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The experiment involves rolling a fair die and getting x say, then tossing a fair coin x number of times and recording the number of tails. I need to do this experiment 50 times and record the outcomes in a vector, (which I'll then use to plot a histogram.)

This is my code so far:

    for (i in 1:100)
    {X <- sample(6,1,replace=TRUE,c(1,1,1,1,1,1)/6)
    Y <- sample(2,1,replace=TRUE,c(1,1)/2)}
    Youtcomes <- c(sum(Y))
    Youtcomes

But instead of giving me a vector with 100 elements, I keep getting just a single number. Where am I going wrong?

Note: I have to use a for loop.

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closed as too localized by thelatemail, mnel, joran, Gavin Simpson, Ben Bolker Mar 6 '13 at 23:34

This question is unlikely to help any future visitors; it is only relevant to a small geographic area, a specific moment in time, or an extraordinarily narrow situation that is not generally applicable to the worldwide audience of the internet. For help making this question more broadly applicable, visit the help center. If this question can be reworded to fit the rules in the help center, please edit the question.

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You're overwriting X and Y in each iteration of your loop... –  Joshua Ulrich Mar 6 '13 at 22:18
    
Your loop assigns a single value to X and Y each time, and overwrites. There is no connection between X and Y as your description wants. You then take the sum of a single value to give Youtcomes. The result of sum should be a single vector –  mnel Mar 6 '13 at 22:20
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Regarding your note: whoever set this question is teaching you to do stupid things in R. This is not C or any other non-vectorised language. In R we tend not to iterate over loops when vectorised solutions exist. If your question is "How do I do this via a loop?" then it is a silly R question, too localized to be of much use to anyone at a later date and I will vote to close. –  Gavin Simpson Mar 6 '13 at 22:42
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@GavinSimpson Well, given how many solutions are being given showing that it can & SHOULD be done without using a loop...maybe it would be worth keeping open as an example? –  TARehman Mar 6 '13 at 22:44
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@TARehman I see two done properly without loops - mine and @mnel's. The lapply() is still a loop and generates 100 calls to sample() Those answers are poor R code for this question. –  Gavin Simpson Mar 6 '13 at 22:55

4 Answers 4

up vote 4 down vote accepted

Discalimer: (very inefficient solution see mnel/Gavin's solution)

As you can read the many, many, .. MANY comments underneath each of the answers, while this answer attempts to answer OP's specific question(however inefficient his requirements maybe), in the spirit of maintaining decorum of the forum, some have (rightly) pointed out that the question is in bad taste and my answer doesn't do justice to the forum requirements. I accept all criticism and leave the answer here only for obvious reasons (marked as answer, continuity). I suggest you look at mnel/Gavin's answer for a vectorised solution to this specific problem. If you're interested in looking at an implementation of for-loop, then refer to the bottom of this post, but I suggest you look at it to know the structure of for-loop, but not implement a for-loop to this specific problem. Thank you.


Your code is riddled with quite a few problems, apart from the main problem @Joshua already mentioned:

First, you rewrite every time the values of X and Y inside the loop so, at the end of the loop, there is only the last value of Y that is being summed up.

Second, your code for Y is not correct. You say, you have to get x amount of coin tosses, Yet, you use sample(2, 1, ...). The 1 must be replaced with X which equals the number from the die roll.

Try out this code instead:

Youtcomes <- sapply(1:100, function(x) {
    X <- sample(1:6, 1, replace=TRUE, rep(1,6)/6)
    Y <- sample(c("H", "T"), X, replace=TRUE, rep(1,2)/2)
    sum(Y == "T")
})

Here, we loop over 100 times, and each time, sample values between 1 and 6 and store in X. Then, we sample either head (H) or tail (T) X number of times and store in Y.

Now, sum(Y == "T") gives the sum for current value of x (1 <= x <= 100). So, at the end, Youtcomes will be your set of simulated Y == Tail values.

Then, you can do a hist(Youtcomes).

