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OK so I tried doing this

 int b;
 char x = 'a';

//Case 1    
b = static_cast<int>(x); 
std::cout<<"B is : "<<b<<std::endl;

//Case 2
b = *(int*)&x;   
std::cout<<"B is changed as  :: "<< b <<std::endl;

Now I know that in case 2, first byte of x is reinterpreted to think that it is an integer and the bit pattern is copied into b which gives of some garbage and in case 1 it just converts the value from char to int.

Apart from that are there any differences between these two?

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11  
One is undefined behavior and the other is not. –  Mysticial Dec 6 '12 at 22:14

3 Answers 3

up vote 12 down vote accepted

The first one just converts the value: int b = x; is the same as int b = static_cast<int>(x);.

The second case pretends that there is an int living at the place where in actual fact the x lives, and then tries to read that int. That's outright undefined behaviour. (For example, an int might occupy more space than a char, or it might be that the char lives at an address where no int can ever live.)

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The 2nd case is a C-style cast (as identified by bhuang3), but it's not the C-style equivalent to case 1. That would be b = (int)x;. And the C++ equivalent of case 2 would be b = *reinterpret_cast<int*>(&x); Either way you do it, case 2 is undefined behavior, because x occupies one byte, while forcibly reading an int's worth of data at x's address will either give you a segmentation fault (bus error on some systems) if it's not at a legal address for an int, or it will just read the next 3 bytes, whose values we don't know what they are. Thus it reads "garbage" as you observed.

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@phonetagger.....Case-2 can come handy in finding the byte ordering of a machine.... –  Recker Dec 6 '12 at 22:30
    
@noleptr - Yes, sort of. But the other way around: Read a byte at an int location. As mentioned above, reading an int at a byte location may SEGV if it's not aligned on an int boundary. –  phonetagger Dec 6 '12 at 22:37
    
@noleptr: Yes; but ONLY if you use an array of char that is at least as long as an integer (otherwise the code is broken). But that information is not that useful, any problem that requires you to know this(the byte order) has already been solved in a better way. –  Loki Astari Dec 6 '12 at 22:38
    
@LokiAstari - Are you sure that "better way" doesn't use a trick like this at its core? –  phonetagger Dec 6 '12 at 22:40
    
@phonetagger: It probably does. But the trick has been abstracted for you in a functional well tested library. Or it is something built in-to the build environment so that is known correct and does not have a runtime cost. –  Loki Astari Dec 6 '12 at 22:52
  1. The static_cast doesn't provide runtime checks, which is used if you know that you refer to an object of a specific type.

  2. The seconde case actually is c-style cast

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