How can i remove the duplicated elements in my array? - javascript

I used this code but with that i can only remove the next one and the previuous one if its equal
for (let i = 0; i < this.userlist.length; i++) {
if (this.userlist[i] == this.userlist[i+1])
this.userlist.splice(i+1, 1);
if (this.userlist[i-1] == this.userlist[i+1])
this.userlist.splice(i+1, 1);
}
How can i remove all the duplicated elements?
edit n°1
data() {
return {
formlogin: "",
userID: "Guest",
logged: false,
userlist: []
};
},
mounted() {
this.userID = localStorage.getItem("userID");
if (this.userID != "Guest") this.logged = localStorage.getItem("logged");
if (localStorage.userlist)
this.userlist = JSON.parse(localStorage.getItem("userlist"));
},
props: {},
methods: {
login: function() {
if (this.formlogin != "") {
this.userID = this.formlogin;
this.formlogin = "";
this.logged = true;
localStorage.setItem("logged", this.logged);
localStorage.setItem("userID", this.userID);
this.userlist.push(this.userID);
for (let i = 0; i < this.userlist.length; i++) {
if (this.userlist[i] == this.userlist[i + 1])
this.userlist.splice(i + 1, 1);
if (this.userlist[i - 1] == this.userlist[i + 1])
this.userlist.splice(i + 1, 1);
}
localStorage.setItem("userlist", JSON.stringify(this.userlist));
console.log("data sent :", this.userID, this.logged);
alert("Welcome : " + this.userID);
} else alert("cant login with a null username");
},
thats how my userlist will be updated.

es6 spread operator with Set()
var items = [4,5,4,6,3,4,5,2,23,1,4,4,4];
console.log([...new Set(items)]);
OR,
var items = [4,5,4,6,3,4,5,2,23,1,4,4,4];
console.log(Array.from(new Set(items)));
Using filter method
var items = [4,5,4,6,3,4,5,2,23,1,4,4,4];
var newItems = items.filter((item, i) => items.indexOf(item) === i);
console.log(newItems);
Using reduce method
var items = [4,5,4,6,3,4,5,2,23,1,4,4,4];
var newItems = items.reduce((uniq, item) => uniq.includes(item) ? uniq: [...uniq, item], []);
console.log(newItems);

You almost got it!
for (let i = 0; i < this.userlist.length; i++) {
if (this.userlist[i] == this.userlist[i+1]){
this.userlist.splice(i+1, 1);
i--;
}
}
In your solution, two elements are removed at most. What you can do instead is remove the next element an make sure that the index doesn't increase (hence the i--, so in the next iteration if will check the same index again).
This however only works for sorted lists. Check solanki's answer for a more generic one.

Using reduce you can do something like this. Check if the current index is same as the first index found in data
var data = ["user", "user", "user", "foo", "foo"]
var res = data.reduce((acc, elem, idx, arr)=> (arr.indexOf(elem) === idx ? [...acc, elem] : acc),[]);
console.log(res)

Related

Divide an array into subarray depending on string and join its items. Javascript

I would like to transform an array into another separing its items depending on a string data, and, when there are two or more items together and none of them is is the limit string data i would like to join then by "/". Something like this:
const stringLimit = "aa";
let arrayData =["b","c","aa","aa","d","c","aa","f"];
result:
arrayResult=["b/c","d/c","f];
I have try this, however, I think that there should be a better way
let stringItem;
let totalRouteDevice = new Array();
for (let index = 0; index < arrayData.length; index++) {
const item = arrayData [index];
if(item!=='aa' && item !== 'bb') {
stringItem = stringItem!=""?`${stringItem}/${item}`:stringItem
} else if(stringRouteItem!=="") {
totalRoute.push(stringItem);
stringItem ="";
}
}
I have try this, however, I think that there should be a better way
let stringItem;
let totalRouteDevice = new Array();
for (let index = 0; index < arrayData.length; index++) {
const item = arrayData [index];
if(item!=='aa' && item !== 'bb') {
stringItem = stringItem!=""?`${stringItem}/${item}`:stringItem
} else if(stringRouteItem!=="") {
totalRoute.push(stringItem);
stringItem ="";
}
}
Not saying this is better but you could group your data using reduce, splitting it by stringLimit, and then joining the groups by / as follows:
const stringLimit = 'aa'
const arrayData = ["b","c","aa","aa","d","c","aa","f"]
let arr = []
arrayData.reduce((acc, item, i) => {
if (item !== stringLimit) {
acc.push(item)
} else {
if (acc.length) {
arr.push(acc)
}
acc = []
}
if (item !== stringLimit && i === arrayData.length - 1) {
arr.push(acc)
}
return acc
}, [])
let result = arr.map((i) => i.join('/'))
console.log(result)

