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I have the following date :

std::string sdt("2011-01-03");

I wrote 2 functions as below and called them using:

 date test;
  string_to_date(sdt,test);
  date_to_string(test,sdt);

the string_to_date() works and it returns 2011-Jan-03 as it should whereas the date_to_string() returns

not-a-date-time

these are the functions:

void string_to_date(const std::string& st, date out)
{
  std::string in=st.substr(0,10);
  date d1(from_simple_string(std::string (in.begin(), in.end())));
  std::cout<<d1;
  out=d1;
}


void date_to_string(date in, const std::string& out)
{

  date_facet* facet(new date_facet("%Y-%m-%d"));
  std::cout.imbue(std::locale(std::cout.getloc(), facet));
  std::cout<<in<<std::endl;

    out=in;//this doesn't work

}
share|improve this question
    
I think you should print in instead of d, so: std::cout << in << std::endl; –  Florian Sowade May 28 '12 at 0:46
    
@FlorianSowade, thanks...I edited my post to make the correction. how do I assign the string to out, because I want to return std::string. I printed it only to check the output –  user1155299 May 28 '12 at 0:49
    
You can't change a reference passed in if it's const. I'm referring to out=in;. –  chris May 28 '12 at 0:51
    
@chris, made the fix, thanks –  user1155299 May 28 '12 at 0:56

1 Answer 1

up vote 1 down vote accepted
void date_to_string(date in, std::string& out)
{
    std::ostringstream str;
    date_facet* facet(new date_facet("%Y-%m-%d"));
    str.imbue(std::locale(str.getloc(), facet));
    str << in;

    out = str.str();
}

should work. Notice the removed const from the out parameter. Is there a reason not to simply return the produced string?

share|improve this answer
    
also the date parameter should be taken by const reference - but that's only a performance enhancement. –  Florian Sowade May 28 '12 at 0:53
    
made that fix. I do want to return the produced string, that is the goal. –  user1155299 May 28 '12 at 0:54
    
@user1155299, is there a particular reason you're taking up an extra parameter for the return? –  chris May 28 '12 at 1:07
    
@chris, not really, is that inefficient? –  user1155299 May 28 '12 at 1:13
    
@user1155299, that's the whole point of the return value. It's more natural to write int x = square (2); than it is to write int x; square (2, x);. Also, this now limits the use of the return as a temporary. For example, the former allows int x = square (square (2));. –  chris May 28 '12 at 1:15

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