Javascript alphabetical grouping - javascript

I have a json array of objects that look like this: {id:'the id', name:'the name'}; and I need to loop over the array and group each object alphabetically by it's name attribute. Is there a way to do this without using a switch / if statement with every letter in it?
What I don't want to do is something like this:
if(data[i].name..slice(0, 1) == 'a') {
...
}
It's a large array, with almost a 1,000 objects in it. My goal is eventually append them to a dive so it looks something like this:
4
4 pints
4 biscuits
A
Apple
Alex
Adam
B
Bob
Billy

you can loop throught your collections like this:
var groupedCollection = {};
for(...){//loop throug collection
var firstLetter = data[i].charAt(0);
if(groupedCollection[firstLetter] == undefined){
groupedCollection[firstLetter] = [];
}
groupedCollection[firstLetter].push(data[i]);
}
//groupedCollection now contait data in the form of {a: [], b:[], etc...}

Bubble sort will do this job for you. Example:
// sample array
var myArr = [
{id:"00", name:"Billy"},
{id:"00", name:"Apple"},
{id:"00", name:"4 biscuits"},
{id:"00", name:"Adam"},
{id:"00", name:"Alex"},
{id:"00", name:"4 pints"},
{id:"00", name:"Bob"}
];
// standard bubble sort algorithm
function bubbleSortByName(arr) {
for (var x = 0; x < arr.length; x++) {
for(var y = 0; y < arr.length-1; y++) {
// compare arr[].name.toLowerCase() i.e. b > a
if(arr[y].name.toLowerCase() > arr[y+1].name.toLowerCase()) {
var tmp = arr[y+1];
arr[y+1] = arr[y];
arr[y] = tmp;
}
}
}
return arr;
}
// sort the array
var sortedArr = bubbleSortByName(myArr);
// print the results
for (var i=0; i<sortedArr.length; i++)
document.write(sortedArr[i].name+"<br/>");
Or the same idea with an insertion sort algorithm:
// standard insertion sort algorithm
function insertionSortByName(arr) {
for(var j = 1; j < arr.length; j++) {
var key = arr[j];
var i = j - 1;
while(i >= 0 && arr[i].name.toLowerCase() > key.name.toLowerCase()) {
arr[i+1] = arr[i];
i = i - 1;
}
arr[i+1] = key;
}
return arr;
}

ES7 syntax
const sortAndGroup = async () => {
const sortedData = data.sort();
const reducedData = sortedData.reduce((items, dataElement) => {
if (!items.find(item => item.header === dataElement.charAt(0))) {
items.push({ header: dataElement.charAt(0) });
}
items.push({ name: dataElement });
return items;
}, []);
return reducedData.map(item => item.header || item.name);
};
sortAndGroup().then(result => console.log(result));

Related

Javascript, getting past values for an array of objects

I have a JavaScript array of objects which looks like
var myarr = [
{'xx':'2023-01-01,,1'},
{'ss':'2023-01-01,2,1.2'},
{'dd':'2023-01-01,4,'},
{'rr':'2023-01-01,,'},
{'ff':'2023-01-01,,'},
{'gg':'2023-01-01,,'}
];
The array is actually much bigger than that, but I have cut it down for testing purposes, some of my arrays are thousands of lines long
Each object contains a date and two comma-separated values, although I have some rows which contain 3 or 4 comma separate values
What I need to do, is if any blank comma-separated value is found on any row then get the previous comma separated value from that position to a maximum of 2 times going back, although I may need to change that to a bigger number in the future
So with my example, I would get the following output
var myarr = [
{'xx':'2023-01-01,,1.6'},
{'ss':'2023-01-01,2,1.2'},
{'dd':'2023-01-01,4,1.2'},
{'rr':'2023-01-01,4,1.2'},
{'ff':'2023-01-01,4,'},
{'gg':'2023-01-01,,'}
];
I have tried to solve this with
var myarr = [
{'xx':'2023-01-01,,1'},
{'ss':'2023-01-01,2,1.2'},
{'dd':'2023-01-01,4,'},
{'rr':'2023-01-01,,'},
{'ff':'2023-01-01,,'},
{'gg':'2023-01-01,,'}
];
var maxAttempts = 3;
for (var i = 0; i < myarr.length; i++) {
var obj = myarr[i];
var values = Object.values(obj)[0].split(",");
var date = values[0];
var value1 = values[1];
var value2 = values[2];
for (var j = 1; j <= maxAttempts; j++) {
if (!value1) {
value1 = (myarr[i-j] && Object.values(myarr[i-j])[0].split(",")[1]) || " ";
}
if (!value2) {
value2 = (myarr[i-j] && Object.values(myarr[i-j])[0].split(",")[2]) || " ";
}
if (value1 && value2) {
break;
}
}
console.log(date, value1, value2);
for (var k = 3; k < values.length; k++) {
var value = values[k];
console.log(value);
}
}
but it doesn't seem to provide the expected output.
Can someone help me with what might be wrong?
Maybe you can use something like this.
const myarr = [
{ "xx": "2023-01-01,,1" },
{ "ss": "2023-01-01,2,1.2" },
{ "dd": "2023-01-01,4," },
{ "rr": "2023-01-01,," },
{ "ff": "2023-01-01,," },
{ "gg": "2023-01-01,," }
]
function fillInBlanks(arr, maxLookBack) {
return arr.map((obj, index) => {
const key = Object.keys(obj)[0]
const value = Object.values(obj)[0]
.split(",")
.map((x, n) => {
if (x === "" && index > 0) {
for (let i = index - 1; i >= Math.max(0, index - maxLookBack); --i) {
const prev = Object.values(arr[i])[0].split(",")
if (prev[n] !== "") return prev[n]
}
} else return x
})
return Object.fromEntries([
[key, value.join(",")]
])
})
}
fillInBlanks(myarr, 2).forEach(x => console.log(x))
Here's my attempt. This will also work with any number of values per row.
const maxAttempts = 2;
myarr.reduce((modifiedAccumulation, currentObject, index) => {
const [key, csv] = Object.entries(currentObject)[0];
const splitCsv = csv.split(",");
const modifiedCsv = splitCsv
.reduce((fixedArray, currentElement, csvPos) => {
let numberToUse =
currentElement === ""
? myarr
.slice(Math.max(index - maxAttempts, 0), index)
.reduceRight((proposedNum, currentPastObj) => {
if (proposedNum !== "") return proposedNum;
let candidate =
Object.entries(currentPastObj)[0][1].split(",")[csvPos];
return candidate !== "" ? candidate : "";
}, "")
: currentElement;
return [...fixedArray, numberToUse];
}, [])
.join(",");
return [...modifiedAccumulation, { [key]: modifiedCsv }];
}, []);
This approach creates a 'window' array containing the last few entries, which is used to look up prior column values.
const myarr = [{"xx":"2023-01-01,,1"},{"ss":"2023-01-01,2,1.2"},{"dd":"2023-01-01,4,"},{"rr":"2023-01-01,,"},{"ff":"2023-01-01,,"},{"gg":"2023-01-01,,"}]
const windowSize = 2
const w = [], r =
myarr.map(e=>Object.entries(e).flatMap(([k,v])=>[k,...v.split(',')]))
.map(a=>(
w.unshift(a) > windowSize+1 && w.pop(),
a.map((_,i)=>w.find(x=>x[i])?.[i])
)).map(([k,...v])=>[k,v.join()]
).map(i=>Object.fromEntries([i]))
console.log(r)

