5

I'm trying to create a function in JavaScript that given a string will return an array of all possible combinations of the letters with each used at most once, starting with the shortest. e.g for the string ABC it would return:

A
B
C
AB
AC
ABC

I could use loops like so:

for(i=0; i<string.length; i++) {
   //add string[i]
}
for(i=0; i<string.length; i++) {
    for(a=i; a<string.length; a++) {
            //add string[i]+string[a]
    }
}
for(i=0; i<string.length; i++) {
    for(a=i; a<string.length; a++) {
        for(b=a; b<string.length; b++) {
            //add string[i]+string[a]+string[b]
        }
    }
}

But I don't know the length of the string, so wouldn't know how many loops to use.

Any ideas?

Edit: I'm not asking for permutations, abc and acb shouldn't both be returned. Also the shortest being first in the array is important.

This is not homework. It's for a program to solve a 'lights-out' type game.

7

This is a recursive solution that I think is very easy to understand.

var tree = function(leafs) {
    var branches = [];      
    if( leafs.length == 1 ) return leafs;       
    for( var k in leafs ) {
        var leaf = leafs[k];
        tree(leafs.join('').replace(leaf,'').split('')).concat("").map(function(subtree) {
            branches.push([leaf].concat(subtree));
        });
    }
    return branches;
};
console.log(tree("abc".split('')).map(function(str){return str.join('')}))
4

This is what I ended up using.

var combinations = function (string)
{
    var result = [];

    var loop = function (start,depth,prefix)
    {
        for(var i=start; i<string.length; i++)
        {
            var next = prefix+string[i];
            if (depth > 0)
                loop(i+1,depth-1,next);
            else
                result.push(next);
        }
    }

    for(var i=0; i<string.length; i++)
    {
        loop(0,i,'');
    }

    return result;
}
  • But, I don't find your solution fitting the get all combinations intention. For instance, doing combinations('dog') gives [ 'd', 'o', 'g', 'do', 'dg', 'og', 'dog' ], which isn't all the combinations. god, go, gd are missing. A potential solution to that might be to split the result into two, reverse() the second half, then re-append to the original result to accommodate for the use case of a palindrome string. – Rexford Feb 23 '16 at 12:31
  • As I said in the original question I didn't want permutations to be included. In my use case 'dog' and 'god' would get the same result and therefore be redundant. – RedHatter Feb 23 '16 at 17:28
4

You could use a nasty trick and increase a counter and use its binary representation as flags:

 function combine(str){
   const result = [];
   for(let i = 1; i < Math.pow(2, str.length) - 1; i++)
      result.push([...str].filter((_, pos) => (i >> pos) & 1).join(""));
  return result;
}

Try it

  • This is really fast, but is excluding combinations that are the same length as the original string. "ABC" should also have "CBA" as one of the results, for instance. Is there a modification to this that would include those combinations? – Sebastian Sandqvist Feb 6 at 2:56
  • @sebastian you are looking for all possible permutations, not combinations – Jonas Wilms Feb 6 at 8:06
1

This is usiing loop as you expected easiest way.. good luck

        function mixString() {
            var inputy = document.getElementById("mixValue").value
            var result = document.getElementById("mix-result")
            result.innerHTML=""

            
            for (var i = 0 ; i < inputy.length; i++) {
               
                for (var b = 0 ; b < inputy.length; b++) {
                    
                    if (i == b) {
                        
                        result.innerHTML += inputy.charAt(i) + ","
                    }
                    else
                    {
                        result.innerHTML += inputy.charAt(i) + inputy.charAt(b) + ","
                    }
                    
                }

            }
        }
    <link rel="stylesheet" href="https://maxcdn.bootstrapcdn.com/bootstrap/3.3.7/css/bootstrap.min.css">
    
    <div class="container">
        <div class="panel panel-default">
            <div class="panel-heading">JavaScript string combination
</div>
            <div class="panel-body">
                <input id="mixValue" class="form-control" />
                <input type="button" onclick="mixString()" value="click" />
                <div id="mix-result"></div>
            </div>
        </div>
    </div>

0

You couldm take an iterative and recursive approach by using the character at the given key or not.

function combine(string) {
    function iter(i, temp) {
        if (i >= string.length) {
            result.push(temp);
            return;
        }
        iter(i + 1, temp + string[i]);
        iter(i + 1, temp);
    }

    var result = [];
    iter(0, '');
    return result;
}

console.log(combine('jump'));
.as-console-wrapper { max-height: 100% !important; top: 0; }

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