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i work on a 64 bit intel processor...i was learning about big and little endian and what i understood was that these are byte orderings within a word such that in a 64 bit data, msb will have lowest address in big endian form and the highest address in little endian form...now i have a problem:

I wrote this code
to determine whether my processor was little or big endian...
I input

0102030405060708 (this is in hex) 

and hoped to get 08 and 07 and 06 and... and 01 as answer

but instead got 0 and 25 and 50 and -125 and -13 and 501 and -41 and 66.
when I wrote the same code taking 's' as 2 byte(short), the output for 0102 was 2 and 1 (which is in accordance with little endian)...so what went wrong here?

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When you write your question, note that it shows a preview of what it's going to look like. Please use that to ensure that your question looks readable. Thank you :) – jalf Apr 8 '12 at 12:14
    
What do you expect to be the bit-code of a double that represents 0x0102030405060708? – Nobody Apr 8 '12 at 12:16
    
See here for a question containing a method to find the endianess. – Joachim Pileborg Apr 8 '12 at 12:16
    
char is a signed type. Use unsigned char if you don't want the negative numbers. – hellork Apr 8 '12 at 12:19
up vote 3 down vote accepted

You are storing your input value as a double, which stores the value as a floating point value. Try using a long long instead, which is a 64 bit integer, and should store the value as you expect.

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thanks...it worked – avinash Apr 8 '12 at 12:23
    
if my word is of 64 bit and there was a data type 9 byte long and i set it to 0x010203040506070809...and follow the same procedure...would i see 09 and 08 and 07... and 02? where would 01 go....lowest address byte or highest address byte of next word? – avinash Apr 8 '12 at 12:41
    
@avinash It's impossible to store a 9byte data type in 8byte, hence before even storing it, it would usually throw a compile time error (well or you get some kind of truncation, which usually means you lose the higher byte that can't be represented) – Voo Apr 8 '12 at 15:33
    
@Voo...is there any material to read on this 9 byte's case... – avinash Apr 8 '12 at 16:35

Taking a hex number into a (double) is not likely to do what you expect; it's a floating point value consisting of a base 2 mantissa and exponent. You might find (long) or (long long) to be closer to what you intended.

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thanks..it worked – avinash Apr 8 '12 at 12:22

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