How to Splice in a javascript array based on property?

I am getting an array of data in Angularjs Grid and I need to delete all the rows which has same CustCountry
ex - My Customer Array looks like
Customer[0]={ CustId:101 ,CustName:"John",CustCountry:"NewZealand" };
Customer[1]={ CustId:102 ,CustName:"Mike",CustCountry:"Australia" };
Customer[2]={ CustId:103 ,CustName:"Dunk",CustCountry:"NewZealand" };
Customer[3]={ CustId:104 ,CustName:"Alan",CustCountry:"NewZealand" };
So , in the Grid I need to delete all three records if CustomerCountry is NewZealand
I am using splice method and let me know how can I use by splicing through CustomerCountry
$scope.remove=function(CustCountry)
{
$scope.Customer.splice(index,1);
}
If you're okay with getting a copy back, this is a perfect use case for .filter:
Customer = [
{ CustId:101 ,CustName:"John",CustCountry:"NewZealand" },
{ CustId:102 ,CustName:"Mike",CustCountry:"Australia" },
{ CustId:103 ,CustName:"Dunk",CustCountry:"NewZealand" },
{ CustId:104 ,CustName:"Alan",CustCountry:"NewZealand" },
]
console.log(Customer.filter(cust => cust.CustCountry !== "NewZealand"));
if you have one specific country in mind then just use .filter()
$scope.Customer = $scope.Customer.filter(obj => obj.CustCountry !== "SpecificCountry")
If you want to delete all objects with duplicate countries then, referring to Remove duplicate values from JS array, this is what you can do:
var removeDuplicateCountries = function(arr){
var dupStore = {};
for (var x= 0; x < arr.length; x++){
if (arr[x].CustCountry in dupStore){
dupStore[arr[x].CustCountry] = false;
} else {
dupStore[arr[x].CustCountry] = true;
}
}
var newarr = [];
for (var x= 0; x < arr.length; x++){
if (dupStore[arr[x].CustCountry]){
newarr.push(arr[x]);
}
}
return arr;
};
$scope.Customer = removeDuplicateCountries($scope.Customer);
Or incorporating the .filter() method
var removeDuplicateCountries = function(arr){
var dupStore = {};
var newarr = arr;
for (var x= 0; x < arr.length; x++){
if (arr[x].CustCountry in dupStore){
newarr = newarr.filter(obj => obj.CustCountry !== arr[x].CustCountry);
} else {
dupStore[arr[x].CustCountry] = true;
}
}
return newarr;
};
$scope.Customer = removeDuplicateCountries($scope.Customer);
if there are many duplicate countries then use the way without .filter()

