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Assume having a list of books with authors , after reading the data into a list "LS" I tried to enter it into a file and the output was

> write.table(LS, "output.txt")
Error in data.frame(..., title = NULL,  : 
  arguments imply differing number of rows: 1, 0

> write(LS, "output.txt")
Error in cat(list(...), file, sep, fill, labels, append) : 
  argument 1 (type 'list') cannot be handled by 'cat'

I was able to use dput but I would like the data to be formatted well (no redundancy of repeated keywords all over the file). Any suggestions? Thanks

UPDATE dput( head (LS, 2))

list(structure(list( title = "Book 1", 
authors = list(structure(c("Pooja", "Garg"),
 .Names = c("forename","surname")), 
structure(c("Renu", "Rastogi"), 
.Names = c("forename","surname")))),
 .Names = c("title", "authors")), 

structure(list( title = "Book 2", 
 authors = list(structure(c("Barry", "Smit"), .Names = c("forename", 
    "surname")), structure(c("Tom", "Johnston"), .Names = c("forename", 
    "surname")))), .Names = c("title", "authors")))
share|improve this question
1  
I think you'll need to comment on why you don't think the output of dput is acceptable. What is your expected/desired output? – Dason Oct 3 '12 at 23:50
    
@Dason In dput the keywords "book" and "authors" will be repeated all over the file , while I want them in the header only as csv files. – Thomas Lee Oct 3 '12 at 23:52
    
placing the some example data will help (how about including dput(head(LS,2)) within the question so we can see the structure of the data – mnel Oct 4 '12 at 0:08
    
@mnel I add the output above – Thomas Lee Oct 4 '12 at 0:22
    
Why are you writing to a file? If it's just for R to read later, use save instead. – Aaron Oct 4 '12 at 1:08
up vote 6 down vote accepted

You may first convert your list to a data frame:

LS.df = as.data.frame(do.call(rbind, LS))

Or

LS.df = as.data.frame(do.call(cbind, LS))

Then you can simply save LS.df with write.csv or write.table

share|improve this answer

Using the data you provided and rjson

library(rjson)

# write them to a file
cat(toJSON(LS), file = 'LS.json')


LS2 <- fromJSON('LS.json')


# some rearranging to get authors back to being a data.frame

LS3 <- lapply(LS2, function(x) { x[['authors']] <-  lapply(x[['authors']], unlist); x})

identical(LS, LS3)

## TRUE

The file looks like

[{"title":"Book 1","authors":[{"forename":"Pooja","surname":"Garg"},{"forename":"Renu","surname":"Rastogi"}]},{"title":"Book 2","authors":[{"forename":"Barry","surname":"Smit"},{"forename":"Tom","surname":"Johnston"}]}]

if you want each book on a separate line then you can use

.json <-  lapply(LS, toJSON)
# add new lines and braces

.json2 <- paste0('[\n', paste0(.json, collapse = ', \n'), '\n]')
 cat(.json)
[
{"title":"Book 1","authors":[{"forename":"Pooja","surname":"Garg"},{"forename":"Renu","surname":"Rastogi"}]}, 
{"title":"Book 2","authors":[{"forename":"Barry","surname":"Smit"},{"forename":"Tom","surname":"Johnston"}]}
]
share|improve this answer
    
I add the structure above – Thomas Lee Oct 4 '12 at 0:34
    
And now I've edited the response to work with this structure – mnel Oct 4 '12 at 1:01
    
Thanks for the solution but the data frame was easier to me – Thomas Lee Oct 6 '12 at 3:03

I use the RJSONIO package.

library(RJSONIO)

exportJSON <- toJSON(LS)
write(exportJSON,"LS.json")
share|improve this answer

It's better to use format()

LS.str <- format(LS)

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