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Does anyone know the correct way of initializing a const char * const * with two literal strings ("abcdefg" and "hijklmnop")? I read it was difficult/not possible to convert from a char **, but I may be wrong.

Any help much appreciated.

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So you want an array of constant pointers to constant "string"s? – alk Dec 6 '13 at 12:15

2 Answers 2

Instead of pointers-to-pointers, use an array of pointers and initialize them like this:

const char * const strs[] = {"abcdefg", "hijklmnop"};

So instead of a constant pointer to string constants you now have a constant array to string constants. C does not allow initializing pointers with braces (unless there is only a single value in them), but it does allow for arrays to be initialized this way.

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But what you just posted are pointers... or rather an array of pointers. – Lundin Dec 6 '13 at 12:14
@Lundin Hope my edit cleared that up. – Kninnug Dec 6 '13 at 12:15
Indeed it did :) – Lundin Dec 7 '13 at 19:15

In C99 and up, you can use a compound literal to create an array and use that as an initializer for your pointer.

const char * const *p = (const char *[]){"abcdefg", "hijklmnop"};

This is equivalent to using a named array like in Kninnug's answer, plus a pointer with an initializer pointing to the array by name:

const char * const strs[] = {"abcdefg", "hijklmnop"};
const char * const *p = strs;

Except for the fact that the array has a name (strs) in one and is anonymous in the other.

And also let me add that none of these solutions involves converting a char ** to a const char * const *. The way they are constructed, each char * is converted to a const char * individually by virtue of being used as an initializer for an array element that is individually a const char *. There aren't any char **'s in the code.

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