Javascript includes and map together [duplicate]

I am supposed to write a program in JavaScript to find all the anagrams within a series of words provided. e.g.:
monk, konm, nkom, bbc, cbb, dell, ledl, llde
The output should be categorised into rows:
1. monk konm, nkom;
2. bbc cbb;
3. dell ledl, llde;
I already sorted them into alphabetical order and put them into an array. i.e.:
kmno kmno bbc bbc dell dell
However I am stuck in comparing and finding the matching anagram within the array.
Any help will be greatly appreciated.
Javascript objects are excellent for this purpose, since they are essentially key/value stores:
// Words to match
var words = ["dell", "ledl", "abc", "cba"];
// The output object
var anagrams = {};
for (var i in words) {
var word = words[i];
// sort the word like you've already described
var sorted = sortWord(word);
// If the key already exists, we just push
// the new word on the the array
if (anagrams[sorted] != null) {
anagrams[sorted].push(word);
}
// Otherwise we create an array with the word
// and insert it into the object
else {
anagrams[sorted] = [ word ];
}
}
// Output result
for (var sorted in anagrams) {
var words = anagrams[sorted];
var sep = ",";
var out = "";
for (var n in words) {
out += sep + words[n];
sep = "";
}
document.writeln(sorted + ": " + out + "<br />");
}
Here is my take:
var input = "monk, konm, bbc, cbb, dell, ledl";
var words = input.split(", ");
for (var i = 0; i < words.length; i++) {
var word = words[i];
var alphabetical = word.split("").sort().join("");
for (var j = 0; j < words.length; j++) {
if (i === j) {
continue;
}
var other = words[j];
if (alphabetical === other.split("").sort().join("")) {
console.log(word + " - " + other + " (" + i + ", " + j + ")");
}
}
}
where the output would be (the word, the match and the index of both):
monk - konm (0, 1)
konm - monk (1, 0)
bbc - cbb (2, 3)
cbb - bbc (3, 2)
dell - ledl (4, 5)
ledl - dell (5, 4)
To get the characters in the in alphabetical order, I used split("") ot get an array, called sort() and used join("") to get a string from the array.
Simple Solution
function anagrams(stringA, stringB) {
return cleanString(stringA) === cleanString(stringB);
}
function cleanString(str) {
return str.replace(/[^\w]/g).toLowerCase().split('').sort().join()
}
anagrams('monk','konm')
If it is anagrams function will return true otherwise false
I worked through a similar question to this today and wanted to share the results of my work. I was focused on just detecting the anagram so processing the list of words was not part of my exercise but this algorithm should provide a highly performant way to detect an anagram between two words.
function anagram(s1, s2){
if (s1.length !== s2.length) {
// not the same length, can't be anagram
return false;
}
if (s1 === s2) {
// same string must be anagram
return true;
}
var c = '',
i = 0,
limit = s1.length,
match = 0,
idx;
while(i < s1.length){
// chomp the next character
c = s1.substr(i++, 1);
// find it in the second string
idx = s2.indexOf(c);
if (idx > -1) {
// found it, add to the match
match++;
// assign the second string to remove the character we just matched
s2 = s2.substr(0, idx) + s2.substr(idx + 1);
} else {
// not found, not the same
return false;
}
}
return match === s1.length;
}
I think technically is can be solved like this:
function anagram(s1, s2){
return s1.split("").sort().join("") === s2.split("").sort().join("");
}
The reason I chose the earlier approach is that it is more performant for larger strings since you don't need to sort either string, convert to an array or loop through the entire string if any possible failure case is detected.
Probably not the most efficient way, but a clear way around using es6
function sortStrChars(str) {
if (!str) {
return;
}
str = str.split('');
str = str.sort();
str = str.join('');
return str;
}
const words = ["dell", "ledl", "abc", "cba", 'boo'];
function getGroupedAnagrams(words) {
const anagrams = {}; // {abc:[abc,cba], dell:[dell, ledl]}
words.forEach((word) => {
const sortedWord = sortStrChars(word);
if (anagrams[sortedWord]) {
return anagrams[sortedWord].push(word);
}
anagrams[sortedWord] = [word];
});
return anagrams;
}
const groupedAnagrams = getGroupedAnagrams(words);
for (const sortedWord in groupedAnagrams) {
console.log(groupedAnagrams[sortedWord].toString());
}
