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I wrote this function that's supposed to do StringPadRight("Hello", 10, "0") -> "Hello00000".

char *StringPadRight(char *string, int padded_len, char *pad) {
    int len = (int) strlen(string);
    if (len >= padded_len) {
        return string;
    }
    int i;
    for (i = 0; i < padded_len - len; i++) {
        strcat(string, pad);
    }
    return string;
}

It works but has some weird side effects... some of the other variables get changed. How can I fix this?

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6 Answers 6

up vote 56 down vote accepted

It might be helpful to know that printf does padding for you, using %-10s as the format string will pad the input right in a field 10 characters long

printf("|%-10s|", "Hello");

will output

|Hello     |

In this case the - symbol means "Left align", the 10 means "Ten characters in field" and the s means you are aligning a string.

Printf style formatting is available in many languages and has plenty of references on the web. Here is one of many pages explaining the formatting flags. This one has more examples. As usual WikiPedia's printf page is of help too (mostly a history lesson of how widely printf has spread).

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1  
What if you want the string to be padded by another character besides spaces? Is there a way to do this w C's printf? –  Peter Ajtai Oct 1 '11 at 18:01
    
It doesn't look like that is possible. (Did some Googling. Also the man page for printf doesn't seem to have any indication of such features.) –  Victor Zamanian Feb 4 '12 at 12:54
    
@victor - cplusplus.com/reference/clibrary/cstdio/printf - see 'flags' section and 'width' section. –  Tom Leys Feb 7 '12 at 22:31
1  
@tom - yes, "the result is padded with blank spaces". So, it doesn't seem to be possible. As stated, the same information is available in the man page. Also, even though printf should behave mostly the same if not identically, this is C, not C++. –  Victor Zamanian Feb 8 '12 at 19:24
    
@Victor. Sorry, I thought you were replying to my answer, not Peter's subsequent question. Yes, you can only choose to pad with 0 or with ' ' nothing else. –  Tom Leys Feb 19 '12 at 21:48

For 'C' there is alternative (more complex) use of [s]printf that does not require any malloc() or pre-formatting, when custom padding is desired.

The trick is to use '*' length specifiers (min and max) for %s, plus a string filled with your padding character to the maximum potential length.

int targetStrLen = 10; // Target output length
const char *myString="Monkey"; // String for output
const char *padding="#####################################################";

int padLen = targetStrLen - strlen(myString); // Calc Padding length
if(padLen < 0) padLen = 0; // Avoid negative length

printf("[%*.*s%s]", padLen, padLen, padding, myString); // LEFT Padding
printf("[%s%*.*s]", myString, padLen, padLen, padding ); // RIGHT Padding

The "%*.*s" can be placed before OR after your "%s", depending desire for LEFT or RIGHT padding.

[####Monkey] <-- Left padded, "%*.*s%s"
[Monkey####] <-- Right padded, "%s%*.*s"

I found that the PHP printf (here) does support the ability to give a custom padding character, using the single quote (') followed by your custom padding character, within the %s format.
printf("[%'#10s]\n", $s); // use the custom padding character '#'
produces:
[####monkey]

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It seems I have duplicated some else's posted answer here: Varible sized padding in printf –  J Jorgenson Mar 16 '12 at 16:39

You must make sure that the input string has enough space to hold all the padding characters. Try this:

char hello[11] = "Hello";
StringPadRight(hello, 10, "0");

Note that I allocated 11 bytes for the hello string to account for the null terminator at the end.

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The function itself looks fine to me. The problem could be that you aren't allocating enough space for your string to pad that many characters onto it. You could avoid this problem in the future by passing a size_of_string argument to the function and make sure you don't pad the string when the length is about to be greater than the size.

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The argument you passed "Hello" is on the constant data area. Unless you've allocated enough memory to char * string, it's overrunning to other variables.

char buffer[1024];
memset(buffer, 0, sizeof(buffer));
strncpy(buffer, "Hello", sizeof(buffer));
StringPadRight(buffer, 10, "0");

Edit: Corrected from stack to constant data area.

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You're still passing a string literal... :P –  Jeremy Ruten Nov 10 '08 at 1:33
    
I noticed that too. Funny. –  Eugene Yokota Nov 10 '08 at 1:33
    
you are copying too much. Hello is of type char[6] , but you try to copy 1024 bytes out of it. that can only fail. change it to read sizeof "Hello" instead of the second sizeof(buffer) –  Johannes Schaub - litb Nov 10 '08 at 1:52
    
strncpy(buffer, "Hello", sizeof(buffer)); already fills the entire buffer with '\0', so your memset() is redundant. –  Chris Young Nov 10 '08 at 6:24
    
@litb, strncpy: If the end of the source C string (which is signaled by a null-character) is found before num characters have been copied, destination is padded with zeros until a total of num characters have been written to it. –  Eugene Yokota Nov 10 '08 at 8:34

Oh okay, makes sense. So I did this:

    char foo[10] = "hello";
    char padded[16];
    strcpy(padded, foo);
    printf("%s", StringPadRight(padded, 15, " "));

Thanks!

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