1061

Here is my JavaScript code so far:

var linkElement = document.getElementById("BackButton");
var loc_array = document.location.href.split('/');
var newT = document.createTextNode(unescape(capWords(loc_array[loc_array.length-2]))); 
linkElement.appendChild(newT);

Currently it takes the second to last item in the array from the URL. However, I want to do a check for the last item in the array to be index.html and if so, grab the third to last item instead.

47 Answers 47

1146
if(loc_array[loc_array.length-1] == 'index.html'){
 //do something
}else{
 //something else.
}

In the event that your server serves the same file for "index.html" and "inDEX.htML" you can also use: .toLowerCase().

Though, you might want to consider doing this server-side if possible: it will be cleaner and work for people without JS.

957

Not sure if there's a drawback, but this seems quite concise:

arr.slice(-1)[0] 

or

arr.slice(-1).pop()

Both will return undefined if the array is empty.

  • 5
    using destructuring is nice too: const [lastItem] = arr.slice(-1) – diachedelic Mar 11 '19 at 6:30
245

Use Array.pop:

var lastItem = anArray.pop();

Important : This returns the last element and removes it from the array

  • 226
    This works but it removes the item from the array, which isn't what the OP asked for. – Paul Go Aug 16 '12 at 1:41
159

A shorter version of what @chaiguy posted:

Array.prototype.last = function() {
    return this[this.length - 1];
}

Reading the -1 index returns undefined already.

EDIT:

These days the preference seems to be using modules and to avoid touching the prototype or using a global namespace.

export function last(array) {
    return array[array.length - 1];
}
  • 8
    If it's not obvious how this is to be actually used, here's an example: var lastItem = [3,2,1,5].last();. The value of lastItem is 5. – user128216 Dec 5 '15 at 2:23
  • 6
    This answer is correct and also pretty clean BUT(!!!) A rule of thumb using Javascript is that Do NOT modify objects you Do NOT own. It's dangerous because of many reasons, such as 1. Other developers working in your team could get confused as this method is not standard 2.with any update in libraries or even using a lower or higher ECMAScript version it could easily get LOST! – Farzad YZ Oct 13 '16 at 16:21
  • 1
    For anyone wondering, this breaks Array.forEach(). I still agree that modifying prototypes is not the worst thing out there, but this one is bad. – Seph Reed Oct 25 '17 at 20:57
  • Imo there's not such a big problem with modifying Array.prototype, but you should use Object.assign(Array.prototype, 'last', { value: function () { … } });. Otherwise the property will be enumerable. – 黄雨伞 Sep 6 '18 at 9:39
131

Two options are:

var last = arr[arr.length - 1]

or

var last = arr.slice(-1)[0]

The former is faster, but the latter looks nicer

http://jsperf.com/slice-vs-length-1-arr

67

Here's how to get it with no effect on the original ARRAY

a = [1,2,5,6,1,874,98,"abc"];
a.length; //returns 8 elements

If you use pop(), it will modify your array

a.pop();  // will return "abc" AND REMOVES IT from the array 
a.length; // returns 7

But you can use this so it has no effect on the original array:

a.slice(-1).pop(); // will return "abc" won't do modify the array 
                   // because slice creates a new array object 
a.length;          // returns 8; no modification and you've got you last element 
  • 6
    you should do slice(-1).pop(), otherwise you copy the entire array (you really only need to copy the last element). – kritzikratzi May 29 '15 at 23:46
  • No need for that pop() then: just do arr.slice(-1)[0] – Christophe Marois Apr 12 '17 at 5:48
53

The "cleanest" ES6 way (IMO) would be:

const foo = [1,2,3,4];
const bar = [...foo].pop();

This avoids mutating foo, as .pop() would had, if we didn't used the spread operator.
That said, I like aswell the foo.slice(-1)[0] solution.

