In Javascript, I'm trying to take an initial array of number values and count the elements inside it. Ideally, the result would be two new arrays, the first specifying each unique element, and the second containing the number of times each element occurs. However, I'm open to suggestions on the format of the output.
For example, if the initial array was:
5, 5, 5, 2, 2, 2, 2, 2, 9, 4
Then two new arrays would be created. The first would contain the name of each unique element:
5, 2, 9, 4
The second would contain the number of times that element occurred in the initial array:
3, 5, 1, 1
Because the number 5 occurs three times in the initial array, the number 2 occurs five times and 9 and 4 both appear once.
I've searched a lot for a solution, but nothing seems to work, and everything I've tried myself has wound up being ridiculously complex. Any help would be appreciated!
Thanks :)
You can use an object to hold the results:
const arr = [5, 5, 5, 2, 2, 2, 2, 2, 9, 4];
const counts = {};
for (const num of arr) {
counts[num] = counts[num] ? counts[num] + 1 : 1;
}
console.log(counts);
console.log(counts[5], counts[2], counts[9], counts[4]);
So, now your counts object can tell you what the count is for a particular number:
console.log(counts[5]); // logs '3'
If you want to get an array of members, just use the keys() functions
keys(counts); // returns ["5", "2", "9", "4"]
const occurrences = [5, 5, 5, 2, 2, 2, 2, 2, 9, 4].reduce(function (acc, curr) {
return acc[curr] ? ++acc[curr] : acc[curr] = 1, acc
}, {});
console.log(occurrences) // => {2: 5, 4: 1, 5: 3, 9: 1}
const arr = [2, 2, 5, 2, 2, 2, 4, 5, 5, 9];
function foo (array) {
let a = [],
b = [],
arr = [...array], // clone array so we don't change the original when using .sort()
prev;
arr.sort();
for (let element of arr) {
if (element !== prev) {
a.push(element);
b.push(1);
}
else ++b[b.length - 1];
prev = element;
}
return [a, b];
}
const result = foo(arr);
console.log('[' + result[0] + ']','[' + result[1] + ']')
console.log(arr)
One line ES6 solution. So many answers using object as a map but I can't see anyone using an actual Map
const map = arr.reduce((acc, e) => acc.set(e, (acc.get(e) || 0) + 1), new Map());
Use map.keys() to get unique elements
Use map.values() to get the occurrences
Use map.entries() to get the pairs [element, frequency]
var arr = [5, 5, 5, 2, 2, 2, 2, 2, 9, 4]
const map = arr.reduce((acc, e) => acc.set(e, (acc.get(e) || 0) + 1), new Map());
console.info([...map.keys()])
console.info([...map.values()])
console.info([...map.entries()])
If using underscore or lodash, this is the simplest thing to do:
_.countBy(array);
Such that:
_.countBy([5, 5, 5, 2, 2, 2, 2, 2, 9, 4])
=> Object {2: 5, 4: 1, 5: 3, 9: 1}
As pointed out by others, you can then execute the _.keys() and _.values() functions on the result to get just the unique numbers, and their occurrences, respectively. But in my experience, the original object is much easier to deal with.
Don't use two arrays for the result, use an object:
a = [5, 5, 5, 2, 2, 2, 2, 2, 9, 4];
result = { };
for(var i = 0; i < a.length; ++i) {
if(!result[a[i]])
result[a[i]] = 0;
++result[a[i]];
}
Then result will look like:
{
2: 5,
4: 1,
5: 3,
9: 1
}
How about an ECMAScript2015 option.
const a = [5, 5, 5, 2, 2, 2, 2, 2, 9, 4];
const aCount = new Map([...new Set(a)].map(
x => [x, a.filter(y => y === x).length]
));
aCount.get(5) // 3
aCount.get(2) // 5
aCount.get(9) // 1
aCount.get(4) // 1
This example passes the input array to the Set constructor creating a collection of unique values. The spread syntax then expands these values into a new array so we can call map and translate this into a two-dimensional array of [value, count] pairs - i.e. the following structure:
Array [
[5, 3],
[2, 5],
[9, 1],
[4, 1]
]
The new array is then passed to the Map constructor resulting in an iterable object:
Map {
5 => 3,
2 => 5,
9 => 1,
4 => 1
}
The great thing about a Map object is that it preserves data-types - that is to say aCount.get(5) will return 3 but aCount.get("5") will return undefined. It also allows for any value / type to act as a key meaning this solution will also work with an array of objects.
