|
---|
| 1235 | register int i;
|
---|
| 1236 | register JSAMPLE *bufPtr;
|
---|
| 1237 |
|
---|
| 1238 | f = fopen(fileName, "rb");
|
---|
| 1239 | if (f == NULL) {
|
---|
| 1240 | Tcl_AppendResult(interp, "can't open \"", fileName, "\":",
|
---|
| 1241 | Tcl_PosixError(interp), (char *)NULL);
|
---|
| 1242 | return NULL;
|
---|
| 1243 | }
|
---|
| 1244 | image = NULL;
|
---|
| 1245 |
|
---|
| 1246 | /* Step 1: allocate and initialize JPEG decompression object */
|
---|
| 1247 |
|
---|
| 1248 | /* We set up the normal JPEG error routines, then override error_exit. */
|
---|
| 1249 | jpg.dct_method = JDCT_IFAST;
|
---|
| 1250 | jpg.err = jpeg_std_error(&handler.pub);
|
---|
| 1251 | handler.pub.error_exit = ErrorProc;
|
---|
| 1252 | handler.pub.output_message = MessageProc;
|
---|
| 1253 |
|
---|
| 1254 | Tcl_DStringInit(&handler.dString);
|
---|
| 1255 | Tcl_DStringAppend(&handler.dString, "error reading \"", -1);
|
---|
| 1256 | Tcl_DStringAppend(&handler.dString, fileName, -1);
|
---|
| 1257 | Tcl_DStringAppend(&handler.dString, "\": ", -1);
|
---|
| 1258 |
|
---|
| 1259 | if (setjmp(handler.jmpBuf)) {
|
---|
| 1260 | jpeg_destroy_decompress(&jpg);
|
---|
| 1261 | fclose(f);
|
---|
| 1262 | Tcl_DStringResult(interp, &(handler.dString));
|
---|
| 1263 | return NULL;
|
---|
| 1264 | }
|
---|
| 1265 | jpeg_create_decompress(&jpg);
|
---|
| 1266 | jpeg_stdio_src(&jpg, f);
|
---|
| 1267 |
|
---|
| 1268 | jpeg_read_header(&jpg, TRUE); /* Step 3: read file parameters */
|
---|
| 1269 |
|
---|
| 1270 | jpeg_start_decompress(&jpg); /* Step 5: Start decompressor */
|
---|
| 1271 | imageWidth = jpg.output_width;
|
---|
| 1272 | imageHeight = jpg.output_height;
|
---|
| 1273 | if ((imageWidth < 1) || (imageHeight < 1)) {
|
---|
| 1274 | Tcl_AppendResult(interp, "bad JPEG image size", (char *)NULL);
|
---|
| 1275 | fclose(f);
|
---|
| 1276 | return NULL;
|
---|
| 1277 | }
|
---|
| 1278 | /* JSAMPLEs per row in output buffer */
|
---|
| 1279 | row_stride = imageWidth * jpg.output_components;
|
---|
| 1280 |
|
---|
| 1281 | /* Make a one-row-high sample array that will go away when done
|
---|
| 1282 | * with image */
|
---|
| 1283 | readBuffer = (*jpg.mem->alloc_sarray) ((j_common_ptr)&jpg, JPOOL_IMAGE,
|
---|
| 1284 | row_stride, 1);
|
---|
| 1285 | image = Blt_CreateColorImage(imageWidth, imageHeight);
|
---|
| 1286 | destPtr = Blt_ColorImageBits(image);
|
---|
| 1287 |
|
---|
| 1288 | if (jpg.output_components == 1) {
|
---|
| 1289 | while (jpg.output_scanline < imageHeight) {
|
---|
| 1290 | jpeg_read_scanlines(&jpg, readBuffer, 1);
|
---|
| 1291 | bufPtr = readBuffer[0];
|
---|
| 1292 | for (i = 0; i < (int)imageWidth; i++) {
|
---|
| 1293 | destPtr->Red = destPtr->Green = destPtr->Blue = *bufPtr++;
|
---|
| 1294 | destPtr->Alpha = (unsigned char)-1;
|
---|
| 1295 | destPtr++;
|
---|
| 1296 | }
|
---|
| 1297 | }
|
---|
| 1298 | } else {
|
---|
| 1299 | while (jpg.output_scanline < imageHeight) {
|
---|
| 1300 | jpeg_read_scanlines(&jpg, readBuffer, 1);
|
---|
| 1301 | bufPtr = readBuffer[0];
|
---|
| 1302 | for (i = 0; i < (int)imageWidth; i++) {
|
---|
| 1303 | destPtr->Red = *bufPtr++;
|
---|
| 1304 | destPtr->Green = *bufPtr++;
|
---|
| 1305 | destPtr->Blue = *bufPtr++;
|
---|
| 1306 | destPtr->Alpha = (unsigned char)-1;
|
---|
| 1307 | destPtr++;
|
---|
| 1308 | }
|
---|
| 1309 | }
|
---|
| 1310 | }
|
---|
| 1311 | jpeg_finish_decompress(&jpg); /* We can ignore the return value
|
---|
| 1312 | * since suspension is not
|
---|
| 1313 | * possible with the stdio data
|
---|
| 1314 | * source. */
|
---|
| 1315 | jpeg_destroy_decompress(&jpg);
|
---|
| 1316 |
|
---|
| 1317 |
|
---|
| 1318 | /*
|
---|
| 1319 | * After finish_decompress, we can close the input file. Here we
|
---|
| 1320 | * postpone it until after no more JPEG errors are possible, so as
|
---|
| 1321 | * to simplify the setjmp error logic above. (Actually, I don't
|
---|
| 1322 | * think that jpeg_destroy can do an error exit, but why assume
|
---|
| 1323 | * anything...)
|
---|
| 1324 | */
|
---|
| 1325 | fclose(f);
|
---|
| 1326 |
|
---|
| 1327 | /*
|
---|
| 1328 | * At this point you may want to check to see whether any corrupt-data
|
---|
| 1329 | * warnings occurred (test whether jerr.pub.num_warnings is nonzero).
|
---|
| 1330 | */
|
---|
| 1331 | if (handler.pub.num_warnings > 0) {
|
---|
| 1332 | Tcl_SetErrorCode(interp, "IMAGE", "JPEG",
|
---|
| 1333 | Tcl_DStringValue(&(handler.dString)), (char *)NULL);
|
---|
| 1334 | } else {
|
---|
| 1335 | Tcl_SetErrorCode(interp, "NONE", (char *)NULL);
|
---|
| 1336 | }
|
---|
| 1337 | /*
|
---|
| 1338 | * We're ready to call the Tk_Photo routines. They'll take the RGB
|
---|
| 1339 | * array we've processed to build the Tk image of the JPEG.
|
---|
| 1340 | */
|
---|
| 1341 | Tcl_DStringFree(&(handler.dString));
|
---|
| 1342 | return image;
|
---|
| 1343 | }
|
---|
| 1344 |
|
---|
| 1345 | #endif /* HAVE_JPEGLIB_H */
|
---|