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A friend and I were discussing C++ templates. He asked me what this should do:

#include <iostream>

template <bool>
struct A {
    A(bool) { std::cout << "bool\n"; }
    A(void*) { std::cout << "void*\n";  }
};

int main() {
    A<true> *d = 0;
    const int b = 2;
    const int c = 1;
    new A< b > (c) > (d);
}

The last line in main has two reasonable parses. Is 'b' the template argument or is "b > (c)" the template argument?

Although, it is trivial to compile this, and see what we get, we were wondering what resolves the ambiguity?

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5 Answers 5

up vote 4 down vote accepted

AFAIK it would be compiled as new A<b>(c) > d. This is the only reasonable way to parse it IMHO. If the parser can't assume under normal circumstances a > end a template argument, that would result it much more ambiguity. If you want it the other way, you should have said new A<(b > c)>(d);.

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As stated by Leon & Lee, 14.2/3 (C++ '03) explicitly defines this behaviour.

C++ '0x adds to the fun with a similar rule applying to '>>'. The basic concept, is that when parsing a template-argument-list a non nested '>>' will be treated as two distinct '>' '>' tokens and not the right shift operator:

template <bool>
struct A {
  A(bool);
  A(void*);
};

template <typename T>
class C
{
public:
  C (int);
};

int main() {
    A<true> *d = 0;
    const int b = 2;
    const int c = 1;
    new C <A< b  >>  (c) > (d); // #1
    new C <A< b > >  (c) > (d); // #2
}

'#1' and '#2' are equivalent in the above.

This of course fixes that annoyance with having to add spaces in nested specializations:

C<A<false>> c;  // Parse error in C++ '98, '03 due to "right shift operator"
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I've heard about this before. Some compilers have jumped the gun by allowing x<y<z>> anyway. But I'm just wondering: is it actually defined in terms of context-sensitive lexing, or by a grammar rule like TemplateId '<' TemplateId '<' TemplateArgument '>>' given in its own right? –  Stewart Jun 5 '11 at 23:45
    
@Stewart: It's the former (context-sensitive lexing). To summarise, 14.2/3 says that while parsing a template-argument-list the first non-nested >> is treated as two separate > tokens. You can read the actual paper for more info: open-std.org/jtc1/sc22/wg21/docs/papers/2005/n1757.html –  Richard Corden Jun 8 '11 at 12:56

The C++ standard defines that if for a template name followed by a <, the < is always the beginning of the template argument list and the first non-nested > is taken as the end of the template argument list. If you intended that the result of the > operator be the template argument, then you'd need to enclose the expression in parens. You don't need parens if the argument was part of a static_cast<> or another template expression.

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The greediness of the lexer is probably the determining factor in the absence of parentheses to make it explicit. I'd guess that the lexer isn't greedy.

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But isn't the lexing completely unambiguous? –  Rob Rolnick Sep 9 '08 at 18:20
    
It will error out on ambiguity, so yes. Being greedy or non-greedy doesn't make you ambiguous. Greediness is actually a way to resolve ambiguity. You also get into the interaction between the lexer and the parser in this case, so maybe it's the parser that's not greedy. –  Ben Collins Sep 9 '08 at 18:24
    
The grammar may be ambiguous, but the lexer is absolutely not. The spacing makes the lexer completely well defined. –  Rob Rolnick Sep 9 '08 at 23:06
    
I agree with you. I never said the lexer is ambiguous. –  Ben Collins Sep 9 '08 at 23:16

I'm unable find the relevant passage in the standard but I believe Leon is right. In this case of ambiguity, parenthesises around the expression inside the template argument list are required.

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