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Assume I have a simple array:

[1, 20, 15, 37, 46, 9]

I need to make it look like this:

[1, 9, 15, 46, 37, 20]

So the idea is to put the largest value or pair of the largest two values in the middle of the array then put decreasing numbers to the right and to the left of it like a pyramid.

I have a couple of ideas but they don't seem elegant enough. Please advise.

share|improve this question
    
Are the values unique? – VisioN Feb 20 '14 at 14:41
    
Yep, if it matters. – Sergei Basharov Feb 20 '14 at 14:42
    
Wouldn't the largest pair in your example be 46, 37 and not 15, 46,? – Johan Feb 20 '14 at 14:46

Try this:

var arr = [1, 20, 15, 37, 46, 9];
arr.sort(function (a, b) {
    return a - b;
});
var arr1 = arr.slice(0, arr.length / 2);
var arr2 = arr.slice(arr.length / 2, arr.length);
arr2.sort(function (a, b) {
    return b - a;
});
arr = arr1.concat(arr2);
console.log(arr);

This method is resumed to two steps:

[1, 20, 15, 37, 46, 9]    // step 1: sort the entire array
[1, 9, 15, 20, 37, 46]    // step 2: sort the second half of the array
[1, 9, 15, 46, 37, 20]
share|improve this answer
var arr = [1,20,15,37,46,9];
arr.sort(function(a,b){
 return a-b;
});
var right = arr.slice(arr.length/2,arr.length).reverse();
var left = arr.slice(0,arr.length/2);
arr = left.concat(right);
console.log(arr);
share|improve this answer
    
Nice and simple. – reergymerej Feb 20 '14 at 15:26

This can be optimized, but it works.

function pyramid (arr) {
    var newArr = [];

    // sort numerically
    arr.sort(function (a, b) {
        return a - b;
    });

    // put the biggest in new array
    newArr.push(arr.pop());

    // keep grabbing the biggest remaining item and alternate
    // between pushing and unshifting onto the new array
    while (arr.length) {
        newArr[arr.length % 2 === 0 ? 'push' : 'unshift'](arr.pop());
    }

    return newArr;
}

pyramid([1, 20, 15, 37, 46, 9] returns [1, 15, 37, 46, 20, 9]

share|improve this answer
1  
I was going to answer the same: with push and unshift you can add elements in both sides, rounding the biggest element. – Pablo Feb 20 '14 at 14:49

Here is another short chained approach:

[1, 20, 15, 37, 46, 9].sort(function(a, b) {
    return a - b;
}).map(function(v, i, a) {
    var p = ~~(a.length / 2);
    return i >= p ? a[a.length - i + p - 1] : v;
});

// [1, 9, 15, 46, 37, 20]

Seems to work fine with any number of elements in the array.

share|improve this answer
    
+1 for ~~ cool trick – reergymerej Feb 20 '14 at 23:45

I can't give you a javascript example, but I would first put each array element in order, then enumerate (give an index), and then add them in even/odd order from front and back.

[1, 20, 15, 37, 46, 9]

becomes

[1, 9, 15, 20, 37, 46]

then print odd indices up to half the array size, and then print even indices from the end back down to halfway.

edit: python for fun:

tt = sorted([1, 20, 15, 37, 46, 9])
print tt[0:len(tt)/2] + list(reversed(tt[len(tt)/2:len(tt)]))
share|improve this answer

The return from a splice is an array of items that is removed from the original-

function pyramid(arr){
    var  mid= Math.floor(arr.length/2);
    var a2= arr.sort(function(a,b){return a-b}).splice(mid);
    return arr.concat(a2.reverse());
}

var a1= [1, 20, 15, 37, 46, 9];
pyramid(a1)

/* returned value: (Array) 1,9,15,46,37,20 */

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