Javascript, comparing two arrays in order while skipping non-matching indexes

I have two arrays:
var arr1 = [1,2,3,4,5]
var arr2 = [7,1,8,2,12,3,4,28,5]
I need to go through arr2 looking for matches to arr1, but it has to be in order (1,2,3,4,5). As you can see in arr2, the order does exists, but there are some numbers in between.
[7,1,8,2,12,3,4,28,5]
I have about 50 arrays similar to arr2, so I need to look through each one, and when I find a match, push it out to a "results" object. Small issue though is that some arrays will not have the entire match, may only have 1,2,3 or any variation of the search. Also, if the array I'm searching in is NOT in order, (IE: starts at 2,3,4) skip over it entirely.
The idea is to loop through these arrays, and when I find a match, add a count to the results array.
For example, using arr1 as the search, go through these arrays:
[7,1,8,2,12,3,4,28,5],
[7,1,8,2,12,3,4],
[7,8,1,2],
[1,2,3]
and have a result that looks like this (a dictionary of what was searched for, and a count of what was found) :
{1:4, 2:4, 3:3, 4:2, 5:1}
I tried doing a bunch of for-loops, but I can't figure out how to skip over a number that I'm not looking for, and continue onto the next iteration, while saving the results into a dictionary object.
let list = [[7,1,8,2,12,3,4,28,5], [7,1,8,2,12,3,4], [7,8,1,2], [1,2,3]];
let search = [1, 2, 3, 4, 5];
// Initialize result with zeros:
let result = search.reduce((result, next) => {
result[next] = 0;
return result;
}, {});
// Increment result for items found:
list.forEach(array => {
for (let i = 0, j = 0; i < array.length && j < search.length; ++i) {
if (array[i] == search[j]) {
++result[search[j]];
++j;
}
}
});
console.log(result);
Essentially this:
var needle = [1,2,3,4,5]
var collection = [[7,1,8,2,12,3,4,28,5], [7,1,8,2,12,3,4], [7,8,1,2], [1,2,3]]
// start with an object
var results = {}
// populate object with zeros
needle.forEach(function (i) { results[i] = 0 })
// define an index to iterate through collection
var i = 0
// define an index to conditionally iterate through "arr1"
var j = 0
// define an index to iterate through collection arrays
var k = 0
// define surrogate for the arrays in the collection
var arr
while (i < collection.length) {
// get collection array
arr = collection[i]
// reset the indices
j = 0
k = 0
while (k < arr.length) {
// if same element on needle is in a collection array
if (needle[j] === arr[k]) {
// save it in an object starting at 1
results[needle[j]]++
j++ // increment needle
}
k++ // increment array in collection
}
i++ // increment collection
}
console.log(results) // {1:4, 2:4, 3:3, 4:2, 5:1}
I hope that helps!
var arr1 = [1,2,3,4,5];
var arr2 = [7,1,8,2,12,3,4,28,5];
function givenTwoArrays(a,b, obj){
var obj = obj || {};
var cond = true;
function otherMatch(indexFound,elementFound){
var indexOnA = a.indexOf(elementFound);
return a.some(function(ele, idx){
if(idx > indexOnA)
return b.some(function(bele,bidx){
return ele == bele && bidx < indexFound;
});
});
}
a.map(function(aele,idx){
if(cond){
var indexFound = b.findIndex(function(bele){
return aele == bele;
});
if(typeof indexFound !== 'undefined'){
if(!otherMatch(indexFound,aele)){
if(typeof obj[aele] !== 'undefined')
obj[aele]++;
else{
obj[aele] = 1;
}
} else {
cond = false;
}
}else
cond = false;
}
});
return obj;
}
console.log("first pass");
console.log(givenTwoArrays(arr1,arr2))
console.log("second pass");
console.log(givenTwoArrays(arr1,arr2,{
"1": 1,
"2": 1,
"3": 1,
"4": 1,
"5": 1
}));
I think this will work, just need to add a little recursion!
var orign = [1,2,3,4,5];
var arr = [[7,1,8,2,12,3,4,28,5], [7,1,8,2,12,3,4], [7,8,1,2], [1,2,3]];
//temp result
var arrTmp = [];
for (var x in arr){
var match = 0;
var mis = 1;
var curIndex = 0;
var cur = orign[curIndex];
var arrTmpX = [];
for(var y in arr[x]){
if(arr[x][y] !== cur){
mis=1;
}else{
//add match after mismatch
arrTmpX.push(cur);
curIndex++
cur = orign[curIndex];
}
}
arrTmp.push(arrTmpX);
}
//calc result
var result = {};
for (var x in orign){
result[orign[x]] = 0;
for(var y in arrTmp){
if(arrTmp[y].length>x)result[orign[x]]++;
}
}
console.log(result);
this works

