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For example if I received the following ASCII value: 123456

How would I combine two digits into a byte? So my bytes become like this ...

byte1 = 0x12;

byte2 = 0x34;

byte3 = 0x56; 

Thanks!

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Are they(123456) chars or is it already an integer value? –  TerraOrbis Mar 6 '14 at 21:14
    
They are still chars –  Ammar Mar 6 '14 at 21:16
1  
Well how about this: byte1 = ((unsigned char) 1 << 4) | (unsigned char) 2; –  TerraOrbis Mar 6 '14 at 21:22

3 Answers 3

up vote 1 down vote accepted

well here's a way to do it:

char string[] = "123456";
int byte1 = (string[0]-'0')*0x10 + (string[1]-'0');
int byte2 = (string[2]-'0')*0x10 + (string[3]-'0');
int byte3 = (string[4]-'0')*0x10 + (string[5]-'0');

HTH

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That's what I was looking for, thanks! –  Ammar Mar 6 '14 at 21:37

This is called BCD (binary-coded decimal).

char s[] = "123456";
byte1 = (s[0] - '0') * 0x10 + (s[1] - '0');
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Thumbed you up, thanks! –  Ammar Mar 6 '14 at 21:37

I figured I'd elaborate on my comment. I'd just have some bitwise fun.

char string[] = "123456"
byte1 = ((unsigned char)string[0] << 4) | (unsigned char)string[1];
byte2 = ((unsigned char)string[2] << 4) | (unsigned char)string[3];
byte3 = ((unsigned char)string[4] << 4) | (unsigned char)string[5];
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