5
for (Something something : setOfSomething)          // OK
for (Something const& something : setOfSomething)   // OK
for (Something& something : setOfSomething)         // ERROR

error: invalid initialization of reference of type 'Something&'
from expression of type 'const Something'

Since when does iterator return const Something? It should return either Something& or Something const&. And since range-based 'for' loop is interpreted like that, I have no plausible explanation for what's going on.

Edit: I'm talking about unordered_set rather than set, sorry about this confusion.

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You can't mutate the members of a set because that could violate the set invariants. So the compiler restricts you to getting const references or copies back out.

  • What kind of invariants can be broken if I modify MY object. The memory location and size which it occupies stays untouched - and these two things are the only ones which set is supposed to control. In addition, what if I have my own container? Why would compiler impose this kind of restriction on my containers? To be honest, it looks like a dirty hack. – Alexander Shukaev Apr 17 '12 at 16:10
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    The ordering of the objects in the set could be changed if you update parts of your object compared by the comparison of the set. If this problem is happening with a container other than std::set or any of its relatives (multi, unordered, etc) then could you please edit the specifics and more code into your question? – Mark B Apr 17 '12 at 16:10
  • It's my problem then - I am an idiot then, but its not the compiler's business. Moreover, I can yet modify it inside an old-style iterator loop. – Alexander Shukaev Apr 17 '12 at 16:11
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    @Haroogan: You can't modify set elements in an iterator loop, or any other way, unless you deliberately invoke undefined behaviour using const_cast. set elements (and ordered associative keys in general) are always immutable, in order to preserve the ordering. – Mike Seymour Apr 17 '12 at 16:16
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    @Haroogan: Not anymore. It did in C++03, I think, but the Committee accurately fixed it. If you know in advance that some member does not break the set's invariants, then declare it mutable and offer a const accessor. – Puppy Apr 17 '12 at 16:32

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