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I would know the best way and easiest way for epuring a std::string without using boost.

For exemple how to transform this string

"  a   b          c  d     e '\t' f      '\t'g"

in

"a b c d e f g"

Assuming '\t' is a normal tabulation.

Thanks.

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18  
What is an epur? – Praetorian Jul 20 '12 at 20:32
    
I'm not sure what "epur" means. Can you explain please? – Code-Apprentice Jul 20 '12 at 20:32
3  
22 viewers in 5 minutes wanted to know what "epur" means. – SChepurin Jul 20 '12 at 20:38
1  
What have you tried? Really, it just takes a loop or two over the string and a little logic to track copy-from and copy-to offsets.... – Tony D Jul 20 '12 at 20:48
1  
Or it's from French épurer, "expurgate"? – Kerrek SB Jul 20 '12 at 20:48
up vote 2 down vote accepted

You don't define what 'epur' means but the example make it look like what you want is removing leading (and trailing?) whitespace and replacing internal whitespace with single spaces. Now you could do this with a combination of std::replace_if, std::uniqiue, and std::copy_if, but that's pretty complex, and ends up copying the data multiple times. If you want to do it with a single pass in-place, a simple loop is probably the best:

void epur(std::string &s)
{
  bool space = false;
  auto p = s.begin();
  for (auto ch : s)
    if (std::isspace(ch)) {
      space = p != s.begin();
    } else {
      if (space) *p++ = ' ';
      *p++ = ch;
      space = false; }
  s.erase(p, s.end());
}
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A lazy solution using string streams:

#include <string>
#include <sstream>

std::istringstream iss(" a b c d e \t f \tg");
std::string w, result;

if (iss >> w) { result += w; }
while (iss >> w) { result += ' ' + w; }

// now use `result`
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It looks like you want to remove the \t characters from your string. You can do this by copying characters that are not \t as follows:

#include <iostream>
#include <string>
#include <algorithm>
#include <iterator>

int main() 
{
  std::string s1( "a b c \t d e f \t" );
  std::string s2;

  std::copy_if( std::begin(s1), 
                std::end(s1), 
                std::back_inserter<std::string>(s2),
                [](std::string::value_type c) {
                    return c != '\t';
                } );

  std::cout << "Before: \"" << s1 << "\"\n";
  std::cout << "After: \"" << s2 << "\"\n";
}

Output:

Before: "a b c   d e f  "
After: "a b c  d e f "

If you want to remove all whitespace from the string, replace the return statement with

return !std::isspace(c);

(isspace is in the header cctype)

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