5

So, you can easily check if a string contains a particular substring using the .includes() method.

I'm interested in finding if a string contains a word.

For example, if I apply a search for "on" for the string, "phones are good", it should return false. And, it should return true for "keep it on the table".

1
  • 1
    E.g. simply allow white space on each side of the word, or use \bword\b
    – Asons
    Mar 14, 2019 at 13:09

8 Answers 8

15

You first need to convert it into array using split() and then use includes()

string.split(" ").includes("on")

Just need to pass whitespace " " to split() to get all words

13
  • 3
    What if the words are separated by a comma?
    – adiga
    Mar 14, 2019 at 13:15
  • This won't work if the word is followed by a comma
    – Asons
    Mar 14, 2019 at 13:16
  • 4
    .includes() works on strings as well as arrays, so .split() isn't needed. Mar 14, 2019 at 13:19
  • @adiga OP didn't asked for the seperation of ,
    – Maheer Ali
    Mar 14, 2019 at 13:20
  • 1
    @Scott Marcus yes it works on the strings but he want to match whole word. And includes on string doesnot match whole word
    – Maheer Ali
    Mar 14, 2019 at 13:20
4

You can .split() your string by spaces (\s+) into an array, and then use .includes() to check if the array of strings has your word within it:

const hasWord = (str, word) => 
  str.split(/\s+/).includes(word);
  
console.log(hasWord("phones are good", "on"));
console.log(hasWord("keep it on the table", "on"));

If you are worried about punctuation, you can remove it first using .replace() (as shown in this answer) and then split():

const hasWord = (str, word) => 
  str.replace(/[.,\/#!$%\^&\*;:{}=\-_`~()]/g,"").split(/\s+/).includes(word);
  
console.log(hasWord("phones are good son!", "on"));
console.log(hasWord("keep it on, the table", "on"));

3
  • 1
    Looks like a good answer to me. No idea why ppl downvote this without giving their 2cents. Upvoting it.
    – Marcia Ong
    Jul 9, 2020 at 9:02
  • 1
    @MarciaOng thanks :) glad I wasn’t the only one thinking the -1 was unjustified Jul 9, 2020 at 9:04
  • 1
    @NickParsons great answer. People should read and understand before voting. This was exactly what I was looking for.
    – Al Rosado
    Jul 20, 2020 at 5:25
3

You can split and then try to find:

const str = 'keep it on the table';
const res =  str.split(/[\s,\?\,\.!]+/).some(f=> f === 'on');
console.log(res);

In addition, some method is very efficient as it will return true if any predicate is true.

2
  • and when it has !,.,; etc? Mar 14, 2019 at 13:15
  • @epascarello thanks for great comment! I've edited my answer.
    – StepUp
    Mar 14, 2019 at 13:23
3

This is called a regex - regular expression

You can use of 101regex website when you need to work around them (it helps). Words with custom separators aswell.


function checkWord(word, str) {
  const allowedSeparator = '\\\s,;"\'|';

  const regex = new RegExp(
    `(^.*[${allowedSeparator}]${word}$)|(^${word}[${allowedSeparator}].*)|(^${word}$)|(^.*[${allowedSeparator}]${word}[${allowedSeparator}].*$)`,

    // Case insensitive
    'i',
  );
  
  return regex.test(str);
}

[
  'phones are good',
  'keep it on the table',
  'on',
  'keep iton the table',
  'keep it on',
  'on the table',
  'the,table,is,on,the,desk',
  'the,table,is,on|the,desk',
  'the,table,is|the,desk',
].forEach((x) => {
  console.log(`Check: ${x} : ${checkWord('on', x)}`);
});


Explaination :

I am creating here multiple capturing groups for each possibily :

(^.*\son$) on is the last word

(^on\s.*) on is the first word

(^on$) on is the only word

(^.*\son\s.*$) on is an in-between word

\s means a space or a new line

const regex = /(^.*\son$)|(^on\s.*)|(^on$)|(^.*\son\s.*$)/i;

console.log(regex.test('phones are good'));
console.log(regex.test('keep it on the table'));
console.log(regex.test('on'));
console.log(regex.test('keep iton the table'));
console.log(regex.test('keep it on'));
console.log(regex.test('on the table'));


1
  • Fails on strings that end with a period. For example "keep it on." Oct 26, 2021 at 13:01
1

You can use .includes() and check for the word. To make sure it is a word and not part of another word, verify that the place you found it in is followed by a space, comma, period, etc and also has one of those before it.

2
  • 1
    or better use regex
    – Aarif
    Mar 14, 2019 at 13:11
  • @Aarif also a good way of doing it.
    – gkgkgkgk
    Mar 14, 2019 at 13:15
0

A simple version could just be splitting on the whitespace and looking through the resulting array for the word:

"phones are good".split(" ").find(word => word === "on") // undefined

"keep it on the table".split(" ").find(word => word === "on") // "on"

This just splits by whitespace though, when you need parse text (depending on your input) you'll encounter more word delimiters than whitespace. In that case you could use a regex to account for these characters. Something like:

"Phones are good, aren't they? They are. Yes!".split(/[\s,\?\,\.!]+/)
-2

I would go with the following assumptions:

  1. Words the start of a sentence always have a trailing space.
  2. Words at the end of a sentence always have a preceding space.
  3. Words in the middle of a sentence always have a trailing and preceding space.

Therefore, I would write my code as follows:

function containsWord(word, sentence) {
    return (
       sentence.startsWith(word.trim() + " ") ||
       sentence.endsWith(" " + word.trim()) ||
       sentence.includes(" " + word.trim() + " "));
}

console.log(containsWord("test", "This is a test of the containsWord function."));

-2

Try the following -

var mainString = 'codehandbook'
var substr = /hand/
var found = substr.test(mainString)
if(found){
  console.log('Substring found !!')
} else {
  console.log('Substring not found !!')
}

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