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I want to convert date strVal="1992-12-12" or "1992-9-9" of the form to 19921212 & 19920909. For doing so I have written following piece of code in C/C++. But the trouble is it converts 1992-12-12 to 1992012012. Can anyone guide me as to how show i fix this bug? I may also have inputs of the form "1992-9" and I would like to convert it to 19920900. Or "1992" to "19920000"

stringstream     collectTimeBegin;

for (string::iterator it = strVal.begin(); it != strVal.end(); )
{
      if (*it != '-')
      {
             cout<< "\n -- *it=" << *it;
             collectTimeBegin << *it;
             it++;
      }
      else
      {
           stringstream    si("");
           stringstream    sj("");
           int             i;               

           it++;
           si << *(it + 1);
           sj<< *(it + 2);
           i = atoi((si.str()).c_str()), j = atoi((sj.str()).c_str());
           cout << "\n i=" << i << "\t j=" << j << "\n";
           if ((i == 4) || (i == 5) || (i == 6) || (i == 7) || (i == 8) || (i == 9))
           {
                 cout << "\n 1. *it=" << *it;
                 collectTimeBegin << *it;
                 it++;
           }
           else if ((j == 0) || (j == 1) || (j == 2) || (j == 3) || (j == 4) || 
                    (j == 5) || (j == 6) || (j == 7) || (j == 8) || (j == 9))
           {
                 string     str = "0";

                 cout << "\n 2. *it=" << *it;
                 collectTimeBegin << str;
                 collectTimeBegin << *it;
                 it++;
            }
       }
 }
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1  
(j==0)||(j==1)||(j==2)||(j==3)||(j==4)||(j==5)||(j==6)||(j==7)||(j==8)||(j==9) means j < 10? –  billz Feb 26 '13 at 23:27
1  
"The goggles do nothing" and all that. –  Ed S. Feb 26 '13 at 23:35
    
@billz: Unless j is negative. –  Ed S. Feb 26 '13 at 23:36
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2 Answers 2

up vote 3 down vote accepted

Here's a solution using standard C++; it uses the same approach as Christian's: split the input based on the dashes, pad missing digits with 0s:

#include <string>
#include <sstream>
#include <algorithm>

int main()
{
    std::string date = "1992-9-12";

    std::replace(date.begin(), date.end(), '-', ' ');   // "1992 9 12"

    std::istringstream iss(date);
    int year = 0, month = 0, day = 0;

    if (iss.good()) iss >> year;    // 1992
    if (iss.good()) iss >> month;   // 9
    if (iss.good()) iss >> day;     // 12

    std::ostringstream oss;
    oss.fill('0');
    oss.width(4); oss << year;
    oss.width(2); oss << month;
    oss.width(2); oss << day;
    std::string convertedDate = oss.str();  // 19920912
}
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I think it would be even better to use ints for year, month and day. –  Slava Feb 26 '13 at 23:52
    
What does iss.good() do? –  Keira Shaw Feb 26 '13 at 23:56
1  
@KeiraShaw it makes sure that there are more tokens to read. –  congusbongus Feb 26 '13 at 23:57
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if you don't mind using an external library I would do this with boost.

    string input = "1992-9-9";
    vector<string> v;
    boost::algorithm::split(v, input, boost::algorithm::is_any_of("-"));
    string output;
    BOOST_FOREACH(const string &s, v)
    {
        if (s.size() == 1)
        {
            output += "0"+s;
        } else {
            output += s;
        }
    }
    if (output.size() == 4)
        output += "0000"
    if (output.size() == 6)
        output += "00"

Edit: Forgot to handle the case if your input string is only 6 or 4 digits long

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