Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I have the following dataset (CEU):

group  x      y
1     -23     100
1     -0.90   69.62
1     -0.90   72.03
2     -23     100
2      0.69   48.01
2      0.69   45.63

For each value of group, I want to apply functions noted below to each subset of x and y values. I would then like to combine all of the results and write them in a table to export.

I am unsure how exactly to apply the plyr function to do this...if that is indeed the right course of action.

x<-c(-23.0000,-0.9031,-0.9031)
y<-c(100,85.72,86.65)

par<-c(16.88,100.28,-.75,4.129)

dcrit<-function(d) { 
    sumsq<-0
    for (i in 1:length(x)){
      sumsq<-sumsq+ (y[i]-(par[1]+(par[2]-par[1])/(1+10^((x[i]-par[3])*d))))^2      
    }
    sumsq
}

S<-function(par) { 
    a<-par[1]
    b<-par[2]
    c<-par[3]
    d<-par[4]
    sumsq<-0
    for (i in 1:length(x)){
      sumsq<-sumsq+ (y[i]-(a+(b-a)/(1+10^((x[i]-c)*d))))^2      
    }
    sumsq
}
optim(par,S)

CEU <- read.csv(file="C:/files/CEU.csv",head=TRUE,sep=",")
CEU

data <- ddply(CEU,.(group),function(xy) 
{
par[1]<-min(y)
par[2]<-100
par[3]<-x[[which.min(abs(y-50))]]
par[4]<-optimize(dcrit,interval=c(-100,100))$minimum

o<-optim(par,S)
par<-o$par

a<-par[1];
b<-par[2];
c<-par[3];
d<-par[4];

k<-(b-a)/(20-a)-1
if (k>0) ec20<-c+1/d*log10(k) else ec20<-NA
ec20

z<-(b-a)/(50-a)-1
 if (z>0) ec50<-c+1/d*log10(z) else ec50<-NA
ec50

j<-(b-a)/(80-a)-1
if (j>0) ec80<-c+1/d*log10(j) else ec80<-NA
ec80

data.frame(ec20, ec50, ec80)

})

data

The code runs without errors but only on the original x and y values set by:

 x<-c(-23.0000,-0.9031,-0.9031)
 y<-c(100,85.72,86.65)

The x and y values in dataset CEU are not used by ddply. They do not replace the original x and y in an iterative fashion as they do with the group values. data has the appropriate number of groups and the ec20/ec50/ec80 values are accurate but only for the original x and y.

> data
   group       ec20       ec50       ec80
1      1 -0.3652977 -0.6843279 -0.8530892
2      2 -0.3652977 -0.6843279 -0.8530892
3      3 -0.3652977 -0.6843279 -0.8530892
4      4 -0.3652977 -0.6843279 -0.8530892
5      5 -0.3652977 -0.6843279 -0.8530892
share|improve this question
    
Optimize takes a first argument of "f" (a function) and a second argument of "interval" (a range). But you seem to be sending it an undefined function, dcrit, and then doing something with the result, but <who-knows-what?> since "S" only appears once in your code. –  BondedDust Aug 29 '11 at 23:06
    
Edited the original post with the complete code. Thanks! –  Sash Aug 30 '11 at 0:22

1 Answer 1

It looks like you have it right, you just need to produce the output.

I'm guessing this is where your outputs are?

k<-(b-a)/(20-a)-1
if (k>0) ec20<-c+1/d*log10(k) else ec20<-NA
ec20

z<-(b-a)/(50-a)-1
 if (z>0) ec50<-c+1/d*log10(z) else ec50<-NA
ec50

j<-(b-a)/(80-a)-1
if (j>0) ec80<-c+1/d*log10(j) else ec80<-NA
ec80

Put them into a data.frame at the end of the function:

    ...
    data.frame(ec20, ec50, ec80)
}

Now you'll get a data.frame with all of them, with three columns for ec20, ec50 and ec80


To your problem with optim: I think the problem lies in

par[3]<-x[which.min(abs(y-50))]

Single [ in R is not regular subscript -- it gets a slice -- in this case of the data.frame columns. That line is turning par from a numeric vector into a list. Add more brackets:

par[3]<-x[[which.min(abs(y-50))]]
share|improve this answer
1  
If this is correct, you are truly a better mind reader than me! ;) –  joran Aug 29 '11 at 23:14
2  
He's being brave. Ignoring the inconsequential details like defining functions and testing. Cutting to the chase. Let's see... if I give his answer a plus and your comment a plus and a -1 to the (incomplete) questioner... how much am I out? –  BondedDust Aug 29 '11 at 23:42
    
Thanks for the comments, I realize it was unclear as to what I was trying to do with the optim function initially. My concern isn't whether I am using the optim/dcrit functions properly, I know those work. I would just like to do it an iterative fashion using ddply. Alas, I am getting the following error Error in optim(par, S) : (list) object cannot be coerced to type 'double' –  Sash Aug 30 '11 at 0:14
    
Owen, adding the brackets, creates the following warnings:In par[3] <- x[[which.min(abs(y - 50))]] : number of items to replace is not a multiple of replacement length –  Sash Aug 30 '11 at 0:46
    
@Sash OK hm. What are you trying to do with that line? x is a chunk of data.frame and you are selecting one column -- is this what you want to do? Or are you trying to select one row? –  Owen Aug 30 '11 at 0:53

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.