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So, what I stumbled upon is that:

std::map<double, int> map1;
std::map<double, int> map2;

map1[2.5] = 11;
map1[3.5] = 12;

map2[2.5] = 21;
map2[3.5] = 22;

std::map<double, int>::iterator iterMap1 = map1.find(2.5);

//I will now try to erase a key/value pair in map2 with an iterator 
//that points to map1. This is bad/wrong. But I am surprised 
//this is allowed. 
map2.erase(iterMap1); 

//what do you think would be printed?
print(map1);
print(map2);

Can someone please explain this behavior? I believe this shouldn't be allowed.

The output that I get is:

Map1
2.5 11

Map2
2.5 21
3.5 22

This doesn't make sense to me. Thanks.

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2 Answers 2

up vote 6 down vote accepted

What do you mean it is allowed? It is disallowed in the standard and will cause undefined behavior, but that does not mean that the compiler must yell at you for attempting it.

In the general case this cannot be checked by the compiler. The map and the iterator could be passed to a function and there would not be any way of knowing whether the iterator refers to the container or not, so the compiler cannot be forced to diagnose it.

It is up to the programmer to write a valid and correct program. The compiler is there to help but not babysit.

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Maybe not a compiler error. But I would expect that STL would throw an exception when an object tries to modify data which is not within it's memory scope. –  Harshit Sureka Sep 20 '13 at 19:55
2  
@HarshitSureka: Mandating that is somewhat against the philosophy of the language, as it would incur a cost on all functions calls penalizing all good users to help diagnosing the bad uses. That being said, as a quality of implementation some standard libraries provide checked iterator implementations that will detect this and complain, be it with an exception or an assertion –  David Rodríguez - dribeas Sep 20 '13 at 19:59

Can someone please explain this behavior?

Perhaps, but it would be a waste of time, because it is undefined behavior and will likely vary across implementations.

I believe this shouldn't be allowed.

You are correct. It is not allowed. But this restriction is put on you, the writer of the code, not on the compiler. Once you've broken the rule, the compiler is free to do whatever is most convenient.

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