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The minimal example of the problem I'm having is reproduced below:

#include <set>
using namespace std;

class foo {
public:
  int value, x;
  foo(const int & in_v) {
   value = in_v;
   x = 0;
  }
  bool operator<(const foo & rhs) const {
   return value < rhs.value; 
 }
};

int main() {
  foo y(3);
  set<foo> F;
  F.insert(y);

  // Now try to modify a member of the set
  F.begin()->x=1;
  return 0;
}

With the error error: assignment of data-member ‘foo::value’ in read-only structure. I feel like I'm missing something simple here, but why am I unable to modify the member x in my class?

share|improve this question
up vote 15 down vote accepted

Objects in a set are immutable; if you want to modify an object, you need to:

  1. make a copy of the object from the set,
  2. modify the copy,
  3. remove the original object from the set, and
  4. insert the copy into the set

It will look something like this:

std::set<int> s;
s.insert(1);

int x = *s.begin(); // (1)
x+= 1;              // (2)
s.erase(s.begin()); // (3)
s.insert(x);        // (4)
share|improve this answer
    
Well the immutable part makes sense now. Is this then is the standard way of editing an item in the set, with the two copies? – Hooked Sep 23 '10 at 4:20
    
@Hooked: Yes; you need to make two copies: one to copy the old object out of the set and one to copy the new object into the set. – James McNellis Sep 23 '10 at 4:24

Given that the "x" variable is not involved in the less-than comparison, it would be safe in this case to make "x" mutable, allowing you to modify it from within the set. Your class definition would then become:

class foo {
public:
  int value;
  mutable int x;

  foo(const int & in_v) : value(in_v), x(0) { }
  bool operator<(const foo & rhs) const {
    return value < rhs.value; 
  }
};

And you can now use it in the std::set and modify x as you like. In this case it is pointless to keep two copies of the data structure as the previous poster has suggested.

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1  
I like this answer MUCH better. Thanks for adding it. – Urkle Apr 23 '12 at 13:43

From the definition of the operator< (i.e. considering only the value return value < rhs.value and ignoring the x), I am wondering whether you want a map instead of a set. In map, the second value is mutable.

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