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I have some thing like this code:

map<int, string> m;

m[1] = "a";
m[2] = "b";
m[3] = "a";
m[4] = "a";
m[5] = "e";
m[6] = "f";
m[7] = "g";
m[8] = "h";
m[9] = "i";

for (it1 = src.begin(); it1 != src.end(); ++it1) {

    for (it2 = it1; it2 != src.end(); ++it2) {
        if (it2 == it1) {
            continue;
        }

        if (it2->second == it1->second) {
            fprintf(stderr, "%u\n", it2->first);
            src.erase(it2);
        }
    }
}

I use map, because the elements is not always in this order (1, 2 ...)
So here is the question

In some cases of map values, this code print this

2
3
4
6
7
8
9
5

How it is possible (skipping 5), if map sort by container in order 1, 2 ... and so on ?

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-1 for not providing a complete program that demonstrates the problem. Please reduce your sample program to a complete, minimal program that demonstrates the problem. A complete program is one that we can copy-paste into a file and compile as-is. A minimal program has no code in it unrelated to the problem. See sscce.org for reasons why this is important. –  Robᵩ Nov 16 '11 at 14:26

1 Answer 1

up vote 12 down vote accepted

Your erase loop is off. The typical idiom is this:

for(std::map<K,V>::const_iterator it = v.begin(); it != v.end() /* not hoisted! */; /* no increment */ )
{
  // do something
  if (suitable_condition)
  {
    v.erase(it++);
  }
  else
  {
    ++it;
  }
}

Your code erroneously performs an increment on an invalid iterator (namely it2 after the erase), which is undefined behaviour.

(For certain other container types, erase returns an iterator to the next valid element, so in those cases you would say it = v.erase(it); but the details of the best erasing pattern depend on the concrete container type.)

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