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I have a function defined as:

foo<-function(data){
    for (i in 2:10)
    run.model<-mark(data[sample(nrow(data), i),], model="Occupancy")
    results<-data.frame(mean(summary(run.model)$real$p), summary(run.model)$real$Psi, i)
    return(results)
    }

"mark" is the function for running the model of my interest. However, the results only contain the last model where i=10

  mean.summary.run.model..real.p.        X1  i
1                       0.1403083 0.6414447 10

How do I correct my function so it compile results from i=2 to i=10?

Thanks.

==================================================================================

(Can't answer my own question so I editted my question to show how I modified your codes:

Thank you both.

I modified @David Robinson 's codes

foo<-function(data){
    do.call(rbind, lapply(2:6, function(i){
        run.model<-mark(data[sample(nrow(data), i),], model="Occupancy")
        cbind(p=mean(summary(run.model)$real$p), Psi=summary(run.model)$real$Psi, stations=i)
        }))
    }

And got these outputs:

         p            1 stations
 0.4895234 1.388066e-10        2
 0.2902716 3.445050e-01        3
 0.0942734 7.955582e-01        4
 0.1683427 2.376106e-01        5
 0.1683427 1.980088e-01        6

I wonder why I named the second column but it did not appear in the output?

For @zzk 's codes I modified them as below:

foo<-function(data){
results.frame <- data.frame()
for (i in 2:6) {
    run.model<-mark(data[sample(nrow(data), i),], model="Occupancy")
    results<-data.frame(p=mean(summary(run.model)$real$p), Psi=summary(run.model)$real$Psi, stations=i)          
    results.frame <- rbind(results.frame, results)
    }
return(results.frame)
}

And the outputs:

          p           X1 stations
1 0.1683427 5.940264e-01        2
2 0.5533567 7.292506e-12        3
3 0.0500000 1.000000e+00        4
4 0.1683427 7.128317e-01        5
5 0.2321999 3.588861e-01        6

Pretty much the same.

The other questions are: 1. If I want to repeat this loop n time, I would like to use function "replicate". But I have no idea how to put it. 2. Is it possible to make the output as a data.frame so I can manipulate it later? (ex. calculate means, make graphs, grouping...etc)


I used replicate(10, foo(data))

Here is what I got. Looks like the output becomes problematic and the rows and columns are inverted. Same outcome with "replicate(100, foo(data), simplify="data.frame")".

         [,1]      [,2]      [,3]      [,4]      [,5]      [,6]      [,7]      [,8]      [,9]      [,10]    
p        Numeric,3 Numeric,3 Numeric,3 Numeric,3 Numeric,3 Numeric,3 Numeric,3 Numeric,3 Numeric,3 Numeric,3
X1       Numeric,3 Numeric,3 Numeric,3 Numeric,3 Numeric,3 Numeric,3 Numeric,3 Numeric,3 Numeric,3 Numeric,3
se.p     Numeric,3 Numeric,3 Numeric,3 Numeric,3 Numeric,3 Numeric,3 Numeric,3 Numeric,3 Numeric,3 Numeric,3
se.Psi   Numeric,3 Numeric,3 Numeric,3 Numeric,3 Numeric,3 Numeric,3 Numeric,3 Numeric,3 Numeric,3 Numeric,3
stations Integer,3 Integer,3 Integer,3 Integer,3 Integer,3 Integer,3 Integer,3 Integer,3 Integer,3 Integer,3

But if I use this code (with 1 more column in the output)

foo<-function(data){
do.call(rbind, lapply(2:4, function(i){
    run.model<-mark(data[sample(nrow(data), i),], model="Occupancy")
    cbind(mean(summary(run.model)$real$p), Psi=summary(run.model)$real$Psi, se.p=mean(summary(run.model, se=T)$real$p$se), stations=i)
    }))
}

With

replicate(5, foo(data))

I got

, , 1

                  1      se.p stations
 0.4895234 1.388066e-10 0.0000000        2
 0.0333333 1.000000e+00 0.0327731        3
 0.2117159 8.265795e-01 0.0833965        4

, , 2
.....
.....
, , 5

                   1      se.p stations
 0.2902716 0.5167575 0.1519857        2
 0.2000000 1.0000000 0.0730297        3
 0.2902716 0.2583787 0.1519857        4

With replicate(5, foo(data), simplify="data.frame")

I got these.

