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I have the following code:

int main() {
    char *sPPhrase[51];

    /* Input */
    printf("Enter string (max. 50 chars):\n");
    fflush(stdout);                         /* Works around an annoying Eclipse bug that fails to display the output from the printf command */
    scanf("%s", *sPPhrase);   /* Won't work */

    /* More code goes here */
}

The scanf() command fails, I assume, because *sPPhrase is not writable as sPPhrase points to a string constant. The compiler doesn't have a clue of anything being wrong. A little later on, I need to pass this string to this function:

char* reverse(char* sPPhrase[]);

The string constant is not writable, but I need to pass this char* on to this function. How do I rewrite my code to make it work?

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3 Answers 3

up vote 6 down vote accepted

You are declaring an array of pointers, not a array of chars (commonly used as a string).

You need to declare like this:

char sPPhase[51];

Also, sscanf can get you in trouble: it's better to use fgets to read a string in a bounded buffer:

int main() {
    char sPPhrase[51];
    printf("Enter string (max. 50 chars):\n");
    fflush(stdout);
    fgets(sPPhrase, 50, stdin);  // leave one byte for '\0'

    // More code
}

I don't know what 'reverse' is doing, but you should probably define it as:

char* reverse(char* sPPhrase);

If it is doing the operation in place, you don't even need a return value. If you do, don't forget to free it when you are done.

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And change scanf to scanf("%s", sPPhrase); –  RC. Jan 26 '10 at 17:39
    
Also needs to update the scanf to scanf("%s",sPPhrase) –  zebrabox Jan 26 '10 at 17:42
    
Then how do I call the function? char* sPReverse = reverse(sPPhrase); generates this error: "passing arg 1 of `reverse' from incompatible pointer type" –  Pieter Jan 26 '10 at 18:35
    
Like florin said above, it looks like your definition of reverse is flawed, in that it's expecting an array of pointers to char, as opposed to an array of char. Change the definition of reverse to char *reverse(char *sPPhrase), so that the types match. –  John Bode Jan 26 '10 at 19:17

Your decaration of sPPhase:

char *sPPhrase[51];

Is actually an array of 51 pointers. What you actually want is just an array of characters:

char sPPhrase[51];

When you do that, you should change the scanf

scanf("%s",sPPhrase)

Also note that your scanf might read more than you expect.

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To understand this, you need to go back to how arrays are implemented in memory. char* sPPhrase[51]; is a declaration of a pointer to pointers, which you can think of as similar to a two-dimensional array. If you declare this and call scanf to read into it, you set the value of an entire array equal to one character. This is like saying:

char chars2D[50][50];
chars2D[0] = 'A';

What this is doing is setting an entire array equal to 'A', so that the memory address of the array is 'A'. This is a garbage value in memory. When you call scanf("%s", *sPPhrase); you are just multiplying the problem by attempting to set the top of each array equal to a letter. So you get garbage.

Here is a thread describing how to use scanf to read into an array of characters.

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