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for example:

var s = '3+3';
s.replace(/([\d.]+)([\+\-)([^,]*)/g,
        function(all, n1, operator, n2) {
                r = new Number(n1) ??? new Number(n2);
                return r;
        }
);

note: not using eval()

share|improve this question
    
Looks like one of the few cases where eval() would be handy. –  alex Sep 9 '11 at 1:03
    
Is new Function() off limits too? –  alex Sep 9 '11 at 1:07
    
Why not using eval() out of curiosity? –  Demian Brecht Sep 9 '11 at 1:10
    
You might find the following series interesting: Essentials of Interpretation. They are small lesson about computer program interpretation, written in Javascript, the goal at the end IMO will be to implement a small scheme-like language. –  CMS Sep 9 '11 at 1:20

3 Answers 3

up vote 2 down vote accepted

JavaScript: Are variable operators possible?

Not possible out of the box, but he gives a nice implementation to do it, as follows. Code by delnan.

var operators = {
    '+': function(a, b) { return a + b },
    '<': function(a, b) { return a < b },
     // ...
};

var op = '+';
alert(operators[op](10, 20));

So for your implementation

r = operators[operator](new Number(n1), new Number(n2));
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+1 for using the object to look up operator functions instead of if/else or switch/case. –  jfriend00 Sep 9 '11 at 1:11

Your regex is a bit broken.

/([\d.]+)([\+\-)([^,]*)/g

should probably be

/([\d.]+)([+-])([\d+]+)/g

then you can switch on the operator:

function (_, a, op, b) {
  switch (op) {
    case '+': return a - -b;
    case '-': return a - b;
  }
}
share|improve this answer
s.replace(/(\d+)\s*([+-])\s*(\d+)/g, function(all, s1, op, s2) {
  var n1 = Number(s1), n2 = Number(s2);
  return (op=='+') ? (n1+n2) : (n1-n2);
});
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