function frequencies(/* {Array} */ a){
return new Map([...new Set(a)].map(
x => [x, a.filter(y => y === x).length]
));
}
let foo = { value: 'foo' },
bar = { value: 'bar' },
baz = { value: 'baz' };
let aNumbers = [5, 5, 5, 2, 2, 2, 2, 2, 9, 4],
aObjects = [foo, bar, foo, foo, baz, bar];
frequencies(aNumbers).forEach((val, key) => console.log(key + ': ' + val));
frequencies(aObjects).forEach((val, key) => console.log(key.value + ': ' + val));
I think this is the simplest way how to count occurrences with same value in array.
var a = [true, false, false, false];
a.filter(function(value){
return value === false;
}).length
const data = [5, 5, 5, 2, 2, 2, 2, 2, 9, 4]
function count(arr) {
return arr.reduce((prev, curr) => (prev[curr] = ++prev[curr] || 1, prev), {})
}
console.log(count(data))
2021's version
The more elegant way is using Logical nullish assignment (x ??= y) combined with Array#reduce() with O(n) time complexity.
The main idea is still using Array#reduce() to aggregate with output as object to get the highest performance (both time and space complexity) in terms of searching & construct bunches of intermediate arrays like other answers.
const arr = [2, 2, 2, 2, 2, 4, 5, 5, 5, 9];
const result = arr.reduce((acc, curr) => {
acc[curr] ??= {[curr]: 0};
acc[curr][curr]++;
return acc;
}, {});
console.log(Object.values(result));
Clean & Refactor code
Using Comma operator (,) syntax.
The comma operator (,) evaluates each of its operands (from left to
right) and returns the value of the last operand.
const arr = [2, 2, 2, 2, 2, 4, 5, 5, 5, 9];
const result = arr.reduce((acc, curr) => (acc[curr] = (acc[curr] || 0) + 1, acc), {});
console.log(result);
Output
{
"2": 5,
"4": 1,
"5": 3,
"9": 1
}
If you favour a single liner.
arr.reduce(function(countMap, word) {countMap[word] = ++countMap[word] || 1;return countMap}, {});
Edit (6/12/2015):
The Explanation from the inside out.
countMap is a map that maps a word with its frequency, which we can see the anonymous function. What reduce does is apply the function with arguments as all the array elements and countMap being passed as the return value of the last function call. The last parameter ({}) is the default value of countMap for the first function call.
ES6 version should be much simplifier (another one line solution)
let arr = [5, 5, 5, 2, 2, 2, 2, 2, 9, 4];
let acc = arr.reduce((acc, val) => acc.set(val, 1 + (acc.get(val) || 0)), new Map());
console.log(acc);
// output: Map { 5 => 3, 2 => 5, 9 => 1, 4 => 1 }
A Map instead of plain Object helping us to distinguish different type of elements, or else all counting are base on strings
Edit 2020: this is a pretty old answer (nine years). Extending the native prototype will always generate discussion. Although I think the programmer is free to choose her own programming style, here's a (more modern) approach to the problem without extending Array.prototype:
{
// create array with some pseudo random values (1 - 5)
const arr = Array.from({length: 100})
.map( () => Math.floor(1 + Math.random() * 5) );
// frequencies using a reducer
const arrFrequencies = arr.reduce((acc, value) =>
({ ...acc, [value]: acc[value] + 1 || 1}), {} )
console.log(arrFrequencies);
console.log(`Value 4 occurs ${arrFrequencies[4]} times in arrFrequencies`);
// bonus: restore Array from frequencies
const arrRestored = Object.entries(arrFrequencies)
.reduce( (acc, [key, value]) => acc.concat(Array(value).fill(+key)), [] );
console.log(arrRestored.join());
}
.as-console-wrapper { top: 0; max-height: 100% !important; }
The old (2011) answer: you could extend Array.prototype, like this:
{
Array.prototype.frequencies = function() {
