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I am so stuck at this stupid problem and new to programming. I am trying to write a function in R which takes 3 inputs:

  1. Directory
  2. pollutant
  3. id

I have a directory on my computer full of CSV's files i.e. over 300. What this function would do is shown in the below prototype:

pollutantmean <- function(directory, pollutant, id = 1:332) {
        ## 'directory' is a character vector of length 1 indicating
        ## the location of the CSV files

        ## 'pollutant' is a character vector of length 1 indicating
        ## the name of the pollutant for which we will calculate the
        ## mean; either "sulfate" or "nitrate".

        ## 'id' is an integer vector indicating the monitor ID numbers
        ## to be used

        ## Return the mean of the pollutant across all monitors list
        ## in the 'id' vector (ignoring NA values)
        }

An example output of this function is shown here:

source("pollutantmean.R")
pollutantmean("specdata", "sulfate", 1:10)

## [1] 4.064

pollutantmean("specdata", "nitrate", 70:72)

## [1] 1.706

pollutantmean("specdata", "nitrate", 23)

## [1] 1.281

I can read the whole thing in one go by:

path = "C:/Users/Sean/Documents/R Projects/Data/specdata"
fileList = list.files(path=path,pattern="\\.csv$",full.names=T)
all.files.data = lapply(fileList,read.csv,header=TRUE)
DATA = do.call("rbind",all.files.data)

My issue are:

  1. User enters id either atomic or in a range e.g. suppose user enters 1 but the file name is 001.csv or what if user enters a range 1:10 then file names are 001.csv ... 010.csv
  2. Column is enetered by user i.e. "sulfate" or "nitrate" which he/she is interested in getting the mean of...There are alot of missing values in these columns (which i need to omit from the column before calculating the mean.

The whole data from all the files look like this :

summary(DATA)
         Date           sulfate          nitrate             ID       
 2004-01-01:   250   Min.   : 0.0     Min.   : 0.0     Min.   :  1.0  
 2004-01-02:   250   1st Qu.: 1.3     1st Qu.: 0.4     1st Qu.: 79.0  
 2004-01-03:   250   Median : 2.4     Median : 0.8     Median :168.0  
 2004-01-04:   250   Mean   : 3.2     Mean   : 1.7     Mean   :164.5  
 2004-01-05:   250   3rd Qu.: 4.0     3rd Qu.: 2.0     3rd Qu.:247.0  
 2004-01-06:   250   Max.   :35.9     Max.   :53.9     Max.   :332.0  
 (Other)   :770587   NA's   :653304   NA's   :657738

Any idea how to formulate this would be highly appreciated...

Cheers

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4 Answers 4

So, you can simulate your situation like this;

# Simulate some data:
# Create 332 data frames
set.seed(1)
df.list<-replicate(332,data.frame(sulfate=rnorm(100),nitrate=rnorm(100)),simplify=FALSE)
# Generate names like 001.csv and 010.csv
file.names<-paste0('specdata/',sprintf('%03d',1:332),'.csv')
# Write them to disk
invisible(mapply(write.csv,df.list,file.names))

And here is a function that would read those files:

pollutantmean <- function(directory, pollutant, id = 1:332) {
  file.names <- list.files(directory)
  file.numbers <- as.numeric(sub('\\.csv$','', file.names))
  selected.files <- na.omit(file.names[match(id, file.numbers)])
  selected.dfs <- lapply(file.path(directory,selected.files), read.csv)
  mean(c(sapply(selected.dfs, function(x) x[ ,pollutant])), na.rm=TRUE)
}

pollutantmean('specdata','nitrate',c(1:100,141))
# [1] -0.005450574
share|improve this answer
    
This works well for single args but gives error if I do: pollutantmean(path,"nitrate",70:72) [1] NA Warning message: In mean.default(c(sapply(selected.dfs, function(x) x[, pollutant])), : argument is not numeric or logical: returning NA –  Shery May 14 at 9:13
    
