1

I know that this question has been asked before but I can not get it to work for me and I swear I tried many ways do do it from for file in loops to lapply. I have tables in which I want to replace the columns 2 to 7 'S headers which are now in this format: "X1","X2","X3","X4","X5","X6","X7" into "Kingdom", "Phylum", "Class", "Order", "Family", "Genus", "Species".

Each table does not have the same amount of row nor column.

My 31 tables are listed as this:

step4 <- list.files(pattern="*.coldrop.tsv")

Also, and this is a ''sub-problem'', I am doing it from the 2nd column because RAM keeps adding row numbers (1,2,3,4,5,6....n). If anyone can help me here that would be great.. I need to do it on all these ''step4'' list of tables. here are some ''samples'' of what I want to do.

when I fisrt was trying I opted for the for file in loop option:

colnames <- c("Kingdom", "Phylum", "Class", "Order", "Family", "Genus", "Species")

The following works on a single file

names(Omlo_run11_table.tsv.step1.tsv.step2.tsv.step3.tsv.coldrop.tsv)[2:8] <- c("Kingdom", "Phylum", "Class", "Order", "Family", "Genus", "Species")

i = 1
for(i in 1:length(step4)){
  names(step4[i])[2:8] <- c("Kingdom","Phylum","Class","Order","Family","Genus","Species") 

}

I get this: Error in names(step4[i])[2:8] <- c("Kingdom", "Phylum", "Class", "Order", : 'names' attribute [8] must be the same length as the vector [1]

names(get(step4[i]))[names(get(step4[i])) == "X1","X2","X3","X4","X5","X6","X7"] <- c("Kingdom","Phylum","Class","Order","Family","Genus","Species")

I get this: Error in names(get(step4[i]))[names(get(step4[i])) == "X1", "X2", "X3", : incorrect number of subscripts

for(i in 1:length(step4)){
  nm <- paste0("step4[i]")
  tmp <- get(nm)
  colnames(tmp)[2:8] <- c("Kingdom", "Phylum", "Class", "Order", "Family", "Genus", "Species")
  assign(nm, tmp)
}

I get this: Error in get(nm) : object 'step4[i]' not found

lapply (step4, function(df) { colnames(df)[2:length(step4)] <-colnames[1:length(step4)]-1)}

and so on... I am more of a for file in type of person but I am open to lapply options. I encountered solutions with setnames but could not figure it out either.. Can please someone help me...

6
  • 1
    It looks like step4 is a character vector of file names that have not been read into R. (Unless you omit code that reads the files in and assigns the list of files to the same object.) Character vectors don't have column names - you have to read them in as data frames first. Aug 9, 2016 at 19:32
  • Also, please don't use the rstudio tag unless your question is about the code editor RStudio (if you had a grammar question for an email you are writing, you wouldn't use a gmail tag). Aug 9, 2016 at 19:33
  • Hi, I used this: step4 = list.files(pattern="*.coldrop.tsv") for (i in 1:length(step4)) assign(step4[i], read.csv(step4[i], sep="\t", quote="", header=TRUE, as.is=FALSE)). Sorry about Rstudio! Aug 9, 2016 at 19:59
  • You shouldn't be using assign, it makes things messy and difficult. Instead use a list of data frames. Aug 9, 2016 at 20:03
  • oh, good to know. I am a newbie to the R language so any advice may help. The reason why I avopided the dataframe is because I do not know the number of rows and columns for each table and it does change among them. Though, I know that the first columns (1-8) are always the same...To me it seems like an issue as you seem to have to give ''sizes'' of the table in the dataframe command, or am I completely misunderstanding it.? Aug 9, 2016 at 20:09

1 Answer 1

0

Simply create a list of dataframes using your step4 character vector as @Gregor comments. Then, rename columns of each df iteratively which can all be handled in one lapply()anonymous function. Also, since you are working with tab separated files, you want the generalized read.table() function (of which read.csv is a special wrapper for comma separated files):

step4 <- list.files(path = tsvfilepath, pattern=".*tsv$", full.names = TRUE)

dfList <- lapply(step4, function(i) {
        df <- read.table(i, sep="\t", quote="", header=TRUE, as.is=FALSE)
        names(df)[2:8] <- c("Kingdom","Phylum","Class","Order","Family","Genus","Species") 
        return(df)
})

TSV Files Import with Colnames


This list becomes useful for various needs such as for individual dataframes or one master dataframe.

For individual dfs, consider setNames() to name each individually and list2env() to create separate environment objects. Below gives each df the same name as their corresponding file name:

dfList <- setNames(dfList, step4)

list2env(dfList, envir=.GlobalEnv)

For one large master df, where you append all dataframes together, you have the challenge of the incomplete columns. Hence, consider third-party packages to fill in for missing columns across dfs:

library(plyr)
rbind.fill(dfList)

library(dplyr)
bind_rows(dfList)

library(data.table)    
rbindlist(dfList, fill=TRUE)
25
  • Hi, I ran the command-line as you gave me and there were no warning or error meassage. Though, the column headers remain the same (X1, X2, ...) and so they were not renamed.... Why Aug 10, 2016 at 14:50
  • What command line? Did you run the lapply() function? If it was not clear, the lines at end requires the lapply which produces dfList.
    – Parfait
    Aug 10, 2016 at 16:46
  • This hole thing: step4 <- list.files(pattern="*.coldrop.tsv") dfList <- lapply(step4, function(i) { df <- read.table(i, sep="\t", quote="", header=TRUE, as.is=FALSE) names(df)[1:7] <- c("Kingdom","Phylum","Class","Order","Family","Genus","Species") return(df) })< Aug 10, 2016 at 18:21
  • Interesting as it works perfectly on my test end. I think you are not pulling in any files. Is step4 empty? What is your current working directory? Check with getwd(). This is the default path in list.files(). You can set it with setwd() or use list.files' path arg. If not, is dfList empty? You might not have true tab delimiters, try changing sep="\t" to just whitespace, sep="".
    – Parfait
    Aug 10, 2016 at 20:34
  • Ok. I am more confused now; I ran this temp = list.files(path = workingPath, pattern="*_table.tsv") tempp <- lapply(temp, read.table(i, sep="\t", quote="", header=TRUE, as.is=FALSE)) and I get this:Error in read.table(i, sep = "", quote = "", header = TRUE, as.is = FALSE) : 'file' must be a character string or connection. Aug 11, 2016 at 14:14

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service and acknowledge you have read our privacy policy.

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