Recursion: How can I remove

here's my code:
var asset = ['1234_12', '1234_34', '1234_33', '4321_22', '4321_90'];
var largest = removeElements(asset);
function removeElements(asset) {
var retVal = [];
for (i = 0; i < asset.length; i++) {
for (var j = 0; j < asset.length; j++) {
if (asset[i].split('_')[0] == asset[j].split('_')[0]) {
if (asset[i].split('_')[1].split('.')[0] > asset[j].split('_')[1].split('.')[0]) {
retVal = removeElements(asset, asset[j]);
for (var k = 0; k < retVal.length; k++) {
for (var l = 0; l < retVal.length; l++) {
if (retVal[k].split('_')[0] == retVal[l].split('_')[0]) {
removeElements(retVal);
} else {
return retVal;
}
}
}
}
}
}
}
return retVal;
}
Here's the structure of array:
var asset = ['1234_12', '1234_34', '1234_33', '4321_22', '4321_90'];
What I want is to get largest in '1234' or '4321' series. For example, in this case, I need to grab '1234_34' and '4321_90'.
RangeError: Maximum call stack size exceeded
What am I doing wrong?
You are making it harder than it is for yourself. You can just iterate over each item and store the matched values in an object:
var asset = ['1234_12', '1234_34', '1234_33', '4321_22', '4321_90'];
var intermediate = {};
asset.forEach(function(v) {
var parts = v.split('_');
var key = parts[0];
var val = parts[1];
if (!intermediate[key] || intermediate[key] < val) {
intermediate[key] = val;
}
});
This will produce an object like:
{"1234": "34", "4321": "90"}
Which you can then be turned into the expected array:
var output = Object.keys(intermediate).map(function(key) {
return key + '_' + intermediate[key];
});
console.log(output); // ["1234_34", "4321_90"]
Take a look at .forEach, .map and Object.keys
Here's an example of something that will grab those values (see the jsbin):
var asset = ['1234_12', '1234_34', '1234_33', '4321_22', '4321_90'];
var ids = _.values(_.mapValues(asset.reduce(function(agg, curr) {
var parts = curr.split('_');
agg[parts[0]] = agg[parts[0]] || [];
agg[parts[0]].push(parts[1]);
return agg;
}, {}), function(value, key) {
return [key, Math.max.apply(Math, value)].join('_');
}));
console.log(ids); // => ["1234_34", "4321_90"]
It uses lodash for convenience, but the principles are the same without it.
First you split each string into a key-value pair of the prefix and suffix (so 1234_12 and 1234_34, etc., becomes like { 1234: ['12', '34'] }). Then you just find the max value in that array and join it back with its key.

Compare multiple arrays for common values [duplicate]