I had this question in an interview. Given an array of words ['cat', 'dog', 'tac', 'god', 'act'], return an array with all the anagrams grouped together. Makes sure the anagrams are unique.
var arr = ['cat', 'dog', 'tac', 'god', 'act'];
var allAnagrams = function(arr) {
var anagrams = {};
arr.forEach(function(str) {
var recurse = function(ana, str) {
if (str === '')
anagrams[ana] = 1;
for (var i = 0; i < str.length; i++)
recurse(ana + str[i], str.slice(0, i) + str.slice(i + 1));
};
recurse('', str);
});
return Object.keys(anagrams);
}
console.log(allAnagrams(arr));
//["cat", "cta", "act", "atc", "tca", "tac", "dog", "dgo", "odg", "ogd", "gdo", "god"]
Best and simple way to solve is using for loops and traversing it to each string and then store their result in object.
Here is the solution :-
function anagram(str1, str2) {
if (str1.length !== str2.length) {
return false;
}
const result = {};
for (let i=0;i<str1.length;i++) {
let char = str1[i];
result[char] = result[char] ? result[char] += 1 : result[char] = 1;
}
for (let i=0;i<str2.length;i++) {
let char = str2[i];
if (!result[char]) {
return false;
}
else {
result[char] = -1;
}
}
return true;
}
console.log(anagram('ronak','konar'));
I know this is an ancient post...but I just recently got nailed during an interview on this one. So, here is my 'new & improved' answer:
var AnagramStringMiningExample = function () {
/* Author: Dennis Baughn
* This has also been posted at:
* http://stackoverflow.com/questions/909449/anagrams-finder-in-javascript/5642437#5642437
* Free, private members of the closure and anonymous, innner function
* We will be building a hashtable for anagrams found, with the key
* being the alphabetical char sort (see sortCharArray())
* that the anagrams all have in common.
*/
var dHash = {};
var sortCharArray = function(word) {
return word.split("").sort().join("");
};
/* End free, private members for the closure and anonymous, innner function */
/* This goes through the dictionary entries.
* finds the anagrams (if any) for each word,
* and then populates them in the hashtable.
* Everything strictly local gets de-allocated
* so as not to pollute the closure with 'junk DNA'.
*/
(function() {
/* 'dictionary' referring to English dictionary entries. For a real
* English language dictionary, we could be looking at 20,000+ words, so
* an array instead of a string would be needed.
*/
var dictionaryEntries = "buddy,pan,nap,toot,toto,anestri,asterin,eranist,nastier,ratines,resiant,restain,retains,retinas,retsina,sainter,stainer,starnie,stearin";
/* This could probably be refactored better.
* It creates the actual hashtable entries. */
var populateDictionaryHash = function(keyword, newWord) {
var anagrams = dHash[keyword];
if (anagrams && anagrams.indexOf(newWord) < 0)
dHash[keyword] = (anagrams+','+newWord);
else dHash[keyword] = newWord;
};
var words = dictionaryEntries.split(",");
/* Old School answer, brute force
for (var i = words.length - 1; i >= 0; i--) {
var firstWord = words[i];
var sortedFirst = sortCharArray(firstWord);
for (var k = words.length - 1; k >= 0; k--) {
var secondWord = words[k];
if (i === k) continue;
var sortedSecond = sortCharArray(secondWord);
if (sortedFirst === sortedSecond)
populateDictionaryHash(sortedFirst, secondWord);
}
}/*
/*Better Method for JS, using JS Array.reduce(callback) with scope binding on callback function */
words.reduce(function (prev, cur, index, array) {
var sortedFirst = this.sortCharArray(prev);
var sortedSecond = this.sortCharArray(cur);
if (sortedFirst === sortedSecond) {
var anagrams = this.dHash[sortedFirst];
if (anagrams && anagrams.indexOf(cur) < 0)
this.dHash[sortedFirst] = (anagrams + ',' + cur);
else
this.dHash[sortedFirst] = prev + ','+ cur;
}
return cur;
}.bind(this));
}());
/* return in a nice, tightly-scoped closure the actual function
* to search for any anagrams for searchword provided in args and render results.
*/
return function(searchWord) {
var keyToSearch = sortCharArray(searchWord);
document.writeln('<p>');
if (dHash.hasOwnProperty(keyToSearch)) {
var anagrams = dHash[keyToSearch];
document.writeln(searchWord + ' is part of a collection of '+anagrams.split(',').length+' anagrams: ' + anagrams+'.');
} else document.writeln(searchWord + ' does not have anagrams.');
document.writeln('<\/p>');
};
};
Here is how it executes:
