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I am coding chess and am wondering how I would check if an array in another array contains x.
It would work something like this:
if(array contains array containing x)
You can use flat() to monodimensionalize the array and includes() to check.
let x = [0, 1, 2, [3, 4]];
if(x.flat(Infinity).includes(3)) {
console.log("yes");
}
EDIT: Using Infinity as a parameter, as said in the comments, for multi-level arrays.
If I understood your question you can do something like this
const contains = (data, x) => data.some(d => d.includes(x))
const data1 = [
[1],
[2, 3, 4],
[5]
]
console.log(contains(data1, 1), contains(data1,2), contains(data1, 7))
if you want a recursive approach you can do something like this
const contains = (data, x) => {
if(typeof data !== 'object'){
return data === x
}
return data.some(d => contains(d, x))
}
const data1 = [
[
[1]
],
[2],
[[3, [4]]]
]
console.log(contains(data1, 1), contains(data1, 2),contains(data1, 3),contains(data1, 5))
Given the array const vals = [1, 2, 3, 4, 5, 6, 7, 8, 9];
How can I filter and return a new array of indexed key/value pair objects for example:
const vals = [1, 2, 3, 4, 5, 6, 7, 8, 9];
// My fail attempt using filter()
let obj = vals.filter((n, i) => {
return new Object({ i: n % 2 });
});
return obj;
// expected result [{1:2}, {3:4}, {5:6}, {7:8}]
I need to keep the index values as I will filter 2 different arrays with different criteria and associated them later.
Update
Second attempt using map() as suggested in the comments
let obj = vals.map((n, i) => {
if (n % 2) {
return { [i]: n };
}
});
Gives me the following:
[{0:1}, undefined, {2:3}, undefined, {4:5}, undefined, {6:7}, undefined, {8:9}]
To get a list of { key: value } objects where key is the index, and the values are only even without the odd values, you can do this:
const vals = [1, 2, 3, 4, 5, 6, 7, 8, 9];
const result = vals.map((v, i) => [i, v])
.filter(([_, v]) => v % 2 == 0)
.map(([i, v]) => ({ [i]: v }));
console.log(result);
With the first map, you make a list of [[0, 1], ...] pairs to save the index for later.
Then you filter your index-value pairs so only even values remain.
Then you pack those pairs into an object in another map.
This can be done more efficiently with a single iteration using reduce:
const vals = [1, 2, 3, 4, 5, 6, 7, 8, 9];
const result = vals.reduce((a, v, i) => {
if (v % 2 == 0) {
a.push({ [i]: v });
}
return a;
}, []);
console.log(result);
Youn can try simple for loop or the reduce function
let arr = [];
for(let i = 0; i<vals.length-1;i += 2)
{
let obj={};
obj[vals[i]]=vals[i+1];
arr.push(obj);
};
how can i flatten an array without using flat(). by 1 level?
