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Okay so I want to use matlab to generate 40 cards, each 10 is a different colour, Red, Blue, Green and purple or whichever you want. Each time you pick a card it's removed and I've worked out the probability on paper to be

1 x 30/39 x 20/38 x 10/37 
10.94%

1 because you'll definitely pick a card the first time, then you have a 30/39 chance of picking a different colour, then 20/38 to pick the final 2 colours then a 10/37 chance of picking the last colour.

I want to know how someone would simulate this in matlab. I thought you could generate an 4x10 matrix of random numbers between 1 and 40 then check each row and for each number change it to it's corresponding colours letter so the numbers between 1-10 change to R, 11-20 to Blue and etc.

Then look at each of the rows and if the row contains R B G P ( in any order ) then a counter steps. Then take the amount from the counter and divide it by the total number of rows and it should come out to about 10% and then closer if you tried 100, 1000, 10000, 1000000 etc.

But I don't know how to do iteration through to change the numbers to letters or check to see what it contains. Does anyone have any ideas or a better/easier way to do this?

Thanks

share|improve this question
up vote 2 down vote accepted

You can use randsample (from the Statistics Toolbox) to sample without replacement:

I = 1e5; %// how many samples to take
successes = 0; %// this will contain how many samples are successful
for ii = 1:I
  sample = randsample(40,4); %// sample without replacement
  successes = successes + all(sort(ceil(sample/10)) == (1:4).'); %'// a sample is
  %// successful if it contains all four colours. 1st colour = cards 1 to 10;
  %// 2nd colour = cards 11 to 20, etc.
end
estimate = successes/I %// estimate of success probability
share|improve this answer
    
Thanks, this seems to work! Can you explain what the success(ii) = all(sorts(ceil(sample/10)) == (1:4).') does in more detail please? – JamesDonnelly Dec 11 '13 at 23:43
    
Assume the sample is "successful". That means there is one card in the set 1--10 (colour 1), another in set 11--20 (colour 2) etc. Then ceil(( )/10) applied to those four successful cards will give 1, 2, 3, 4, not necessarily in that order. So apply sort (i.e. sort the card sample using colour order) and then test if first card is colour 1 and second card is colour 2 and so on (that's the all part). – Luis Mendo Dec 11 '13 at 23:48
    
Woah. That's clever. I like that a lot! Thank you so much! – JamesDonnelly Dec 12 '13 at 0:09

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