var checkForAnagrams = new AnagramStringMiningExample();
checkForAnagrams('toot');
checkForAnagrams('pan');
checkForAnagrams('retinas');
checkForAnagrams('buddy');
Here is the output of the above:
toot is part of a collection of 2
anagrams: toto,toot.
pan is part of a collection of 2
anagrams: nap,pan.
retinas is part of a collection of 14
anagrams:
stearin,anestri,asterin,eranist,nastier,ratines,resiant,restain,retains,retinas,retsina,sainter,stainer,starnie.
buddy does not have anagrams.
My solution to this old post:
// Words to match
var words = ["dell", "ledl", "abc", "cba"],
map = {};
//Normalize all the words
var normalizedWords = words.map( function( word ){
return word.split('').sort().join('');
});
//Create a map: normalizedWord -> real word(s)
normalizedWords.forEach( function ( normalizedWord, index){
map[normalizedWord] = map[normalizedWord] || [];
map[normalizedWord].push( words[index] );
});
//All entries in the map with an array with size > 1 are anagrams
Object.keys( map ).forEach( function( normalizedWord , index ){
var combinations = map[normalizedWord];
if( combinations.length > 1 ){
console.log( index + ". " + combinations.join(' ') );
}
});
Basically I normalize every word by sorting its characters so stackoverflow would be acefkloorstvw, build a map between normalized words and the original words, determine which normalized word has more than 1 word attached to it -> That's an anagram.
Maybe this?
function anagram (array) {
var organized = {};
for (var i = 0; i < array.length; i++) {
var word = array[i].split('').sort().join('');
if (!organized.hasOwnProperty(word)) {
organized[word] = [];
}
organized[word].push(array[i]);
}
return organized;
}
anagram(['kmno', 'okmn', 'omkn', 'dell', 'ledl', 'ok', 'ko']) // Example
It'd return something like
{
dell: ['dell', 'ledl'],
kmno: ['kmno', okmn', 'omkn'],
ko: ['ok', ko']
}
It's a simple version of what you wanted and certainly it could be improved avoiding duplicates for example.
My two cents.
This approach uses XOR on each character in both words. If the result is 0, then you have an anagram. This solution assumes case sensitivity.
let first = ['Sower', 'dad', 'drown', 'elbow']
let second = ['Swore', 'add', 'down', 'below']
// XOR all characters in both words
function isAnagram(first, second) {
// Word lengths must be equal for anagram to exist
if (first.length !== second.length) {
return false
}
let a = first.charCodeAt(0) ^ second.charCodeAt(0)
for (let i = 1; i < first.length; i++) {
a ^= first.charCodeAt(i) ^ second.charCodeAt(i)
}
// If a is 0 then both words have exact matching characters
return a ? false : true
}
// Check each pair of words for anagram match
for (let i = 0; i < first.length; i++) {
if (isAnagram(first[i], second[i])) {
console.log(`'${first[i]}' and '${second[i]}' are anagrams`)
} else {
console.log(`'${first[i]}' and '${second[i]}' are NOT anagrams`)
}
}
function isAnagram(str1, str2) {
var str1 = str1.toLowerCase();
var str2 = str2.toLowerCase();
if (str1 === str2)
return true;
var dict = {};
for(var i = 0; i < str1.length; i++) {
if (dict[str1[i]])
dict[str1[i]] = dict[str1[i]] + 1;
else
dict[str1[i]] = 1;
}
for(var j = 0; j < str2.length; j++) {
if (dict[str2[j]])
dict[str2[j]] = dict[str2[j]] - 1;
else
dict[str2[j]] = 1;
}
for (var key in dict) {
if (dict[key] !== 0)
return false;
}
return true;
}
console.log(isAnagram("hello", "olleh"));
I have an easy example
function isAnagram(strFirst, strSecond) {
if(strFirst.length != strSecond.length)
return false;
var tempString1 = strFirst.toLowerCase();
var tempString2 = strSecond.toLowerCase();
var matched = true ;
var cnt = 0;
while(tempString1.length){
if(tempString2.length < 1)
break;
if(tempString2.indexOf(tempString1[cnt]) > -1 )
tempString2 = tempString2.replace(tempString1[cnt],'');
else
return false;
cnt++;
}
return matched ;
}
Calling function will be isAnagram("Army",Mary);
Function will return true or false
let words = ["dell", "ledl","del", "abc", "cba", 'boo'];
//sort each item
function sortArray(data){
var r=data.split('').sort().join().replace(/,/g,'');
return r;
}
var groupObject={};
words.forEach((item)=>{
let sorteditem=sortArray(item);
//Check current item is in the groupObject or not.
//If not then add it as an array
//else push it to the object property
if(groupObject[sorteditem])
