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returning a pointer to a literal (or constant) character array (string)?

Is the code below correct?

const char* state2Str(enum State state)
{
   switch (state)
   {
      case stateStopped: return "START";
      case stateRunning: return "RUNNING";
      default: return "UNKNOWN";
   }
}

printf("State is: %s\n", state2Str(stateRunning));

What worries me is that the function return a pointer to a temporary object. What is the lifetime of such return values? Language is C89.

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marked as duplicate by sashoalm, Graham Borland, netcoder, JaredMcAteer, Thor Jan 29 '13 at 15:43

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

2  
A string literal is NOT a temporary object. Its always in memory. –  Richard Schneider Jan 29 '13 at 11:03

2 Answers 2

up vote 6 down vote accepted

The code is fine. You're returning a pointer to a string literal which will be valid for the duration of your program.

From the C89 standard:

3.1.4 String literals

A character string literal has static storage duration and type ``array of char ,'' and is initialized with the given characters.

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In the case of the code in your question, you are not returning pointers to temporaries. You are returning a pointer to a string literal which is stored either among the code or among the global data. The duration of all string literals is the lifetime of the program.

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