Edit: If its a for-loop solution that's desired then,

# always assign the variable you'll index inside for-loop
# else the object will keep growing every time and a copy of 
# entire object is made for every i, which makes it extremely 
# slow/inefficient.
Youtcomes <- rep(0, 100)
for (i in 1:100) {
    X <- sample(1:6, 1, replace=TRUE, rep(1,6)/6)
    Y <- sample(c("H", "T"), X, replace=TRUE, rep(1,2)/2)
    # assign output inside the loop with [i] indexing
    Youtcomes[i] <- sum(Y == "T")
    # since Youtcomes is assigned a 100 values of 0's before
    # the values will replace 0' at each i. Thus the object 
    # is not copied every time. This is faster/efficient.
}
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I see what you mean. That's really helpful thanks. Can I ask what the sapply function does? I have googled it but I'm a little confused. –  Mathlete Mar 6 '13 at 22:30
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This "sample(6, 1) will always give only one value = 6" is incorrect. I just tried it and got 3. sample() has multiple ways to interpret its first argument x and a positive integer indicating the sample takes place from 1:x. –  Gavin Simpson Mar 6 '13 at 22:30
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@Mathlete You do realise that this results in 200 calls to sample() where 1 call plus one call to rbinom would suffice. It is stupid R code - you are asking us to abuse our beloved friend and it is wicked of you or your "teacher" to make us do so. –  Gavin Simpson Mar 6 '13 at 22:44
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@Mathlete Nope it is not just a help forum. It aspires to be more than that, hence the "too localized" close vote option. Questions should be relevant to more than just your or a specific point in time. They should help people learn to do things correctly and the Q&A becomes an enduring resource of high quality answers. You'll get short shrift here if you insist on inefficient, badly implemented solutions just so you can follow an instructors requirements. –  Gavin Simpson Mar 6 '13 at 22:54
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- -1 :) your edit is sufficient a health warning for me to remove my downvote. Buyer beware as they say! –  Gavin Simpson Mar 7 '13 at 16:13

Use the fact that R is vectorized. You can then use a binomial distribution to replicate the coin toss.

heads <- rbinom(size = sample(6,100, replace = TRUE), n=100, prob = 0.5)
sum(heads)
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I believe the user has to use a for() loop for their assignment. –  TARehman Mar 6 '13 at 22:39
3  
@TaRehman -- That would be inefficient here. SO is not a help desk for assignments. I'm answering the question is what am I doing wrong in relation to the description. I'd suggest the for is included here. –  mnel Mar 6 '13 at 22:41
    
Oh, no doubt. I just think it's a homework question where he/she needs to use a loop. –  TARehman Mar 6 '13 at 22:42

Perhaps I have missed something, but what is wrong with one call to sample() to do the 100 rolls of the dice, and then plug that into rbinom() to do the coin tosses? We pass the output from sample() to the size argument

> set.seed(1)
> rbinom(100, size = sample(6, 100, replace = TRUE), prob = 0.5)
  [1] 1 1 1 6 1 2 2 2 3 1 2 1 2 1 1 0 3 1 1 3 6 1 2 0 2 1 1 1 2 2 2 1 0 1 4 3 3
 [38] 1 5 2 3 2 2 1 3 2 0 2 1 4 2 3 1 1 1 0 1 1 1 1 2 2 1 2 3 1 0 2 1 2 2 4 2 1
 [75] 1 5 3 2 3 5 1 2 3 1 4 0 3 1 2 1 1 0 1 5 2 3 0 2 2 3
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Because I need to use a for loop as that's what we're learning about in R at the moment. –  Mathlete Mar 6 '13 at 22:43
4  
Then you are being taught badly! This is not how to answer the question. I can think of many reasons to use a for() loop and do so regularly as I do not possess the rabid fear of for() that some of the apply-loving R coders exhibit. However, this is not a situation that calls for for(). Stack Overflow is not your private "help me write crappy R code Helpdesk" and if that is your question you'll be getting a close vote from me. Stack Overflow is not about you but about curating the best programming resource. Please focus your questions accordingly. –  Gavin Simpson Mar 6 '13 at 22:48
    
Well that's not something I can control. I didn't know it was 'crappy' code, I've only been using R for a week. I'm more than open to learning about making my codes more efficient and I've actually learnt a lot from some of the answers posted here. –  Mathlete Mar 6 '13 at 22:52
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The rant of @GavinSimpson was directed more at your teacher I think... –  Paul Hiemstra Mar 7 '13 at 9:44

Arun beat me to it. But another of the many many ways could be (if I understand your desired outcome correctly..

X <- sample(6,100,replace=TRUE,c(1,1,1,1,1,1)/6)
Y <- lapply(X , function(x){ res <- sample( c( "H" , "T" ) , x , replace=TRUE , c(1,1)/2 ) ; table( res ) } )

You want to histogram the results....

res <- unlist(Y)
hist( res[names( res )=="T"] )
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I don't think there's a need for the last parameter in either sample() because the vector of weights defaults to uniform weighting, which is what is being used here. –  Simon Mar 6 '13 at 22:35
    
I need to use a for loop though. –  Mathlete Mar 6 '13 at 22:36
    
@Mathlete Why? R is designed for vectorised operations. Why do you specifically need to use a loop? –  Simon O'Hanlon Mar 6 '13 at 22:37
    
@Simon v. true! Cheers, Simon :-) –  Simon O'Hanlon Mar 6 '13 at 22:37
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