var l = this.length,
result = {
all: []
};
while (l--) {
result[this[l]] = result[this[l]] ? ++result[this[l]] : 1;
}
// all pairs (label, frequencies) to an array of arrays(2)
for (var l in result) {
if (result.hasOwnProperty(l) && l !== 'all') {
result.all.push([l, result[l]]);
}
}
return result;
};
var freqs = [5, 5, 5, 2, 2, 2, 2, 2, 9, 4].frequencies();
console.log(`freqs[2]: ${freqs[2]}`); //=> 5
// or
var freqs = '1,1,2,one,one,2,2,22,three,four,five,three,three,five'
.split(',')
.frequencies();
console.log(`freqs.three: ${freqs.three}`); //=> 3
// Alternatively you can utilize Array.map:
Array.prototype.frequencies = function() {
var freqs = {
sum: 0
};
this.map(function(a) {
if (!(a in this)) {
this[a] = 1;
} else {
this[a] += 1;
}
this.sum += 1;
return a;
}, freqs);
return freqs;
}
}
.as-console-wrapper { top: 0; max-height: 100% !important; }
Based on answer of #adamse and #pmandell (which I upvote), in ES6 you can do it in one line:
2017 edit: I use || to reduce code size and make it more readable.
var a=[7,1,7,2,2,7,3,3,3,7,,7,7,7];
alert(JSON.stringify(
a.reduce((r,k)=>{r[k]=1+r[k]||1;return r},{})
));
It can be used to count characters:
var s="ABRACADABRA";
alert(JSON.stringify(
s.split('').reduce((a, c)=>{a[c]++?0:a[c]=1;return a},{})
));
A shorter version using reduce and tilde (~) operator.
const data = [2, 2, 2, 2, 2, 4, 5, 5, 5, 9];
function freq(nums) {
return nums.reduce((acc, curr) => {
acc[curr] = -~acc[curr];
return acc;
}, {});
}
console.log(freq(data));
If you are using underscore you can go the functional route
a = ['foo', 'foo', 'bar'];
var results = _.reduce(a,function(counts,key){ counts[key]++; return counts },
_.object( _.map( _.uniq(a), function(key) { return [key, 0] })))
so your first array is
_.keys(results)
and the second array is
_.values(results)
most of this will default to native javascript functions if they are available
demo : http://jsfiddle.net/dAaUU/
So here's how I'd do it with some of the newest javascript features:
First, reduce the array to a Map of the counts:
let countMap = array.reduce(
(map, value) => {map.set(value, (map.get(value) || 0) + 1); return map},
new Map()
)
By using a Map, your starting array can contain any type of object, and the counts will be correct. Without a Map, some types of objects will give you strange counts.
See the Map docs for more info on the differences.
This could also be done with an object if all your values are symbols, numbers, or strings:
let countObject = array.reduce(
(map, value) => { map[value] = (map[value] || 0) + 1; return map },
{}
)
Or slightly fancier in a functional way without mutation, using destructuring and object spread syntax:
let countObject = array.reduce(
(value, {[value]: count = 0, ...rest}) => ({ [value]: count + 1, ...rest }),
{}
)
At this point, you can use the Map or object for your counts (and the map is directly iterable, unlike an object), or convert it to two arrays.
For the Map:
countMap.forEach((count, value) => console.log(`value: ${value}, count: ${count}`)
let values = countMap.keys()
let counts = countMap.values()
Or for the object:
Object
.entries(countObject) // convert to array of [key, valueAtKey] pairs
.forEach(([value, count]) => console.log(`value: ${value}, count: ${count}`)
let values = Object.keys(countObject)
let counts = Object.values(countObject)
var array = [5, 5, 5, 2, 2, 2, 2, 2, 9, 4];
function countDuplicates(obj, num){
obj[num] = (++obj[num] || 1);
return obj;
}
var answer = array.reduce(countDuplicates, {});
// answer => {2:5, 4:1, 5:3, 9:1};
If you still want two arrays, then you could use answer like this...
