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I would like to know how to do some lower-level thing in C++ that will allow me to do some "wacky" math operations. Specifically my two questions are:

1) How can I define my own math symbol that the compiler will be able to recognizes in my code. In other words, I'm not looking to parse a string from a user, but rather have the compiler recognize this as a new math operation.

   ex:   3 {+} 4   will actually do 3 – 4  etc.

2) How can I define a custom number from an ASCII symbol. For example, define the symbol # to be recognized by the compiler as 18 (i.e. 00010010 in binary).

   ex:   18 {+} # = 18 - 18 = 0

If possible, I would like to be able to do the above two things at the compiler lever. Solutions in C++, Java, C, Python, and Objective-C are fine. Just let me know what language your solution is in. Thanks! :)

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    One thing is for sure, this can't be achieved with C++ without ugly macros. – teh internets is made of catz Aug 2 '14 at 23:37
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    Ugly macros might be just the thing here :) – 500 - Internal Server Error Aug 2 '14 at 23:38
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    Kinda wonky though, as this will not replace true operator definitions. – teh internets is made of catz Aug 2 '14 at 23:39
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    You can, of course, write your own compiler. – Hot Licks Aug 2 '14 at 23:44
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    You don't even need to write a compiler; all you really have to do is add a process that reads the file and replaces {+} with - anywhere it appears prior to building. – ChiefTwoPencils Aug 2 '14 at 23:45
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I said in my comment that this would imply macros in C++; if what you want is not much more complicated than what you show, it should do the trick. Defining operators as macros should work for simple find/replace cases, but it may not be well suited for complex expressions and certain symbols.

Off my head, I think what you want is feasible in Haskell by using infix functions as operators, but it may not be straight-forward for a beginner. Take a look at Lyah and search for infixr. You need a basic knowledge of Haskell though.

Edit with Zeta example, you can run it in ghci:

(<+>) = (-) -- operator definition
(<*>) = (/)

answer = 42
answer <+> 12 -- prints 30
answer <*> 7 -- prints 6.0
  • Thanks! I'll look into it, but like you said I need to know Haskell hahaha ;) – Vladimir Aug 3 '14 at 0:05
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    Unfortunately, {} are special symbols and cannot be used for own operators. But you can easily create other operators like <+>. – Zeta Aug 3 '14 at 0:06
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    @Vladimir: (<+>) = (-) (easy, huh?). The ASCII symbol is something completely different. You can create operators with no arguments, but you need to enclose them with parentheses: (#) = 18 and then 18 <+> (#). You can check this stuff at tryhaskell.org, but you need to write it like this: let (<+>) = (-) in 15 <+> 4. – Zeta Aug 3 '14 at 0:19
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    @Vladimir: Actually, as long as this question is tagged as C++, a Haskell answer would be rather off-topic. Also, Haskell is a pure functional programming language. That's a whole other beast compared to C++, C, Java, Python or Objective-C. It will haunt you. It will twist your brain. Depending on what you're trying to do, it would be a total overkill. – Zeta Aug 3 '14 at 0:31
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    @Vladimir This is done at compiler level, and the Haskell compiler is pretty smart so I'd say this is strictly equivalent. – teh internets is made of catz Aug 3 '14 at 10:04
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You can wrap the types into a class, then overload the operators. I came up with a minimal example for "wacky" addition (+ becomes -). But if you want to use PODs you have to use the preprocessor, there is no other way.

#include <iostream>
using namespace std;

template<typename T>
class wacky
{
    T val_;
public:
    wacky(T val = {}): val_(val){};

    // let's define a conversion operator
    template<typename S>
    operator S (){return val_;}

    // we don't need asignment operator and copy ctors

    // stream operators
    friend ostream& operator<<(ostream& os, const wacky& rhs)
    {
        return os << rhs.val_;
    }

    // the += operator
    wacky& operator+=(const wacky& rhs)
    {
        val_ -= rhs.val_; // wacky!
        return *this;
    }

    // and the wacky operator+
    friend wacky operator+(wacky lhs, const wacky& rhs)
    {
        return lhs+=rhs;
    }
};

int main()
{
    wacky<int> a,b;
    a = 10;
    b = 15;

    // a and b behave now like PODs
    // implicit conversions work etc
    double wacky_sum = a + b; 
    cout << wacky_sum << endl; // -5
}
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    I think the OP's intention is, however, to have {+} be a distinct operation from +, which is not possible in a language without true macros. Unless it was always safe to have {+} be replaced directly with -. – aruisdante Aug 2 '14 at 23:49
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    @aruisdante yes, you cannot just introduce new symbols without preprocessor – vsoftco Aug 2 '14 at 23:49
  • @vsoftco: Thanks! This looks like a great suggestion. :) Too bad if I can get {+} to work though. I would +1 your post but I don't have enough reputation for it :( – Vladimir Aug 3 '14 at 0:01
  • PS. I have enough rep now so I +1ed you. Thanks for this code it's great! – Vladimir Aug 3 '14 at 0:33
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    @Vladimir glad this helps! – vsoftco Aug 3 '14 at 1:00

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