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I have a json in the form of { a:1, b:10, c:43 } for example.

I wish to perform eval( "(a+b-5)*c" ) but applying it to the json, not the place where the json and the formula is.

Attempted this, trying to utilize the scope, but wouldn't find a.

var z = { a:1, b:10, c:43, eval:eval };
console.log( z.eval( "a+b" ) );
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3  
I do not understand what you mean... but if you mean what I think you do, there'll be no way but to unpack the JSON, do the array, and re-pack it. –  Pekka 웃 Oct 5 '13 at 0:04
    
what array are you talking about? –  Discipol Oct 5 '13 at 0:07
    
This: { a:1, b:10, c:43 } array, object, same difference in this case... it'd look something like result = (myJSON.a+myJSON.b-5)*myJSON.c) –  Pekka 웃 Oct 5 '13 at 0:09
    
how would one "unpack" it? –  Discipol Oct 5 '13 at 0:10
    
Well, where does the JSON come from? Can you show some code? –  Pekka 웃 Oct 5 '13 at 0:10

4 Answers 4

up vote 2 down vote accepted

You can use the with keyword, but please don't. Using with and eval is not recommended.

var z = { a:1, b:10, c:43 };
with(z) {
    console.log(eval('a+b'));
}

Here's some more info on MDN.

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then how do I scope inside the json without with? –  Discipol Oct 5 '13 at 0:39
1  
You can use with if you like, the whole approach as it is, is not recommended. If I would need to do something like this, I'd go back and re-think what I want to achieve and if there's a better way to do it. Although I'm not saying I've never done messy things myself due to lack of time or interest. ;) –  DarthJDG Oct 5 '13 at 0:44

Check this out:

function expression (expr) {
    return new Function('obj', 'with (obj) return ' + expr);
}

console.log(expression('(a+b-5)*c')({ a:1, b:10, c:43 }));
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I guess you want something like:

var yourJSon = '{ "a":1, "b":10, "c":43 }'; 
//Your original JSon String (attention to the standard double quotes)

yourJSon = JSON.parse(yourJSon); 
//this will render your JSon string into a "real" object

var answer = eval("(yourJSon.a + yourJSon.b - 5) * yourJSon.c"); 
//And now you can do the eval, using the object's variable to define the scope of that object.
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Dont use eval! USE JSON.parse

JSON.parse

JSON.parse vs. eval()

var obj=JSON.parse(json);

alert((obj.a+obj.b-5)*obj.c)
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the question is about parsing and evaluating an expression, not parsing json –  vkurchatkin Oct 5 '13 at 0:16
    
how would the json parse resolve my formula? –  Discipol Oct 5 '13 at 0:17

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