Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free.

I have multiple arrays with string values and I want to compare them and only keep the matching results that are identical between ALL of them.

Given this example code:

var arr1 = ['apple', 'orange', 'banana', 'pear', 'fish', 'pancake', 'taco', 'pizza'];
var arr2 = ['taco', 'fish', 'apple', 'pizza'];
var arr3 = ['banana', 'pizza', 'fish', 'apple'];

I would like to to produce the following array that contains matches from all given arrays:

['apple', 'fish', 'pizza']

I know I can combine all the arrays with var newArr = arr1.concat(arr2, arr3); but that just give me an array with everything, plus the duplicates. Can this be done easily without needing the overhead of libraries such as underscore.js?

(Great, and now i'm hungry too!)

EDIT I suppose I should mention that there could be an unknown amount of arrays, I was just using 3 as an example.

share|improve this question
    
Take a look at this stackoverflow.com/questions/1885557/… –  nbrooks Jun 18 '12 at 1:34

6 Answers 6

up vote 34 down vote accepted
var result = arrays.shift().filter(function(v) {
    return arrays.every(function(a) {
        return a.indexOf(v) !== -1;
    });
});

DEMO: http://jsfiddle.net/nWjcp/2/

You could first sort the outer Array to get the shortest Array at the beginning...

arrays.sort(function(a, b) {
    return a.length - b.length;
});

For completeness, here's a solution that deals with duplicates in the Arrays. It uses .reduce() instead of .filter()...

var result = arrays.shift().reduce(function(res, v) {
    if (res.indexOf(v) === -1 && arrays.every(function(a) {
        return a.indexOf(v) !== -1;
    })) res.push(v);
    return res;
}, []);

DEMO: http://jsfiddle.net/nWjcp/4/

share|improve this answer
    
+1 because I didn't know you can do JSON.stringify(result,null,4)... Jaw dropped. –  Derek 朕會功夫 Jun 18 '12 at 1:35
1  
@Derek:: That was a relatively recent discovery for me as well. Check out the MDN docs. The second argument is really slick. Also, you don't need to pass a number. It can be a string that will be used as the indentation character. –  squint Jun 18 '12 at 1:36
1  
@amnotiam yes, they are nested in another array. I guess I need to get better and giving sample code... ha! –  Chris Barr Jun 18 '12 at 1:42
1  
@ChrisBarr: Just to cover all the bases, I added a solution in the same style that deals with duplicates. It's at the bottom. –  squint Jun 18 '12 at 18:42
1  
@amnotiam That rules, thank you so much! I really need to learn more about these built in methods, these are powerful. –  Chris Barr Jun 19 '12 at 21:42

Now, that you've added an indeterminate number of arrays to the question, here's another approach that collects the count for each item into an object and then collates the items that have the max count.

Advantages of this approach:

  1. ~15x faster that brute force search options (used by other answers) if arrays are larger
  2. Does not require ES5 or ES5 shim (works with all browsers)
  3. Completely non-destructive (doesn't change source data at all)
  4. Handles duplicates items in source arrays
  5. Handles an arbitrary number of input arrays

And here's the code:

function containsAll(/* pass all arrays here */) {
    var output = [];
    var cntObj = {};
    var array, item, cnt;
    // for each array passed as an argument to the function
    for (var i = 0; i < arguments.length; i++) {
        array = arguments[i];
        // for each element in the array
        for (var j = 0; j < array.length; j++) {
            item = "-" + array[j];
            cnt = cntObj[item] || 0;
            // if cnt is exactly the number of previous arrays, 
            // then increment by one so we count only one per array
            if (cnt == i) {
                cntObj[item] = cnt + 1;
            }
        }
    }
    // now collect all results that are in all arrays
    for (item in cntObj) {
        if (cntObj.hasOwnProperty(item) && cntObj[item] === arguments.length) {
            output.push(item.substring(1));
        }
    }
    return(output);
}    

Working demo: http://jsfiddle.net/jfriend00/52mAP/

FYI, this does not require ES5 so will work in all browsers without a shim.

In a performance test on 15 arrays each 1000 long, this was more than 10x faster than the search method used in am not i am's answer in this jsperf: http://jsperf.com/in-all-arrays

share|improve this answer
    
Tweaked the algorithm to handle dups and added performance test to show how much faster it is than some of the other methods (14x faster). –  jfriend00 Jun 18 '12 at 6:02
    
+1 I like the containsAll approach, I was thinking of an object-based approach but not using a counter. Nice handling of dups without removing them from the original array too. I think a lot of the speed comes from avoiding array methods like splice and slice, object property lookup is probably very highly optimised since it's so fundamental to any non-trivial script. –  RobG Jun 18 '12 at 15:39
    
Oh, one problem with this approach is that in IE 8 and lower at least, properties "toString" and "valueOf" are always not enumerable, so if the arrays in question have those names as member values, the above will never put them in the results array. One solution is to test for those values on item explicitly. –  RobG Jun 19 '12 at 1:51
    
@RobG - I modified the code to work with "toString", "valueOf" in IE8 or any other built-in method. To do that, I add a prefix to each key to distinguish it from any built in methods. –  jfriend00 Jun 19 '12 at 2:36
    