var uniqueNums = Object.keys(answer);
// uniqueNums => ["2", "4", "5", "9"];
var countOfNums = Object.keys(answer).map(key => answer[key]);
// countOfNums => [5, 1, 3, 1];
Or if you want uniqueNums to be numbers
var uniqueNums = Object.keys(answer).map(key => +key);
// uniqueNums => [2, 4, 5, 9];
Here's just something light and easy for the eyes...
function count(a,i){
var result = 0;
for(var o in a)
if(a[o] == i)
result++;
return result;
}
Edit: And since you want all the occurences...
function count(a){
var result = {};
for(var i in a){
if(result[a[i]] == undefined) result[a[i]] = 0;
result[a[i]]++;
}
return result;
}
Solution using a map with O(n) time complexity.
var arr = [2, 2, 2, 2, 2, 4, 5, 5, 5, 9];
const countOccurrences = (arr) => {
const map = {};
for ( var i = 0; i < arr.length; i++ ) {
map[arr[i]] = ~~map[arr[i]] + 1;
}
return map;
}
Demo: http://jsfiddle.net/simevidas/bnACW/
There is a much better and easy way that we can do this using ramda.js.
Code sample here
const ary = [5, 5, 5, 2, 2, 2, 2, 2, 9, 4];
R.countBy(r=> r)(ary)
countBy documentation is at documentation
I know this question is old but I realized there are too few solutions where you get the count array as asked with a minimal code so here is mine
// The initial array we want to count occurences
var initial = [5, 5, 5, 2, 2, 2, 2, 2, 9, 4];
// The count array asked for
var count = Array.from(new Set(initial)).map(val => initial.filter(v => v === val).length);
// Outputs [ 3, 5, 1, 1 ]
Beside you can get the set from that initial array with
var set = Array.from(new Set(initial));
//set = [5, 2, 9, 4]
My solution with ramda:
const testArray = [5, 5, 5, 2, 2, 2, 2, 2, 9, 4]
const counfFrequency = R.compose(
R.map(R.length),
R.groupBy(R.identity),
)
counfFrequency(testArray)
Link to REPL.
Using MAP you can have 2 arrays in the output: One containing the occurrences & the other one is containing the number of occurrences.
const dataset = [2,2,4,2,6,4,7,8,5,6,7,10,10,10,15];
let values = [];
let keys = [];
var mapWithOccurences = dataset.reduce((a,c) => {
if(a.has(c)) a.set(c,a.get(c)+1);
else a.set(c,1);
return a;
}, new Map())
.forEach((value, key, map) => {
keys.push(key);
values.push(value);
});
console.log(keys)
console.log(values)
This question is more than 8 years old and many, many answers do not really take ES6 and its numerous advantages into account.
Perhaps is even more important to think about the consequences of our code for garbage collection/memory management whenever we create additional arrays, make double or triple copies of arrays or even convert arrays into objects. These are trivial observations for small applications but if scale is a long term objective then think about these, thoroughly.
If you just need a "counter" for specific data types and the starting point is an array (I assume you want therefore an ordered list and take advantage of the many properties and methods arrays offer), you can just simply iterate through array1 and populate array2 with the values and number of occurrences for these values found in array1.
As simple as that.
Example of simple class SimpleCounter (ES6) for Object Oriented Programming and Object Oriented Design
class SimpleCounter {
constructor(rawList){ // input array type
this.rawList = rawList;
this.finalList = [];
}
mapValues(){ // returns a new array
this.rawList.forEach(value => {
this.finalList[value] ? this.finalList[value]++ : this.finalList[value] = 1;
});
this.rawList = null; // remove array1 for garbage collection
return this.finalList;
}
}
module.exports = SimpleCounter;
Using Lodash
const values = [5, 5, 5, 2, 2, 2, 2, 2, 9, 4];
const frequency = _.map(_.groupBy(values), val => ({ value: val[0], frequency: val.length }));
console.log(frequency);
<script src="https://cdnjs.cloudflare.com/ajax/libs/lodash.js/4.17.15/lodash.min.js"></script>
To return an array which is then sortable:
let array = [5, 5, 5, 2, 2, 2, 2, 2, 9, 4]
let reducedArray = array.reduce( (acc, curr, _, arr) => {
if (acc.length == 0) acc.push({item: curr, count: 1})
else if (acc.findIndex(f => f.item === curr ) === -1) acc.push({item: curr, count: 1})
else ++acc[acc.findIndex(f => f.item === curr)].count
return acc
}, []);
console.log(reducedArray.sort((a,b) => b.count - a.count ))
/*
Output:
[
{
"item": 2,
"count": 5
},
{
"item": 5,
"count": 3
},
{
"item": 9,
"count": 1
},
{
"item": 4,
"count": 1
}
]
*/
Check out the code below.
