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I simply write this:

char* test="test";
printf("%s",test[0]);

it says seg fault; then I change to printf("%s",&test[0]); the error gone But this is not what I want; the console print: "test " how to get just value "t" from that pointer?

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2 Answers 2

up vote 7 down vote accepted

If you want just the t, you should do:

printf("%c",test[0]);

The format %c, will print a single char.

%s will print the entire null-terminated string.

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remember that test[0] returns a char - and as Mystical said %s will treat it as a pointer to a string - a contrived example is that the first char is "A" this is 65 in ascii - when you use the %s it tried to find a string pointer located at memory address 0x41 - 99.99% likely to be out-of-scope of you own code –  Adrian Cornish Nov 17 '11 at 4:36
    
that makes more clean thanks,also I've noticed when I comparing with this single char test[0] equals something I need to write: =='t' instead of =="t",why? –  user1051003 Nov 17 '11 at 5:00
    
That's because 't' is a char. Whereas "t" is a c-string. You can't compare a char to a c-string. –  Mysticial Nov 17 '11 at 6:31

You should use %c instead of %s as %s takes a char * and prints until \0. %c takes one single character instead.

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