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As the title suggest, I would like to do the above. Example below:


df <- data.frame("rbind", lapply(1:10, function(i) rnorm(10))))
df.list <- rep(list(df), 10)
names(df.list) <- paste("DataFrame", str_pad(1:length(df.list), 2, pad = "0"), sep = "")

df.list.workbook <- loadWorkbook("df.list.workbook.xlsx", create = TRUE)
lapply(1:length(df.list), function(i) createSheet(df.list.workbook, name = names(df.list[i])))
lapply(df.list[1:length(df.list)], function(i) writeWorksheet(df.list.workbook, i, sheet = names(i)))

The last line is where it throws up an error:

Error: IllegalArgumentException (Java): Sheet index (-1) is out of range (0..9)

To troubleshoot this, I tried:

lapply(df.list[1:length(df.list)], function(i) print(names(i)))

And realise that the names of the columns were being passed to the sheet variable. Any ideas how to overcome this?

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names(df.list)[i]? – James Mar 24 '12 at 8:29
@James, that give me Error in print(names(df.list)[i]) : error in evaluating the argument 'x' in selecting a method for function 'print': Error in names(df.list)[i] : invalid subscript type 'list' – Ben Mar 24 '12 at 8:32
Ah, I see. Would also need to change to: lapply(seq_along(df.list), function(i) writeWorksheet(df.list.workbook, df.list[[i]], sheet = names(df.list)[i]). Need to lapply over the index instead of the list. – James Mar 24 '12 at 8:38
Brilliant! Could you submit it as an answer so I can mark it as answered? – b70568b5 Mar 24 '12 at 8:41

2 Answers 2

up vote 4 down vote accepted

You need to lapply over the index instead of the list:

lapply(seq_along(df.list), function(i) writeWorksheet(df.list.workbook, df.list[[i]], sheet = names(df.list)[i]))
share|improve this answer

XLConnect is vectorized in many places. In your case this holds for createSheet and writeWorksheet, so you can write:

df.list.workbook <- loadWorkbook("df.list.workbook.xlsx", create = TRUE)
createSheet(df.list.workbook, name = names(df.list))
writeWorksheet(df.list.workbook, data = df.list, sheet = names(df.list))
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