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I wanna set the value in a JSON using a path string like this "a.0.b" for a JSON that looks like this:

{
  a: [
    {
      b: 'c'
    }
  ]
}

I came up with this solution but I wonder if there is a simpler way to write this:

function setValue(path, value, json) {
  var keys = path.split('.');
  _.reduce(keys, function(obj, key, i) {
    if (i === keys.length - 1) {
      obj[key] = value;
    } else {
      return obj[key];
    }
  }, json);
}

so calling setValue('a.0.b', 'd', {a:[{b:'c'}]}) would change the json to {a:[{b:'d'}]}

share|improve this question
    
FYI, JSON is a textual data-exchange format. What you are referring to in your question is a (nested) JavaScript object/array. –  Felix Kling Apr 8 '13 at 9:24
    
So would you like to set variables like a[0].b = 1;, or am I completely wrong? –  Qantas 94 Heavy Apr 8 '13 at 10:40
    
In the setvalue would be passed a the path string, the new value and the json where the value should changed. Updated the question with an example. –  Andreas Köberle Apr 8 '13 at 10:47
1  
In your example the a array does not contain a key of '0' (a string). You would have to convert the string into an integer to access the first index of the a array. –  idbehold Apr 8 '13 at 12:32
    
To be clear the posted function works well, I just wonder if the function could be simplified. –  Andreas Köberle Apr 8 '13 at 12:37

1 Answer 1

Here's a solution. I benchmarked the two possible solutions and it seems looping over object and path is faster than using the reduce function. See the JSPerf tests here: http://jsperf.com/set-value-in-json-by-a-path-using-lodash-or-underscore

function setValue(path, val, obj) {
  var fields = path.split('.');
  var result = obj;
  for (var i = 0, n = fields.length; i < n && result !== undefined; i++) {
    var field = fields[i];
    if (i === n - 1) {
      result[field] = val;
    } else {
      if (typeof result[field] === 'undefined' || !_.isObject(result[field])) {
        result[field] = {};
      }
      result = result[field];
    }
  }
}
share|improve this answer
    
This should be accepted as the right answer.. Thanks! –  M K Aug 29 '14 at 10:18

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