What's the simplest, library-free code for implementing array intersections in javascript? I want to write
intersection([1,2,3], [2,3,4,5])
and get
[2, 3]
Use a combination of Array.prototype.filter and Array.prototype.includes:
const filteredArray = array1.filter(value => array2.includes(value));
For older browsers, with Array.prototype.indexOf and without an arrow function:
var filteredArray = array1.filter(function(n) {
return array2.indexOf(n) !== -1;
});
NB! Both .includes and .indexOf internally compares elements in the array by using ===, so if the array contains objects it will only compare object references (not their content). If you want to specify your own comparison logic, use Array.prototype.some instead.
Destructive seems simplest, especially if we can assume the input is sorted:
/* destructively finds the intersection of
* two arrays in a simple fashion.
*
* PARAMS
* a - first array, must already be sorted
* b - second array, must already be sorted
*
* NOTES
* State of input arrays is undefined when
* the function returns. They should be
* (prolly) be dumped.
*
* Should have O(n) operations, where n is
* n = MIN(a.length, b.length)
*/
function intersection_destructive(a, b)
{
var result = [];
while( a.length > 0 && b.length > 0 )
{
if (a[0] < b[0] ){ a.shift(); }
else if (a[0] > b[0] ){ b.shift(); }
else /* they're equal */
{
result.push(a.shift());
b.shift();
}
}
return result;
}
Non-destructive has to be a hair more complicated, since we’ve got to track indices:
/* finds the intersection of
* two arrays in a simple fashion.
*
* PARAMS
* a - first array, must already be sorted
* b - second array, must already be sorted
*
* NOTES
*
* Should have O(n) operations, where n is
* n = MIN(a.length(), b.length())
*/
function intersect_safe(a, b)
{
var ai=0, bi=0;
var result = [];
while( ai < a.length && bi < b.length )
{
if (a[ai] < b[bi] ){ ai++; }
else if (a[ai] > b[bi] ){ bi++; }
else /* they're equal */
{
result.push(a[ai]);
ai++;
bi++;
}
}
return result;
}
If your environment supports ECMAScript 6 Set, one simple and supposedly efficient (see specification link) way:
function intersect(a, b) {
var setA = new Set(a);
var setB = new Set(b);
var intersection = new Set([...setA].filter(x => setB.has(x)));
return Array.from(intersection);
}
Shorter, but less readable (also without creating the additional intersection Set):
function intersect(a, b) {
var setB = new Set(b);
return [...new Set(a)].filter(x => setB.has(x));
}
Note that when using sets you will only get distinct values, thus new Set([1, 2, 3, 3]).size evaluates to 3.
Using Underscore.js or lodash.js
_.intersection( [0,345,324] , [1,0,324] ) // gives [0,324]
// Return elements of array a that are also in b in linear time:
function intersect(a, b) {
return a.filter(Set.prototype.has, new Set(b));
}
// Example:
console.log(intersect([1,2,3], [2,3,4,5]));
I recommend above succinct solution which outperforms other implementations on large inputs. If performance on small inputs matters, check the alternatives below.
Alternatives and performance comparison:
See the following snippet for alternative implementations and check https://jsperf.com/array-intersection-comparison for performance comparisons.
function intersect_for(a, b) {
const result = [];
const alen = a.length;
const blen = b.length;
for (let i = 0; i < alen; ++i) {
const ai = a[i];
for (let j = 0; j < blen; ++j) {
if (ai === b[j]) {
result.push(ai);
break;
}
}
}
return result;
}
function intersect_filter_indexOf(a, b) {
return a.filter(el => b.indexOf(el) !== -1);
}
function intersect_filter_in(a, b) {
const map = b.reduce((map, el) => {map[el] = true; return map}, {});
return a.filter(el => el in map);
}
function intersect_for_in(a, b) {
const result = [];
const map = {};
for (let i = 0, length = b.length; i < length; ++i) {
map[b[i]] = true;
}
for (let i = 0, length = a.length; i < length; ++i) {
if (a[i] in map) result.push(a[i]);
}
return result;
}
function intersect_filter_includes(a, b) {
return a.filter(el => b.includes(el));
}
function intersect_filter_has_this(a, b) {
return a.filter(Set.prototype.has, new Set(b));
}
function intersect_filter_has_arrow(a, b) {
const set = new Set(b);
return a.filter(el => set.has(el));
}
function intersect_for_has(a, b) {
const result = [];
const set = new Set(b);
for (let i = 0, length = a.length; i < length; ++i) {
if (set.has(a[i])) result.push(a[i]);
}
return result;
}
Results in Firefox 53:
Ops/sec on large arrays (10,000 elements):
filter + has (this) 523 (this answer)
for + has 482
for-loop + in 279
filter + in 242
for-loops 24
filter + includes 14
filter + indexOf 10
Ops/sec on small arrays (100 elements):
for-loop + in 384,426
filter + in 192,066
for-loops 159,137
filter + includes 104,068
filter + indexOf 71,598
filter + has (this) 43,531 (this answer)
filter + has (arrow function) 35,588
My contribution in ES6 terms. In general it finds the intersection of an array with indefinite number of arrays provided as arguments.
Array.prototype.intersect = function(...a) {
return [this,...a].reduce((p,c) => p.filter(e => c.includes(e)));
}
var arrs = [[0,2,4,6,8],[4,5,6,7],[4,6]],
arr = [0,1,2,3,4,5,6,7,8,9];
document.write("<pre>" + JSON.stringify(arr.intersect(...arrs)) + "</pre>");
How about just using associative arrays?
function intersect(a, b) {
var d1 = {};
var d2 = {};
var results = [];
for (var i = 0; i < a.length; i++) {
d1[a[i]] = true;
}
for (var j = 0; j < b.length; j++) {
d2[b[j]] = true;
}
for (var k in d1) {
if (d2[k])
results.push(k);
}
return results;
}
edit:
// new version
function intersect(a, b) {
var d = {};
var results = [];
for (var i = 0; i < b.length; i++) {
d[b[i]] = true;
}
for (var j = 0; j < a.length; j++) {
if (d[a[j]])
results.push(a[j]);
}
return results;
}
The performance of #atk's implementation for sorted arrays of primitives can be improved by using .pop rather than .shift.
function intersect(array1, array2) {
var result = [];
// Don't destroy the original arrays
var a = array1.slice(0);
var b = array2.slice(0);