return groupObject[sorteditem].push(item);
groupObject[sorteditem]=[sorteditem];
});
//to print the result
for(i=0;i<Object.keys(groupObject).length;i++)
document.write(groupObject[Object.keys(groupObject)[i]] + "<br>");
/* groupObject value:
abc: (2) ["abc", "cba"]
boo: ["boo"]
del: ["del"]
dell: (2) ["dell", "ledl"]
OUTPUT:
------
dell,ledl
del
abc,cba
boo
*/
Compare string length, if not equal, return false
Create character Hashmap which stores count of character in strA e.g. Hello --> {H: 1, e: 1, l: 2, o: 1}
Loop over the second string and lookup the current character in Hashmap. If not exist, return false, else decrement the value by 1
If none of the above return falsy, it must be an anagram
Time complexity: O(n)
function isAnagram(strA: string, strB: string): boolean {
const strALength = strA.length;
const strBLength = strB.length;
const charMap = new Map<string, number>();
if (strALength !== strBLength) {
return false;
}
for (let i = 0; i < strALength; i += 1) {
const current = strA[i];
charMap.set(current, (charMap.get(current) || 0) + 1);
}
for (let i = 0; i < strBLength; i += 1) {
const current = strB[i];
if (!charMap.get(current)) {
return false;
}
charMap.set(current, charMap.get(current) - 1);
}
return true;
}
function findAnagram(str1, str2) {
let mappedstr1 = {}, mappedstr2 = {};
for (let item of str1) {
mappedstr1[item] = (mappedstr1[item] || 0) + 1;
}
for (let item2 of str2) {
mappedstr2[item2] = (mappedstr2[item2] || 0) + 1;
}
for (let key in mappedstr1) {
if (!mappedstr2[key]) {
return false;
}
if (mappedstr1[key] !== mappedstr2[key]) {
return false;
}
}
return true;
}
console.log(findAnagram("hello", "hlleo"));
Another example only for comparing 2 strings for an anagram.
function anagram(str1, str2) {
if (str1.length !== str2.length) {
return false;
} else {
if (
str1.toLowerCase().split("").sort().join("") ===
str2.toLowerCase().split("").sort().join("")
) {
return "Anagram";
} else {
return "Not Anagram";
}
}
}
console.log(anagram("hello", "olleh"));
console.log(anagram("ronak", "konar"));
const str1 ="1123451"
const str2 = "2341151"
function anagram(str1,str2) {
let count = 0;
if (str1.length!==str2.length) { return false;}
for(i1=0;i1<str1.length; i1++) {
for (i2=0;i2<str2.length; i2++) {
if (str1[i1]===str2[i2]){
count++;
break;
}
}
}
if (count===str1.length) { return true}
}
anagram(str1,str2)
Another solution for isAnagram using reduce
const checkAnagram = (orig, test) => {
return orig.length === test.length
&& orig.split('').reduce(
(acc, item) => {
let index = acc.indexOf(item);
if (index >= 0) {
acc.splice(index, 1);
return acc;
}
throw new Error('Not an anagram');
},
test.split('')
).length === 0;
};
const isAnagram = (tester, orig, test) => {
try {
return tester(orig, test);
} catch (e) {
return false;
}
}
console.log(isAnagram(checkAnagram, '867443', '473846'));
console.log(isAnagram(checkAnagram, '867443', '473846'));
console.log(isAnagram(checkAnagram, '867443', '475846'));
var check=true;
var str="cleartrip";
var str1="tripclear";
if(str.length!=str1.length){
console.log("Not an anagram");
check=false;
}
console.log(str.split("").sort());
console.log("----------"+str.split("").sort().join(''));
if(check){
if((str.split("").sort().join(''))===((str1.split("").sort().join('')))){
console.log("Anagram")
}
else{
console.log("not a anagram");
}
}
Here is my solution which addresses a test case where the input strings which are not anagrams, can be removed from the output. Hence the output contains only the anagram strings. Hope this is helpful.
/**
* Anagram Finder
* #params {array} wordArray
* #return {object}
*/
function filterAnagram(wordArray) {
let outHash = {};
for ([index, word] of wordArray.entries()) {
let w = word.split("").sort().join("");
outHash[w] = !outHash[w] ? [word] : outHash[w].concat(word);
}
let filteredObject = Object.keys(outHash).reduce(function(r, e) {
if (Object.values(outHash).filter(v => v.length > 1).includes(outHash[e])) r[e] = outHash[e]
return r;
}, {});
return filteredObject;
}
console.log(filterAnagram(['monk', 'yzx','konm', 'aaa', 'ledl', 'bbc', 'cbb', 'dell', 'onkm']));
i have recently faced this in the coding interview, here is my solution.
function group_anagrams(arr) {
let sortedArr = arr.map(item => item.split('').sort().join(''));
let setArr = new Set(sortedArr);
let reducedObj = {};
