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In C++, if you want to dynamically allocate an array, you can do something like this:

int *p;
p = new int[i];  // i is some number

However, to delete the array, you do...

delete[] p;

Why isn't it delete p[]? Wouldn't that be more symmetrical with how it was originally created? What is the reason (if there is any) why the language was designed this way?

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closed as not constructive by KillianDS, Ben, Luchian Grigore, BЈовић, Joe Jun 26 '12 at 20:46

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8  
Why the downvote/vote to close? What can I do to improve the question? –  Michael0x2a Jun 26 '12 at 7:06
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@Deflect: That was mine, Usually 'why was this language construct chosen?' questions are simply not constructive because there is no objective, reasonable answer. However, in this case there are a few decent reasons, so I may have judged too soon (I removed my downvote quite quickly). –  KillianDS Jun 26 '12 at 7:12
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@KillianDS: Okay, that makes sense. Thanks for replying! [and reassuring me that I'm not totally off-base :)] –  Michael0x2a Jun 26 '12 at 7:15
    
@KillianDS: Well, then why not just answer by "there's no serious reason, other languages do this and this and it just happened that C++ goes its way"? –  sharptooth Jun 26 '12 at 9:56
    
I don't know how useful this is, but this is the way I'd read the code in English: p is an integer pointer; p is a new integer array of length i; delete the array p. –  Jamie Taylor Jun 26 '12 at 14:52

2 Answers 2

up vote 27 down vote accepted

One reason could be to make these cases more distinct.

int ** p;
delete[] p
delete p[1];

If it were delete p[] then a one character error would have pretty nasty consquences.

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12  
This is especially true, in that in early C++, you had to specify the number of elements in the []. –  James Kanze Jun 26 '12 at 7:12
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@JamesKanze: Sounds like that's the answer to me. delete p[4] would be ambiguous. –  GManNickG Jun 26 '12 at 7:13
    
@GManNickG Exactly. –  James Kanze Jun 26 '12 at 7:21
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+1. Perfect.... –  Nawaz Jun 26 '12 at 7:28
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delete []p[1]; is also valid, and compiler must know the programmer's intent! –  Ajay Jun 26 '12 at 7:52

Because array decays to pointer when passing as parameter to function (or operator). So delete p[] would be simply equivalent to delete p.

[edit] We may think of delete as of special template operator. The operator should be able to distingish between p and p[] to pick the right "specialization" (non-array or array deletion). However, template argument deduction rules make this choice impossible (due to array decaying we can't distingish between p[] and p when deducing the argument).

So we can't use operator with name delete for both casees and need to introduce another operator delete[] with diffrent name (suffix [] can be treated as part of operator's name) for array case.

[edit 2] Note. delete p[] is not valid sintax at all according to the current standard. The reasoning above only shows problems that could araise if we would try to interpret delete p[] using existing c++ concepts.

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No, it is not equivalent. Using one in place of another is undefined behavior. –  sharptooth Jun 26 '12 at 9:56
    
@sharptooth: ? passing an array into templated function instead of pointer is UB? I think about delete as about templated operator and this operator can't pick the right specialization because it can't distingish between p[] and p when deducing the argument. So we need to introduce a special operator delete[] for arrays instead of using the same operator name –  user396672 Jun 26 '12 at 10:01
    
Passing a pointer returned by new to delete[] is UB –  sharptooth Jun 26 '12 at 10:09
    
@sharptooth: of course, but it's unrelated to my answer. I said only that delete p and delete p[] are equivalent statements (perhaps, both expose UB if p is an array created by new int[i]) –  user396672 Jun 26 '12 at 10:19
    
Yes, you're right. I just misunderstood your statement. –  sharptooth Jun 26 '12 at 10:27

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