var aLast = a.length - 1;
var bLast = b.length - 1;
while (aLast >= 0 && bLast >= 0) {
if (a[aLast] > b[bLast] ) {
a.pop();
aLast--;
} else if (a[aLast] < b[bLast] ){
b.pop();
bLast--;
} else /* they're equal */ {
result.push(a.pop());
b.pop();
aLast--;
bLast--;
}
}
return result;
}
I created a benchmark using jsPerf. It's about three times faster to use .pop.
If you need to have it handle intersecting multiple arrays:
const intersect = (a1, a2, ...rest) => {
const a12 = a1.filter(value => a2.includes(value))
if (rest.length === 0) { return a12; }
return intersect(a12, ...rest);
};
console.log(intersect([1,2,3,4,5], [1,2], [1, 2, 3,4,5], [2, 10, 1]))
Sort it
check one by one from the index 0, create new array from that.
Something like this, Not tested well though.
function intersection(x,y){
x.sort();y.sort();
var i=j=0;ret=[];
while(i<x.length && j<y.length){
if(x[i]<y[j])i++;
else if(y[j]<x[i])j++;
else {
ret.push(x[i]);
i++,j++;
}
}
return ret;
}
alert(intersection([1,2,3], [2,3,4,5]));
PS:The algorithm only intended for Numbers and Normal Strings, intersection of arbitary object arrays may not work.
Using jQuery:
var a = [1,2,3];
var b = [2,3,4,5];
var c = $(b).not($(b).not(a));
alert(c);
A tiny tweak to the smallest one here (the filter/indexOf solution), namely creating an index of the values in one of the arrays using a JavaScript object, will reduce it from O(N*M) to "probably" linear time. source1 source2
function intersect(a, b) {
var aa = {};
a.forEach(function(v) { aa[v]=1; });
return b.filter(function(v) { return v in aa; });
}
This isn't the very simplest solution (it's more code than filter+indexOf), nor is it the very fastest (probably slower by a constant factor than intersect_safe()), but seems like a pretty good balance. It is on the very simple side, while providing good performance, and it doesn't require pre-sorted inputs.
For arrays containing only strings or numbers you can do something with sorting, as per some of the other answers. For the general case of arrays of arbitrary objects I don't think you can avoid doing it the long way. The following will give you the intersection of any number of arrays provided as parameters to arrayIntersection:
var arrayContains = Array.prototype.indexOf ?
function(arr, val) {
return arr.indexOf(val) > -1;
} :
function(arr, val) {
var i = arr.length;
while (i--) {
if (arr[i] === val) {
return true;
}
}
return false;
};
function arrayIntersection() {
var val, arrayCount, firstArray, i, j, intersection = [], missing;
var arrays = Array.prototype.slice.call(arguments); // Convert arguments into a real array
// Search for common values
firstArray = arrays.pop();
if (firstArray) {
j = firstArray.length;
arrayCount = arrays.length;
while (j--) {
val = firstArray[j];
missing = false;
// Check val is present in each remaining array
i = arrayCount;
while (!missing && i--) {
if ( !arrayContains(arrays[i], val) ) {
missing = true;
}
}
if (!missing) {
intersection.push(val);
}
}
}
return intersection;
}
arrayIntersection( [1, 2, 3, "a"], [1, "a", 2], ["a", 1] ); // Gives [1, "a"];
Simplest, fastest O(n) and shortest way:
function intersection (a, b) {
const setA = new Set(a);
return b.filter(value => setA.has(value));
}
console.log(intersection([1,2,3], [2,3,4,5]))
#nbarbosa has almost the same answer but he cast both arrays to Set and then back to array. There is no need for any extra casting.
Another indexed approach able to process any number of arrays at once:
// Calculate intersection of multiple array or object values.
function intersect (arrList) {
var arrLength = Object.keys(arrList).length;
// (Also accepts regular objects as input)
var index = {};
for (var i in arrList) {
for (var j in arrList[i]) {
var v = arrList[i][j];
if (index[v] === undefined) index[v] = 0;
index[v]++;
};
};
var retv = [];
for (var i in index) {
if (index[i] == arrLength) retv.push(i);
};
return retv;
};
It works only for values that can be evaluated as strings and you should pass them as an array like:
intersect ([arr1, arr2, arr3...]);
...but it transparently accepts objects as parameter or as any of the elements to be intersected (always returning array of common values). Examples:
intersect ({foo: [1, 2, 3, 4], bar: {a: 2, j:4}}); // [2, 4]
intersect ([{x: "hello", y: "world"}, ["hello", "user"]]); // ["hello"]
EDIT: I just noticed that this is, in a way, slightly buggy.
That is: I coded it thinking that input arrays cannot itself contain repetitions (as provided example doesn't).
But if input arrays happen to contain repetitions, that would produce wrong results. Example (using below implementation):
intersect ([[1, 3, 4, 6, 3], [1, 8, 99]]);
// Expected: [ '1' ]
// Actual: [ '1', '3' ]
Fortunately this is easy to fix by simply adding second level indexing. That is:
Change:
if (index[v] === undefined) index[v] = 0;
index[v]++;
by:
if (index[v] === undefined) index[v] = {};
index[v][i] = true; // Mark as present in i input.
...and:
if (index[i] == arrLength) retv.push(i);
by:
if (Object.keys(index[i]).length == arrLength) retv.push(i);
Complete example:
// Calculate intersection of multiple array or object values.
function intersect (arrList) {
var arrLength = Object.keys(arrList).length;
// (Also accepts regular objects as input)
var index = {};
for (var i in arrList) {
for (var j in arrList[i]) {
var v = arrList[i][j];
if (index[v] === undefined) index[v] = {};
index[v][i] = true; // Mark as present in i input.
};
};
var retv = [];
for (var i in index) {
if (Object.keys(index[i]).length == arrLength) retv.push(i);
};
return retv;
};
intersect ([[1, 3, 4, 6, 3], [1, 8, 99]]); // [ '1' ]
With some restrictions on your data, you can do it in linear time!
For positive integers: use an array mapping the values to a "seen/not seen" boolean.
function intersectIntegers(array1,array2) {
var seen=[],
result=[];
for (var i = 0; i < array1.length; i++) {
seen[array1[i]] = true;
}
for (var i = 0; i < array2.length; i++) {
if ( seen[array2[i]])
result.push(array2[i]);
}
return result;
