5

I want to check if a string have all input keywords in any order of the string. In much cases, the keywords are in any order, but exists in string.

Example(this is what I expect):

// Same order and have all keywords
"Hello world!".contains( "hello world" )       // true

// Same order and have all keywords
"Hello all in the world!".contains( "hello world" )       // true

// Any order but have all keywords
"Hello world!".contains( "world hello" )       // true

// Same order and all keywords
"Hello world!".contains( "worl hell" )         // true

// Have all keywords in any order
"Hello world!".contains( "world" )             // true

// No contains all keywords
"Hello world!".contains( "where you go" )      // false

// No contains all keywords
"Hello world!".contains( "z" )                 // false

// No contains all keywords
"Hello world!".contains( "z1 z2 z3" )          // false

// Contains all keywords in any order
"Hello world!".contains( "wo" )                // true

I try with:

/(?=\bhello\b)(?=\bworld\b)/i.test("hello world")      // false
/(?=.*?hello.*?)(?=.*?world.*?)/i.test("hello world")  // false
/^(?=\bhello\b)(?=\bworld\b).*?$/i.test("hello world") // false

I created some functions like:

// escape string to use in regexp
String.prototype.escape = function () {
    return this.replace(/[\-\[\]\/\{\}\(\)\*\+\?\.\\\^\$\|]/g, "\\$&")
};
// check if empty string
String.prototype.isEmpty = function () {
    return this.length === 0;
};
// check if contain keywords...
String.prototype.contains = function (keywords) {
    var value  = '^(?=\\b' + keywords
        .escape()
        .replace(/(^\s+|\s+$)/ig, '')
        .replace(/\s+/, ' ')
        .split(/\s+/)
        .join('.*?)(?=.*?') + ').*$',
    reg = new RegExp(value, 'i'),
    text = this;
    return reg.test( this );
};

Thanks

7
  • Any or All of the keywords?
    – LukStorms
    Commented Jan 19, 2017 at 17:31
  • @LukStorms i want check if have all keywords in any order. Thanks Commented Jan 19, 2017 at 17:32
  • @I.G.Pascual no, no is duplicated. See this example: "Hello all in the world!".contains( "hello world" ) I want this return true because have all keywords in any order Commented Jan 19, 2017 at 17:58
  • @OlafErlandsen Its confusing. "Hello world!".contains( "world" ) . This example has just one keyword and the output is true.
    – pratZ
    Commented Jan 19, 2017 at 18:00
  • 1
    Oh, BTW, Don't modify String.prototype!!! books.google.es/… , what you're doing is a complete madness, all the other js libraries you import depending on it could stop working!! Commented Jan 19, 2017 at 21:30

6 Answers 6

6

The answer from I.G. Pascual shows how to construct a regex that solves the OP's problem. Below is working code demonstrating how to build such regexes dynamically, passing all the test cases from the OP.

function buildRegEx(str, keywords){
  return new RegExp("(?=.*?\\b" + 
    keywords
      .split(" ")
      .join(")(?=.*?\\b") +                     
    ").*", 
    "i"
  );
}

function test(str, keywords, expected){
  var result = buildRegEx(str, keywords).test(str) === expected
  console.log(result ? "Passed" : "Failed");
}

// Same order and have all keywords 
test("Hello world!", "hello world", true);
// Same order and have all keywords 
test("Hello all in the world!", "hello world", true);
// Any order but have all keywords 
test("Hello world!", "world hello", true);
// Same order and all keywords 
test("Hello world!", "worl hell", true);
// Have all keywords in any order 
test("Hello world!", "world", true);
// No contains all keywords 
test("Hello world!", "where you go", false);
// No contains all keywords
test("Hello world!", "z", false);
// No contains all keywords 
test("Hello world!", "z1 z2 z3", false);
// Contains all keywords in any order 
test("Hello world!", "wo", true);

6

You mean an unordered list of keywords: Regex - match multiple unordered words in a string, but removing the last \b part of each regex token

/(?=.*?\bhello)(?=.*?\bworld).*/i

With these type of regex all your test should pass now.

Check it in http://regexr.com/3f3ru

i makes it to ignore case sensitive, in case you need to check also Hello, wOrld, etc

6
  • Yes, i know how work it, but I want check if contain all keywords in any order. Check the examples ;) thanks Commented Jan 19, 2017 at 17:33
  • @OlafErlandsen just updated my answer, you need this lookahead type (?=.*?\bword\b).* Commented Jan 19, 2017 at 17:43
  • So basically your question is an exact duplicate... of stackoverflow.com/questions/19412416/… :) Commented Jan 19, 2017 at 17:44
  • 1
    @igPascual no, see this example: "Hello all in the world!".contains( "hello world" ). You example don't work in this case Commented Jan 19, 2017 at 17:57
  • 1
    @OlafErlandsen Make it case insensitive and it will work.
    – pratZ
    Commented Jan 19, 2017 at 18:09
1
String.prototype.contains = function(string){    
    var keywords = string.split(" ");
    var contain = true;

    for(var i = 0; i < keywords.length && contain; i++){
        if(keywords[i] == "") continue;

        var regex = new RegExp(keywords[i], "i");
        contain = contain && regex.test(this);
    }

    return contain;
}
1
  • @OlafErlandsen yeah, even simpler. Thanks! Commented Jan 19, 2017 at 18:46
1

An alternative to the lookahead-based option would be:

String.prototype.contains = function (keywordsStr) {
    var keywords = keywordsStr.split(/\s+/);
    return keywords.every(function(keyword)) {
        var reg = new RegExp(keyword.escape());
        return reg.test(this);
    }, this);
};
4
  • You answer is exlactly to @IGPascual. I want check if a string have all input keywords in any order. Please, see my examples. Thanks Commented Jan 19, 2017 at 17:37
  • Indeed, my bad. I've updated my answer to provide an alternative to @I.G. Pascual's answer. I'd be interested to know which is the fastest one as the JS RegExp engine can be pretty slow.
    – lleaff
    Commented Jan 19, 2017 at 17:49
  • no need for \b as wo is contained in Hello world. See the question. Commented Jan 19, 2017 at 18:55
  • @ibrahim mahrir Oh true, the "\\b" in OP's example confused me.
    – lleaff
    Commented Jan 19, 2017 at 19:51
0

It's easy way to use .match() method to string. You can try this

Example:

var re = /(hello|world)/i;
var str = "Hello world!"; 
console.log('Do we found something?', Boolean(str.match(re)));

// for other
var re = /(hello|world)/i;       // true
var re = /(world|hello)/i;       // true
var re = /(worl|hell)/i;         // true
var re = /(this|is|my|world)/i;  // true
var re = /(where|you|go)/i;      // false
var re = /(z)/i;                 // false
var re = /(z1|z2|z3)/i;          // false
var re = /(wo)/i;                // true
3
  • This check if have one of n keywords. No if hace all n keywords. Commented Jan 19, 2017 at 17:55
  • you can try this as already suggested /(?=.*?\bworld\b)(?=.*?\bhello\b).*/i.test('Hello world!')
    – Sid Mhatre
    Commented Jan 19, 2017 at 18:12
  • You want to check your string contain all the keywords in any oder you can check using String match() Method var regexp = /[world hello]/gi; var matches_array = str.match(regexp); alert(matches_array); and compare ` matches_array` length with regex string length
    – Sid Mhatre
    Commented Jan 19, 2017 at 18:30
0

result.filter(camp => search.map(keyword => camp.name.includes(keyword)).reduce((acc, curr) => acc && curr, true));

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