24

im trying to make a method which return a name of card from my Dictionary randomly.

My Dictionary: First definied name of card which is string and second is value of that card, which is int.

public static Dictionary<string, int> _dict = new Dictionary<string, int>()
    {
        {"7", 7 },
        {"8", 8 },
        {"9", 9 },
        {"10", 10 },
        {"J", 1 },
        {"Q", 1 },
        {"K", 2 },
        {"A", 11 }
    };

Method: random is random generated int.

    public string getCard(int random)
    {
        return Karta._dict(random);
    }

So the problem is:

Cannot convert from 'int' to 'string'

Anybody help me how should i do it right to get the name?

26

This will Return the Key of corresponding to the int Value generated randomly

public string getCard(int random)
{
    return Karta._dict.FirstOrDefault(x => x.Value == random).Key;
}

This will Return the Key of corresponding to the int Index generated randomly

public string getCard(int random)
{
    return Karta._dict.ElementAt(random).Key;
}

Side Note: that the first element of the dictionary is The Key and the second is the Value

  • Even with infinite iterations I don't think you would get full coverage when there's duplicate values, which he showed in his example. It probably always gives the "first" one (even though order isn't guaranteed.. just a thought though). – Quantic Nov 3 '16 at 22:41
  • 1
    Thank you! Thats exactly what i was looking for! I tried ElementAt too, but i forgot use the .Key – Jakub Staněk Nov 3 '16 at 22:50
  • 1
    The first answer is not positional based, the second is correct (though there are still far better ways of doing the whole thing. – BradleyDotNET Nov 3 '16 at 22:51
25

You can take keys or values per index:

int value = _dict.Values.ElementAt(5);//ElementAt value should be <= _dict.Count - 1
string key = _dict.Keys.ElementAt(5);//ElementAt value should be  < =_dict.Count - 1
  • 4
    Just be sure to add using System.Linq; to your program because this is a Linq extension method. – Anton Voronin Aug 7 '17 at 20:44
  • 3
    PERFORMANCE caution: Dictionary does not have a quick way to access nth "element" via ElementAt. It does a linear enumeration of the entries, until it reaches the desired element. So each call to ElementAt takes time that increases with the size of the dictionary; performance is O(n). If many calls are needed, and you are not adding new entries to dictionary, then build a list of keys. Then you can get a random key in O(1) time from that list. – ToolmakerSteve Apr 17 '18 at 16:28
2

Your key is a string and your value is an int. Your code won't work because it cannot look up the random int you pass. Also, please provide full code

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