<html>
<head>
<script>
// array with values
var ar = [5, 5, 5, 2, 2, 2, 2, 2, 9, 4];
var Unique = []; // we'll store a list of unique values in here
var Counts = []; // we'll store the number of occurances in here
for(var i in ar)
{
var Index = ar[i];
Unique[Index] = ar[i];
if(typeof(Counts[Index])=='undefined')
Counts[Index]=1;
else
Counts[Index]++;
}
// remove empty items
Unique = Unique.filter(function(){ return true});
Counts = Counts.filter(function(){ return true});
alert(ar.join(','));
alert(Unique.join(','));
alert(Counts.join(','));
var a=[];
for(var i=0; i<Unique.length; i++)
{
a.push(Unique[i] + ':' + Counts[i] + 'x');
}
alert(a.join(', '));
</script>
</head>
<body>
</body>
</html>
function countOcurrences(arr){
return arr.reduce((aggregator, value, index, array) => {
if(!aggregator[value]){
return aggregator = {...aggregator, [value]: 1};
}else{
return aggregator = {...aggregator, [value]:++aggregator[value]};
}
}, {})
}
You can simplify this a bit by extending your arrays with a count function. It works similar to Ruby’s Array#count, if you’re familiar with it.
Array.prototype.count = function(obj){
var count = this.length;
if(typeof(obj) !== "undefined"){
var array = this.slice(0), count = 0; // clone array and reset count
for(i = 0; i < array.length; i++){
if(array[i] == obj){ count++ }
}
}
return count;
}
Usage:
let array = ['a', 'b', 'd', 'a', 'c'];
array.count('a'); // => 2
array.count('b'); // => 1
array.count('e'); // => 0
array.count(); // => 5
Gist
Edit
You can then get your first array, with each occurred item, using Array#filter:
let occurred = [];
array.filter(function(item) {
if (!occurred.includes(item)) {
occurred.push(item);
return true;
}
}); // => ["a", "b", "d", "c"]
And your second array, with the number of occurrences, using Array#count into Array#map:
occurred.map(array.count.bind(array)); // => [2, 1, 1, 1]
Alternatively, if order is irrelevant, you can just return it as a key-value pair:
let occurrences = {}
occurred.forEach(function(item) { occurrences[item] = array.count(item) });
occurences; // => {2: 5, 4: 1, 5: 3, 9: 1}
Related
I'm searching for a nice approach for the following task: I have a game with rounds. In each round we have a number between 1-10.
This is how I'm doing it so far but I'm stuck.
gameValues.forEach(function(x) { counts[x] = (counts[x] || 0)+1; });
I want to count the double entrees in my array but I only want to watch out for the last 5 rounds.
Round 6 ( We already have 5 values ):
gameValues = [9,9,9,2,1]
result: 9:3, 2:1, 1:1,
Round 7 ( Now we have 6 values but I only want to count the first 5):
gameValues = [3,9,9,9,2,1]
result: 3:1, 9:3, 2:1,
I can't manage to only count the last 5 rounds..
Use gameValues.slice(-5) to get the last 5 values of the array, then do the same count operation :
gameValues = [3,9,9,9,2,1]
counts = {}
gameValues.slice(-5).forEach(function(x) { counts[x] = (counts[x] || 0)+1; });
console.log(counts);
// { '1': 1, '2': 1, '9': 3 }
You might want to slice the array before looping through it.
gameValues.slice(-5).forEach(function(x) { counts[x] = (counts[x] || 0)+1; });
const gameValues = [3,9,9,9,2,1]
const uniq = gameValues.splice(-5)
.map((number) => {
return {
count: 1,
number: number
}})
.reduce((a, b) => {
a[b.number] = (a[b.number] || 0) + b.count
return a
}, {})
console.log(uniq);
You can get the last 5 numbers in an array using splice and then using reduce you can get the counts of each number.