for (let setItem of setArr) {
let indexArr = sortedArr.reduce((acc, cur, index) => {
if (setItem === cur) {
acc.push(index);
}
return acc;
}, []);
reducedObj[setItem] = indexArr;
}
let finalArr = [];
for (let reduceItem in reducedObj) {
finalArr.push(reducedObj[reduceItem].map(item => arr[item]));
}
return finalArr;
}
group_anagrams(['car','cra','rca', 'cheese','ab','ba']);
output will be like
[
["car", "cra", "rca"],
["cheese"],
["ab", "ba"]
]
My solution has more code, but it avoids using .sort(), so I think this solution has less time complexity. Instead it makes a hash out of every word and compares the hashes:
const wordToHash = word => {
const hash = {};
// Make all lower case and remove spaces
[...word.toLowerCase().replace(/ /g, '')].forEach(letter => hash[letter] ? hash[letter] += 1 : hash[letter] = 1);
return hash;
}
const hashesEqual = (obj1, obj2) => {
const keys1 = Object.keys(obj1), keys2 = Object.keys(obj2);
let match = true;
if(keys1.length !== keys2.length) return false;
for(const key in keys1) { if(obj1[key] !== obj2[key]) match = false; break; }
return match;
}
const checkAnagrams = (word1, word2) => {
const hash1 = wordToHash(word1), hash2 = wordToHash(word2);
return hashesEqual(hash1, hash2);
}
console.log( checkAnagrams("Dormitory", "Dirty room") );
/*This is good option since
logic is easy,
deals with duplicate data,
Code to check anagram in an array,
shows results in appropriate manner,
function check can be separately used for comparing string in this regards with all benefits mentioned above.
*/
var words = ["deuoll", "ellduo", "abc","dcr","frt", "bu","cba","aadl","bca","elduo","bac","acb","ub","eldou","ellduo","ert","tre"];
var counter=1;
var ele=[];
function check(str1,str2)
{
if(str2=="")
return false;
if(str1.length!=str2.length)
return false;
var r1=[...(new Set (str1.split('').sort()))];
var r2=[...(new Set (str2.split('').sort()))];
var flag=true;
r1.forEach((item,index)=>
{
if(r2.indexOf(item)!=index)
{ flag=false;}
});
return flag;
}
var anagram=function ()
{
for(var i=0;i<words.length && counter!=words.length ;i++)
{
if(words[i]!="")
{
document.write("<br>"+words[i]+":");
counter++;
}
for(var j=i+1;j<words.length && counter !=words.length+1;j++)
{
if(check(words[i],words[j]))
{
ele=words[j];
document.write(words[j]+"&nbsp");
words[j]="";
counter++;
}
}
}
}
anagram();
If you just need count of anagrams
const removeDuplicatesAndSort = [...new Set(yourString.split(', '))].map(word => word.split('').sort().join())
const numberOfAnagrams = removeDuplicatesAndSort.length - [...new Set(removeDuplicatesAndSort)].length
function isAnagram(str1, str2){
let count = 0;
if (str1.length !== str2.length) {
return false;
} else {
let val1 = str1.toLowerCase().split("").sort();
let val2 = str2.toLowerCase().split("").sort();
for (let i = 0; i < val2.length; i++) {
if (val1[i] === val2[i]) {
count++;
}
}
if (count == str1.length) {
return true;
}
}
return false;
}
console.log(isAnagram("cristian", "Cristina"))
function findAnagrams (str, arr){
let newStr = "";
let output = [];
for (let i = 0; i < arr.length; i++) {
for (let j = 0; j < arr[i].length; j++) {
for (let k = 0; k < str.length; k++) {
if (str[k] === arr[i][j] && str.length === arr[i].length) {
newStr += arr[i][j];
}
}
} if(newStr.length === str.length){
output.push(newStr);
newStr = "";
}
}
return output;
}
const getAnagrams = (...args) => {
const anagrams = {};
args.forEach((arg) => {
const letters = arg.split("").sort().join("");
if (anagrams[letters]) {
anagrams[letters].push(arg);
} else {
anagrams[letters] = [arg];
}
});
return Object.values(anagrams);
}
function isAnagaram(str1, str2){
if(str1.length!== str2.length){
return false;
}
var obj1 = {};
var obj2 = {};
for(var arg of str1){
obj1[arg] = (obj1[arg] || 0 ) + 1 ;
}
for(var arg of str2){
obj2[arg] = (obj2[arg] || 0 ) + 1 ;
}
for( var key in obj1){
if(obj1[key] !== obj2[key]){
return false;
}
}
return true;
}
console.log(isAnagaram('texttwisttime' , 'timetwisttext'));
let validAnagram = (firstString, secondString) => {
if (firstString.length !== secondString.length) {
return false;
}
let secondStringArr = secondString.split('');
for (var char of firstString) {
charIndexInSecondString = secondString.indexOf(char);
if (charIndexInSecondString === -1) {
return false;
}
secondString = secondString.replace(char, '');
}
return true;
}