  • 1
    You can also use the array destructuring to make it more ES6 ;) stackoverflow.com/a/46485581/31671 – alex Oct 4 '17 at 7:52
  • 31
    Note that this solution performs a copy of the entire array. – Brendan Annable Jul 3 '18 at 1:56
  • 3
    It's just as unreadable as .slice(-1)[0] but it's slower. Might as well use .slice – fregante Sep 19 '18 at 4:30
  • 9
    Copying the whole array just for "clean" syntax seems silly to me. It doesnt even look that nice – Jemar Jones Dec 13 '18 at 15:55
40

I'd rather use array.pop() than indexes.

while(loc_array.pop()!= "index.html"){
}
var newT = document.createTextNode(unescape(capWords(loc_array[loc_array.length])));

this way you always get the element previous to index.html (providing your array has isolated index.html as one item). Note: You'll lose the last elements from the array, though.

37

I think if you only want get the element without remove, is more simple use this:

arr.slice(-1)[0]

Note: If the array is empty (eg. []) this will return undefined.

by the way... i didnt check performance, but i think is more simple and clean to write

  • Note that a) this does not return the last value but an array with the last element (arr.slice(-1)[0] === arr[arr.length - 1]), and b) it is slow because it copies arr into a new array (see stackoverflow.com/a/51763533/2733244 for performance measuring). – wortwart Mar 19 '19 at 14:20
30

Getting the last item of an array can be achieved by using the slice method with negative values.

You can read more about it here at the bottom.

var fileName = loc_array.slice(-1)[0];
if(fileName.toLowerCase() == "index.html")
{
  //your code...
}

Using pop() will change your array, which is not always a good idea.

27

You can use this pattern...

let [last] = arr.slice(-1);

While it reads rather nicely, keep in mind it creates a new array so it's less efficient than other solutions but it'll almost never be the performance bottleneck of your application.

26

const [lastItem] = array.slice(-1);

Array.prototype.slice with -1 can be used to create a new Array containing only the last item of the original Array, you can then use Destructuring Assignment to create a variable using the first item of that new Array.

const lotteryNumbers = [12, 16, 4, 33, 41, 22];
const [lastNumber] = lotteryNumbers.slice(-1);

console.log(lotteryNumbers.slice(-1));
// => [22]
console.log(lastNumber);
// => 22

21

If one wants to get the last element in one go, he/she may use Array#splice():

lastElement = document.location.href.split('/').splice(-1,1);

Here, there is no need to store the split elements in an array, and then get to the last element. If getting last element is the only objective, this should be used.

Note: This changes the original array by removing its last element. Think of splice(-1,1) as a pop() function that pops the last element.

  • 5
    Doesn't this return the last element in an array, instead of the last element itself? – user663031 Dec 29 '12 at 7:02
  • 2
    @tozazaburo isn't that the same thing? – Aram Kocharyan Dec 29 '12 at 15:34
  • 5
    this modifies the array. you could use slice(-1) instead of splice(-1) to leave the original array untouched. @AramKocharyan no its not, compare ["hi"] vs "hi". – kritzikratzi Jul 20 '13 at 0:29
21

This question has been around a long time, so I'm surprised that no one mentioned just putting the last element back on after a pop().

arr.pop() is exactly as efficient as arr[arr.length-1], and both are the same speed as arr.push().

Therefore, you can get away with:

---EDITED [check that thePop isn't undefined before pushing]---

let thePop = arr.pop()
thePop && arr.push(thePop)

---END EDIT---

Which can be reduced to this (same speed [EDIT: but unsafe!]):

arr.push(thePop = arr.pop())    //Unsafe if arr empty

This is twice as slow as arr[arr.length-1], but you don't have to stuff around with an index. That's worth gold on any day.

Of the solutions I've tried, and in multiples of the Execution Time Unit (ETU) of arr[arr.length-1]:

[Method]..............[ETUs 5 elems]...[ETU 1 million elems]

arr[arr.length - 1]      ------> 1              -----> 1

let myPop = arr.pop()
arr.push(myPop)          ------> 2              -----> 2

arr.slice(-1).pop()      ------> 36             -----> 924  

arr.slice(-1)[0]         ------> 36             -----> 924  

[...arr].pop()           ------> 120            -----> ~21,000,000 :)

The last three options, ESPECIALLY [...arr].pop(), get VERY much worse as the size of the array increases. On a machine without the memory limitations of my machine, [...arr].pop() probably maintains something like it's 120:1 ratio. Still, no one likes a resource hog.

