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 multiple arrays in javascript and I want to do sum of those arrays and final array.

EX: Array1 = [1,9,10,11], Array2 = [5,8,7,2], Total = [6,17,17,13].
share|improve this question
4  
What have you tried so far? –  Andrew Cooper Jul 30 '12 at 6:11
    
I don't really understand, what your problem is, you want to find the best solution from a performance perspective? –  axl g Jul 30 '12 at 6:12
    
What is the "final array"? Do you want 1+9+10+11 + 5+8..., or do you want [1+5+6, 9+8+17, ...] –  David Hedlund Jul 30 '12 at 6:12
    
I tried creating one function.. MyArray.Sum() which is returning sum of all array elements.. but I want one final array which consists of sum of all passed multiple array elements shown in above example. –  k-s Jul 30 '12 at 6:14
    
Array1 = [1,9,10,11], Array2 = [5,8,7,2], Result = [6,17,17,13]. Result is sum of array1 and array2 elements. –  k-s Jul 30 '12 at 6:17

3 Answers 3

up vote 5 down vote accepted
var Array1 = [1,9,10,11];
var Array2 = [5,8,7,2]; 
var Total = [];

for( var i = 0; i < Array1.length; i++)
{
    Total.push(Array1[i]+Array2[i]);
}

BTW, starting variable names in capital letters feels awkward.

share|improve this answer
    
Yeah, thats it.. thanks. –  k-s Jul 30 '12 at 6:22
var Array1 = [1,9,10,11];
var Array2 = [5,8,7,2];
var Total = new Array();
for(var i= 0;i<Math.min(Array1.length,Array2.length);i++){
  Total.push(Array1[i]+Array2[i]);
}
alert(Total);
share|improve this answer
function aSum(/*arrays list*/){
  var total=[],undefined;
  for(var i=0,l0=arguments.length;i<l0;i++)
    for(var j=0,arg=arguments[i],l1=arg.length;j<l1;j++)
      total[j]=(total[j]==undefined?0:total[j])+arg[j];
  return total;
}


var Array1 = [1,9,10,11], Array2 = [5,8,7,2], Array3 = [1,2,3,4,8];

console.log(aSum(Array1, Array2, Array3)); // [7, 19, 20, 17, 8]
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.