splice not working while using in for loop

i am trying to remove an item from array but its not working i am using following code
vm.Continue = function () {
$scope.invalidList = [];
if (vm.errorexsist === true) {
var table = document.getElementById('errortabel');
for (var r = 0, n = table.rows.length; r < n; r++) {
if (r > 0) {
$scope.invalidList.push({
Error: table.rows[r].cells[0].val ,
FirstName: table.rows[r].cells[1].children[0].value,
Email: table.rows[r].cells[2].children[0].value,
PhoneNumber: table.rows[r].cells[3].children[0].value,
Location: table.rows[r].cells[4].children[0].value,
Department: table.rows[r].cells[5].children[0].value
});
}
}
var i = $scope.invalidList.length;
while (i--) {
if (IsEmailValid($scope.invalidList[i].Email) === true && IsPhoneNumValid($scope.invalidList[i].PhoneNumber) === true) {
$scope.invalidList.splice(i, 1);
}
}
}
};
the above code always removes item at zero while condition of if else does not meet.
Array.splice will modify the length of an array, so you should iterate backwards through your array otherwise every time you call splice, the index and length of your for loop become obsolete.
var i = $scope.invalidList.length
while (i--) {
if (IsEmailValid($scope.invalidList[i].Email) === true && IsPhoneNumValid($scope.invalidList[i].PhoneNumber) === true) {
$scope.invalidList.splice(i, 1);
}
}
If you're looking to remove items from an array based on a condition, Array.filter is designed for this exact purpose:
$scope.invalidList = $scope.invalidList.filter(item => !IsEmailValid(item.Email) || !IsPhoneNumValid(item.PhoneNumber))

