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In the course of my reading I came accross WG14 Defect Report #51 written in 1993 (or perhaps 1893, they left off the century and millennium). In the code sample there, apparently an operator spelled ->> is used on a pointer to a struct. I can't find it in any operator precedence tables I've found, so I am wondering, is or was it ever an operator, and if so, what does (or did, as the case may be) this operator do?

At first I thought it was a typo, but it is reproduced twice more in the text and another time in the code sample in the response to the question, and I have a hard time believing it just slipped past at least two C experts without being noticed, when it jumped out at a novice like me. It's also at the focal point of the code, very easy to notice, and was never corrected.

Here is the code with added indentation:

#include <stdlib.h>

struct A {
    char x[1];
};

main()
{
    struct A *p = (struct A *) malloc(sizeof(struct A) + 100);
    p->>x[5] = '?';  /* This is the key line [for both them and us] */
    return 0;
}

I tried to compile this code with both a C and C++ compiler and it failed to parse in either one. Perhaps this was some operator in an early version of C that isn't used any more?

This feels suspiciously like the What is the name of this operator: "-->"? question, but I don't think this is a combination of two other operators, I don't see how it can be divided up and be valid.

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16  
I have a feeling that's a typo. –  R. Martinho Fernandes Oct 24 '12 at 13:27
4  
@SethCarnegie: I agree that it's hard to believe, but I find it easier to believe than that as recently as 1993 C had a ->> operator since lost to historians. That Andrew Koenig is an immortal who was alive and commenting on the C standard in 1893 is somewhere between the two. Maybe he had a great-grandfather? ;-) –  Steve Jessop Oct 24 '12 at 13:35
41  
Simply, this code is written in 2093, so operator->> still not invented. –  Lol4t0 Oct 24 '12 at 13:43
3  
We should ask the author of this SO post as he uses ->> :) –  halex Oct 24 '12 at 13:51
6  
"Once you eliminate the impossible, whatever remains, no matter how improbable, must be the truth." -Arthur Conan Doyle –  Adam Rosenfield Oct 24 '12 at 14:07

3 Answers 3

up vote 29 down vote accepted

It looks like a problem in the transcription process. There is a similar problem in DR 42, where the greater than sign is doubled: http://www.open-std.org/jtc1/sc22/wg14/docs/rr/dr_042.html

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I learned C in 1992, and I'm 100% certain there was no such operator back then.

From the context, p->>x[5], we can deduce that it appears to do exactly the same thing as the more familiar arrow operator, ->. It is therefore likely to be a typo.


Alternatively, it could be an encoding issue in transcribing the code into HTML. If you look at the source to that page, you can see it's got a strange mixture of escape codes and literal < and > characters:

<TT><B>#include &lt;stdlib.h><BR>
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Doubt it, see my comment –  Seth Carnegie Oct 24 '12 at 13:31
    
Updated with another possible explanation. –  Graham Borland Oct 24 '12 at 13:40
    
That is much more possible. But there is no reason to encode the > character, and there is no matching <. –  Seth Carnegie Oct 24 '12 at 13:41
1  
In 1993, HTML-encoding scripts were quite possibly very broken. –  Graham Borland Oct 24 '12 at 13:42
4  
If it is encoding issue, why > in include isn't broken? –  Lol4t0 Oct 24 '12 at 13:46

This does seem likely to have been a transcription error, but I think it would be useful to write out how a real C compiler would interpret this construct, anyway, just to make clear that it isn't a clever trick. The first thing it's important to know is this sentence, from C11 §6.5.4p4 (technically, N1570; this language is unchanged since C89, although the section number was probably different; emphasis mine):

If the input stream has been parsed into preprocessing tokens up to a given character, the next preprocessing token is the longest sequence of characters that could constitute a preprocessing token.

That means the six-character string " p->>x" must be tokenized as p -> > x, not p - >> x or p - > > x. (It doesn't actually matter in this case, it would be a syntax error either way, but this rule can be the difference between a program parsing as intended, and not; the standard gives the example x+++++y, which is interpreted as x++ ++ +y, not as x++ + ++y, even though only the latter is a well-formed expression.)

The next thing to know is simply that the right-hand argument of the -> operator must be an identifier, per the grammar rules for postfix-expression in §6.5.2. Obviously > isn't an identifier, so we have a definite syntax error.

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