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here is the json data I am getting in output. I need to get the mean of all the values corresponding to their respective keys. Here in this case we have to get the mean value for Years.

data = {
    "Weather": [{
            "Calc": [{
                    "Year": 2003,
                    "temp": 45,

                }, {
                    "Year": 2005,
                    "temp": 47,

                }, {
                    "Year": 2008,
                    "temp": 41,

                }
            ],

        }, {

            "Calc": [{
                    "Year": 2003,
                    "temp": 33,

                }, {
                    "Year": 2005,
                    "temp": 38,

                }, {
                    "temp": 36,
                    "Year": 2007,

                }
            ]
        }, {

            "Calc": [{
                    "Year": 2004,
                    "temp": 13,

                }, {
                    "Year": 2005,
                    "temp": 19,

                }, {
                    "Year": 2008,
                    "temp": 21,

                }
            ]
        }, {

            "Calc": [{
                    "Year": 2003,
                    "temp": 20,

                }, {
                    "Year": 2005,
                    "temp": 27,

                }, {
                    "Year": 2008,
                    "temp": 29,

                }
            ]
        }
    ]
};

Now I need to the get the mean of all the values for the same key and customize it into this form -

 data= {
   "Weather": [
      {
          "Calc": [
              {
                    "Year": 2003,
                    "temp": 45,

              },
              {
                    "Year": 2005,
                    "temp": 47,

              },
              {
                    "Year": 2008,
                    "temp": 41,

              }
        ]
}
]

};

share|improve this question

closed as too localized by Andy, Reinmar, TheHippo, hexblot, Ian May 31 '13 at 13:43

This question is unlikely to help any future visitors; it is only relevant to a small geographic area, a specific moment in time, or an extraordinarily narrow situation that is not generally applicable to the worldwide audience of the internet. For help making this question more broadly applicable, visit the help center. If this question can be reworded to fit the rules in the help center, please edit the question.

    
What did you try so far? –  thebreiflabb May 31 '13 at 11:31
    
Well to start with I used 2 nested loops to iterate through them. But the problem comes for identifying the same index every time. As JS arrays are not as easy as PHP. –  user2339182 May 31 '13 at 12:20

1 Answer 1

up vote 0 down vote accepted

This is my approach:

//initialise an empty result object.
var result = {};

//iterate through the weather array.
data.Weather.forEach(function(weather){
    //iterate through the contained 'calc' arrays.
    weather.Calc.forEach(function(item){
        //create a new index in the result object for the given year if it doesn't already exist.
        result[item.Year] = result[item.Year] || [];
        //add this temperature to the year.
        result[item.Year].push(item.temp);
    });
});

//we now have an object containing arrays of all the temps under each year

//average them!
for (year in result){
    var avg = 0;
    result[year].forEach(function(val){
        avg += val;
    });
    avg = avg/result[year].length;
    result[year] = avg;
}

console.log(result) yields:

{ 
  2003: 32.666666666666664, 
  2004: 13, 
  2005: 32.75, 
  2007: 36, 
  2008: 30.333333333333332
}

Which is fairly trivial to convert into the format in the question.

share|improve this answer
    
If you want to closer inspect how this works, use console.log(JSON.stringify(result)); before the final for...in loop. –  Ed Hinchliffe May 31 '13 at 13:38
1  
Thanks for your help Ed.. Your code helped in optimization as my computations (looping) was way longer than yours. –  user2339182 May 31 '13 at 14:22
    
no probs - please vote up my answer or accept it if you're satisfied :) –  Ed Hinchliffe May 31 '13 at 14:30

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