Using * Width & Precision Specifiers With boost::format
I am trying to use width and precisio开发者_运维技巧n specifiers with boost::format
, like this:
#include <boost\format.hpp>
#include <string>
int main()
{
int n = 5;
std::string s = (boost::format("%*.*s") % (n*2) % (n*2) % "Hello").str();
return 0;
}
But this doesn't work because boost::format
doesn't support the *
specifier. Boost throws an exception when parsing the string.
Is there a way to accomplish the same goal, preferably using a drop-in replacement?
Try this:
#include <boost/format.hpp>
#include <iomanip>
using namespace std;
using namespace boost;
int main()
{
int n = 5;
string s = (format("%s") % io::group(setw(n*2), setprecision(n*2), "Hello")).str();
return 0;
}
group() lets you encapsulate one or more io manipulators with a parameter.
Well, this isn't a drop-in, but one way to do it would be to construct the format string dynamically:
#include <boost/format.hpp>
#include <boost/lexical_cast.hpp>
int main()
{
int n = 5;
const std::string f("%" +
boost::lexical_cast<std::string>(n * 2) + "." +
boost::lexical_cast<std::string>(n * 2) + "s");
std::string s = (boost::format(f) % "Hello").str();
}
Of course, if you did this frequently, you could refactor construction of the format string into a function.
You could also use boost::format()
to generate the format string; it's shorter, but potentially less readable, especially for long format strings:
const std::string f = (boost::format("%%%d.%ds") % (n*2) % (n*2)).str();
std::string s = (boost::format(f) % "Hello").str();
(credit to Ferruccio for posting the second idea in the comments)
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