Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I have 2 array:

    var array1 = [[5,10],[6,10],[7,10],[8,10],[9,10]];
    var array2 = [[1,10],[2,10],[3,10],[4,10],[5,40],[6,40]];

Want to get 1 merged array with the sum of corresponding keys;

    var array1 = [[1,10],[2,10],[3,10],[4,10],[5,50],[6,50],[7,10],[8,10],[9,10]];

Both arrays have unique keys, but the corresponding keys needs to be summed.

I tried loops, concat, etc but can't get the result i need.

anybody done this before?

share|improve this question
1  
Perhaps you could show us the attempt that you think was closest to working as desired. –  Lee Meador Jun 14 '13 at 18:43

4 Answers 4

up vote 3 down vote accepted

This is one way to do it:

var sums = {}; // will keep a map of number => sum

// for each input array (insert as many as you like)
[array1, array2].forEach(function(array) {
    //for each pair in that array
    array.forEach(function(pair) {
        // increase the appropriate sum
        sums[pair[0]] = pair[1] + (sums[pair[0]] || 0);
    });
});

// now transform the object sums back into an array of pairs
var results = [];
for(var key in sums) {
    results.push([key, sums[key]]);
}

See it in action.

share|improve this answer

You can use .reduce() to pass along an object that tracks the found sets, and does the addition.

DEMO: http://jsfiddle.net/aUXLV/

var array1 = [[5,10],[6,10],[7,10],[8,10],[9,10]];
var array2 = [[1,10],[2,10],[3,10],[4,10],[5,40],[6,40]];

var result =
    array1.concat(array2)
          .reduce(function(ob, ar) {
              if (!(ar[0] in ob.nums)) {
                  ob.nums[ar[0]] = ar
                  ob.result.push(ar)
              } else
                  ob.nums[ar[0]][1] += ar[1]

              return ob
          }, {nums:{}, result:[]}).result

If you need the result to be sorted, then add this to the end:

.sort(function(a,b) {
    return a[0] - b[0];
})
share|improve this answer

a short routine can be coded using [].map()

var array1 = [[5,10],[6,10],[7,10],[8,10],[9,10]];
var array2 = [[1,10],[2,10],[3,10],[4,10],[5,40],[6,40]];

array1=array2.concat(array1).map(function(a){
  var v=this[a[0]]=this[a[0]]||[a[0]];
  v[1]=(v[1]||0)+a[1];
 return this;
},[])[0].slice(1);

alert(JSON.stringify(array1)); 
//shows: [[1,10],[2,10],[3,10],[4,10],[5,50],[6,50],[7,10],[8,10],[9,10]]

i like how it's just 3 line of code, doesn't need any internal function calls like push() or sort() or even an if() statement.

share|improve this answer

Try this:

var array1 = [[5,10],[6,10],[7,10],[8,10],[9,10]];
var array2 = [[1,10],[2,10],[3,10],[4,10],[5,40],[6,40]];
var res = [];

someReasonableName(array1, res);
someReasonableName(array2, res);

function someReasonableName(arr, res) {
  var arrLen = arr.length
  , i = 0
  ;

  for(i; i < arrLen; i++) {
    var ar = arr[i]
    , index = ar[0]
    , value = ar[1]

    ;

    if(!res[index]) {
        res[index] = [index, 0];
    }
    res[index][1] += value;
  }
}

console.log(JSON.stringify(res, null, 2));

So, the result may have holes. Just like 0th index. Use the below function if you want to ensure there are no holes.

function compact(arr) {
  var i = 0
  , arrLen = arr.length
  , res = []
  ;
  for(i; i < arrLen; i++) {
    var v = arr[i]
    ;
    if(v) {
      res[res.length] = v;
    }
  }
  return res;

}

So, you can do:

var holesRemoved = compact(res);

And finally if you don't want the 0th elem of res. Do res.shift();

Disclaimer: I am not good with giving reasonable names.

share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.