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I have the following data:

var data = [[{x:"c", y:10}, {x:"a", y:20}, {x:"b", y:4}], [{x:"c", y:14}, {x:"a", y:22}, {x:"b", y:9}], [{x:"c", y:24}, {x:"a", y:65}, {x:"b", y:46}]]

I need to order the (x) element of each array (within the parent array) based on the value of the 'y' attributes from the last array element. The result would be:

[[{x:"c", y:10}, {x:"b", y:4}, {x:"a", y:20}], [{x:"c", y:14}, {x:"b", y:9}, {x:"a", y:22}], [{x:"c", y:24}, {x:"b", y:46}, {x:"a", y:65}]]

Any easy way to do that? Here's the global structure of the data:

var data = [[{x:"x_1", y:}, {x:"x_2", y:},.. {x:"x_N", y:}], [{x:"x_1", y:}, {x:"x_2", y:},.. {x:"x_N", y:}], [{x:"x_1", y:}, {x:"x_2", y:},.. {x:"x_N", y:}]]

I have an array of 3 arrays that each contains N hash tables.
I need to order the elements in all hash tables based on the values of the 'y' key from the last element (data[2]).

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2  
I don't quite see where the result is coming from? Can you explain it a little more (or show another example)? Why is the 1st element {x:"c", y:10}, {x:"b", y:4}, {x:"a", y:20}? Shouldn't it be {x:"b", y:4}, {x:"c", y:10}, {x:"a", y:20}? –  Rocket Hazmat Aug 2 '12 at 15:16
    
possible duplicate of How to sort an array of javascript objects? -- please use the search before you ask a new question. –  Felix Kling Aug 2 '12 at 15:44
    
Thanks Felix but I already came across that post. My data structure is an array of arrays of objects and I need to deduct the order of the objects elements based on the values of the object in the array element. –  user393750 Aug 2 '12 at 17:58
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3 Answers

up vote 0 down vote accepted

To get the expected result, you can use this algorithm. It is just a loop over all arrays in data, and sorts them with the common sort-by-function:

for (var i=0; i<data.length; i++)
    data[i].sort(function(a, b) {
        return (a.x < b.x) - (b.x < a.x);
    });

> JSON.stringify(data)
[[{"x":"c","y":10},{"x":"b","y":4},{"x":"a","y":20}],[{"x":"c","y":14},{"x":"b","y":9},{"x":"a","y":22}],[{"x":"c","y":24},{"x":"b","y":46},{"x":"a","y":65}]]

Note that it does not what you tried to describe, but sorts reverse by the x property.


EDIT: Now I got the task. Here's the algorithm:

// get the last element and sort it
var last = data[data.length-1];
last.sort(function(a,b){ return a.y-b.y; });

// get the sort order:
var order = last.map(function(o){ return o.x; }); // ["c", "b", "a"]

// now, reorder the previous arrays:
for (var i=0; i<data.length-1; i++) { // sic: loop condition is correct!
    // create a map for the items by their x property
    var hash = data[i].reduce(function(map, o){
        map[o.x] = o;
        return map;
    }, {});
    // create the new array by mapping the order
    data[i] = order.map(function(x) {
        return hash[x];
    });
};
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Thanks Bergi. Changing your logic to: for (var i=0; i<data.length; i++) data[i].sort(function(a, b) { return (a.y < b.y) - (b.y < a.y); }); almost gives me what I want. –  user393750 Aug 2 '12 at 18:45
    
To sort by numbers, use function(a,b){return b.y-a.y}. However, in your example the expected result is not sorted by y - could you elaborate? –  Bergi Aug 2 '12 at 18:52
    
Bergi, The trick is find the sorting order (on value of 'y' key) of the 'x' key of the last element (data[2]) THEN apply it to all other objects. Does that make sense? –  user393750 Aug 2 '12 at 18:57
    
Ah, now I get what you want. –  Bergi Aug 2 '12 at 19:09
    
You got it Bergi. Thanks! –  user393750 Aug 2 '12 at 20:33
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data.sort(function(a,b){return b.y-a.y});

http://www.w3schools.com/jsref/jsref_sort.asp

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1  
Each element in data is actually an array. –  Rocket Hazmat Aug 2 '12 at 15:20
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I can't really see how you can archive what your demo result looks like but if you want what your text says this will do the job.

ASC

data.sort(function(a, b) {
    return b[b.length-1].y - a[a.length-1].y;
});

DESC

data.sort(function(a, b) {
    return a[a.length-1].y - b[b.length-1].y;
});
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