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I am working with doing some serial communications in C in Linux. I am doing this using file descriptors. For some reason after char* s = "Hello world", I can write s to the serial port using the write method, no problem. I am using a serial monitor program to check the other end. However, I cannot send any other sort of data. I get a "Bad Address" error from the write function.

However, I noticed that if I did something very strange: int* x = "5"; That I could then send this x. My question is, what in the world does int* x = "5" mean?

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int *x = "5" declares x as a pointer to an integer that resides at the beginning of the string "5". When you write it, it probably prints the 5, a null character, and whatever the next two bytes happen to be, assuming sizeof(int) = 4 on your platform. – Adam Liss Apr 28 '12 at 19:38
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@AdamLiss no, he said "5" not 5. – Seth Carnegie Apr 28 '12 at 19:39
    
@SethCarnegie No, he said 5 and then edited his question to say "5", and then I updated my comment. :-) – Adam Liss Apr 28 '12 at 19:40
    
@AdamLiss ah, he must have edited it quickly enough that the edit was collapsed into the original question – Seth Carnegie Apr 28 '12 at 19:41
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You should compile with stricter warnings, e.g. -Wall -Werror when using GCC. If you do that, int *x = "5" won't pass. – Fred Foo Apr 28 '12 at 19:53
int* x = "5"; 

This is not valid C code. You have to cast the value of the array to an int * but a dereference of the pointer can still break alignment rules and be undefined behavior.

int *x =  (int *) "5";

This last code stores an unnamed array object of type char [2]. The value of "5" is a pointer to its first element, the pointer is a char *. The cast converts the char * to an int * and stores it in x.

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isn't it allowed to cast a char* to anything? (according to C aliasing rules) – moooeeeep Apr 28 '12 at 19:57
    
@moooeeeep there is no violation of aliasing, but pointers may not have the same alignment requirements. – ouah Apr 28 '12 at 19:59
int* x = "5";

is a constraint violation. That means that any conforming compiler must issue a diagnostic for it. It needn't be treated as a fatal error; a compiler is allowed to issue a warning and then successfully translate the program. But the language does not define the behavior of this declaration.

There is no implicit conversion from char* (the type of "5" after it decays) to int*.

This is as close as C gets to saying that something is illegal.

In practice, compilers that accept this declaration will probably treat it as equivalent to:

int *x = (int*)"5";

i.e., they'll insert a conversion. (This isn't the only possible interpretation, but most compilers will either interpret it this way or reject it.) This takes the char* value that results from the decay of the array expression "5" (i.e., the address of the '5' character at the beginning of the string), and converts to int*.

The resulting int* pointer points to an int object that may or may not be valid. The string "5" is two bytes long ({ '5', '\0' }). If int is two bytes, *x may evaluate to the result of interpreting those two bytes as an int value -- which will depend on the system's endianness. Or, if the string literal isn't correctly aligned for an int object, evaluating *x might terminate your program. And if int is wider than two bytes (as it very commonly is), *x refers to memory past the end of the string literal. In any case, attempting to modify *x has yet another kind of undefined behavior, since attempting to modify a string literal is explicitly undefined.

You should have gotten at least a warning when you compiled that declaration. If so, you definitely should not have ignored it. If you didn't get a warning, you should find out how to coax your compiler to produce more warnings.

TL;DR: Don't do that.

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Wow thanks. Yeah, I really was not expecting it to compile, and when it did I was thoroughly confused. I was just wondering what this actually meant. Thanks! – Pha3drus Apr 29 '12 at 3:15

int* x = "5" implicitly casts "5" (a const char*) to an int* and stores it in x. Thus, x will point to sizeof(int) bytes in which the lowest is 0x35 (the character '5'), the next is 0, and the rest are indeterminate and will lead to undefined behavior when read.

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Not to mention he's using a crappy compiler that lets char const[2] be implicitly convertible to int* – Seth Carnegie Apr 28 '12 at 19:44
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Actually, "5" is a char[], not a const char*, even though you should use it as if it were const. – Fred Foo Apr 28 '12 at 19:52
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He's probably using a crappy compiler that lets char* be implicitly convertible to int*; the expression "5" decays to char* in most contexts. – Keith Thompson Apr 28 '12 at 19:54
    
whoa whoa, gcc isnt a crappy compiler guys. – Pha3drus Apr 29 '12 at 3:14

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