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I am relatively new to JavaScript and I am build a little app which randomly generates a card from a set of 52 cards (I stored all possibilities in an array). But I want to make sure that the same card can not be generated twice. I was not able to find a way to do so.

var cardType = ["A♠","2♠","3♠","4♠","5♠","6♠","7♠","8♠","9♠","10♠","J♠","Q♠","K♠"];

function generateCard()
{
var card = cardType[Math.round(Math.random() * (cardType.length - 1))];
}

The spade symbols are not actually in my array I just put it in for visibility.

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4 Answers 4

Pre shuffle the array and pop one card at time, from the array

var cardType = ["A♠","2♠","3♠","4♠","5♠","6♠","7♠","8♠","9♠","10♠","J♠","Q♠","K♠"];

//shuffles array
cardType.sort(function() { return 0.5 - Math.random() });

function generateCard()
{    
    return cardType.pop();
}

When you get undefined it means you got all the cards

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Good answer, +1 from me –  OzrenTkalcecKrznaric Jul 27 '13 at 9:45
    
I'm not convinced by that sort helper function - it's using a non-deterministic comparator to an O(n log n) function, when a decent Knuth-Fisher-Yates shuffle will work in O(n) time. –  Alnitak Jul 27 '13 at 9:50
    
^^^Knuth is da man! –  adeneo Jul 27 '13 at 9:51
    
to be perfectly honest, i just copied the function from css-tricks.com/snippets/javascript/shuffle-array cause performance doesnt matter when its 13 items and a one-off operation –  Dogoku Jul 27 '13 at 9:52
1  
@Dogoku find a better site - whoever wrote that doesn't know what they're doing. –  Alnitak Jul 27 '13 at 9:53

Keep track of already generated cards, check to see if the newly generated card already exists, and if it does, generate a new card :

var already_generated = [];
var cardType = ["A♠","2♠","3♠","4♠","5♠"...];

function generateCard() {
    var card = cardType[Math.round(Math.random() * (cardType.length - 1))];

    if ( already_generated.indexOf(card) == -1 ) {
        already_generated.push(card);
    }else{
        if (already_generated.length < cardType.length) generateCard();
    }
}

Older browsers will need a shim for Array.indexOf, which can be found at MDN

As a sidenote, the original array could be sliced, but this just seems easier unless you for some reason have to change the original array !

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If you generate all the cards and call generating fn, your execution will get into trouble –  OzrenTkalcecKrznaric Jul 27 '13 at 9:43
    
@OzrenTkalčecKrznarić - Yes it will, I didn't add a check for that, as it seemed rather obvious, but I'll add it now. –  adeneo Jul 27 '13 at 9:44
    
the fundamental problem, with this code (and the one posted in the question) is that you define your array inside the function, meaning it's reset every time the function is called, meaning you have to keep track of what cards you already have. see my answer for a much more efficient solution –  Dogoku Jul 27 '13 at 9:49
    
@Dogoku - If it floats your boat, I'll move it for you. –  adeneo Jul 27 '13 at 9:50
    
@Dogoku, you are right, i totally copy & pasted this wrong! –  DisMeJP Jul 27 '13 at 9:50

I would just:

  • make your ordered set of cards (i.e. a "pack")
  • use an effective shuffling algorithm to make a "deck" from the "pack"
  • use deck.pop() to just take successive cards from that deck

Having an abstraction to represent a deck of cards will likely prove useful as you develop your application. It might seem like overkill now, but it'll be worth it in the long run. Done properly, it should be re-usable in other projects too.

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Use the delete keyword.

Sample:

var x = [1,2,3];
delete x[1]; // delete element '2'
for (i in x) { 
  console.log(x[i]); // outputs 1, 3
}
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2  
But the length is still the same, messing up the random card generation. –  adeneo Jul 27 '13 at 9:39
1  
bad answer on two counts - delete on an array will just make the element undefined, not remove it, and you shouldn't use for ... in on arrays, only on objects. –  Alnitak Jul 27 '13 at 9:40
    
I know where you are heading, bit please give OP a real example –  OzrenTkalcecKrznaric Jul 27 '13 at 9:41
    
for (var i in x) as well, or you're not declaring i. –  Matt Jul 27 '13 at 9:41
    
The delete operator removes a property from an object. That's it. See developer.mozilla.org/en-US/docs/Web/JavaScript/Reference/… for more info. –  Per Quested Aronsson Jul 27 '13 at 9:43

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