Javascript array sort and unique

问题

I have a JavaScript array like this:

var myData=['237','124','255','124','366','255'];

I need the array elements to be unique and sorted:

myData[0]='124';
myData[1]='237';
myData[2]='255';
myData[3]='366';

Even though the members of array look like integers, they're not integers, since I have already converted each to be string:

var myData[0]=num.toString();
//...and so on.

Is there any way to do all of these tasks in JavaScript?

回答1:

This is actually very simple. It is much easier to find unique values, if the values are sorted first:

function sort_unique(arr) {
  if (arr.length === 0) return arr;
  arr = arr.sort(function (a, b) { return a*1 - b*1; });
  var ret = [arr[0]];
  for (var i = 1; i < arr.length; i++) { //Start loop at 1: arr[0] can never be a duplicate
    if (arr[i-1] !== arr[i]) {
      ret.push(arr[i]);
    }
  }
  return ret;
}
console.log(sort_unique(['237','124','255','124','366','255']));
//["124", "237", "255", "366"]

回答2:

This might be adequate in circumstances where you can't define the function in advance (like in a bookmarklet):

myData.sort().filter(function(el,i,a){return i===a.indexOf(el)})

回答3:

You can now achieve the result in just one line of code.

Using new Set to reduce the array to unique set of values. Apply the sort method after to order the string values.

var myData=['237','124','255','124','366','255']

var uniqueAndSorted = [...new Set(myData)].sort()

UPDATED for newer methods introduced in JavaScript since time of question.

回答4:

function sort_unique(arr) {
    return arr.sort().filter(function(el,i,a) {
        return (i==a.indexOf(el));
    });
}

回答5:

Here's my (more modern) approach using Array.protoype.reduce():

[2, 1, 2, 3].reduce((a, x) => a.includes(x) ? a : [...a, x], []).sort()
// returns [1, 2, 3]

Edit: More performant version as pointed out in the comments:

arr.sort().filter((x, i, a) => !i || x != a[i-1])

回答6:

How about:

array.sort().filter(function(elem, index, arr) {
  return index == arr.length - 1 || arr[index + 1] != elem
})

This is similar to @loostro answer but instead of using indexOf which will reiterate the array for each element to verify that is the first found, it just checks that the next element is different than the current.

回答7:

Try using an external library like underscore

var f = _.compose(_.uniq, function(array) {
    return _.sortBy(array, _.identity);
});

var sortedUnique = f(array);

This relies on _.compose, _.uniq, _.sortBy, _.identity

See live example

What is it doing?

We want a function that takes an array and then returns a sorted array with the non-unique entries removed. This function needs to do two things, sorting and making the array unique.

This is a good job for composition, so we compose the unique & sort function together. _.uniq can just be applied on the array with one argument so it's just passed to _.compose

the _.sortBy function needs a sorting conditional functional. it expects a function that returns a value and the array will be sorted on that value. Since the value that we are ordering it by is the value in the array we can just pass the _.identity function.

We now have a composition of a function that (takes an array and returns a unique array) and a function that (takes an array and returns a sorted array, sorted by their values).

We simply apply the composition on the array and we have our uniquely sorted array.

回答8:

This function doesn't fail for more than two duplicates values:

function unique(arr) {
    var a = [];
    var l = arr.length;
    for(var i=0; i<l; i++) {
        for(var j=i+1; j<l; j++) {
            // If a[i] is found later in the array
            if (arr[i] === arr[j])
              j = ++i;
        }
        a.push(arr[i]);
    }
    return a;
};

回答9:

A way to use a custom sort function

//func has to return 0 in the case in which they are equal
sort_unique = function(arr,func) {
        func = func || function (a, b) {
            return a*1 - b*1;
        };
        arr = arr.sort(func);
        var ret = [arr[0]];
        for (var i = 1; i < arr.length; i++) {
            if (func(arr[i-1],arr[i]) != 0) 
                ret.push(arr[i]);
            }
        }
        return ret;
    }

Example: desc order for an array of objects

MyArray = sort_unique(MyArray , function(a,b){
            return  b.iterator_internal*1 - a.iterator_internal*1;
        });

回答10:

No redundant "return" array, no ECMA5 built-ins (I'm pretty sure!) and simple to read.

function removeDuplicates(target_array) {
    target_array.sort();
    var i = 0;

    while(i < target_array.length) {
        if(target_array[i] === target_array[i+1]) {
            target_array.splice(i+1,1);
        }
        else {
            i += 1;
        }
    }
    return target_array;
}

回答11:

I guess I'll post this answer for some variety. This technique for purging duplicates is something I picked up on for a project in Flash I'm currently working on about a month or so ago.

