4

I could need some help to figure out how to feed the proc below. I need to write a monochrome BMP file. The code below (its from: How to Save monochrome Image as bmp in windows C++ ?) looks like to be able to do this. I'm now stuck on how to convert a std::bitset or preferably boost::dynamic_bitset into this byte* format. All of my attempts so far failed, I wasn't able to write something like an 8x8 checker pattern into the BMP. The proc creates the BMP and it is readable by Photoshop, but the content is a mess. So any suggestions how to solve this are appreciated!

Save1BppImage(byte* ImageData, const char* filename, long w, long h){

    int bitmap_dx = w; // Width of image
    int bitmap_dy = h; // Height of Image

    // create file
    std::ofstream file(filename, std::ios::binary | std::ios::trunc);
    if(!file) return;

    // save bitmap file headers
    BITMAPFILEHEADER fileHeader;
    BITMAPINFOHEADER * infoHeader;
    infoHeader = (BITMAPINFOHEADER*) malloc(sizeof(BITMAPINFOHEADER) );
    RGBQUAD bl = {0,0,0,0};  //black color
    RGBQUAD wh = {0xff,0xff,0xff,0xff}; // white color


    fileHeader.bfType      = 0x4d42;
    fileHeader.bfSize      = 0;
    fileHeader.bfReserved1 = 0;
    fileHeader.bfReserved2 = 0;
    fileHeader.bfOffBits   = sizeof(BITMAPFILEHEADER) + (sizeof(BITMAPINFOHEADER));

    infoHeader->biSize          = (sizeof(BITMAPINFOHEADER) );
    infoHeader->biWidth         = bitmap_dx;    
    infoHeader->biHeight        = bitmap_dy;
    infoHeader->biPlanes        = 1;
    infoHeader->biBitCount      = 1;
    infoHeader->biCompression   = BI_RGB; //no compression needed
    infoHeader->biSizeImage     = 0;
    infoHeader->biXPelsPerMeter = 0;
    infoHeader->biYPelsPerMeter = 0;
    infoHeader->biClrUsed       = 2;
    infoHeader->biClrImportant  = 2;

    file.write((char*)&fileHeader, sizeof(fileHeader)); //write bitmapfileheader
    file.write((char*)infoHeader, (sizeof(BITMAPINFOHEADER) )); //write bitmapinfoheader
    file.write((char*)&bl,sizeof(bl)); //write RGBQUAD for black
    file.write((char*)&wh,sizeof(wh)); //write RGBQUAD for white

    int bytes = (w/8) * h ; //for example for 32X64 image = (32/8)bytes X 64 = 256;

    file.write((const char*)ImageData, bytes);

    file.close();
}

-edit-

an naive approach of mine was something like this

    byte test[64];
for(unsigned int i=0; i<64; ++i)
    if(i % 2)
        test[i] = 0;
    else
        test[i] = 1;

Save1BppImage(test, "C:/bitmap.bmp", 8, 8);
2

The code you have is very close. Here are a few thoughts about where it might be off.

The bfOffBits value must include the size of the palette.

fileHeader.bfOffBits   = sizeof(BITMAPFILEHEADER) + (sizeof(BITMAPINFOHEADER)) + 2*sizeof(RGBQUAD);

Some software may interpret 0 as white and 1 as black, regardless of what the palette says. Even though the file format allows you to go either way, you're better off specifying the palette in that order and inverting your bits if necessary.

Each row of a bitmap will start on a 4-byte boundary. If your bitmap width isn't a multiple of 32, you're going to need some padding between each row.

BMP files are ordered from the bottom row to the top row, which is backwards from the way most people organize their arrays.

The last two recommendations are combined to look something like this:

int bytes_in = (w + 7) / 8;
int bytes_out = ((w + 31) / 32) * 4;
const char * zeros[4] = {0, 0, 0, 0};
for (int y = h - 1;  y >= 0;  --y)
{
    file.write(((const char *)ImageData) + (y * bytes_in), bytes_in);
    if (bytes_out != bytes_in)
        file.write(zeros, bytes_out - bytes_in);
}
0

I have something very similiar...

  • This approach DOES NOT treat the padding of the BMP format. So You can only make bitmaps with width multiple of 4.

  • This is NOT a monochromatic bitmap. It's a RGB format, but you can tune it easily.

  • This is NOT an exactly answer to you, but for sure may be useful for you.

Enjoy it.

void createBitmap( byte * imageData, const char * filename, int width, int height )
{
    BITMAPFILEHEADER bitmapFileHeader;
    memset( &bitmapFileHeader, 0, sizeof( bitmapFileHeader ) );
    bitmapFileHeader.bfType = ( 'B' | 'M' << 8 );
    bitmapFileHeader.bfOffBits = sizeof( BITMAPFILEHEADER ) + sizeof( BITMAPINFOHEADER );
    bitmapFileHeader.bfSize = bitmapFileHeader.bfOffBits + width * height * 3;

    BITMAPINFOHEADER bitmapInfoHeader;
    memset( &bitmapInfoHeader, 0, sizeof( bitmapInfoHeader ) );
    bitmapInfoHeader.biSize = sizeof( BITMAPINFOHEADER );
    bitmapInfoHeader.biWidth = width;
    bitmapInfoHeader.biHeight = height;
    bitmapInfoHeader.biPlanes = 1;
    bitmapInfoHeader.biBitCount = 24;

    std::ofstream file( filename, std::fstream::binary );

    file.write( reinterpret_cast< char * >( &bitmapFileHeader ), sizeof( bitmapFileHeader ) );
    file.write( reinterpret_cast< char * >( &bitmapInfoHeader ), sizeof( bitmapInfoHeader ) );