—another approach is to add a test of Object.prototype properties on a plain object to see which are never enumerable, then test them after the for..in at the end. –  RobG Jun 19 '12 at 4:24

A couple thoughts- you can compare just the items in the shortest array, and prevent duplicates in the returned array.

function arraysInCommon(arrays){
    var i, common,
    L= arrays.length, min= Infinity;
    while(L){
        if(arrays[--L].length<min){
            min= arrays[L].length;
            i= L;
        }
    }
    common= arrays.splice(i, 1)[0];
    return common.filter(function(itm, indx){
        if(common.indexOf(itm)== indx){
            return arrays.every(function(arr){
                return arr.indexOf(itm)!= -1;
            });
        }
    });
}

var arr1= ['apple', 'orange', 'banana', 'pear', 'fish', 'pancake', 'taco', 'pizza'];
var arr2= ['taco', 'fish', 'apple', 'pizza', 'apple','apple'];
var arr3= ['banana', 'pizza', 'fish', 'apple','fish'];

var allArrays = [arr1,arr2,arr3];

arraysInCommon(allArrays).sort();

returned value: apple,fish,pizza

DEMO - http://jsfiddle.net/kMcud/

share|improve this answer

This should work for any number of arrays:

function intersection(arr1, arr2) {
  var temp = [];

  for (var i in arr1) {
    var element = arr1[i];

    if (arr2.indexOf(element) > -1) {
      temp.push(element);
    }
  }

  return temp;
}

function multi_intersect() {
  var arrays = Array.prototype.slice.apply(arguments).slice(1);
  var temp = arguments[0];

  for (var i in arrays) {
    temp = intersection(arrays[i], temp);

    if (temp == []) {
      break;
    }
  }

  return temp;
}

var arr1 = ['apple', 'orange', 'banana', 'pear', 'fish', 'pancake', 'taco', 'pizza'];
var arr2 = ['taco', 'fish', 'apple', 'pizza'];
var arr3 = ['banana', 'pizza', 'fish', 'apple'];

multi_intersect(arr1, arr2, arr3);
share|improve this answer

Assuming array of arrays and checking through all arrays:

DEMO: http://jsfiddle.net/qUQHW/

var tmp = {};
for (i = 0; i < data.length; i++) {
    for (j = 0; j < data[i].length; j++) {
        if (!tmp[data[i][j]]) {
            tmp[data[i][j]] = 0;
        }
        tmp[data[i][j]]++;
    }
}

var results = $.map(tmp, function(val,key) {
    return val == data.length ? key :null;
})
share|improve this answer
    
It's not the most readable, but it does work. +1 –  Jacob Evan Shreve Aug 3 '14 at 19:08

Just for the heck of it, another long hand approach:

function getCommon(a) {

  // default result is copy of first array
  var result = a[0].slice();
  var mem, arr, found = false;

  // For each member of result, see if it's in all other arrays
  // Go backwards so can splice missing entries
  var i = result.length;

  while (i--) {
    mem = result[i];

    // Check in each array
    for (var j=1, jLen=a.length; j<jLen; j++) {
      arr = a[j];
      found = false;

      // For each member of arr and until found
      var k = arr.length;
      while (k-- && !found) {

        // If found in this array, set found to true
        if (mem == arr[k]) {
          found = true;
        }
      }
      // if word wasn't found in this array, remove it from result and 
      // start on next member of result, skip remaining arrays.
      if (!found) {
        result.splice(i,1);
        break;
      }
    }
  }
  return result;
}

var data = [
  ['taco', 'fish', 'apple', 'pizza', 'mango', 'pear'],
  ['apple', 'orange', 'banana', 'pear', 'fish', 'pancake', 'taco', 'pizza'],
  ['banana', 'pizza', 'fish', 'apple'],
  ['banana', 'pizza', 'fish', 'apple', 'mango', 'pear']
];

Edit

Function to find never enumerable properties based on thise on Object.prototype:

// Return an array of Object.prototype property names that are not enumerable
// even when added directly to an object.
// Can be helpful with IE as properties like toString are not enumerable even
// when added to an object.
function getNeverEnumerables() {

    // List of Object.prototype property names plus a random name for testing
    var spNames = 'constructor toString toLocaleString valueOf ' +
                  'hasOwnProperty isPrototypeOf propertyIsEnumerable foo';

    var spObj = {foo:'', 'constructor':'', 'toString':'', 'toLocaleString':'', 'valueOf':'',
                 'hasOwnProperty':'', 'isPrototypeOf':'', 'propertyIsEnumerable':''};

    var re = [];

    // BUild list of enumerable names in spObj
    for (var p in spObj) {
      re.push(p); 
    }

    // Remove enumerable names from spNames and turn into an array
    re = new RegExp('(^|\\s)' + re.join('|') + '(\\s|$)','g');
    return spNames.replace(re, ' ').replace(/(^\s+)|\s\s+|(\s+$)/g,'').split(' ');
}

document.write(getNeverEnumerables().join('<br>'));
share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.