The splice() method changes the contents of an array by removing or
replacing existing elements and/or adding new elements in place. To
access part of an array without modifying it, see slice().
function countLastFive(arr) {
return arr.splice(-5).reduce((acc, curr) => {
acc[curr] = acc[curr] ? ++acc[curr] : 1;
return acc;
}, {});
}
console.log(countLastFive([9, 9, 9, 2, 1, 3, 1]));
console.log(countLastFive([9, 9, 9, 2, 1]));
console.log(countLastFive([3, 9, 9, 9, 2, 6, 4, 3, 2, 1]));
Just be sure that the slice changes the original array. So it would be better to clone the array so that It won't change the original array
function countLastFive(arr) {
return arr.splice(-5).reduce((acc, curr) => {
acc[curr] = acc[curr] ? ++acc[curr] : 1;
return acc;
}, {});
}
const arr1 = [9, 9, 1, 9, 2, 1];
const arr2 = [9, 9, 1, 9, 2, 1];
console.log("Before -> arr1 => ", arr1);
console.log(countLastFive(arr1));
console.log("After -> arr1 => ", arr1);
console.log("Before -> arr2 => ", arr2);
console.log(countLastFive([...arr2]));
console.log("After -> arr2 => ", arr2);
How can I check if two integers arrays are permutations? I need to do it in JavaScript.
For example, I have two arrays:
a = [1, 2, 3, 4, 5]
and
b = [2, 3, 5, 1, 4]
I need the program to return true.
You could use a Map to store the occurrence count and then decrease that count whenever you find a mapping occurrence in the other array:
function isPermutation(a, b) {
if (a.length !== b.length) return false;
let map = new Map(a.map(x => [x, { count: 0 }]));
a.forEach(x => map.get(x).count++);
return b.every(x => {
let match = map.get(x);
return match && match.count--;
});
}
let a =[1,2,3,4,5,1];
let b = [2,3,1,5,1,4];
console.log(isPermutation(a, b));
The lazy solution:
let a = [1,2,3,4,5],
b = [2,3,5,1,4];
let res = JSON.stringify(a.sort()) === JSON.stringify(b.sort())
console.log(res)
The more efficient solution:
function perm (a,b) {
let map = a.reduce((acc,c) => {acc[c] = (acc[c] || 0) + 1; return acc},{})
for (el of b) {
if (!map[el] || map[el] == 0) {
return false;
} else {
map[el]--;
}
}
for (k in map) {
if (map[k] != 0) {
return false;
}
}
return true;
}
console.log(perm([1, 2, 3, 4, 5],[2, 3, 5, 1, 4])) // => true
console.log(perm([1, 2, 3, 4, 5, 5, 5],[2, 3, 5, 1, 4])) // => false
console.log(perm([1,1,2],[1,2,2])) // => false
console.log(perm([1,2,3,4,5,1],[2,3,1,5,1,4])) // => true
This solution is in hindsight similar to the one of #trincot but I guess slightly different enough to keep it posted.
The idea is the following: We create a map from the first array via reduce where the value is a count of occurrences. We then take the other array and subtract occurrences from the respective keys of map. If the key doesn't exist is or the value is already zero, we know this is not a permutation. Afterwords we loop the map, checking whether all values are exactly zero.
var a = [1, 2, 3, 4, 5];
var b = [2, 3, 5, 1, 4];
return a.filter(x => !b.includes(x)).length === 0
This will return true if all of the values in a exists in b, regardless of position.
This worked:
var a =[1,2,3,4,5,1];
var b = [2,3,1,5,1,4];
console.log(a.sort().toString() === b.sort().toString())
I have an array like this one:
let array = [14, 42, 1, 3]
And I would like to get the arrays number mapped to this:
[1, 0, 3, 2]
Here is the reason:
1: because 14 is the second biggest number
0: because 42 is the biggest number
3: ...
