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I have an array with numbers (coordinates) and I want to display those using JSON like so

 JSON.stringify(array);

My array looks like:

[{"x":-0.825,"y":0},
 {"x":-1.5812500000000003,"y":-0.5625},
 {"x":-2.2515625000000004,"y":-1.546875}]

But I'm only interested in the first (lets say) 4 significant digits, i.e.

[{"x":-0.825,"y":0},
 {"x":-1.5813,"y":-0.5625},
 {"x":-2.2516,"y":-1.5469}]

Is there a way to easily ditch the remaining insignificant numbers?

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1  
This is a good question –  Roderick Obrist Feb 18 '12 at 8:48

5 Answers 5

up vote 10 down vote accepted

Native JSON.stringify accepts the parameter replacer, which can be a function converting values to whatever is needed:

a = [0.123456789123456789]
JSON.stringify(a, function(key, val) {
    return val.toFixed ? Number(val.toFixed(3)) : val;
})

>> "[0.123]"
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Thank you! This is what I was looking for!! –  dr jerry Feb 18 '12 at 11:44
    
+1 - Very cool, had no idea that existed. –  Dagg Nabbit Feb 19 '12 at 1:27

Use Number#toPrecision or Number#toFixed, whichever suits your needs better. The difference is that toFixed sets the number of digits after the decimal point, and toPrecision sets the entire number of digits.

var foo = 1.98765432; 
console.log(foo.toPrecision(5)); // 1.9877

Note that toFixed and toPrecision return strings, so you'll probably want to convert them back to numbers before JSONifying them.

Here's the obligatory MDN link.


You can also do something like this, if you want to roll your own.

Math.round(1.98765432 * 10000) / 10000 // 1.9877

Encapsulated in a function, it might look something like this:

function precisify(n, places) { 
    var scale = Math.pow(10, places); 
    return Math.round(n * scale) / scale; 
}
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1  
Note that both toFixed and toPrecision return strings, not numbers. So, you'll need to cast (by prefixing with a unary +) to keep them as numbers. –  Dave Feb 18 '12 at 9:35
    
@Dave, good point. It didn't really fit with my simple examples so I left it out, but I guess I should mention it. –  Dagg Nabbit Feb 18 '12 at 9:38

The first way that comes to mind is to pre-process the array to round all the numbers to four digits:

var array =[{"x":-0.825,"y":0},
            {"x":-1.5812500000000003,"y":-0.5625},
            {"x":-2.2515625000000004,"y":-1.546875}];

​for (​var i=0; i<array.length; i++){
    array[i].x = +array[i].x.toFixed(4);
    array[i].y = +array[i].y.toFixed(4);
}

var json = JSON.stringify(array);

// json === '[{"x":-0.825,"y":0},{"x":-1.5813,"y":-0.5625},{"x":-2.2516,"y":-1.5469}]'

The .toFixed() function returns a string, so I've used the unary plus operator to convert that back to a number.

The second way that comes to mind is to process the string output by JSON.stringify():

json = json.replace(/(\.\d{4})(\d+)/g,"$1");
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A bit of overkill, but this should work in all situations.

function prepareArrayForJSON(array) {
    var i = 0;
    while (i < array.length) {
        if (typeof array[i] === 'number') {
            array[i] = array[i].toPrecision(4);
        } else if(typeof array[i] === 'object') {
            if (array instanceof Object) {
                prepareObjectForJSON(array[i]);
            } else if (array instanceof Array) {
                prepareArrayForJSON(array[i]);
            }
        }
    }
}

function prepareObjectForJSON(obj) {
    var i;
    for (i in obj) {
        if (obj.hasOwnProperty(i)) {
            if (typeof obj[i] === 'number') {
                obj[i] = obj[i].toPrecision(4);
            } else if(typeof obj[i] === 'object') {
                if (obj instanceof Object) {
                    prepareObjectForJSON(array[i]);
                } else if (obj instanceof Array) {
                    prepareArrayForJSON(obj[i]);
                }
            }
        }
    }
}

Enjoy yourself

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The number of answers to this question is, well, overwhelming. I think I like your option the best so far as it the most generic. I was hoping for additional argument options in JSON's stringify, but apparently this is not possible. –  dr jerry Feb 18 '12 at 9:01

Run over your array and apply the following to all values.

 value = Math.round( value * 10000 ) / 10000;

Another possibility is to store your coordinates internally as int values (multiples of 10^-4) and just convert them for output.

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1  
This is not going to work in many (most?) cases (because of the way floating point numbers are stored internally) –  Philippe Leybaert Feb 18 '12 at 9:03

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