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If a user enters 5 numbers, lets say... 4, 4, 7, 7, 4. 4 occurred 3 (most number of) times. So the output should be 4.

How can I do this using JavaScript? Would much appreciate your help. Thanks!

I've tried this so far. It works, but it's too long, looking for something short and simple way.

P.S. This is not my homework!

    var n = parseInt(prompt("How many numbers do you like to enter?", ""));
    var num = new Array();

    for (i = 1; i <= n; i++) {
        num[i] = parseInt(prompt("Enter a number", ""));
        document.write("Entered numbers are: " + num[i] + "<br/>");
    }

    var total = new Array();
    for (i = 1; i <= n; i++) {
        var count = 1;
        for (j = i + 1; j <= n; j++) {
            if (num[i] == num[j]) {
                count++;
            }
            total[i] = count;
        }
    }

    var most = 0;
    for (i = 0; i < n; i++) {
        if (most < total[i]) {
            most = total[i];
        }
        var val = i;
    }
    document.write("<br/>" + num[val] + " is occurred " + most + " times");
share|improve this question
    
Homework? If it is, you should tag it as such, so we can answer appropriately. If not, you have to explain why you are doing something that normally only is done in homework assignments. – Guffa Apr 8 '12 at 8:52
    
@Guffa I've recently started learning JavaScript... working with basic examples and I made this code complicated and wondering if there is any simple way to do this. – Sai Kiran Sripada Apr 8 '12 at 8:59
    
@SergioTulentsev Sorry! I've edited now. – Sai Kiran Sripada Apr 8 '12 at 9:00
    
Tip: Use array literals, [] instead of new Array() to construct an array. The first one is shorter, and will never give unexpected results. Also: never forget to declare variables (using var). In your code, the variables i and j are defined, but not declared. For more information on arrays, see developer.mozilla.org/en/JavaScript/Reference/Global_Objects/…. – Rob W Apr 8 '12 at 9:06
    
Someone said i and j need not be declared. Thanks I'll declare it next time. Also I'll use [] instead of new Array(). – Sai Kiran Sripada Apr 8 '12 at 9:36
up vote 4 down vote accepted

Create an array a with a lot of numbers, using array literals:

var a = [1, 2, 3, 4, 4, 5, 1, 2, 3, 1, 2, 1, 1];

Create a plain object o, using object literals.

var o = {},          /* Creates a new object */
    i = 0,           /* Declare variable i, initialise value at 0*/
    m = {m:0,t:null},
    t,               /* Declare variable t */
    len = a.length;  /* Declare variable len, set value to the array's length */

Loop through array a using a for(;;)-loop and increment the counter. The counter is stored in a hashmap on object o.
(o[a[i]] || 0) is needed for the first occurrence of the key: When it's not found, the value 0 is used instead of undefined. See also Short-circuit evaluation: Logical OR.

for ( ; i < len ; i++ ) {
    o[ a[i] ] = ( o[ a[i] ] || 0 ) + 1;
}

Then you have an object o which looks like:

o = {
    "1": 5,
    "2": 3,
    "3": 2,
    "4": 2,
    "5": 1
}

Then loop through o using a for(.. in ..)-loop and find max times presented.
At the bottom of the loop, the conditional ternary .. ? .. : .. operator is used:

for ( i in o ) {
    t = { 
        m: o[i], 
        i: i 
    };
    m = m.m < t.m ? t : m;
}

After this loop m is equal to:

m = { 
    i: "1", 
    m: "5"
};

And the maximum value can be captured using:

o[m];

witch gives you:

5

DEMO

http://jsbin.com/utiqey/

var a = [1, 2, 3, 4, 4, 5, 1, 2, 3, 1, 2, 1, 1]; 

var o = {}, 
    i = 0, 
    m = {m:0,t:null}, 
    t,
    len = a.length; 

for ( ; i < len ; i++ ) { 
    o[ a[i] ] = ( o[ a[i] ] || 0 ) + 1; 
} 


for ( i in o ) { 
    t = { 
        m: o[i], 
        i: i 
    };
    m = m.m < t.m ? t : m;
} 

alert(m.i + " is the highest presented " + m.m + " times"); 
share|improve this answer
    
I've edited your answer to include references to relevant sources. I recommend to update the answer, to make it less complicated. – Rob W Apr 8 '12 at 9:45
    
