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I'm working on a project where I have a Time class and I need to format the time.

void Time::FormatTime(char *string, unsigned int max_string_len) {
    ostrstream fd;
    ft << hour << ":" << minutes;
    cout << ft.str() << endl;    
}

The user passes in a pointer to their string and the max length of the string and I need to check that the time string isn't longer than max_string_len and if it is, then truncate it. I'm not sure how to do the truncation as it's been awhile since I've written any C++.

I'd like to not use the STL if possible.

Thanks

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If you more or less know that the time is going to take 5 characters, why not assert that the length is enough? What good does the truncated time representation do you? –  UncleBens Feb 9 '10 at 22:15
    
Practice at not overflowing strings, apparently… –  Potatoswatter Feb 10 '10 at 1:55

6 Answers 6

up vote 2 down vote accepted

Always use strncpy() to safely truncate a string into a char[N].

void Time::FormatTime(char *str, unsigned int max_string_len) {
    if ( len == 0 ) return;
    ostringstream ft; // strstream is obsolete, use stringstream
    ft << hour << ":" << minutes;
    strncpy( str, ft.str().c_str(), max_string_len );
    str[ max_string_len - 1 ] = 0;
}
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Downvoted because max_string_len can be 0 –  Manuel Feb 9 '10 at 23:23
    
@Manuel: Fine, although I think that's silly. Note that snprintf does not include the terminating byte in its limit argument, so passing 0 to this function would be like passing -1 to snprintf. –  Potatoswatter Feb 10 '10 at 1:44
    
oops, scratch that about snprintf. –  Potatoswatter Feb 10 '10 at 3:23
if( str.length() > max_string_len ) 
{ 
    str = str.substr( 0, max_string_len );
}

strncpy( string, str.c_str(), max_string_len );
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This does what you want:

 void Time::FormatTime(char *string, unsigned int max_string_len) {
      ostrstream fd;
      ft << hour << ":" << minutes;
      std::string str = ft.str();
      str.resize(max_string_len);
      strcpy(string, str.c_str());
 }

EDIT: I've updated my code thanks to the helpful feedback of potatoswatter and quanmrana.

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This is the most straightforward way to do it. Short and simple. –  Sheep Slapper Feb 9 '10 at 20:48
    
-1: You're checking whether overflow already occurred. –  Potatoswatter Feb 9 '10 at 21:30
    
-1: strlen(string) might be undefined if max_string_len is 0. –  quamrana Feb 9 '10 at 22:10
    
str.resize(n) adjusts str to have n characters not including the terminating byte. strcpy copies n characters plus the terminating byte, which causes an overflow. –  Potatoswatter Feb 10 '10 at 1:51
    
@Manuel: You should also rename the first parameter from string to something like str now that you're using the stl. You don't want anything confused with std::string. –  quamrana Feb 10 '10 at 17:57

If the first parameter can be modified then you can just place a 0 in the correct position to be a string terminator, however this is a fairly nasty (but fast) solution. Otherwise, you'll want to create a new array of characters and only copy over the correct number of characters, remembering to allocate an extra character for the zero terminator.

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I'm half guessing at what you want, but I think it's something like the following, where I'm assuming or changing:

  • ft really should be fd
  • I used an ostringstream object instead of an ostrstream
  • max_string_len is the size of the destination buffer in characters (including the character that will hold the '\0' terminator)
  • you're not really interested in the formatted string being sent to std::cout, but want it in the caller's provided buffer
  • I changed the name of parameter string to s so it wouldn't be confused with the std:string type.

The code:

void Time::FormatTime(char *s, unsigned int max_string_len) {
    if (max_string_len == 0) {
        return;  // no buffer, bail out
    }

    std::ostringstream fd;

    fd << hour << ":" << minutes;

    size_t len = fd.str().copy( s, max_string_len - 1);  // leave room for the null terminator

    s[len] = '\0';
}

If you really don't want any part of the STL, then the following C-styled code should do the trick:

void Time::FormatTime(char *s, unsigned int max_string_len) {

    snprintf( s, max_string_len, "%02u:%02u", hour, minutes);
}

It's simpler, but may C++ developers don't like using the printf() family because it's not typesafe.

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Crud - I just noticed the desire to not use the STL - I'm using the STL here because the example given in the question uses it, and the tag says "C++"... Post a comment if I should delete this answer, and if you want a pure C function, let's retag the question as just a C question. –  Michael Burr Feb 9 '10 at 21:08
    
I like your first little snippet, but I keep getting this error: "left of '.copy' must have class/struct/union" –  Joe Feb 9 '10 at 21:18
    
The first snippet compiles just fine on VS2008 after adding #include <sstream>, declarations for hour and minutes, and correcting max_string_len. –  quamrana Feb 9 '10 at 22:13
    
Sorry about the max_String_len typo (now fixed). I should have made clear that std::ostringstream requires a #include <sstream> and that I assumed that hour and minutes were members of the Time class (based on the original snippet). –  Michael Burr Feb 9 '10 at 22:29
    
+1 - snprintf beats any STL-based solution for this task –  Manuel Feb 9 '10 at 23:32

From your requirements, you seem intent on writing C instead of C++, but I guess that's your business. For your specification, however, it appears that the right answer is strftime().

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