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I have a list of data frames:

dfl <- list(
  df1 = data.frame(a=1:3,b=letters[5:7],c=1:3,d=letters[1:3]),
  df2 = data.frame(d=1:4,b=1:4,e=1:4,f=letters[1:4]),
  df3 = data.frame(g=letters[2:6],b=1:5,h=1:5,i=letters[1:5]),
  df4 = data.frame(j=c(1.4,2.4,3.4588),b=letters[1:3],k=1:3,l=letters[1:3],t=7:9),  
  df5 = data.frame(m=1:4,b=1:4,n=1:4,o=letters[1:4]),    
  df6 = data.frame(p=1:5,b=1:5,q=1:5,r=letters[1:5],s=4:8)
)

Each data frame has different number of columns, different column names and different data types. Is there any way how I can write data to XLS file (Excel) to one sheet, possibly separated with empty row or data frame name?

Currently, I'm using package WriteXLS, but here data frames can be written to separated sheets only:

library(WriteXLS)
WriteXLS("dfl",ExcelFileName="MyExcel.xls")
share|improve this question
    
How do you want the columns to align (e.g., all left-aligned)? Probably easier to combine them all into a matrix and then write that. –  Thomas Oct 23 '13 at 8:29
    
@Thomas Alignment of columns is not that important, but I would prefer right-aligned as most columns will be numbers. –  Tomas Greif Oct 23 '13 at 8:35
    
Sorry, I wasn't clear. I meant that since you have different numbers of columns, does it matter where the columns of each dataframe fall relative to the columns of the dataframes that will be placed above or below it on the sheet? –  Thomas Oct 23 '13 at 8:37
    
@Thomas Oh, I see. No, it does not matter, I expect that every data frame will start in column A and continue till the end od data frame without any special alignment. –  Tomas Greif Oct 23 '13 at 8:40
1  
My first thought was: "I'm sure you can do that with write.xlsx from the xlsx package", but it turns out that you can't at the moment. Just sent a patch to the package maintainer, so soon it should be possible to do there. –  Richie Cotton Oct 23 '13 at 9:57

2 Answers 2

up vote 2 down vote accepted

I would try something like this:

dflc <- lapply(dfl, function(x) {
  as.data.frame(sapply(x, function(y) {as.character(y)}),stringsAsFactors=FALSE)
  })

out <- rbind.fill.matrix(lapply(names(dflc),
        function(x) {
          rbind(
            c(x,rep('',ncol(dflc[[x]])-1)),
            names(dflc[[x]]),
            setNames(dflc[[x]],NULL),
            '')
        }
      ))

out[is.na(out)] <- ''
out <- as.data.frame(out)

out

The out object looks like:

        1 2 3 4 5
1     df1        
2       a b c d  
3       1 e 1 a  
4       2 f 2 b  
5       3 g 3 c  
6                
7     df2        
8       d b e f  
9       1 1 1 a  
10      2 2 2 b  
11      3 3 3 c  
12      4 4 4 d  
13               
14    df3        
15      g b h i  
16      b 1 1 a  
17      c 2 2 b  
18      d 3 3 c  
19      e 4 4 d  
20      f 5 5 e  
21               
22    df4        
23      j b k l t
24    1.4 a 1 a 7
25    2.4 b 2 b 8
26 3.4588 c 3 c 9
27               
28    df5        
29      m b n o  
30      1 1 1 a  
31      2 2 2 b  
32      3 3 3 c  
33      4 4 4 d  
34               
35    df6        
36      p b q r s
37      1 1 1 a 4
38      2 2 2 b 5
39      3 3 3 c 6
40      4 4 4 d 7
41      5 5 5 e 8
share|improve this answer
    
I think this is going the right direction, but currently it generates a lot of warnings and if you check the result some of the column names are not present. –  Tomas Greif Oct 23 '13 at 10:37
    
@TomasGreif The warnings are because your dataframes contain factors. It has nothing to do with the solution per se. And yes, it's imperfect, but might get you going in the right direction. –  Thomas Oct 23 '13 at 11:01
    
I've modified your answer - fixed factor handling and added data frame name to results. Thanks for your help. –  Tomas Greif Oct 23 '13 at 11:36
    
@TomasGreif Edits look great! –  Thomas Oct 23 '13 at 11:36

Another way is to use the XLConnect package. I'm sure you can tinker with this to get exactly what you need, but it's most of the way there.

library(XLConnect)
wb <- loadWorkbook("sampleFile.xlsx", create = T) 
createSheet(wb, name = 'Sheet1')                  
dflNrow <- 0                                      
for(df in dfl){
  dflNrow <- dflNrow + nrow(df)  
  XLConnect::writeWorksheet(wb, df, sheet = 'Sheet1', startRow = dflNrow)
}
saveWorkbook(wb)

With this script, the data frames will not be separated by a space or a 'name', but the header row is shaded gray.

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