4

I have the following PHP-script, now I need to do the same thing in JavaScript. Is there a function in JavaScript that works similar to the PHP function, I have been searching for days but cannot find anything similar? What I want to do is to count the number of times a certain word is being used in an array.

$interfaceA = array($interfaceA_1,$interfaceA_2,$interfaceA_3,$interfaceA_4,$interfaceA_5,$interfaceA_6,$interfaceA_7,$interfaceA_8);       

$interfaceA_array=array_count_values($interfaceA);
$knappsatsA = $interfaceA_array[gui_knappsats];
$touchpanelA = $interfaceA_array[gui_touchpanel];
1
  • You will need to write your own :) – johnhunter Mar 7 '11 at 7:52
13

Why not simply create a new javascript array "counts" Iterate over original array, and increament the count of "counts" for keys encountered in the array. http://jsfiddle.net/4t28P/1/

var myCurrentArray = new Array("apple","banana","apple","orange","banana","apple");

var counts = {};

for(var i=0;i< myCurrentArray.length;i++)
{
  var key = myCurrentArray[i];
  counts[key] = (counts[key])? counts[key] + 1 : 1 ;

}

alert(counts['apple']);
alert(counts['banana']);
1
  • 2
    Edited: counts should be an object {}, not an Array. – Michael Berkowski Oct 13 '12 at 12:48
7

Another elegant solution would be to use Array.prototype.reduce. Given:

var arr = new Array("apple","banana","apple","orange","banana","apple");

You can just run reduce on it:

var groups = 
  arr.reduce(function(acc,e){acc[e] = (e in acc ? acc[e]+1 : 1); return acc}, {});

Finally you can check the result:

groups['apple'];
groups['banana'];

In the sample above reduce takes two parameters:

  1. a function (anonymous here) taking an accumulator (initialized from the second argument of reduce), and the current array element
  2. the initial value of the accumulator

Whatever the function returns, it will be used as the accumulator value in the next call.

From a type perspective, whatever the type of the array elements, the type of the accumulator must match the type of the second argument of reduce (initial value), and the type of the return value of the anonymous function. This will also be the type of the return value of reduce.

2

How about this:

function arrayCountValues (arr) {
    var v, freqs = {};

    // for each v in the array increment the frequency count in the table
    for (var i = arr.length; i--; ) { 
        v = arr[i];
        if (freqs[v]) freqs[v] += 1;
        else freqs[v] = 1;
    }

    // return the frequency table
    return freqs;
}
2

Try

a.reduce((a,c)=> (a[c]=++a[c]||1,a) ,{});

let a= ["apple","banana","apple","orange","banana","apple"];

let count= a.reduce((a,c)=> (a[c]=++a[c]||1,a) ,{});

console.log(count);

0

let snippet = "HARRY POTTER IS A SERIES OF FANTASY NOVELS WRITTEN BY BRITISH AUTHOR J. K. ROWLING. THE NOVELS CHRONICLE" +
    " THE LIVES OF A YOUNG WIZARD, HARRY POTTER , AND HIS FRIENDS HERMIONE GRANGER AND RON WEASLEY, ALL OF WHOM ARE " +
    " STUDENTS AT HOGWARTS SCHOOL OF WITCHCRAFT AND WIZARDRY";
    
String.prototype.groupByWord = function () {
    let group = {};
    this.split(" ").forEach(word => {
        if (group[word]) {
            group[word] = group[word] + 1;
        } else {
            group[word] = 1;
        }
    });
    return group;
};


let groupOfWordsByCount = snippet.groupByWord();
console.log(JSON.stringify(groupOfWordsByCount,null, 4))

0

This should work

function array_count_values(array) {
  var tmpArr = {};
  var key = '';
  var t = '';
  var _countValue = function(tmpArr, value) {
    if (typeof value === 'number') {
      if (Math.floor(value) !== value) {
        return;
      }
    } else if (typeof value !== 'string') {
      return;
    }
    if (value in tmpArr && tmpArr.hasOwnProperty(value)) {
      ++tmpArr[value];
    } else {
      tmpArr[value] = 1;
    }
  }

  for (key in array) {
    if (array.hasOwnProperty(key)) {
      _countValue.call(this, tmpArr, array[key]);
    }

  }

  return tmpArr;
}
console.log(array_count_values([12, 43, 12, 43, "null", "null"]));

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

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