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I am converting a hex 0xE0 to BCD. When I do this I am getting back a 64. I know this is completely wrong and maybe it's something in my C++ code, but 64 just doesn't sound correct. Any ideas? Is 0xE0 a special case? (0xE0 is 224 in decimal.)

Here is part of my code:

unsigned char Hex2BCD(unsigned char param)
{   unsigned char lo;
    unsigned char hi;
    unsigned char val;
    unsigned char buf[10];

hi = param/ 10;
lo = param- (hi * 10);

val= (hi << 4) + lo;
return val;
}
share|improve this question
6  
You want us to help you with your code, without showing us the code? – Alok Save Oct 7 '11 at 15:58
1  
0xE0 is 224 decimal, so the result should be 0x224. no need for a BCD converter to compute that result. – Adrien Plisson Oct 7 '11 at 16:03
1  
It's a poorly constructed question, but it is a real question. It did not deserve closing for that reason. – JeremyP Oct 7 '11 at 16:07
1  
@JeremyP: Without the source code, It was not a real Q Period! Now that the OP has posted source code, It becomes a valid one, So i will vote to reopen. – Alok Save Oct 7 '11 at 16:12
2  
@Questioneer: think about how many bits to you need to store 224 in BCD format, and how many bits you have at your disposal in the Byte type that you return. – Mat Oct 7 '11 at 16:34
up vote 1 down vote accepted

my idea is that your code for converting to BCD is buggy. it does not do what it is supposed to, thus the wrong result you are observing.

aside from this joke: 0xe0 if stored in signed char is a negative number. that could play nasty tricks on you if you don't pay special attention on the sign of temporary variables you are using while computing the result.

edit: now that you posted some code, it is clear that, although you compute the right value for the first digit into lo, you need another step in order to get the right value into hi.

using 0xe0 as input, you are actually computing (22<<4) + 4 = 356 = 0x164 instead of (2<<8)+(2<<4)+4 = 548 = 0x224.

share|improve this answer
    
if i were using all unsigned types would this still be the case? – Questioneer Oct 7 '11 at 16:04
1  
i don't know, you did not show us any code to comment on. we don't have a magical eight-ball telling us where the errors are in code we are only told about. – Adrien Plisson Oct 7 '11 at 16:06
    
what is the fix to this? thanks for ur help what i mean is can you give me the syntax in order to do this – Questioneer Oct 7 '11 at 16:30
1  
do you know what bcd is ? your first step should have been documenting yourself ! once you understand what bcd is, you will understand why i am talking about 0x224. now, there is enough hints in my answer for you to correct your mistake. (and no, i won't do your own work !) – Adrien Plisson Oct 7 '11 at 17:35
1  
let's take another example: bcd(0x210) = bcd(528) = (5<<8)+(2<<4)+8 = 0x528 = 1320... – Adrien Plisson Oct 7 '11 at 20:26

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