             [,1]         [,2]         [,3]         [,4]      [,5]
 [1,] 4.895234e-01 1.683427e-01 4.895234e-01 1.683427e-01 0.1683427
 [2,] 1.683427e-01 5.533567e-01 2.902716e-01 5.533567e-01 0.0666667
 [3,] 2.500000e-02 2.117159e-01 2.321999e-01 3.974777e-01 0.0250000
 [4,] 1.388066e-10 5.940264e-01 1.388066e-10 5.940264e-01 0.5940264
 [5,] 3.960176e-01 7.292506e-12 3.445050e-01 7.292506e-12 1.0000000
 [6,] 1.000000e+00 8.265795e-01 5.383291e-01 2.515864e-01 1.0000000
 [7,] 0.000000e+00 1.379382e-01 0.000000e+00 1.379382e-01 0.1379382
 [8,] 1.379382e-01 0.000000e+00 1.519857e-01 0.000000e+00 0.0455420
 [9,] 2.468550e-02 8.339650e-02 1.038181e-01 1.575997e-01 0.0246855
[10,] 2.000000e+00 2.000000e+00 2.000000e+00 2.000000e+00 2.0000000
[11,] 3.000000e+00 3.000000e+00 3.000000e+00 3.000000e+00 3.0000000
[12,] 4.000000e+00 4.000000e+00 4.000000e+00 4.000000e+00 4.0000000

What I need is, if for each i repeat 3 times:

          p           X1 stations
1 0.1683427 5.940264e-01        2
2 0.4687956 0.9876516334        2
3 xxxxxxxx  xxxxxxxxxxxx        2
4 xxxxxxxxx xxxxxxxxxxxx        3
5 0.5533567 7.292506e-12        3
6 xxxxxxxxx xxxxxxxxxxxx        3
.................................
13 0.0500000 1.000000e+00       6
14 0.1683427 7.128317e-01       6
15 0.2321999 3.588861e-01       6
share|improve this question
    
What format do you want the replicated result to be? That is, do you want to get that same output, but make it wider? If so, it would probably be easier to create separate matrices for p and psi, where each column is a separate replication, wouldn't it? –  David Robinson Aug 29 '12 at 18:17
    
Actually you can answer your own question. (There may be a time limit on how soon you can. It would be poor form to do so if David Robinson's answer were substantially correct. If it's not, then you should see if the necessary time has elapsed.) –  BondedDust Aug 29 '12 at 19:01
    
believe I answered your 'replicate' question, edited my answer below. –  zzk Aug 29 '12 at 21:49
    
Thank you all. I actually want to replicate each i n times and append the results to the data frame. Maybe that should be achieved by adding another for loop rather than replicate? –  lamushidi Aug 30 '12 at 14:32
    
I know I can answer my own question but I had to wait 8 hrs. Couldn't wait that long..:P –  lamushidi Aug 30 '12 at 14:32

2 Answers 2

You cannot return a value multiple times- only the first return statement will occur, and the rest of the function will never run. Furthermore, you don't have brackets after your for loop, so the only line that is included in the for loop is:

for (i in 2:10)
    run.model<-mark(data[sample(nrow(data), i),], model="Occupancy")

This line thus runs 9 times, setting run.model to something different each time. Then the line:

results<-data.frame(mean(summary(run.model)$real$p), summary(run.model)$real$Psi, i)
return(results)

occurs only once. If you instead want to return a list with separate 9 data frames in it, you would do something more like:

foo<-function(data){
    lapply(2:10, function(i) {
        run.model<-mark(data[sample(nrow(data), i),], model="Occupancy")
        data.frame(mean(summary(run.model)$real$p), summary(run.model)$real$Psi)
    }
}

You could also combine that list into a single data frame (depending on how you want the data combined and returned). You could do that with do.call and cbind, though there are other solutions:

foo<-function(data){
    do.call(cbind, lapply(2:10, function(i) {
        run.model<-mark(data[sample(nrow(data), i),], model="Occupancy")
        cbind(mean(summary(run.model)$real$p), summary(run.model)$real$Psi)
    })
}
share|improve this answer
    
Cool, thanks! I modified your codes and will post it with the output. –  lamushidi Aug 29 '12 at 16:56

David Robinson's explanation is perfectly correct, but if you want to keep the explicit for loop rather than a lapply function, this should work:

foo<-function(data){
    results.frame <- data.frame()
    for (i in 2:10) {
        run.model<-mark(data[sample(nrow(data), i),], model="Occupancy")
        results<-data.frame(mean(summary(run.model)$real$p), summary(run.model)$real$Psi, i)          
        results.frame <- rbind(results.frame, results)
    }
    return(results.frame)
}

To answer the second question about replicate: the following should work, say you want to replicate the function 100 times, the following code will put each data.frame into a list of length 100:

replicate(100, foo(data))

if you want the results in a data frame:

replicate(100, foo(data), simplify="data.frame")

Not quite sure if the rows/columns will be preserved though.

share|improve this answer
1  
+1: agreed, another good solution –  David Robinson Aug 29 '12 at 16:28
    
Thanks so much. I modified your codes but since I can't answer my own question so I put in my original post. –  lamushidi Aug 29 '12 at 17:09
    
edited my answer with a response to your updated question. –  zzk Aug 29 '12 at 19:08
    
I found the solution by simply adding another for loop in the beginning. :D –  lamushidi Aug 31 '12 at 14:48

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