What I have tried so far:
let sort = (array) => {
let result = []
let x = array.slice(0).sort((a, b) => b - a)
for (let elem of x) {
result.push(array.indexOf(elem))
}
console.log(result)
}
// Working
sort([14, 42, 1, 3]) // [1, 0, 3, 2]
// Not working, includes the index "0" two times
sort([14, 42, 14, 3]) // [1, 0, 0, 3]
// Expected: [1, 0, 2, 3]
You could take the indices and sort them by taking the value from the given array.
const sort = array => [...array.keys()].sort((a, b) => array[b] - array[a]);
console.log(sort([14, 42, 1, 3]));
console.log(sort([14, 42, 14, 3]));
It's because indexOf stops when it finds it's first result.
You could try to change the value to null once it's located the first time, or compare value to values already in the result and ignore those values.
let sort = (array) => {
let result = []
let x = array.slice(0).sort((a, b) => b - a)
for (let elem of x) {
result.push(array.indexOf(elem))
array[array.indexOf(elem)] = null;
}
console.log(result)
}
let sort = (arr) => {
let arr2 = arr.slice().sort((a, b) => b - a);
return arr.map((val) => {
return arr2.indexOf(val);
})
}
console.log(sort([14, 42, 1, 3]));
You can use a tracker object, map value and indexes as key/value pair and when looping though the array take the first index from respective key and shift it as well
let sort = (array) => {
let result = []
let x = array.slice(0).sort((a, b) => b - a)
let tracker = x.reduce((op,inp,i)=>{
op[inp] = op[inp] || []
op[inp].push(i)
return op
},{})
for (let elem of array) {
let val = tracker[elem][0]
tracker[elem].shift()
result.push(val)
}
console.log(result)
}
sort([14, 42, 1, 3]) // working
sort([14, 42, 14, 3]) // includes the index "0" two times
(() => {
function getBiggestOrder (nums) {
const lookup = {}
const result = nums.slice(0).sort((a, b) => b - a).map((num, i) => {
lookup[num] = i
return num
})
return nums.map(n => lookup[n])
}
const op = getBiggestOrder([14, 42, 1, 3])
console.log(op)
return op
})()
You are basically numbering the numbers from biggest to smallest. sort them in a duplicate array from biggest to smallest. And replace the original array numbers with their index in the duplicate array.
Original = [14, 42, 1, 3]
Duplicate = [42, 14, 3, 1]
Duplicate indexes are [0, 1, 2, 3]
so find 42 in the first array and replace it with the index of the 42 in the duplicate array, etc.
I've the following data:
var array = [2, 4, 12, 4, 3, 2, 2, 5, 0];
I want to sum 2 + 4 + 12 + 3 + 5 and want to show the result using JavaScript without any library, by simply using a for loop and if/else statements.
You can make use of ES6 Sets and .reduce() method of arrays:
let array = [2, 4, 12, 4, 3, 2, 2, 5, 0];
let sum = [...new Set(array)].reduce((a, c) => (a + c), 0);
console.log(sum);
you can try following using Set and Array.reduce
var array = [2,4,12,4,3,2,2,5,0];
let set = new Set();
let sum = array.reduce((a,c) => {
if(!set.has(c)) {set.add(c); a += c; }
return a;
}, 0);
console.log(sum);
const distinct = (array) =>
array ? array.reduce((arr, item) => (arr.find(i => i === item) ? [...arr] : [...arr, item]), []) : array;
const sum = distinct([2,4,12,4,3,2,2,5,0]).reduce((a,b) => a + b);
console.log(sum);
Here is a simple solution using a loop:
const array = [2, 4, 12, 4, 3, 2, 2, 5, 0];
function sumNotCommon(array) {
const sortedArray = array.slice().sort();
let sum = 0;
for (let i = 0; i < sortedArray.length; ++i) {
if (i === 0 || sortedArray[i] !== sortedArray[i-1])
sum += sortedArray[i];
}
return sum;
}
console.log(sumNotCommon(array));
First it sorts the array and then iterates through it ignoring equal numbers that follow each other.