@Andreas Al , from where did you get the solution :) ? – Royi Namir Apr 8 '12 at 10:10
    
@RoyiNamir i wrote it myself :) ?? – andlrc Apr 8 '12 at 11:22
    
@RobW Thanks for big up..! – andlrc Apr 8 '12 at 11:24
    
@AndreasAL I dont know ....seems that you took myne and added some things. your logic is 1:1 to my solution.....which posted before yours.... – Royi Namir Apr 8 '12 at 11:28

No need to make two passes, the following accumulates the max as it counts:

var g = [4, 4, 7, 7, 4, 5, 6, 7, 8, 6, 5, 2, 2, 2, 3, 4, 5]; //your array

for (var t = {}, maxn = g[0], max = 0, gi, i = g.length; i--;) {
  if (max < (t[gi = g[i]] = (t[gi] || 0) + 1)) {
    max = t[gi];
    maxn = gi;
  }
}

document.write ('The number ' + maxn + ' occurs ' + max + 'times');

Edit

A good solution, but the OP likely needs some explanation and some more suitable variable names. The most commonly occurring value in a set is the mode.

// Use any member of g to seed the mode
var mode = g[0];
// The number of times the current mode has occurred
var count = 0;
// Results object
var t = {};
var i = g.length;
var gi;

// Loop over all the members
while (i--) {

  // Get the value at i
  gi = g[i];

  // Keep track of how many times the value has been found  
  // If the number hasn't occured before, add it with count 1
  // Otherwise, add 1 to its count
  t[gi] = (t[gi] || 0) + 1;

  // Set the mode to the current value if it has occurred 
  // more often than the current mode
  if (count < t[gi]) {
    count = t[gi];
    mode = gi;
  }
}

alert('The mode is ' + mode + ' and occurs ' + count + ' times.');

If there is more than one mode, the one found count times first from the end of the array wins.

share|improve this answer
    
Thnaks RobG, now the OT has both a learning and production version – HBP Apr 8 '12 at 14:25

http://jsbin.com/ageyol/3/edit

var g = [4, 4, 7, 7, 4, 5, 6, 7, 8, 6, 5, 2, 2, 2, 3, 4, 5]; //your array
var t = {}; // object which contain the numbers as properties.

for (var i = 0; i < g.length; i++)
{
    if (!t[g[i]]) t[g[i]] = 0; //if the property doesnt exists , so create one with counter 0.
    t[g[i]]++; // also - increase the property VALUE.
}

var max = 0;

for (i in t)
{
    if (t[i] > max) max = t[i]; //check if property value is larger then the current MAX val.
    document.write(i + "  " + t[i] + "<br/>");
}
document.write(t[max]);

p.s. if there is more than max - so you should iterate .

share|improve this answer
    
Some explanation would be nice, since the OP clearly stated that he's a novice. For example, what does {} mean, and what's the purpose of it? – Rob W Apr 8 '12 at 9:13
    
@RobW edited. you could have dont it also. :). – Royi Namir Apr 8 '12 at 9:21

Sort the array, then the same values are next to each other so you can just loop though them and look for the longest streak:

arr.sort();

var maxValue, maxCount = 0, cnt = 1, last = arr[0];
for (var i = 1; i <= arr.length; i++) {
  if (i = arr.length || arr[i] != last) {
    if (cnt > maxCount) {
      maxCount = cnt;
      maxValue = last;
    }
    cnt = 1;
    if (i < arr.length) last = arr[i];
  } else {
    cnt++;
  }
}
share|improve this answer
    
Are you sure about if (i = arr.length || …? – RobG Apr 8 '12 at 12:45
    
@RobG: Yes. The loop runs to one item beyond the last item in the array, so that it will compare the last streak to the longest streak so far. Otherwise you would need to repeat the check after the loop too. – Guffa Apr 8 '12 at 15:33

Just to riff off one of the other answers, once you've formed your object of values you could push the values into an array and use Math.max to get the upperbound. Ordinarily Math.max takes a series of numbers, but if you use .apply it can also accept an array. The same is similar for Math.min.

var o = { 1: 5, 2: 3, 3: 2, 4: 2, 5: 1 };

var out = [];
for (var k in o) {
  out.push(o[k]);
}

var upperbound = Math.max.apply(null, out); // 5
share|improve this answer

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