Sign up ×
Stack Overflow is a community of 4.7 million programmers, just like you, helping each other. Join them; it only takes a minute:

Is there a quick, easy way of getting sprintf-like formatting when constructing a std::string? Something like...

std::string foo("A number (%d) and a character (%c).\n", 18, 'a');
share|improve this question
Have a look at my solution. That is C++ Style solution. Doesn't depend on C-style format string involving %d and %c, like boost. – Nawaz Apr 16 '11 at 14:00

4 Answers 4

up vote 15 down vote accepted

Not built into the string's constructor, but you might want to check out boost format. Its a more typesafe sprintf style string formatting. With it you can at least do this:

std::string foo = 
    boost::str(boost::format("A number (%d) and a character (%c)\n") % 18 % 'a');
share|improve this answer
That's perfectly fine, thanks! – uʍop ǝpısdn Apr 16 '11 at 13:03
Place an uint8_t instead of literal 18 — and, voila, your Boost output is totally busted: you will receive two characters rather than number with character. – Anton Samsonov May 19 at 13:30

I've written a stringbuilder class which you can use and I think that is better than boost::format as unlike it, stringbuilder does NOT use C-style format string like %d, %c. etc.

Here is how stringbuilder can help you in just one line:

std::string s=stringbuilder() << "A number " << 18 <<" and a character " <<'a';

The implementation of stringbuilder is very simple:

struct stringbuilder
   std::stringstream ss;
   template<typename T>
   stringbuilder & operator << (const T &data)
        ss << data;
        return *this;
   operator std::string() { return ss.str(); }

Demo at ideone :

I've just written the following blog describing the many different ways of the use of stringbuilder.

share|improve this answer
+1 Thanks for sharing :) but I kinda like the C-style formatting syntax better. I personally find the "this is my string, replacing approapiate tokens" approach to formating more comfortable that assembling them piece by piece. – uʍop ǝpısdn Apr 16 '11 at 14:14
@Santiago: But you know C-Style formattings are not safe, that is why C++ doesn't use them, and instead came up with cout and cin, and other stream classes which are safe. – Nawaz Apr 16 '11 at 14:21
@Nawaz: Which is also why boost::format was developed, which has printf like formatting and is just as safe as iostream. – Benjamin Lindley Apr 16 '11 at 14:51
@Nawaz: once you've wrote internationalized software, you come to love C-formatting style (though with safe approaches...) for the ability to move dynamic bits around in the final translation. IOStream support facets, and they make you pay dearly for it, but it does not help at all with internationalization :/ – Matthieu M. Apr 16 '11 at 15:04
@Nawaz: Let's say you want to include an adjective, to the choice of the user. In French, you have the sentence printf("J'ai vu des oiseaux %s", adjective); which is fine with a stream: os << "J'ai vu des oiseaux " << adjective. In English however, os << "I have seen birds " << adjective is incorrect. You need printf("I have seen %s birds", adjective). The sentence is splitted completely differently. In this occurence, you need C-style formatting over stream. (Or you need to change the stream for each language, but that's insane, have a look at gettext to see how resources are handled) – Matthieu M. Apr 16 '11 at 15:14

The C++ Format library provides a safe sprintf implementation that returns a string:

std::string foo(fmt::sprintf("A number (%d) and a character (%c).\n", 18, 'a'));

This library also supports Python's str.format syntax:

std::string foo(fmt::format("A number ({}) and a character ({}).\n", 18, 'a'));

It is similar in purpose to Boost Format but is much faster, pretty small and doesn't have external dependencies other than the standard C++ library.

Disclaimer: I'm the author of this library.

share|improve this answer

How about this one, it uses printf directly:

#include <stdio.h> 
#include <stdarg.h> 

std::string format(const char *fmt, ...) 
    va_list ap; 
    va_start(ap, fmt); 

    const size_t SIZE = 512; 
    char buffer[SIZE] = { 0 }; 
    vsnprintf(buffer, SIZE, fmt, ap); 


    return std::string(buffer); 
share|improve this answer
Better to look at the vsnprintf return value to allocate a right-sized buffer, rather than chopping it off at 512 characters. Or use asprintf on Linux. Also, use gcc-style function attributes so that you still get some type safety on the arguments. – poolie May 5 '13 at 2:00

Your Answer


By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.