Get new fileName as new1, new2 new3 and so on

I have an array which contains the FileNames as New1, New2.... etc
I'm trying to code a function which returns me the new file name which is not present in the array and is the next consecutive number.
Let's say I have array as
Let array = [{"Name" : "New"},{"Name" : "New1"},{"Name" : "New3"}]
Then I want next new file name to be New2
How can I do this in java script?
Using the below function you will be able to pass the default filename and file array both. So this function will work for any kind of filenames and find the missing number in between if there is any.
function getNewFileName(FileArr, defaultName){
let isKeepTrying = true;
let fileName = defaultName;
let defaultFileName = defaultName;
let counter = 0;
let namearr= [];
for(let i=0; i<FileArr.length ; i++ ){
let newFileName = FileArr[i].Name;
namearr.push(newFileName);
}
do{
if(namearr.indexOf(fileName) > -1) {
counter += 1;
fileName = defaultFileName + counter;
isKeepTrying = true;
}
else {
isKeepTrying = false;
}
} while (isKeepTrying);
return fileName;
};
var files = [{"Name": "New"}, {"Name":"New1"}, {"Name":"New3"}]
console.log(getNewFileName(files,"New"))
This function should help you determine what is the number that is missing if you have a partially consecutive sequence. I've edited the sample array's objects so that the key is name, and not "Name".
let array = [{name: "New"},{name: "New1"},{name: "New3"}]
let nextNumber = (arr) => {
return arr
.map(o => o.name)
.map(n => n.substring(3))
.filter(s => s != "")
.map(s => parseInt(s))
.find((e, _i, a) => {
if (!a.includes(e + 1))
return true;
}) + 1
}
console.log(nextNumber(array))
YOu can create a substring and use forEach to loop the array .Then check the index with the substring
let array = [{
"Name": "New"
}, {
"Name": "New1"
}, {
"Name": "New3"
}];
array.forEach(function(item, index) {
if (index === 0) {
if (item.Name.slice(3) !== '') {
console.log("new" + index);
}
} else {
if (item.Name.slice(3) != index) {
console.log("new" + index);
}
}
})

How can I count the duplicate property values of an object?

I have a list of emails in my object. Such as:
{
email1: yada#gmail.com,
email2: hada#gmail.com,
email3: hada#gmail.com
}
I want to find the duplicate emails, count the duplicates values for each and then within another object, show the number of duplicate emails found for each email.
How can I do this?
// Input
var input = {
email1: "yada#gmail.com",
email2: "hada#gmail.com",
email3: "hada#gmail.com"
}
var output = {};
for (var key in input) {
output[input[key]] = (output[input[key]] || 0) + 1;
}
for (var key in output) {
if (output[key] > 1) {
console.log(key, output[key]);
}
}
JSBIN
var input = {
email1: 'yada#gmail.com',
email2: 'hada#gmail.com',
email3: 'hada#gmail.com'
}
// first get a count of each:
var addressCount = Object.keys(input) // get the keys of the object
.map(function(k) { return input[k] }) // map to get an array of the addresses
.reduce(function(acc, email) { // reduce that array using an object
acc[email] = (acc[email] || 0) + 1 // to keep totals for each distinct email
return acc
}, {})
console.log(addressCount)
// then keep the ones with count > 1
var duplicates = Object.keys(addressCount)
.reduce(function(acc, email) {
if (addressCount[email] > 1)
acc[email] = addressCount[email]
return acc
}, {})
console.log(duplicates)
Hope this snippet will be useful
var obj = {
email1: 'yada #gmail.com',
email2: 'hada #gmail.com',
email3: 'hada #gmail.com'
}
var tempArray = []; // An array to track what is not duplicate
var newObj = {} // It is new object without duplicate
for (var keys in obj) {
// check in array if a key value is present
if (tempArray.indexOf(obj[keys]) === -1) {
// if not present add in the array, so next time it wont add again
tempArray.push(obj[keys]);
// in new object create a relevant key and add it's value
newObj[keys] = obj[keys]
}
}
console.log(newObj)
DEMO
You can try something like this:
Logic:
Create 2 objects,one for count and other for duplicates.
Loop over emails and set values in counts with necessary value.
If count is more than 1, set its value in dupes as well.
var input = {
email1: 'yada#gmail.com',
email2: 'hada#gmail.com',
email3: 'hada#gmail.com'
}
var counts = {};
var dupes = {};
for(var k in input){
var v = input[k];
var count = (counts[v] || 0) + 1;
counts[v] = count;
if(count > 1)
dupes[v] = count
}
console.log(counts, dupes)
Maybe something like this:
function countEmails(emails) {
return Object
.keys(emails)
.map(email => emails[email])
.reduce((counter, email) => {
return Object.assign({}, counter, {
[email]: counter[email] ? (counter[email] + 1) : 1,
});
}, {});
}
const emails = {
email1: 'asdf#asdf.asdf',
email2: 'asdf#asdf.asdf',
email3: 'qwer#qwer.qwer',
};
console.log(countEmails(emails)); // { 'asdf#asdf.asdf': 2, 'qwer#qwer.qwer': 1 }

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