Say I have an array like this: [1, 1, 2, 2, 3]
I want to get the duplicates which are in this case: [1, 2]
Does lodash support this? I want to do it in the shortest way possible.
You can use this:
_.filter(arr, (val, i, iteratee) => _.includes(iteratee, val, i + 1))
Note that if a number appears more than two times in your array you can always use _.uniq.
Another way is to group by unique items, and return the group keys that have more than 1 item
_([1, 1, 2, 2, 3]).groupBy().pickBy(x => x.length > 1).keys().value()
var array = [1, 1, 2, 2, 3];
var groupped = _.groupBy(array, function (n) {return n});
var result = _.uniq(_.flatten(_.filter(groupped, function (n) {return n.length > 1})));
This works for unsorted arrays as well.
How about using countBy() followed by reduce()?
const items = [1,1,2,3,3,3,4,5,6,7,7];
const dup = _(items)
.countBy()
.reduce((acc, val, key) => val > 1 ? acc.concat(key) : acc, [])
.map(_.toNumber)
console.log(dup);
// [1, 3, 7]
http://jsbin.com/panama/edit?js,console
Another way, but using filters and ecmaScript 2015 (ES6)
var array = [1, 1, 2, 2, 3];
_.filter(array, v =>
_.filter(array, v1 => v1 === v).length > 1);
//→ [1, 1, 2, 2]
Here is another concise solution:
let data = [1, 1, 2, 2, 3]
let result = _.uniq(_.filter(data, (v, i, a) => a.indexOf(v) !== i))
console.log(result)
<script src="https://cdnjs.cloudflare.com/ajax/libs/lodash.js/4.17.11/lodash.min.js"></script>
_.uniq takes care of the dubs which _.filter comes back with.
Same with ES6 and Set:
let data = [1, 1, 2, 2, 3]
let result = new Set(data.filter((v, i, a) => a.indexOf(v) !== i))
console.log(Array.from(result))
Pure JS solution:
export function hasDuplicates(array) {
return new Set(array).size !== array.length
}
For an array of objects:
/**
* Detects whether an array has duplicated objects.
*
* #param array
* #param key
*/
export const hasDuplicatedObjects = <T>(array: T[], key: keyof T): boolean => {
const _array = array.map((element: T) => element[key]);
return new Set(_array).size !== _array.length;
};
Well you can use this piece of code which is much faster as it has a complexity of O(n) and this doesn't use Lodash.
[1, 1, 2, 2, 3]
.reduce((agg,col) => {
agg.filter[col] = agg.filter[col]? agg.dup.push(col): 2;
return agg
},
{filter:{},dup:[]})
.dup;
//result:[1,2]
here is mine, es6-like, deps-free, answer. with filter instead of reducer
// this checks if elements of one list contains elements of second list
// example code
[0,1,2,3,8,9].filter(item => [3,4,5,6,7].indexOf(item) > -1)
// function
const contains = (listA, listB) => listA.filter(item => listB.indexOf(item) > -1)
contains([0,1,2,3], [1,2,3,4]) // => [1, 2, 3]
// only for bool
const hasDuplicates = (listA, listB) => !!contains(listA, listB).length
edit:
hmm my bad is: I've read q as general question but this is strictly for lodash, however my point is - you don't need lodash in here :)
You can make use of a counter object. This will have each number as key and total number of occurrence as their value. You can use filter to get the numbers when the counter for the number becomes 2
const array = [1, 1, 2, 2, 3],
counter = {};
const duplicates = array.filter(n => (counter[n] = counter[n] + 1 || 1) === 2)
console.log(duplicates)
Hope below solution helps you and it will be useful in all conditions
hasDataExist(listObj, key, value): boolean {
return _.find(listObj, function(o) { return _.get(o, key) == value }) != undefined;
}
let duplcateIndex = this.service.hasDataExist(this.list, 'xyz', value);
No need to use lodash, you can use following code:
function getDuplicates(array, key) {
return array.filter(e1=>{
if(array.filter(e2=>{
return e1[key] === e2[key];
}).length > 1) {
return e1;
}
})
}
Why don't use just this?
_.uniq([4, 1, 5, 1, 2, 4, 2, 3, 4]) // [4, 1, 5, 2, 3]