    // the pixels!
    file.write( imageData, width * height * 3 );

    file.close();
}

int main( int argc, const char * argv[] )
{
    int width = 12; // multiple of 4
    int height = 12;

    byte imageData[ width * height * 3 ];

    // fill imageData the way you want, this is just a sample
    // on how to set the pixel at any specific (X,Y) position

    for ( int y = 0; y < height; ++y )
    {
        for ( int x = 0; x < width; ++x )
        {
            int pos = 3 * ( y * width + x );

            byte pixelColor = ( x == 2 && y == 2 ) ? 0x00 : 0xff;

            imageData[ pos ] = pixelColor;
            imageData[ pos + 1 ] = pixelColor;
            imageData[ pos + 2 ] = pixelColor;
        }
    }

    createBitmap( imageData, "bitmap.bmp", width, height );

    return 0;
}

In this sample we want a white bitmap with a single black pixel at position X = 2, Y = 2.

The BMP format constiders that Y grows up from bottom to top.

If you have a bitmap width a pixel per bit (the real monochromatic bitmap) you can test the bits and fill the imageData. To test a bit in a byte do like myByte >> position & 1 where position is the bit you wanna test from 0 to 7.

  • Thanks for reply, but whit this code my exact problem remains: how to fill the byte array? Whats the representation of the color WHITE and BLACK inside the bitmap expressed as "byte" type? I tried values like 0, 0x00, 1, 0xff - everything failed. Can you create an byte example for a 4x4 b/w checker pattern for your code? – zaskar Dec 25 '14 at 0:16
  • sure... hold on ;-) – Wagner Patriota Dec 25 '14 at 0:21
  • In my sample, every 3 bytes represents RGB channels... if I set them as R=G=B, we get a monochromatic image. I can't know exactly your sample, because I can't know the input bitmap format to get the bits from... But basically This is what you need. – Wagner Patriota Dec 25 '14 at 0:35
  • Ok but what is an exact value for R/G/B in your case? byte rgb[16]; rgb[0] = ... – zaskar Dec 25 '14 at 0:41
  • You mean the pixel position? I can show it to you... hold on – Wagner Patriota Dec 25 '14 at 0:44
0

Just for the archive, below the working version. It takes a boost bitset as input pixel storage.

void bitsetToBmp(boost::dynamic_bitset<unsigned char> bitset, const char* filename, int width, int height){
//write the bitset to file as 1-bit deep bmp
//bit order 0...n equals image pixels  top left...bottom right, row by row
//the bitset must be at least the size of width*height, this is not checked

std::ofstream file(filename, std::ios::binary | std::ios::trunc);
if(!file) return;

// save bitmap file headers
BITMAPFILEHEADER fileHeader;
BITMAPINFOHEADER * infoHeader;
infoHeader = (BITMAPINFOHEADER*) malloc(sizeof(BITMAPINFOHEADER) );
RGBQUAD bl = {0,0,0,0};  //black color
RGBQUAD wh = {0xff,0xff,0xff,0xff}; // white color


fileHeader.bfType      = 0x4d42;
fileHeader.bfSize      = 0;
fileHeader.bfReserved1 = 0;
fileHeader.bfReserved2 = 0;
fileHeader.bfOffBits   = sizeof(BITMAPFILEHEADER) + (sizeof(BITMAPINFOHEADER)) + 2*sizeof(RGBQUAD); 

infoHeader->biSize          = (sizeof(BITMAPINFOHEADER) );
infoHeader->biWidth         = width;    
infoHeader->biHeight        = height;
infoHeader->biPlanes        = 1;
infoHeader->biBitCount      = 1;
infoHeader->biCompression   = BI_RGB; //no compression needed
infoHeader->biSizeImage     = 0;
infoHeader->biXPelsPerMeter = 0;
infoHeader->biYPelsPerMeter = 0;
infoHeader->biClrUsed       = 2;
infoHeader->biClrImportant  = 2;

file.write((char*)&fileHeader, sizeof(fileHeader)); //write bitmapfileheader
file.write((char*)infoHeader, (sizeof(BITMAPINFOHEADER) )); //write bitmapinfoheader
file.write((char*)&bl,sizeof(bl)); //write RGBQUAD for black
file.write((char*)&wh,sizeof(wh)); //write RGBQUAD for white

// convert the bits into bytes and write the file
int offset, numBytes = ((width + 31) / 32) * 4;
byte* bytes = (byte*) malloc(numBytes * sizeof(byte));

for(int y=height - 1; y>=0; --y){
    offset = y * width;
    memset(bytes, 0, (numBytes * sizeof(byte)));
    for(int x=0; x<width; ++x)
        if(bitset[offset++]){
            bytes[x / 8] |= 1 << (7 - x % 8);
    };
    file.write((const char *)bytes, numBytes);
};
free(bytes);
file.close();

}

I wonder if theres a simpler/faster way to put the bits into a file? The whole bitset could instead be overhanded as array of rows to skip the subset extraction.

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.