}
There is a similar technique for objects: take a dummy key, set it to "true" for each element in array1, then look for this key in elements of array2. Clean up when you're done.
function intersectObjects(array1,array2) {
var result=[];
var key="tmpKey_intersect"
for (var i = 0; i < array1.length; i++) {
array1[i][key] = true;
}
for (var i = 0; i < array2.length; i++) {
if (array2[i][key])
result.push(array2[i]);
}
for (var i = 0; i < array1.length; i++) {
delete array1[i][key];
}
return result;
}
Of course you need to be sure the key didn't appear before, otherwise you'll be destroying your data...
function intersection(A,B){
var result = new Array();
for (i=0; i<A.length; i++) {
for (j=0; j<B.length; j++) {
if (A[i] == B[j] && $.inArray(A[i],result) == -1) {
result.push(A[i]);
}
}
}
return result;
}
For simplicity:
// Usage
const intersection = allLists
.reduce(intersect, allValues)
.reduce(removeDuplicates, []);
// Implementation
const intersect = (intersection, list) =>
intersection.filter(item =>
list.some(x => x === item));
const removeDuplicates = (uniques, item) =>
uniques.includes(item) ? uniques : uniques.concat(item);
// Example Data
const somePeople = [bob, doug, jill];
const otherPeople = [sarah, bob, jill];
const morePeople = [jack, jill];
const allPeople = [...somePeople, ...otherPeople, ...morePeople];
const allGroups = [somePeople, otherPeople, morePeople];
// Example Usage
const intersection = allGroups
.reduce(intersect, allPeople)
.reduce(removeDuplicates, []);
intersection; // [jill]
Benefits:
dirt simple
data-centric
works for arbitrary number of lists
works for arbitrary lengths of lists
works for arbitrary types of values
works for arbitrary sort order
retains shape (order of first appearance in any array)
exits early where possible
memory safe, short of tampering with Function / Array prototypes
Drawbacks:
higher memory usage
higher CPU usage
requires an understanding of reduce
requires understanding of data flow
You wouldn't want to use this for 3D engine or kernel work, but if you have problems getting this to run in an event-based app, your design has bigger problems.
I'll contribute with what has been working out best for me:
if (!Array.prototype.intersect){
Array.prototype.intersect = function (arr1) {
var r = [], o = {}, l = this.length, i, v;
for (i = 0; i < l; i++) {
o[this[i]] = true;
}
l = arr1.length;
for (i = 0; i < l; i++) {
v = arr1[i];
if (v in o) {
r.push(v);
}
}
return r;
};
}
A functional approach with ES2015
A functional approach must consider using only pure functions without side effects, each of which is only concerned with a single job.
These restrictions enhance the composability and reusability of the functions involved.
// small, reusable auxiliary functions
const createSet = xs => new Set(xs);
const filter = f => xs => xs.filter(apply(f));
const apply = f => x => f(x);
// intersection
const intersect = xs => ys => {
const zs = createSet(ys);
return filter(x => zs.has(x)
? true
: false
) (xs);
};
// mock data
const xs = [1,2,2,3,4,5];
const ys = [0,1,2,3,3,3,6,7,8,9];
// run it
console.log( intersect(xs) (ys) );
Please note that the native Set type is used, which has an advantageous
lookup performance.
Avoid duplicates
Obviously repeatedly occurring items from the first Array are preserved, while the second Array is de-duplicated. This may be or may be not the desired behavior. If you need a unique result just apply dedupe to the first argument:
// auxiliary functions
const apply = f => x => f(x);
const comp = f => g => x => f(g(x));
const afrom = apply(Array.from);
const createSet = xs => new Set(xs);
const filter = f => xs => xs.filter(apply(f));
// intersection
const intersect = xs => ys => {
const zs = createSet(ys);
return filter(x => zs.has(x)
? true
: false
) (xs);
};
// de-duplication
const dedupe = comp(afrom) (createSet);
// mock data
const xs = [1,2,2,3,4,5];
const ys = [0,1,2,3,3,3,6,7,8,9];
// unique result
console.log( intersect(dedupe(xs)) (ys) );
Compute the intersection of any number of Arrays
If you want to compute the intersection of an arbitrarily number of Arrays just compose intersect with foldl. Here is a convenience function:
// auxiliary functions
const apply = f => x => f(x);
const uncurry = f => (x, y) => f(x) (y);
const createSet = xs => new Set(xs);
const filter = f => xs => xs.filter(apply(f));
const foldl = f => acc => xs => xs.reduce(uncurry(f), acc);
// intersection
const intersect = xs => ys => {
const zs = createSet(ys);
return filter(x => zs.has(x)
? true
: false
) (xs);
};
// intersection of an arbitrarily number of Arrays
const intersectn = (head, ...tail) => foldl(intersect) (head) (tail);
// mock data
const xs = [1,2,2,3,4,5];
const ys = [0,1,2,3,3,3,6,7,8,9];
const zs = [0,1,2,3,4,5,6];
// run
console.log( intersectn(xs, ys, zs) );
.reduce to build a map, and .filter to find the intersection. delete within the .filter allows us to treat the second array as though it's a unique set.
function intersection (a, b) {
var seen = a.reduce(function (h, k) {
h[k] = true;
return h;
}, {});
return b.filter(function (k) {
var exists = seen[k];
delete seen[k];
return exists;
});
}
I find this approach pretty easy to reason about. It performs in constant time.
I have written an intesection function which can even detect intersection of array of objects based on particular property of those objects.
For instance,
if arr1 = [{id: 10}, {id: 20}]
and arr2 = [{id: 20}, {id: 25}]
and we want intersection based on the id property, then the output should be :
[{id: 20}]
As such, the function for the same (note: ES6 code) is :
const intersect = (arr1, arr2, accessors = [v => v, v => v]) => {
const [fn1, fn2] = accessors;
const set = new Set(arr2.map(v => fn2(v)));
return arr1.filter(value => set.has(fn1(value)));
};
and you can call the function as:
intersect(arr1, arr2, [elem => elem.id, elem => elem.id])
Also note: this function finds intersection considering the first array is the primary array and thus the intersection result will be that of the primary array.