  • 2
    If initial array can be empty, this approach will result incorrectly and [] will be turned into [undefined]. You need to protect backward push with explicit undefined check, something like myPop !== undefined && arr.push(myPop) – dhilt Feb 6 '19 at 8:36
20

For those not afraid to overload the Array prototype (and with enumeration masking you shouldn't be):

Object.defineProperty( Array.prototype, "getLast", {
    enumerable: false,
    configurable: false,
    writable: false,
    value: function() {
        return this[ this.length - 1 ];
    }
} );
19

jQuery solves this neatly:

> $([1,2,3]).get(-1)
3
> $([]).get(-1)
undefined
18

I generally use underscorejs, with it you can just do

if (_.last(loc_array) === 'index.html'){
  etc...
}

For me that is more semantic than loc_array.slice(-1)[0]

13

Here's more Javascript art if you came here looking for it

In the spirit of another answer that used reduceRight(), but shorter:

[3, 2, 1, 5].reduceRight(a => a);

It relies on the fact that, in case you don't provide an initial value, the very last element is selected as the initial one (check the docs here). Since the callback just keeps returning the initial value, the last element will be the one being returned in the end.

Beware that this should be considered Javascript art and is by no means the way I would recommend doing it, mostly because it runs in O(n) time, but also because it hurts readability.

And now for the serious answer

The best way I see (considering you want it more concise than array[array.length - 1]) is this:

const last = a => a[a.length - 1];

Then just use the function:

last([3, 2, 1, 5])

The function is actually useful in case you're dealing with an anonymous array like [3, 2, 1, 5] used above, otherwise you'd have to instantiate it twice, which would be inefficient and ugly:

[3, 2, 1, 5][[3, 2, 1, 5].length - 1]

Ugh.

For instance, here's a situation where you have an anonymous array and you'd have to define a variable, but you can use last() instead:

last("1.2.3".split("."));
12
const lastElement = myArray[myArray.length - 1];

This is the best options from performance point of view (~1000 times faster than arr.slice(-1)).

11

Multiple ways to find last value of an array in javascript

  • Without affecting original array

var arr = [1,2,3,4,5];

console.log(arr.slice(-1)[0])
console.log(arr[arr.length-1])
const [last] = [...arr].reverse();
console.log(last)
console.log(arr.reverse()[0])

  • Modifies original array

var arr = [1,2,3,4,5];

console.log(arr.pop())
arr.push(5)
console.log(...arr.splice(-1));

  • By creating own helper method

let arr = [1, 2, 3, 4, 5];

Object.defineProperty(arr, 'last', 
{ get: function(){
  return this[this.length-1];
 }
})

console.log(arr.last);

10

Personally I would upvote answer by kuporific / kritzikratzi. The array[array.length-1] method gets very ugly if you're working with nested arrays.

var array = [[1,2,3], [4,5,6], [7,8,9]]
​
array.slice(-1)[0]
​
//instead of 
​
array[array.length-1]
​
//Much easier to read with nested arrays
​
array.slice(-1)[0].slice(-1)[0]
​
//instead of
​
array[array.length-1][array[array.length-1].length-1]
9

You can add a last() function to the Array prototype.

Array.prototype.last = function () {
    return this[this.length - 1];
};
9

In ECMAScript proposal Stage 1 there is a suggestion to add an array property that will return the last element: proposal-array-last.

Syntax:

arr.lastItem // get last item
arr.lastItem = 'value' // set last item

arr.lastIndex // get last index

You can use polyfill.

Proposal author: Keith Cirkel(chai autor)

9

Just putting another option here.

loc_array.splice(-1)[0] === 'index.html'

I found the above approach more clean and short onliner. Please, free feel to try this one.

Note: It will modify the original array

Thanks @VinayPai for pointing this out.

8

You could add a new property getter to the prototype of Array so that it is accessible through all instances of Array.

Getters allow you to access the return value of a function just as if it were the value of a property. The return value of the function of course is the last value of the array (this[this.length - 1]).

