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Is this the below C code an UB? can I access garbage value? if so,can static function make it working fine?

const char *foo_name(int x){
    switch(x) {
       case FOO: return "foo";
       case BAA: return "baa";
       default: return "unknow";
    }
}

I'm a bit confused if printf("%s\n",foo_name(FOO)); is ok according to C std.

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2  
Why would it be undefined? You are not accessing any garbage value. –  Let_Me_Be May 10 '13 at 20:19
    
the strings exist you are just returning the pointer to it. Its not garbage values... Also you misspelled bar –  cmd May 10 '13 at 20:20
    
@Jack: What is your question about specifically? What exactly makes you suspect your function of UB? –  AnT May 10 '13 at 20:51
1  
@AndreyT: Because I was thinking that the string behave as "auto". when the functions end up,all allocated memory to function could be cleaned making its return value garbage value. It worked in my C compiler,but I wanted to make sure that it is std and not an extension or somethings like this. I had bad experiences with gcc sometime ago. Now is clean that string literals have static storage duration. I'm going to accept the answer. –  Jack May 10 '13 at 21:54

2 Answers 2

up vote 8 down vote accepted

String literals have static storage duration, which means they exist throughout the lifetime of the program. There's no undefined behavior in your code.

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No UB here. The standard says that string literals have static storage duration.

if so, can static function make it working fine?

For functions, the static modifier means something completely different - it wouldn't solve your (apparently nonexistent) problem.

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