This function avoids the N^2 problem, taking advantage of the power of dictionaries. Loops through each array only once, and a third and shorter loop to return the final result.
It also supports numbers, strings, and objects.
function array_intersect(array1, array2)
{
var mergedElems = {},
result = [];
// Returns a unique reference string for the type and value of the element
function generateStrKey(elem) {
var typeOfElem = typeof elem;
if (typeOfElem === 'object') {
typeOfElem += Object.prototype.toString.call(elem);
}
return [typeOfElem, elem.toString(), JSON.stringify(elem)].join('__');
}
array1.forEach(function(elem) {
var key = generateStrKey(elem);
if (!(key in mergedElems)) {
mergedElems[key] = {elem: elem, inArray2: false};
}
});
array2.forEach(function(elem) {
var key = generateStrKey(elem);
if (key in mergedElems) {
mergedElems[key].inArray2 = true;
}
});
Object.values(mergedElems).forEach(function(elem) {
if (elem.inArray2) {
result.push(elem.elem);
}
});
return result;
}
If there is a special case that cannot be solved, just by modifying the generateStrKey function, it could surely be solved. The trick of this function is that it uniquely represents each different data according to type and value.
This variant has some performance improvements. Avoid loops in case any array is empty. It also starts by walking through the shorter array first, so if it finds all the values of the first array in the second array, exits the loop.
function array_intersect(array1, array2)
{
var mergedElems = {},
result = [],
firstArray, secondArray,
firstN = 0,
secondN = 0;
function generateStrKey(elem) {
var typeOfElem = typeof elem;
if (typeOfElem === 'object') {
typeOfElem += Object.prototype.toString.call(elem);
}
return [typeOfElem, elem.toString(), JSON.stringify(elem)].join('__');
}
// Executes the loops only if both arrays have values
if (array1.length && array2.length)
{
// Begins with the shortest array to optimize the algorithm
if (array1.length < array2.length) {
firstArray = array1;
secondArray = array2;
} else {
firstArray = array2;
secondArray = array1;
}
firstArray.forEach(function(elem) {
var key = generateStrKey(elem);
if (!(key in mergedElems)) {
mergedElems[key] = {elem: elem, inArray2: false};
// Increases the counter of unique values in the first array
firstN++;
}
});
secondArray.some(function(elem) {
var key = generateStrKey(elem);
if (key in mergedElems) {
if (!mergedElems[key].inArray2) {
mergedElems[key].inArray2 = true;
// Increases the counter of matches
secondN++;
// If all elements of first array have coincidence, then exits the loop
return (secondN === firstN);
}
}
});
Object.values(mergedElems).forEach(function(elem) {
if (elem.inArray2) {
result.push(elem.elem);
}
});
}
return result;
}
Here is underscore.js implementation:
_.intersection = function(array) {
if (array == null) return [];
var result = [];
var argsLength = arguments.length;
for (var i = 0, length = array.length; i < length; i++) {
var item = array[i];
if (_.contains(result, item)) continue;
for (var j = 1; j < argsLength; j++) {
if (!_.contains(arguments[j], item)) break;
}
if (j === argsLength) result.push(item);
}
return result;
};
Source: http://underscorejs.org/docs/underscore.html#section-62
Create an Object using one array and loop through the second array to check if the value exists as key.
function intersection(arr1, arr2) {
var myObj = {};
var myArr = [];
for (var i = 0, len = arr1.length; i < len; i += 1) {
if(myObj[arr1[i]]) {
myObj[arr1[i]] += 1;
} else {
myObj[arr1[i]] = 1;
}
}
for (var j = 0, len = arr2.length; j < len; j += 1) {
if(myObj[arr2[j]] && myArr.indexOf(arr2[j]) === -1) {
myArr.push(arr2[j]);
}
}
return myArr;
}
I think using an object internally can help with computations and could be performant too.
// Approach maintains a count of each element and works for negative elements too
function intersect(a,b){
const A = {};
a.forEach((v)=>{A[v] ? ++A[v] : A[v] = 1});
const B = {};
b.forEach((v)=>{B[v] ? ++B[v] : B[v] = 1});
const C = {};
Object.entries(A).map((x)=>C[x[0]] = Math.min(x[1],B[x[0]]))
return Object.entries(C).map((x)=>Array(x[1]).fill(Number(x[0]))).flat();
}
const x = [1,1,-1,-1,0,0,2,2];
const y = [2,0,1,1,1,1,0,-1,-1,-1];
const result = intersect(x,y);
console.log(result); // (7) [0, 0, 1, 1, 2, -1, -1]
I am using map even object could be used.
//find intersection of 2 arrs
const intersections = (arr1,arr2) => {
let arrf = arr1.concat(arr2)
let map = new Map();
let union = [];
for(let i=0; i<arrf.length; i++){
if(map.get(arrf[i])){
map.set(arrf[i],false);
}else{
map.set(arrf[i],true);
}
}
map.forEach((v,k)=>{if(!v){union.push(k);}})
return union;
}
This is a proposed standard: With the currently stage 2 proposal https://github.com/tc39/proposal-set-methods, you could use
mySet.intersection(mySet2);
Until then, you could use Immutable.js's Set, which inspired that proposal
Immutable.Set(mySet).intersect(mySet2)
I extended tarulen's answer to work with any number of arrays. It also should work with non-integer values.
function intersect() {
const last = arguments.length - 1;
var seen={};
var result=[];
for (var i = 0; i < last; i++) {
for (var j = 0; j < arguments[i].length; j++) {
if (seen[arguments[i][j]]) {
seen[arguments[i][j]] += 1;
}
else if (!i) {
seen[arguments[i][j]] = 1;
}
}
}
for (var i = 0; i < arguments[last].length; i++) {
if ( seen[arguments[last][i]] === last)
result.push(arguments[last][i]);
}
return result;
}
If your arrays are sorted, this should run in O(n), where n is min( a.length, b.length )
function intersect_1d( a, b ){
var out=[], ai=0, bi=0, acurr, bcurr, last=Number.MIN_SAFE_INTEGER;
while( ( acurr=a[ai] )!==undefined && ( bcurr=b[bi] )!==undefined ){
if( acurr < bcurr){
if( last===acurr ){
out.push( acurr );
}
last=acurr;
ai++;
}
else if( acurr > bcurr){
if( last===bcurr ){
out.push( bcurr );
}
last=bcurr;
bi++;
}
else {
out.push( acurr );
last=acurr;
ai++;
bi++;
}
}
return out;
}

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