Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

If I have the code:

uint64_t a = 0x1111222233334444;
uint32_t b = 0;
b = a;
printf("a is %llx ",a);
printf("b is %x ",b);

and the output is :

 a is 1111222233334444 b is 33334444

Questions :

  1. Will the behavior be same on big-endian machine?

  2. If I assign a's value in b or do a typecast will the result be same in big endian?

share|improve this question
1  
Note that you should print those values with PRIx64 and PRIx32, respectively. –  Chris Lutz Sep 1 '11 at 6:09
    
ya man..but indirectly both are same –  Mr.32 Sep 1 '11 at 6:15
2  
Not on every machine. It's best to write code that won't break 10 years from now when they decide 128-bits isn't enough memory for personal computers, and suddenly sizeof(long) == sizeof(int) isn't true anymore. –  Chris Lutz Sep 1 '11 at 6:17
    
@ Chris Lutz ya i got ur point now onwards i will keep this in ma mind..!! thnks bro.. –  Mr.32 Sep 1 '11 at 6:28
add comment

4 Answers 4

up vote 8 down vote accepted

The code you have there will work the same way. This is because the behavior of downcasting is defined by the C standard.

However, if you did this:

uint64_t a = 0x0123456789abcdefull;
uint32_t b = *(uint32_t*)&a;
printf("b is %x",b)

Then it will be endian-dependent.

EDIT:

Little Endian: b is 89abcdef

Big Endian : b is 01234567

share|improve this answer
    
so you mean this will give different result in both way..?? –  Mr.32 Sep 1 '11 at 5:17
1  
+1 Note that only unsigned downcast is defined in the standard. Signed downcast is "implementation-defined", meaning that the compiler noly needs to do something consistent and document it. –  Pascal Cuoq Sep 1 '11 at 5:19
2  
For this example that I gave: On little-endian, the result is 89abcdef. On big-endian, the result will probably be 01234567. –  Mysticial Sep 1 '11 at 5:21
    
Or simply try printf("a is %X", a);. –  Lundin Sep 1 '11 at 8:46
add comment

When assigning variables, compiler handles things for you, so result will be the same on big-endian.

When typecasting pointers to memory, result will NOT be the same on big-endian.

share|improve this answer
add comment

direct assignment will yield the same result on both little endian and big endian.

memory typecast on big endian machine will output

a is 1111222233334444 b is 11112222

share|improve this answer
add comment
  1. Will this behaviour will be same on big-endian machine.?

I doubt it - by why do this?

  1. if i direct assign a's value in b or do memory typecast will result will be same in big endian.?

Probably not - But why would you do such a stupid thing?

share|improve this answer
    
this is small example of ma whole code..well i want to design ma code for both endian so by giveng any preposser flag it will run..so i m concern with some structure & in some case i need to assign some data in different data types... –  Mr.32 Sep 1 '11 at 5:16
1  
You will run into problems when squashing 32 bits into 64 bits. –  Ed Heal Sep 1 '11 at 5:50
add comment

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

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