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So, I'm using Jquery and have two arrays both with multiple values and I want to check whether all the values in the first array exist in the second.

For instance, example 1...

Array A contains the following values

34, 78, 89

Array B contains the following values

78, 67, 34, 99, 56, 89

This would return true

...example 2:

Array A contains the following values

34, 78, 89

Array B contains the following values

78, 67, 99, 56, 89

This would return false

...example 3:

Array A contains the following values

34, 78, 89

Array B contains the following values

78, 89

This would return false

So far I have tried to solve this by:

  1. Extending Jquery with a custom 'compare' method to compare the two arrays. Problem is this only returns true when the arrays are identical and as you can see from example 1 I want it to return true even if they aren't identical but at least contain the value
  2. using Jquerys .inArray function, but this only checks for one value in an array, not multiple.

Any light that anyone could throw on this would be great.

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6 Answers

up vote 9 down vote accepted
function containsAll(needles, haystack){ 
  for(var i = 0 , len = needles.length; i < len; i++){
     if($.inArray(needles[i], haystack) == -1) return false;
  }
  return true;
}

containsAll([34, 78, 89], [78, 67, 34, 99, 56, 89]); // true
containsAll([34, 78, 89], [78, 67, 99, 56, 89]); // false
containsAll([34, 78, 89], [78, 89]); // false
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Brilliant - this does the trick. Thanks. –  Betjamin Feb 9 '12 at 12:59
    
Awesome, thanks! –  jav baldrich Aug 12 '13 at 23:13
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Native JavaScript solution...

var success = array_a.every(function(v,i) {
    return array_b.indexOf(v) !== -1;
});

You'll need compatibility patches for every and indexOf if you're supporting older browsers, including IE8.


Full jQuery solution...

var success = $.grep(array_a, function(v,i) {
    return $.inArray(v, array_b) !== -1;
}).length === array_a.length;

Uses $.grep with $.inArray.

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I noticed that the question is about solving this with jQuery, but if anyone else who is not limited to jQuery comes around then there is a simple solution using underscore js.

Using underscore js you can do:

_.intersection(ArrayA, ArrayB).length === ArrayA.length;

From the docs:

intersection_.intersection(*arrays) Computes the list of values that are the intersection of all the arrays. Each value in the result is present in each of the arrays.

_.intersection([1, 2, 3], [101, 2, 1, 10], [2, 1]); => [1, 2]

Ergo, if one of the items in ArrayA was missing in ArrayB, then the intersection would be shorter than ArrayA.

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Try this.

var arr1 = [34, 78, 89];
var arr2 = [78, 67, 34, 99, 56, 89];

var containsVal = true;
$.each(arr1, function(i, val){
   if(!$.inArray(val, arr2) != -1){
       retVal = false;
       return false;
   }
});

if(containsVal){
    //arr2 contains all the values from arr1 
}
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You can use this simple function (renamed variables as per above answer for easy reading):

function contains(haystack, needles) {

    return needles.map(function (needle) { 
        return haystack.indexOf(needle);
    }).indexOf(-1) == -1;
}
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function checkifexist(myValue){ 
  jQuery.map(myArray,functio(val){
    if(val.cuvant==jQuery(this).text())
    {
      alert('bingo');
    }
  });    
}
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