That code works in the example.. Are you sure there isn't something special about 70.csv-72.csv? –  nograpes May 14 at 10:31
    
That's the way I fixed it see below... –  Shery May 14 at 11:24
    
@nograpes : The solution needs a slight modification. We need to unlist the output of sapply. So it would look like this : ''' selected.dfs <- lapply(file.path(directory,selected.files), read.csv) e <- sapply(selected.dfs, function(x) x[ ,pollutant]) n<-unlist(e) mean(n, na.rm = TRUE) ''' –  Shagun Jun 7 at 7:05
User enters id either atomic or in a range e.g. 

suppose user enters 1 but the file name is 001.csv or what if user enters a range 1:10 then file names are 001.csv ... 010.csv

You could use a regular expression and the gsub function to remove leading zeros from the file names, then make a dictionary (in r, a named vector) to convert the modified/gsub'd file names to the actual file names. Ex: if your file names are in a character vector, fnames

fnames = c("001.csv","002.csv")
names(fnames) <- gsub(pattern="^[0]*", replacement="", x=fnames)

With this, the vector fnames is converted to a dictionary, letting you call up the file named 001.csv with something along the lines of fnames["1.csv"]. You can also use gsub() to remove the .csv part of the file name.

Column is enetered by user i.e. "sulfate" or "nitrate" which he/she is interested in getting the mean of...There are alot of missing values in these columns (which i need to omit from the column before calculating the mean.

Many R functions have an option for ignoring the special character indicating a missing value. Try entering help(mean) at the R command prompt to find information on this functionality.

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Here's a somewhat general function for calculating the mean for a specific column over a list of files. Not sure how id should be set up, but right now it acts as an indexing vector (i.e. id = 1:3 calculates the mean for the first three files in the file list).

multifile.means <- function(directory = getwd(), pollutant, id = NULL)
{
    d <- match.arg(directory, list.files())
    cn <- match.arg(pollutant,  c('sulfate', 'nitrate'))
    ## get a vector of complete file paths in the given 'directory'
    p <- dir(d, full.names = TRUE)
    ## subset 'p' based on 'id' values
    if(!is.null(id)){
        id <- id[!id > length(p)]
        p <- p[id]
    }
    ## read, store, and name the relevant columns
    cl <- sapply(p, function(x){ read.csv(x)[,cn] }, USE.NAMES = FALSE)
    colnames(cl) <- basename(p)
    ## return a named list of some results
    list(values = cl, 
         mean = mean(cl, na.rm = TRUE), 
         colMeans = colMeans(cl, na.rm = TRUE))
}

Take it for a test-drive:

> multifile.means('testDir', 'sulfate')
# $values
#      001.csv 057.csv 146.csv 213.csv
# [1,]       5      10      NA       9
# [2,]       1       1      10       3
# [3,]      10       4      10       2
# [4,]       3      10       9      NA
# [5,]       4       1       5       5

# $mean
# [1] 5.666667

# $colMeans
# 001.csv 057.csv 146.csv 213.csv 
#    4.60    5.20    8.50    4.75 
share|improve this answer
up vote -1 down vote accepted

That's the way I fixed it:

pollutantmean <- function(directory, pollutant, id = 1:332) {
    #set the path
    path = directory

    #get the file List in that directory
    fileList = list.files(path)

    #extract the file names and store as numeric for comparison
    file.names = as.numeric(sub("\\.csv$","",fileList))

    #select files to be imported based on the user input or default
    selected.files = fileList[match(id,file.names)]

    #import data
    Data = lapply(file.path(path,selected.files),read.csv)

    #convert into data frame
    Data = do.call(rbind.data.frame,Data)

    #calculate mean
    mean(Data[,pollutant],na.rm=TRUE)

    }

The last question is that my function should call "specdata" (the directory name where all the csv's are located) as the directory, is there a directory type object in r?

suppose i call the function as:

pollutantmean(specdata, "niterate", 1:10)

It should get the path of specdata directory which is on my working directory... how can I do that?

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protected by Community Jul 19 at 11:31

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