so far i have this
function flatten(array) {
let flattened = [];
for (let i = 0; i < array.length; i++) {
const current = array[i];
for (let j = 0; i < current.length; j++) {
flattened.push(current[j])
}
}
return flattened
}
console.log(flatten([['foo', 'bar'], ['baz', 'qux']]));
// -> ["foo", "bar", "baz", "qux"]
flatten([[1], [2], 3, 4, [5]]);
// -> [1, 2, 3, 4, 5]
flatten([false, [true, [false]], [true]]);
// -> [false, true, [false], true]
flatten([]);
// -> []
and its crashing my memory
I hope this helps
var twoDimension = [[1], [2], 3, 4, [5]];
var plano = twoDimension.reduce((acc, el) => acc.concat(el), []);
console.log(plano);
You could use Array.reduce and the spread syntax:
function flatten(array) {
return array.reduce(
(accumulator, item) => {
// if `item` is an `array`,
// use the `spread syntax` to
// append items of the array into
// the `accumulator` array
if (Array.isArray(item)) {
return [...accumulator, ...item];
}
// otherwise, return items in the
// accumulator plus the new item
return [...accumulator, item];
}
, []); // initial value of `accumulator`
}
console.log(flatten([['foo', 'bar'], ['baz', 'qux']]));
// -> ["foo", "bar", "baz", "qux"]
console.log(flatten([[1], [2], 3, 4, [5]]));
// -> [1, 2, 3, 4, 5]
console.log(flatten([false, [true, [false]], [true]]));
// -> [false, true, [false], true]
console.log(flatten([]));
// -> []
References:
Array.reduce - MDN
Spread syntax - MDN
To flatten by a single level only, Array#concat() can be leveraged. It accepts any amount of arguments, so an array can be spread into the function call:
[].concat(...arr)
This avoids any explicit loops. JavaScript handles everything:
function flatten(arr) {
return [].concat(...arr);
}
console.log(flatten([['foo', 'bar'], ['baz', 'qux']]));
// -> ["foo", "bar", "baz", "qux"]
console.log(flatten([[1], [2], 3, 4, [5]]));
// -> [1, 2, 3, 4, 5]
console.log(flatten([false, [true, [false]], [true]]));
// -> [false, true, [false], true]
console.log(flatten([]));
// -> []
You can use the following method if your array have primitive data type and want to flat it completely:
arr.toString().split(',');
you can use the reducer of javascript as an alternative to flat().
const arr = [1, 2, [3, 4]];
arr.reduce((acc, val) => acc.concat(val), []);
// [1, 2, 3, 4]
or you can use decomposition syntax
const flattened = arr => [].concat(...arr);
For more details, go to Mozilla MDN
You have an error here:
for (let j = 0; i < current.length; j++) {
// ^ wrong variable, should be j
And you need to check if the value is not an array, then just push the current value and continue the loop.
function flatten(array) {
let flattened = [];
for (let i = 0; i < array.length; i++) {
const current = array[i];
if (!Array.isArray(current)) {
flattened.push(current);
continue;
}
for (let j = 0; j < current.length; j++) {
flattened.push(current[j])
}
}
return flattened
}
console.log(flatten([['foo', 'bar'], ['baz', 'qux']]));
// -> ["foo", "bar", "baz", "qux"]
console.log(flatten([[1], [2], 3, 4, [5]]));
// -> [1, 2, 3, 4, 5]
console.log(flatten([false, [true, [false]], [true]]));
// -> [false, true, [false], true]
console.log(flatten([]));
// -> []
You had a typo where in your innermost loop you set i to 0 instead of j. The only other thing you needed to do was check to see if each element in the outer array was scalar (not an array) and push it to the returned array if so.
function flatten(arr) {
let flat = []
for (let i=0; i < arr.length; i++) {
const cur = arr[i]
if(!Array.isArray(cur)){
flat.push(cur)
}else{
for (let j=0; j < cur.length; j++) {
flat.push(cur[j])
}
}
}
return flat
}
console.log(flatten([['foo','bar'],['baz','qux']]))
console.log(flatten([[1],[2],3,4,[5]]))
console.log(flatten([false,[true,[false]],[true]]))
console.log(flatten([]))
Well you can use spread operator with reduce.
function flatten(array) {
return array.reduce((a,v) => [...a, ...(Array.isArray(v) ? v : [v])], []);
}
console.log(flatten([['foo', 'bar'], 'baz', 'qux']))
Following could be used as a general implementation of Array.prototype.flat()
function flattenArray(arr, depth = 1) {
if (!Array.isArray(arr)) {
return [arr];
}
return depth > 0
? arr.reduce(
(acc, curr) =>
acc.concat(
Array.isArray(curr) ? flattenArray(curr, depth - 1) : curr
),
[]
)
: arr.slice();
}
const a = [1, 2, 3, 4];
const b = "a";
const c = [1, [2, 3], 4];
const d = [1, [2, [3, 4], 5], 6];
const e = [1, [2, [3, [4, [5], [6]], 7], 8], 9];
console.log(flattenArray(a, Infinity));
console.log(flattenArray(b, Infinity));
console.log(flattenArray(c, Infinity));
console.log(flattenArray(d, Infinity));
console.log(flattenArray(e, Infinity));
There is another interesting way to do it.
