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I am writing a GTK+ application that is using Pango text attributes to determine the color and other aspects of the text written onto a GtkLabel using something like this:

attributes = pango_attr_list_new();
pango_attr_list_insert(attributes, pango_attr_foreground_new( G_MAXUINT16, G_MAXUINT16, G_MAXUINT16));
pango_attr_list_insert(attributes, pango_attr_size_new (18 * PANGO_SCALE));
pango_attr_list_insert(attributes, pango_attr_weight_new( PANGO_WEIGHT_BOLD ));

lblTotalCredits = gtk_label_new(NULL);
gtk_label_set_text(GTK_LABEL(lblTotalCredits),"0");
gtk_label_set_attributes(GTK_LABEL(lblTotalCredits), attributes);

pango_attr_foreground_new() expects each color component ( R,G,B ) to by 16 bits. Using Photoshop or other image processing tools I can find the color I want to use, but the R,G,B values are displayed as 8 bit R,G,B components.

How do I convert the 8 bit R,G,B values to the equivalent 16 bit R,G,B values so I end up with the same color?

For example, a golden color is specified as RGB ( 229, 202, 115 ) or hex e5ca73. How do I convert that so that each color component is 16 bits for pango functions?

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2 Answers 2

up vote 2 down vote accepted

8bit max: 0xFF
16bit max: 0xFFFF

convert (I use red as a demo) (untested):

guint32 colorhex = 0xe5ca73;
const guint8 red8 = (guint8)((colorhex & 0xFF0000) >> 16);
//    guint16 red16 = (guint16)(((guint32)(r * 0xFFFF / 0xFF)) & 0xFFFF);
guint16 red16 = ((guint16)red8 << 8) | red8;
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Thank you, that works like a charm! –  Chimera Aug 20 '12 at 19:17
    
You know that shiny green accept button ;) Corrected: guint is way better –  drahnr Aug 20 '12 at 19:18
    
Oh no worries, I will be accepting your answer! I'm just waiting to see if I get some upvotes on my question, or other answers. –  Chimera Aug 20 '12 at 19:21
    
Last step seems overly complicated...you can just duplicate the 8 bit color component like this: red16 = red8*256u+red8 –  ergosys Aug 21 '12 at 1:35
1  
(red8 << 8) & red8 is wrong. You should have written (red8 << 8) | red8. –  liberforce Aug 22 '12 at 11:21

Converting an 8 bit color value to 16 or more bits is just using those 8 bits as the most significant bits of your new format. Keeping zeroes as least significant bits would make colors darker. For example, white "0xFF" would become not-so-white "0xFF00". By copying the 8 bit value to the least significant bits, black will remain black ("0x00" → "0x0000"), and white will remain while ("0xFF" → "0xFFFF").

Shifting value v 8 bits to the left, then adding v to the result is the same as multiplying by 257.

guint32 rgb8    = 0xe5ca73;
guint16 red16   = (rgb8 & 0x00FF0000) * 257;
guint16 green16 = (rgb8 & 0x0000FF00) * 257;
guint16 blue16  = (rgb8 & 0x000000FF) * 257;

I've checked with the assembly output of gcc, even with optimizations disabled (-O0) this is translated into a shift and an addition, no multiplication is involved, so that's a fast operation.

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This is not a real convertion, this is a hack. –  drahnr Aug 21 '12 at 15:12
    
You're right, as it would be impossible to convert pure white that way. –  liberforce Aug 22 '12 at 11:19
    
I fixed that now. Don't think that can be made clearer. –  liberforce Aug 22 '12 at 11:41
    
You need to shift the masked value to byte range before multiplying it. Also, compilers are pretty good with operations involving constants, so I doubt there will be any benefit to converting to a single multiply, and from a readability standpoint, its not as clear what is going on. –  ergosys Aug 22 '12 at 18:25
    
Damned, I failed again ! Thanks for the insightful comment. The multiplication goal was to have the conversion fit on one line. –  liberforce Aug 23 '12 at 8:32

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