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int main(void) {
    char testStr[50] = "Hello, world!";
    char revS[50] = testStr;
}

I get error: "invalid initializer" on the line with revS. What am I doing wrong?

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6 Answers 6

up vote 10 down vote accepted

Because you can't initialise like that. Replace it with:

int main (void) {
    char testStr[50] = "Hello, world!";
    char revS[50]; strcpy (revS, testStr);
    :
}

Or, if you really want initialisation, you can use something like:

#define HWSTR "Hello, world!"
int main (void) {
    char testStr[50] = HWSTR;
    char revS[50] = HWSTR;
    :
}
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Arrays arent assignable.

You should use memcpy to copy contents from testStr to revS

memcpy(revS,testStr,50);
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Only constant expressions can be used to initialize arrays, as in your initialization of testStr.

You're trying to initialize revS with another array variable, which is not a constant expression. If you want to copy the contents of the first string into the second, you'll need to use strcpy.

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An initializer for a char[] needs to be either a literal string or something like {1,2,3,4}. It isn't allowed to be the name of another variable.

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you are doing,

char revS[50] = testStr;

it is wrong, you cannot assign char * to char.

try...... revS = testStr; it should work.

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Unless you plan on manipulating the second array you can also use a pointer:

int main(void){
    char textStr[50] = "hello worlds!";
    char *revS = textStr;
    printf("%s\n", revS);

}

If you want to get really crazy you can point to a specific location in the array with the reference operator:

int main(void){
    char textStr[50] = "hello worlds!";
    char *revS = &textStr[5];
    printf("%s\n", revS);
}
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