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Say I want to sum a.x for each element in arr.

arr = [{x:1},{x:2},{x:4}]
arr.reduce(function(a,b){return a.x + b.x})
>> NaN

I have cause to believe that a.x is undefined at some point.

The following works fine

arr = [1,2,4]
arr.reduce(function(a,b){return a + b})
>> 7

What am I doing wrong in the first example?

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Also, I think you mean arr.reduce(function(a,b){return a + b}) in the second example. –  Jamie Wong Apr 20 '11 at 14:34
1  
Thanks for the correction. I came across reduce here: developer.mozilla.org/en/JavaScript/Reference/Global_Objects/… –  Mr E Apr 20 '11 at 14:35
6  
@Jamie Wong it is actually a part of JavaScript 1.8 –  JaredMcAteer Apr 20 '11 at 14:35
    
@OriginalSyn yeah - just saw that. Interesting, but since it doesn't have full native support, the implementation still matters when answering questions like this. –  Jamie Wong Apr 20 '11 at 14:37
3  
JavaScript versions are just versions of the Firefox interpreter, it's confusing to reference them. There is only ES3 and ES5. –  Raynos Apr 20 '11 at 15:36

4 Answers 4

up vote 30 down vote accepted

After the first iteration your're returning a number and then trying to get property x of it to add to the next object which is undefined and maths involving undefined results in NaN.

try returning an object contain an x property with the sum of the x properties of the parameters:

var arr = [{x:1},{x:2},{x:4}];

arr.reduce(function (a, b) {
  return {x: a.x + b.x}; // returns object with property x
})

Explanation added from comments:

The return value of each iteration of [].reduce used as the a variable in the next iteration.

Iteration 1: a = {x:1}, b = {x:2}, {x: 3} assigned to a in Iteration 2

Iteration 2: a = {x:3}, b = {x:4}.

The problem with your example is that you're returning a number literal.

function (a, b) {
  return a.x + b.x; // returns number literal
}

Iteration 1: a = {x:1}, b = {x:2}, // returns 3 as a in next iteration

Iteration 2: a = 3, b = {x:2} returns NaN

A number literal 3 does not (typically) have a property called x so it's undefined and undefined + b.x returns NaN and NaN + <anything> is always NaN

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Wow, that works. Thanks! Could you explain what's going on? –  Mr E Apr 20 '11 at 14:36
5  
Sure reduce takes in a function to perform operations on each of the elements in an array. Every time it returns a value that is used as the next 'a' variable in the operation. So first iteration a = {x:1}, b = {x:2} then second iteration a = {x:3} (combined value of first iteration), b = {x:4}. The problem with your example in the second iteration it was trying to add 3.x + b.x, 3 does not have a property called x so it returned undefined and adding that to b.x (4) returned Not a Number –  JaredMcAteer Apr 20 '11 at 14:43
    
I understand the explanation, but I still don't see how {x: ... } prevents iteration 2 from calling a.x? What does that x signify? I tried using this approach with a method, and seems not to work –  mck Sep 22 '12 at 18:27
    
actually, just read stackoverflow.com/questions/2118123/… and understand how it works.. but how would you do it when you have a method, rather than just straight attributes? –  mck Sep 22 '12 at 18:30

At each step of your reduce, you aren't returning a new {x:???} object. So you either need to do:

arr = [{x:1},{x:2},{x:4}]
arr.reduce(function(a,b){return a + b.x})

or you need to do

arr = [{x:1},{x:2},{x:4}]
arr.reduce(function(a,b){return {x: a.x + b.x}; }) 
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The first example needs a default value (such as 0) else "a" is undefined in the first iteration. –  Griffin Apr 16 at 16:31

Others have answered this question, but I thought I'd toss in another approach. Rather than go directly to summing a.x, you can combine a map (from a.x to x) and reduce (to add the x's):

arr = [{x:1},{x:2},{x:4}]
arr.map(function(a) {return a.x;})
   .reduce(function(a,b) {return a + b;});

Admittedly, it's probably going to be slightly slower, but I thought it worth mentioning it as an option.

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A cleaner way to accomplish this is by providing an initial value:

var arr = [{x:1}, {x:2}, {x:4}];
arr.reduce(function (a, b) { return a + b.x; }, 0); // 7

The first time the anonymous function is called, it gets called with (0, {x: 1}) and returns 0 + 1 = 1. The next time, it gets called with (1, {x: 2}) and returns 1 + 2 = 3. It's then called with (3, {x: 4}), finally returning 7.

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Thanks, that's a nice solution too. –  Mr E Jun 10 '11 at 0:02
    
This is the solution if you have an initial value (2nd parameter of reduce) –  TJ. Jul 9 at 7:47

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