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I know asking Why? is a bad question for this site, since we can't know. However I mean it as a colloquial replacement for asking, What are some possible reasons?

I found myself writing, naturally,

foo->[i];

and being surprised to learn that it didn't work. I meant to write:

(*foo)[i];

I'm sure most see already what I mean, but to be clear, I thought

bar.subscript(i);
foo->subscript(i);

would be analogous to

bar.operator[](i);
foo->operator[](i);

But this doesn't seem to be the case. Why? I'm certain I must be looking at something the wrong way, but I can't figure out what. I know very little theory, so a layperson's explanation would be appreciated.

If there's no obvious error in my analogy though, then what are some possible reasons the designers of the language may have left the operator out? Is it ambiguous? (If so, as being mistakable for what?)


I'd like to bring some comments into an edit, as per @chris's recommendation, as I have not been as clear as I should have been:

The OP is proposing operator->[], a combination of the two.
– chris
He's asking why the thing he wants doesn't exist, not why the code he's trying to write doesn't work.
– Matthew 'Cogwheel' Orlando
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closed as not a real question by Nicol Bolas, CyberSpock, Vlad Lazarenko, K-ballo, Bo Persson Jan 4 '13 at 20:36

It's difficult to tell what is being asked here. This question is ambiguous, vague, incomplete, overly broad, or rhetorical and cannot be reasonably answered in its current form. For help clarifying this question so that it can be reopened, visit the help center.If this question can be reworded to fit the rules in the help center, please edit the question.

    
An interesting question is "would it be hard to parse". I do not know the answer to that question. –  Yakk Jan 4 '13 at 19:22
1  
@Yakk, I doubt it with maximal munch in effect. I was about to comment on that. –  chris Jan 4 '13 at 19:22
1  
Because nobody thought of it at the time and nobody has yet cared enough to make it standard. This is the reason behind 99% of "X seems good, why doesn't C++ have X" questions. This is especially true of questions like this: it's a lot easier to tell people to write (*x).[i] instead of x->[i], rather than do all the work of changing the standard text, testing it, making sure there's no horrible oversight, etc... –  GManNickG Jan 4 '13 at 19:24
    
I like how the question asks why doesn't "foo->[i];" but then uses the correct "foo->operator[](i);" in the explanation for why it should work. –  Mooing Duck Jan 4 '13 at 19:25
    
@GManNickG: I have run into code where I had to use the .operator->() form for things (iterator wrapper), so people should also know that that is an option. –  Mooing Duck Jan 4 '13 at 19:26

3 Answers 3

up vote 3 down vote accepted

what are some possible reasons the designers of the language may have left the operator out?

1: Nobody proposed it. If it doesn't get proposed, it doesn't get into the language.

2: It looks wrong. operator-> may return a pointer, but the use of it in the language is "reference this pointer and access a member". That's what the language will do with ->. So when someone sees ->[], it looks incorrect. The thing to the right of -> in every other case is some form of member identifier.

3: Because there are far more important things to do with the language than change something minor like this.

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4  
foo->(bar) = baz->[snaf] -- oo, and don't forget foo->++! Oh, and foo->[bar]->[snaf]->[meh] = 7 -- think of the syntax we could get from this! –  Yakk Jan 4 '13 at 19:33
    
Ah, okay. No, I agree, maybe it wasn't a proposal worth making, much less a change worth making. I was more asking because I thought there was something wrong in my logic, not simply that there was a human/subjective factor. Thank you. –  Andrew Cheong Jan 4 '13 at 19:35
1  
@Yakk - Ah, actually, I find your examples shed light on a great reason as to why this one may have been omitted! I didn't realize the slew of other operators that would have to be introduced to be consistent with what I'm saying. –  Andrew Cheong Jan 4 '13 at 19:37

The right of operator-> must be the name of a member. An explicit operatorXYZ counts as the name of a member I guess, so foo->operator[] is allowed. However, a random token such as [] doesn't count as the name of a member, so foo->[i] is not allowed.

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2  
That's why it would be made to be the equivalent of operator->[](foo, i);. –  chris Jan 4 '13 at 19:21
    
If this is the answer, then I don't quite understand it, yet... –  Andrew Cheong Jan 4 '13 at 19:25
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@acheong87, This answer lies upon a basis that -> and [] are two separate operators. Merging them into one, as you ask, would cause it to work fine. –  chris Jan 4 '13 at 19:26

I imagine the reason is that in C++ there is a significant chance that you would be using vector (or array in C++1) instead of pointers-to-C-arrays. In the C++-centric solutions there is no need for such an operator so it was probably deemed extra work for the compiler while providing little to no benefit.

If you need a 2d array then foo[0][i] already works with C-arrays.

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Huh? I can see a use for this operator any time you have a pointer or iterator to something with an operator[], which seems more likely in C++ than in C (though not terribly common overall). –  delnan Jan 4 '13 at 19:58

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