Stringify the array
remove all array start symbol ([) and array end symbol(])
Add array start symbol at the beginning and array end symbol at the end.
Now parse the resulting string
const arr2 = [0, 1, 2, [5, [10, [3, 4]]]]
const arr2 = [0, 1, 2, [5, [10, [3, 4]]]]
console.log( JSON.parse('['+ JSON.stringify(arr2).replace(/\[/g, ' ').replace(/\]/g, ' ') + ']'))
Suppose given flatten number list without using the flat function is:
let array = [2,3,[5,2,[6,[3, [4, 5, [5, 1, 3]]]],1,1],9];
//let array= [2,3,[5,2,[6,[3, [4, 5, [5, {"key":"value"}, 3]]]],1,1],9];
//achieve above commented nested array condition using second approach.
The best answer already given by #Mahipal that would be first approach i.e.
array.toString().split(',')
with number array conversion
array.toString().split(',').map(n => +n)
another approach would be using function recursion without toString()
function flatter(arr) {
if (!Array.isArray(arr) && (!isNaN(arr) || typeof arr === "object")) {
return arr;
}
return arr.reduce((a, b) => {
a.push(...[].concat(flatter(b)));
return a;
}, [])
}
flatter(array);
and output is:
[ 2, 3, 5, 2, 6, 3, 4, 5, 5, 1, 3, 1, 1, 9 ]
Hope this would help many ones.
//Using Recursion
const arr = [1, 2, 3, 4, [5, 6, [6, 7], 7, 8]]
let arr2 = [];
function flat(arr) {
arr.forEach(element => {
if (typeof (element) == 'object') {
flat(element);
} else {
arr2.push(element);
}
});
}
flat(arr);
console.log(arr2);
var multiDimensionArray = [["a"],["b","c"],["d"]]; //array of arrays
var flatArray = Array.prototype.concat.apply([], multiDimensionArray); //flatten array of arrays
console.log(flatArray);
This worked for me:
function myFlattern(arr) {
let check;
do{
check=false;
for(let i=0;i<arr.length;i++)
{
if(Array.isArray(arr[i]))
{
check=true;
let x=arr[i];
arr.splice(i,1,...x);
}
}
}while(check)
return arr;
}
A possible alternative would be without using flat():
var arr = [['object1', 'object2'],['object1'],['object1','object2','object3']];
var flattened = [].concat.apply([],arr);
You can use this to forget about the depth of nesting:
let multiArr = [1, [1, 2, [3, 4]], [2, 4, [45, 98]]];
while (multiArr.find((elem) => Array.isArray(elem))) {
multiArr = [].concat.apply([], multiArr);
}
console.log(multiArr);
What is the concisest way to create an object from a list of keys, all set to the same value. For example,
const keys = [1, 2, 3, 4]
const value = 0
What is the tersest way to attain the object
{
“1”: 0,
“2”: 0,
“3”: 0,
“4”: 0
}
You can use Object.fromEntries
const keys = [1, 2, 3, 4]
const value = 0
const result = Object.fromEntries(keys.map(k => [k, value]))
console.log(result)
Should probably be something among:
const keys = [1, 2, 3 ,4];
const value = 0;
console.log(
keys.reduce((acc, key) => (acc[key] = value, acc), {})
);
The simplest way I can think of would be to use .reduce();
const keys = [1, 2, 3, 4]
const value = 0
const obj = keys.reduce((carry, item) => {
carry[item] = value;
return carry;
}, {});
console.log(obj);
With Jasmine is there a way to test if 2 arrays contain the same elements, but are not necessarily in the same order? ie
array1 = [1,2,3];
array2 = [3,2,1];
expect(array1).toEqualIgnoreOrder(array2);//should be true
Edit
Jasmine 2.8 adds arrayWithExactContents that will succeed if the actual value is an Array that contains all of the elements in the sample in any order.
