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This question already has an answer here:

I was wondering how I can sort an array on a custom order, not alphabetical. Imagine you have this array/object:

var somethingToSort = [{
    type: "fruit",
    name: "banana"
}, {
    type: "candy",
    name: "twix"
}, {
    type: "vegetable",
    name: "broccoli"
}, {
    type: "vegetable",
    name: "carrot"
}, {
    type: "fruit",
    name: "strawberry"
}, {
    type: "candy",
    name: "kitkat"
}, {
    type: "fruit",
    name: "apple"
}];

In here we have 3 different types: fruit, vegetable and candy. Now I want to sort this array, and make sure that all fruits are first, candies come after fruits, and vegetables be last. Each type need their items to be sorted on alphabetical order. We will use a function like sortArrayOnOrder ( ["fruit","candy","vegetable"], "name" ); So basically, you would end up with this array after sorting:

var somethingToSort = [{
    type: "fruit",
    name: "apple"
}, {
    type: "fruit",
    name: "banana"
}, {
    type: "fruit",
    name: "strawberry"
}, {
    type: "candy",
    name: "kitkat"
}, {
    type: "candy",
    name: "twix"
}, {
    type: "vegetable",
    name: "broccoli"
}, {
    type: "vegetable",
    name: "carrot"
}];

Anyone an idea how to create a script for this?

share|improve this question

marked as duplicate by Bergi, Yoshi, Qantas 94 Heavy, kapa javascript May 30 '14 at 14:54

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

    
See also many other "how to sort" questions – Bergi Feb 14 '13 at 10:27
up vote 4 down vote accepted

Improved version of Cerbrus' code:

var ordering = {}, // map for efficient lookup of sortIndex
    sortOrder = ['fruit','candy','vegetable'];
for (var i=0; i<sortOrder.length; i++)
    ordering[sortOrder[i]] = i;

somethingToSort.sort( function(a, b) {
    return (ordering[a.type] - ordering[b.type]) || a.name.localeCompare(b.name);
});
share|improve this answer
    
Hm, good idea to build a object out of the sortOrder, removes the need to use indexOf each time the function is called. +1 – Cerbrus Feb 14 '13 at 10:35
    
Awesome. That works. Thanks! – RemiDG Feb 14 '13 at 11:28

Try this:

var sortOrder = ['fruit','candy','vegetable'];   // Declare a array that defines the order of the elements to be sorted.
somethingToSort.sort(
    function(a, b){                              // Pass a function to the sort that takes 2 elements to compare
        if(a.type == b.type){                    // If the elements both have the same `type`,
            return a.name.localeCompare(b.name); // Compare the elements by `name`.
        }else{                                   // Otherwise,
            return sortOrder.indexOf(a.type) - sortOrder.indexOf(b.type); // Substract indexes, If element `a` comes first in the array, the returned value will be negative, resulting in it being sorted before `b`, and vice versa.
        }
    }
);

Also, your object declaration is incorrect. Instead of:

{
    type = "fruit",
    name = "banana"
}, // etc

Use:

{
    type: "fruit",
    name: "banana"
}, // etc

So, replace the = signs with :'s.

share|improve this answer
    
+1, nice one. See my answer for an effieciency-improved variant – Bergi Feb 14 '13 at 10:32
    
Wups, sorry about the = instead of :. Just wrote an example here, didn't copy pasta anything and forgot about the : to assign values. Im too used to use the = operator to assign values haha :P – RemiDG Feb 14 '13 at 11:26

Array.sort accepts a sort function where you can apply custom sorting logic.

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