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As a prior note: This is not something I would 'desire' to achieve; more-so a question related to if it's actually possible.

N.B. I understand (and have used) Operator Overloding in C++. For example:

std::ostream& operator<<(std::ostream& os, const T& obj){ return os; }

Is it possible to define a custom ASCII character to act as an operator?

For example, in a simple sense: use the grave accent (`) as an 'alias' for std::pow.

Whereby, the following statement would be valid/achievable:

std::cout << 2`3 << std::endl;

>> 8
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    Custom build of g++ ;-)
    – Matt
    Commented Mar 4, 2015 at 9:13
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    @Angew: could do that... or just 2_n ^ 3 (on ideone), though there's a solid argument that's more confusing for hijacking bitwise-OR. Commented Mar 4, 2015 at 10:29
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    You are certainly aware that the "S" in "ASCII" stands for "standard"? And that therefore "custom ASCII character" is a contradiction in terms? (Just kidding.) Commented Mar 4, 2015 at 18:06
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    FYI Haskell has the feature you want; a web search for "infix operators in Haskell" should yield interesting reading. Commented Mar 4, 2015 at 19:12
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    @BenjaminGruenbaum: Because Haskell is awesome? As is Scala of course. Swift I have insufficient data upon which to make a judgment. Commented Mar 5, 2015 at 0:58

2 Answers 2

72

You cannot introduce a character not present in the syntax, such as the backtick you mentioned. But there is a "named operator" trick with which you can introduce a "named operator" to achieve the following syntax:

std::cout << (2 <Pow> 3) << std::endl;

The trick relies on overloading < and > for a custom type, like this:

const struct PowOperator {} Pow;

struct PowInvoker
{
  int lhs;
};

PowInvoker operator< (int lhs, PowOperator)
{
  return {lhs};
}

int operator> (PowInvoker lhs, int rhs)
{
  return std::pow(lhs.lhs, rhs);
}

int main()
{
  std::cout << (2 <Pow> 3) << std::endl;
}

[Live example]

Notice that you cannot affect the precedence of these named operators: they will have the same precedence as <, <=, >, and >=. If you need different precedence, you'd have to use a different delimiter (which would probably not be as nicely readable).


Disclaimer

The above trick is "clever" code, it's pretty much an abuse of the C++ syntax. I took the question as a hypothetical "what is possible," and answered with an equally hypothetical "this is." I would not recommend using this in practice for such trivial matters as replacing std::pow or providing "novelty" syntax for the sake of it. The operator precedence caveat mentioned above is one reason; general unfamiliarity of the construct is another. Code quality is measured in the number of WTFs the code generates (fewer is better), and this trick generates a whole bunch of them (and big ones at that).

It still has its uses: for creating a Domain-Specific Language. There are cases in programming where embedding a DSL into C++ code is in order; in such cases (and only in such cases) would I consider using this.

9
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    I'd savagely mutilate anyone who used that in "real" code, but +1 for an interesting answer to a hypothetical question. Commented Mar 4, 2015 at 9:26
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    @ApproachingDarknessFish Replacing std::pow is not what this is for, but it can provide a viable DSL for some situations. Commented Mar 4, 2015 at 9:34
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    @Angew Interesting concept; thank you for the link to the 'named-operator' trick. I've never actually seen this done before. Commented Mar 4, 2015 at 11:57
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    @ArtB: I think that's compiler specific. C++ disallows a couple characters, requires a few, but all the rest are up to the compiler. Commented Mar 4, 2015 at 19:54
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    @sanchises Yes, operator precedence can indeed break it. Notice I (had to) put parentheses around the subexpression in the output statement. Named operators constructed in this way will always have the same precedence as <, <=, >, and >=. As Mooing Duck mentioned, you could use a different operator for delimiter to achieve more favourable binding (such as ->*, the tightest-binding general-purpose infix operator). Commented Mar 5, 2015 at 8:04
11

No, that is not possible. Even at the preprocessor level you are limited by the characters that form valid preprocessor tokens and macro names, and then the language grammar fixes the set of operators in the language.

1
  • Thanks for the prompt reply @Kerrek. I was convinced that it wasn't possible; just hadn't seen adequate information about the topic on the web. Thanks for clearing that up. :-) Commented Mar 4, 2015 at 9:13

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