29

just wondering, is there a way to add multiple conditions to a .includes method, for example:

var value = str.includes("hello", "hi", "howdy");

imagine the comma states "or" (it's asking now if the string contains hello hi or howdy. so only if one, and only one of the conditions is true.

is there a method of doing that?

  • 1
    or would imply that at least one match would be sufficient. – robertklep Jun 18 '16 at 14:06
13

That should work even if one, and only one of the conditions is true :

var str = "bonjour le monde vive le javascript";
var arr = ['bonjour','europe', 'c++'];

function contains(target, pattern){
    var value = 0;
    pattern.forEach(function(word){
      value = value + target.includes(word);
    });
    return (value === 1)
}

console.log(contains(str, arr));
  • thank-you, very helpful. – user6234002 Jun 19 '16 at 6:13
72

You can use the .some method referenced here.

The some() method tests whether at least one element in the array passes the test implemented by the provided function.

// test cases
var str1 = 'hi, how do you do?';
var str2 = 'regular string';

// does the test strings contains this terms?
var conditions = ["hello", "hi", "howdy"];

// run the tests agains every element in the array
var test1 = conditions.some(el => str1.includes(el));
var test2 = conditions.some(el => str2.includes(el));

// display results
console.log(str1, ' ===> ', test1);
console.log(str2, ' ===> ', test2);

  • 1
    thank you. more practical. – iedmrc Jan 3 '18 at 9:30
  • 1
    Point of note: some() is a method, not an operator. Otherwise, good answer. – Utkanos Jan 7 '18 at 18:01
  • Point taken. Thank you – dinigo Jan 9 '18 at 11:28
13

With includes(), no, but you can achieve the same thing with REGEX via test():

var value = /hello|hi|howdy/.test(str);

Or, if the words are coming from a dynamic source:

var words = array('hello', 'hi', 'howdy');
var value = new RegExp(words.join('|')).test(str);

The REGEX approach is a better idea because it allows you to match the words as actual words, not substrings of other words. You just need the word boundary marker \b, so:

var str = 'hilly';
var value = str.includes('hi'); //true, even though the word 'hi' isn't found
var value = /\bhi\b/.test(str); //false - 'hi' appears but not as its own word
  • 1
    brilliant, perfect thank-you very much. – user6234002 Jun 18 '16 at 11:44
  • This will not work if the words contain special regexp characters. Also, this won't satisfy the OP's apparent requirement it match only if there's a match with a single word. – user663031 Jun 18 '16 at 13:38

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