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I have a list, listDFs, where each element is a data frame. Each data frame has a different number of rows and the same number of columns.

I should create a vector beginning from listDFs[[i]]$Name extracting all the i element from the list.

I thought to use a loop such:

vComposti <- c()
for(j in 1:10){vComposti <- c(listDFs[[j]]$Name)}

But the result is a vector containing only the first level (listDFs[[1]]$Name) of the list.

Where I wrong?? Do you have any suggestion??

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1 Answer 1

up vote 5 down vote accepted

The problem you have is in this line:

vComposti <- c(listDFs[[j]]$Name)

Each time through your loop, you are re-assigning a new value to vComposti and overwriting the previous value.

In general it is preferable to pre-allocate the vector and fill it element by element:

vComposti <- rep(NA, 10)
for(j in 1:10){
    vComposti[j] <- c(listDFs[[j]]$Name)
}

But it's also not clear to me exactly what you're expecting the result to be. You create a vector, but it looks like you are trying to store an entire data frame column in each element of the vector. If that's the case you may actually be looking for a result that's a list:

vComposti <- vector("list",10)
for(j in 1:10){
    vComposti[[j]] <- c(listDFs[[j]]$Name)
}

Another, somewhat more sophisticated, option may be to use lapply:

lapply(listDFs,FUN = "[","Name")
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Yes, lapply is the best choice but, the return of lapply is a list . How should I do to transform it in a data frame? –  Riccardo Nov 19 '11 at 22:08
    
@Riccardo, since a data.frame is a list, you can simply use as.data.frame on the result of lapply –  Andrie Nov 19 '11 at 22:09
    
I tried it but the R console give this error: Error in data.frame(list(Name = c("A",: arguments imply differing number of rows: 61, 57, 58, 56, 55, 53, 54, 51, 52, 48 . –  Riccardo Nov 19 '11 at 22:14
    
I solved the last problem with this: df <-data.frame(matrix(unlist(lComposti),byrow=T)) –  Riccardo Nov 19 '11 at 22:35

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