What you do is make an object and fill it with both a key and a value utilizing each array item. Since duplicate keys are discarded, duplicates are removed.

var nums = [1, 1, 2, 3, 3, 4, 5, 5, 6, 7, 7, 8, 9, 9, 10];
var newNums = purgeArray(nums);

function purgeArray(ar)
{
    var obj = {};
    var temp = [];
    for(var i=0;i<ar.length;i++)
    {
        obj[ar[i]] = ar[i];
    }
    for (var item in obj)
    {
        temp.push(obj[item]);
    }
    return temp;
}

There's already 5 other answers, so I don't see a need to post a sorting function.

回答12:

// Another way, that does not rearrange the original Array 
// and spends a little less time handling duplicates.

function uniqueSort(arr, sortby){
    var A1= arr.slice();
    A1= typeof sortby== 'function'? A1.sort(sortby): A1.sort();

    var last= A1.shift(), next, A2= [last];
    while(A1.length){
        next= A1.shift();
        while(next=== last) next= A1.shift();
        if(next!=undefined){
            A2[A2.length]= next;
            last= next;
        }
    }
    return A2;
}
var myData= ['237','124','255','124','366','255','100','1000'];
uniqueSort(myData,function(a,b){return a-b})

// the ordinary sort() returns the same array as the number sort here,
// but some strings of digits do not sort so nicely numerical.

回答13:

function sort() only is only good if your number has same digit, example:

var myData = ["3","11","1","2"]

will return;

var myData = ["1","11","2","3"]

and here improvement for function from mrmonkington

myData.sort().sort(function(a,b){return a - b;}).filter(function(el,i,a){if(i==a.indexOf(el) & el.length>0)return 1;return 0;})

the above function will also delete empty array and you can checkout the demo below

http://jsbin.com/ahojip/2/edit

回答14:

Here is a simple one liner with O(N), assuming:

you are in a modern browser or in node.js
your array is strings

Then

> Object.keys([{}].concat(['a', 'b', 'a']).reduce((l,r) => l[r] = l ))
[ 'a', 'b' ]

Explanation

Original data set, assume its coming in from an external function

let data = ['a', 'b', 'a']

We want to prepend an object to the front of the array

let setup = [{}].concat(data)

Next we want to reduce the array into a single value.

In the previous step we prepended the object to the array so that we can stick all of the values onto that object, as keys, in this step. The end result is an object with a unique set of keys.

let reduced = setup.reduce((l,r) => l[r] = l)

We set l[r] = l because in javascript the value of the assignment expression is returned when an assignment statement is used as an expression.

Next we want to get the keys of that object

let keys = Object.keys(setup)

Which is the set of unique values of the original array

['a', 'b']

回答15:

O[N^2] solutions are bad, especially when the data is already sorted, there is no need to do two nested loops for removing duplicates. One loop and comparing to the previous element will work great.

A simple solution with O[] of sort() would suffice. My solution is:

function sortUnique(arr, compareFunction) {
  let sorted = arr.sort(compareFunction);
  let result = sorted.filter(compareFunction
    ? function(val, i, a) { return (i == 0 || compareFunction(a[i-1], val) != 0); }
    : function(val, i, a) { return (i == 0 || a[i-1] !== val); }
  );
  return result;
}

BTW, can do something like this to have Array.sortUnique() method:

Array.prototype.sortUnique = function(compareFunction) {return sortUnique(this, compareFunction); }

Furthermore, sort() could be modified to remove second element if compare() function returns 0 (equal elements), though that code can become messy (need to revise loop boundaries in the flight). Besides, I stay away from making my own sort() functions in interpreted languages, since it will most certainly degrade the performance. So this addition is for the ECMA 2019+ consideration.

回答16:

The fastest and simpleness way to do this task.

const N = Math.pow(8, 8)
let data = Array.from({length:  N}, () => Math.floor(Math.random() * N))
let newData = {}
let len = data.length

// the magic
while (len--) {
    newData[data[len]] = true
}

回答17:

I'm afraid you can't combine these functions, ie. you gotta do something like this:-

myData.unique().sort();

Alternatively you can implement a kind of sortedset (as available in other languages) - which carries both the notion of sorting and removing duplicates, as you require.

Hope this helps.

References:-

Array.sort

~~Array.unique~~

来源：https://stackoverflow.com/questions/4833651/javascript-array-sort-and-unique

标签

javascript

arrays

sorting

unique