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This question already has an answer here:

what is the reason of having to put that const on the last parameter of my function(it has default argument declaration) if it was not default, it would not need that const

string make_plural(string &word, size_t c, const string &ending = "s")
  {
     return c > 1 ? word + ending : word;
  }

the error is : 'default argument' : cannot convert from 'const char [2]' to 'std::string &'

but i cannot understand why. can any body explain please.

marked as duplicate by Neil Kirk, Community Apr 10 '15 at 17:52

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  • @chris he had to add the const to get it to compile, and he was asking why – dwcanillas Apr 10 '15 at 16:48
  • @dwcanillas, Well, crap. I can't read. Try this: stackoverflow.com/questions/1565600/… – chris Apr 10 '15 at 16:49
  • @SergeBallesta That is because MSVC2008 supports non-standard behaviour. – Neil Kirk Apr 10 '15 at 17:36
  • @NeilKirk : my bad. I copied the correct code from OP :-( . MSVC hopefully chokes when non const – Serge Ballesta Apr 10 '15 at 17:39
1

I have found out the answer myself. we have to put that const because string literals are const and in the code we were initializing a const string to a plain reference which is in error. to make it clear look below:

string &r="some string";

is in error but

const string &r="some string";

is valid and if :

string make_plural(string &word, size_t c,const string &ending = "s")
 {
    return c > 1 ? word + ending : word;

 }

if the first parameter was a plain reference then the call could be:

string str = "thing";
cout << make_plural(str,2) << endl;

but if you want the call to be:

cout << make_plural("thing",2) << endl;

you have to add const for the first parameter as follows

string make_plural(const string &word, size_t cnt,const string &ending = "s")
 {
     return cnt > 1 ? word + ending : word;

 }

reasons and rules to initializing parameter are the same as variables so: plain references cannot be initialized by const values such as a string literals that are consts.

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