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 am trying to split my data set using two parameters, the fraction of missing values and "maf", and store the sub-data sets in a list. Here is what I have done (it's not working). Any help will be appreciated,

Thanks.

 library(BLR)
 library(missForest)
 data(wheat)

 X2<- prodNA(X, 0.4) ### creating missing values
 dim(X2)

 fd<-t(X2)  

 MAF<-function(geno){        ## markers are in the rows
 geno[(geno!=0) & (geno!=1) & (geno!=-1)] <- NA
 geno <- as.matrix(geno)
 ## calc_Freq for alleles
 n0 <- apply(geno==0,1,sum,na.rm=T)
 n1 <- apply(geno==1,1,sum,na.rm=T)
 n2 <- apply(geno==-1,1,sum,na.rm=T)
 n <- n0 + n1 + n2
 ## calculate allele frequencies
 p <- ((2*n0)+n1)/(2*n)
 q <- 1 - p
 maf  <- pmin(p, q)
 maf}

 frac.missing <- apply(fd,1,function(z){length(which(is.na(z)))/length(z)})

 maf<-MAF(fd)

 lst<-matrix()
 for (i in seq(0.2,0.7,by =0.2)){
 for (j in seq(0,0.2,by =0.005)){
 lst=fd[(maf>j)|(frac.missing < i),]
 }}
share|improve this question
    
What is MAF? Could you include a small portion of your data in your post? And what is frac.missing? –  Mark Miller Jun 30 '13 at 1:17
    
Hi Mark: maf ( is the minor allele frequency), it is function. My only problem is with saving the results in a list (lst). –  hema Jun 30 '13 at 1:29
    
That is not your only problem. The expression maf will not return numeric values unless it is called with arguments in a form like this: maf(arg). Another problem is that you are overwriting the value of lst every time you go through the loop. And a final problem is lack of clarity on whether you want overlapping values in the elements of lst which is what the current code threatens to produce if you ever correct the first two errors. –  BondedDust Jun 30 '13 at 18:08

2 Answers 2

It sounds like you want the results that the split function provides.

If you have a vector, "frac.missing" and "maf" is defined on the basis of values in "fd" (and has the same length as the number of rows in fd"), then this would provide the split you are looking for:

  spl.fd <- split(fd, list(maf, frac.missing) )

If you want to "group" the fd values basesd on of maf(fd) and frac.missing within the bands specified by your for-loop, then the same split-construct may do what your current code is failing to accomplish:

lst <- split( fd, list(cut(maf(fd), breaks = seq(0,0.2,by =0.005) , 
                                       include.lowest=TRUE), 
                       cut(frac.missing, breaks = seq(0.2,0.7,by =0.2),
                             right=TRUE,include.lowest=TRUE)
                        )
              )

The right argument accomodates the desire to have the splits based on a "<" operator whereas the default operation of cut presumes a ">" comparison against the 'breaks'. The other function that provides similar facility is by.

share|improve this answer
    
Hi DWin: i am not using attach... maf and frac.missing are two functions (not variables) that i applied on the data frame (fd). and i am trying to use different cutoff from both maf and frac.missing to create sub data sets to be used with lapply. anyway thank you –  hema Jun 30 '13 at 1:27
    
If they were functions, then you could not use expressions like maf>j , since maf has not been given an argument. You would need to pass some vector or some other data-object to maf. But if they are vectors (as they appear to be), and they both had length equal to the number of rows in fd, then you should definitely try spl.fd <- split(fd, list(maf, frac.missing) ) –  BondedDust Jun 30 '13 at 2:36
    
please see the edited question i added more info. –  hema Jun 30 '13 at 2:58
1  
Yes, I did see the edtited material. THAT was why I modified my answer. You still cannot compare a function name to an index! They are not comparable with R operators. I'm getting close to voting to close because you are not willing to read for meaning. –  BondedDust Jun 30 '13 at 5:06
    
Dear DWin: thank you for your help. As you can see in the question i am trying to loop over the two functions using different ratios of the missing values and maf, but your answer simply assume i have only one value for each of them, right? again thank you –  hema Jun 30 '13 at 15:14
up vote 0 down vote accepted

the below codes give me exactly what i need:

Y<-t(GBS.binary)
nn<-colnames(Y)
fd<-Y
maf<-as.matrix(MAF(Y))
dff<-cbind(frac.missing,maf,Y)
colnames(dff)<-c("fm","maf",nn)
dff<-as.data.frame(dff)

for (i in seq(0.1,0.6,by=0.1)) { 
       for (j in seq(0,0.2,by=0.005)){  
              assign(paste("fm_",i,"maf_",j,sep=""),
                     (subset(dff, maf>j & fm <i))[,-c(1,2)])
                                }    }
share|improve this answer
    
So you were willing to have all of the items that ended up in maf_0.1_fm0.1 also be in maf_0.05_fm0.1 and for all the items in maf_0.05_fm0.1 to be in maf_0_fm0.1? If that really the case then you certainly do not want split and even using the word "split" was misleading most of your audience. "Split" means to separate into disjoint groupings. –  BondedDust Jul 1 '13 at 7:19
    
Sorry, for the misleading information! do you have any idea how to make the above codes more efficient, please? this is very critical step for me, specially when we change the values, and will be repeated several times using different data sets.thank you again for your time and help –  hema Jul 1 '13 at 22:33
    
for (i in seq(0.1,0.6,by=0.1)) { for (j in seq(0,0.2,by=0.005)){ assign(paste("fm_",i,"maf_",j,sep=""),(subset(dff, maf>j & fm <i))[,-c(1,2)]) }} –  hema Jul 3 '13 at 12:42
    
I do not see that the modifications change the behavior of the code. The first pass will still assign a larger group to fm_1maf_1 than it does to later assigned variables. And later groups will still have rows that are contained in all the earlier groups. Yet you say is is behaving properly, so I think it is premature to attempt more efficiency. The cut and findInterval functions provide mechanisms for "splitting" but it remains unclear whether you actually want to "split", because you appear to be making a problem specification using a language (R) that you do not understand. –  BondedDust Jul 3 '13 at 17:17

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.