See keksmasta's answer
Original (outdated) answer
If it's just integers or other primitive values, you can sort() them before comparing.
expect(array1.sort()).toEqual(array2.sort());
If its objects, combine it with the map() function to extract an identifier that will be compared
array1 = [{id:1}, {id:2}, {id:3}];
array2 = [{id:3}, {id:2}, {id:1}];
expect(array1.map(a => a.id).sort()).toEqual(array2.map(a => a.id).sort());
You could use expect.arrayContaining(array) from standard jest:
const expected = ['Alice', 'Bob'];
it('matches even if received contains additional elements', () => {
expect(['Alice', 'Bob', 'Eve']).toEqual(expect.arrayContaining(expected));
});
jasmine version 2.8 and later has
jasmine.arrayWithExactContents()
Which expects that an array contains exactly the elements listed, in any order.
array1 = [1,2,3];
array2 = [3,2,1];
expect(array1).toEqual(jasmine.arrayWithExactContents(array2))
See https://jasmine.github.io/api/3.4/jasmine.html
The jest-extended package provides us few assertions to simplify our tests, it's less verbose and for failing tests the error is more explicit.
For this case we could use toIncludeSameMembers
expect([{foo: "bar"}, {baz: "qux"}]).toIncludeSameMembers([{baz: "qux"}, {foo: "bar"}]);
simple...
array1 = [1,2,3];
array2 = [3,2,1];
expect(array1).toEqual(jasmine.arrayContaining(array2));
// check if every element of array2 is element of array1
// to ensure [1, 1] !== [1, 2]
array2.forEach(x => expect(array1).toContain(x))
// check if every element of array1 is element of array2
// to ensure [1, 2] !== [1, 1]
array1.forEach(x => expect(array2).toContain(x))
// check if they have equal length to ensure [1] !== [1, 1]
expect(array1.length).toBe(array2.length)
//Compare arrays without order
//Example
//a1 = [1, 2, 3, 4, 5]
//a2 = [3, 2, 1, 5, 4]
//isEqual(a1, a2) -> true
//a1 = [1, 2, 3, 4, 5];
//a2 = [3, 2, 1, 5, 4, 6];
//isEqual(a1, a2) -> false
function isInArray(a, e) {
for ( var i = a.length; i--; ) {
if ( a[i] === e ) return true;
}
return false;
}
function isEqArrays(a1, a2) {
if ( a1.length !== a2.length ) {
return false;
}
for ( var i = a1.length; i--; ) {
if ( !isInArray( a2, a1[i] ) ) {
return false;
}
}
return true;
}
There is currenly a matcher for this USE CASE:
https://github.com/jest-community/jest-extended/pull/122/files
test('passes when arrays match in a different order', () => {
expect([1, 2, 3]).toMatchArray([3, 1, 2]);
expect([{ foo: 'bar' }, { baz: 'qux' }]).toMatchArray([{ baz: 'qux' }, { foo: 'bar' }]);
});
function equal(arr1, arr2){
return arr1.length === arr2.length
&&
arr1.every((item)=>{
return arr2.indexOf(item) >-1
})
&&
arr2.every((item)=>{
return arr1.indexOf(item) >-1
})
}
The idea here is to first determine if the length of the two arrays are same, then check if all elements are in the other's array.