Finally you wrap it in a condition that checks whether the last-property is still undefined (not defined by another script that might rely on it).

if(typeof Array.prototype.last === 'undefined') {
    Object.defineProperty(Array.prototype, 'last', {
        get : function() {
            return this[this.length - 1];
        }
    });
}

// Now you can access it like
[1, 2, 3].last;            // => 3
// or
var test = [50, 1000];
alert(test.last);          // Says '1000'

Does not work in IE ≤ 8.

  • Array.prototype.last is always undefined? The if isn't working under Chrome 36 – bryc Aug 23 '14 at 16:43
8

To prevent removing last item from origin array you could use

Array.from(myArray).pop()

Mostly supported of all browsers (ES6)

7

EDITED:

Recently I came up with one more solution which I now think is the best for my needs:

function w(anArray) {
  return {
    last() {
      return anArray [anArray.length - 1];
    };
  };
}

With the above definition in effect I can now say:

let last = w ([1,2,3]).last();
console.log(last) ; // -> 3

The name "w" stands for "wrapper". You can see how you could easily add more methods besides 'last()' to this wrapper.

I say "best for my needs", because this allows me to easily add other such "helper methods" to any JavaScript built-in type. What comes to mind are the car() and cdr() of Lisp for instance.

  • Why use a wrapper? If you have to call a w function just make the function return the last item. – fregante Sep 19 '18 at 4:32
  • w([1,2,3]).length is undefined. w([1,2,3])[1] is undefined. Does not seem like a wrapper to me. And there is a syntax error. You have an extra ';'. See stackoverflow.com/a/49725374/458321 for how to write a class wrapper (SutString class) and use reflection to populate that wrapper. Though, imho, wrappers are overkill. Better to use encapsulation, like you almost have. return { arr: anArray, last() { return anArray[anArray.length - 1]; } };. Also, w is way too generic. Call is ArrayW or something. – TamusJRoyce Aug 11 '19 at 22:40
7

Whatever you do don't just use reverse() !!!

A few answers mention reverse but don't mention the fact that reverse modifies the original array, and doesn't (as in some other language or frameworks) return a copy.

var animals = ['dog', 'cat'];

animals.reverse()[0]
"cat"

animals.reverse()[0]
"dog"

animals.reverse()[1]
"dog"

animals.reverse()[1]
"cat"

This can be the worst type of code to debug!

  • 4
    If you do want a reversed copy of your array, you can use the spread operator now. e.g. [...animals].reverse() – Josh R Apr 18 '19 at 5:24
  • you can simply copy the array before using reverse [1,3,4,5,"last"].slice().reverse()[0] – Madeo May 30 '19 at 4:01
5

I'll suggest to create helper function and reuse it every time, you'll need it. Lets make function more general to be able to get not only last item, but also second from the last and so on.

function last(arr, i) {
    var i = i || 0;
    return arr[arr.length - (1 + i)];
}

Usage is simple

var arr = [1,2,3,4,5];
last(arr);    //5
last(arr, 1); //4
last(arr, 9); //undefined

Now, lets solve the original issue

Grab second to last item form array. If the last item in the loc_array is "index.html" grab the third to last item instead.

Next line does the job

last(loc_array, last(loc_array) === 'index.html' ? 2 : 1);

So, you'll need to rewrite

var newT = document.createTextNode(unescape(capWords(loc_array[loc_array.length-2]))); 

in this way

var newT = document.createTextNode(unescape(capWords(last(loc_array, last(loc_array) === 'index.html' ? 2 : 1)))); 

or use additional variable to increase readability

var nodeName = last(loc_array, last(loc_array) === 'index.html' ? 2 : 1);
var newT = document.createTextNode(unescape(capWords(nodeName)));
5

I think the easiest and super inefficient way is:

var array = ['fenerbahce','arsenal','milan'];
var reversed_array = array.reverse(); //inverts array [milan,arsenal,fenerbahce]
console.log(reversed_array[0]) // result is "milan".
  • 41
    This solution takes O(n) more memory and takes O(n) time. It's really not the ideal solution. – hlin117 Jul 6 '15 at 18:09

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