Here's a solution that will work for any number or arrays
https://gist.github.com/tvler/cc5b2a3f01543e1658b25ca567c078e4
const areUnsortedArraysEqual = (...arrs) =>
arrs.every((arr, i, [first]) => !i || arr.length === first.length) &&
arrs
.map(arr =>
arr.reduce(
(map, item) => map.set(item, (map.get(item) || 0) + 1),
new Map(),
),
)
.every(
(map, i, [first]) =>
!i ||
[...first, ...map].every(([item]) => first.get(item) === map.get(item)),
);
Some tests (a few answers to this question don't account for arrays with multiple items of the same value, so [1, 2, 2] and [1, 2] would incorrectly return true)
[1, 2] true
[1, 2], [1, 2] true
[1, 2], [1, 2], [1, 2] true
[1, 2], [2, 1] true
[1, 1, 2], [1, 2, 1] true
[1, 2], [1, 2, 3] false
[1, 2, 3, 4], [1, 2, 3], [1, 2] false
[1, 2, 2], [1, 2] false
[1, 1, 2], [1, 2, 2] false
[1, 2, 3], [1, 2], [1, 2, 3] false
This algorithm is great for arrays where each item is unique. If not, you can add in something to check for duplicates...
tests = [
[ [1,0,1] , [0,1,1] ],
[ [1,0,1] , [0,0,1] ], //breaks on this one...
[ [2,3,3] , [2,2,3] ], //breaks on this one also...
[ [1,2,3] , [2,1,3] ],
[ [2,3,1] , [1,2,2] ],
[ [2,2,1] , [1,3,2] ]
]
tests.forEach(function(test) {
console.log('eqArraySets( '+test[0]+' , '+test[1]+' ) = '+eqArraySets( test[0] , test[1] ));
});
function eqArraySets(a, b) {
if ( a.length !== b.length ) { return false; }
for ( var i = a.length; i--; ) {
if ( !(b.indexOf(a[i])>-1) ) { return false; }
if ( !(a.indexOf(b[i])>-1) ) { return false; }
}
return true;
}
This approach has worse theoretical worst-case run-time performance, but, because it does not perform any writes on the array, it might be faster in many circumstances (haven't tested performance yet):
WARNING: As Torben pointed out in the comments, this approach only works if both arrays have unique (non-repeating) elements (just like several of the other answers here).
/**
* Determine whether two arrays contain exactly the same elements, independent of order.
* #see https://stackoverflow.com/questions/32103252/expect-arrays-to-be-equal-ignoring-order/48973444#48973444
*/
function cmpIgnoreOrder(a, b) {
const { every, includes } = _;
return a.length === b.length && every(a, v => includes(b, v));
}
// the following should be all true!
const results = [
!!cmpIgnoreOrder([1,2,3], [3,1,2]),
!!cmpIgnoreOrder([4,1,2,3], [3,4,1,2]),
!!cmpIgnoreOrder([], []),
!cmpIgnoreOrder([1,2,3], [3,4,1,2]),
!cmpIgnoreOrder([1], []),
!cmpIgnoreOrder([1, 3, 4], [3,4,5])
];
console.log('Results: ', results)
console.assert(_.reduce(results, (a, b) => a && b, true), 'Test did not pass!');
<script src="https://cdnjs.cloudflare.com/ajax/libs/lodash.js/4.17.5/lodash.js"></script>
I am currently using this helper function (for TypeScript). It makes sure that arrays that have non unique elements are supported as well.
function expectArraysToBeEqualIgnoringOrder<T>(arr1: T[], arr2: T[]) {
while(arr1.length > 0) {
expect(arr1.length).toEqual(arr2.length)
const elementToDelete = arr1[0]
arr1 = arr1.filter(element => element !== elementToDelete)
arr2 = arr2.filter(element => element !== elementToDelete)
}
expect(arr2.length).toEqual(0)
}
Many of the other asnwers do not correctly handle cases like this:
array1: [a, b, b, c]
array2: [a, b, c, c]
Here the number of elements in both arrays is the same and both arrays contain all elements from the other array, yet they are different arrays and the test should fail.
It runs in O(n^2) (precisely (n^2 + n) / 2), so it's not suitable for very large arrays, but it's suitable for arrays that are not easilly sorted and therefore can not be compared in O(n * log(n))