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How can I properly build an lapply to read (from out of one directory) all the .csv files, load all the columns as strings and then bind them into one data frame.

Per this, I have a way to get all the .csv files loaded and bound into a dataframe. Unfortunately they are getting hung up on the variablity of how the columns are getting type cast. Thus giving me this error:

Error: Can not automatically convert from character to integer in column

I have tried supplementing the code with the arguments for data type and am trying to just keep everything as characters; I am getting stuck now on being able to properly get my lapply 'loop' to effectively reference the subject of each cycle of its 'loop'.

srvy1 <- structure(list(RESPONSE_ID = 584580L, QUESTION_ID = 328L, SURVEY_ID = 2324L, 
           AFF_ID_INV_RESP = 5L), .Names = c("RESPONSE_ID", "QUESTION_ID", 
                                             "SURVEY_ID", "AFF_ID_INV_RESP"), class = "data.frame", row.names = c(NA, 
                                                                                                                  -1L))

srvy2 <- structure(list(RESPONSE_ID = 584580L, QUESTION_ID = 328L, SURVEY_ID = 2324L, 
           AFF_ID_INV_RESP = "bovine"), .Names = c("RESPONSE_ID", "QUESTION_ID", 
                                                   "SURVEY_ID", "AFF_ID_INV_RESP"), class = "data.frame", row.names = c(NA, 
                                                                                                                        -1L))    

files = list.files(pattern="*.csv")
tbl = lapply(files, read_csv(files, col_types = cols(.default = col_character()))) %>% bind_rows

Is there an easy fix for this that I can keep in tidyverse, or must I drop down a level and go into openly building the for loop myself - per this.

6
  • and the downvote is for what exactly?
    – leerssej
    Nov 16 '16 at 19:07
  • 2
    Most likely due to not providing a reproducible example, with data. You have some errors in your code. It should be lapply(fies, read_csv, col_types = cols(.default = col_character()))
    – Jake Kaupp
    Nov 16 '16 at 19:08
  • 1
    I would supply head(x,5) of two of the files, create a list from those and dput the results and paste them here.
    – Jake Kaupp
    Nov 16 '16 at 19:15
  • tbl = lapply(files, read_csv(col_types = cols(.default = col_character()))) gets the following error Error in inherits(x, "connection") : argument "file" is missing, with no default and this tbl = lapply(files, read_csv(files, col_types = cols(.default = col_character()))) gets this Error in switch(tools::file_ext(path), gz = gzfile(path, ""), bz2 = bzfile(path, : EXPR must be a length 1 vector In addition: Warning messages: 1: In if (grepl("\n", x)) { : the condition has length > 1 and only the first element will be used which typically means that I need a rowwise call.
    – leerssej
    Nov 16 '16 at 19:20
  • 2
    The lapply should be the form lapply(x, FUN, ...) where ... is the arguments passed to FUN. You're filling the arguments within FUN. It should be lapply(files, read_csv, col_types = cols(.default = col_character()))
    – Jake Kaupp
    Nov 16 '16 at 19:22
8

The lapply should be the form lapply(x, FUN, ...) where ... is the arguments passed to FUN. You're filling the arguments within FUN. It should be lapply(files, read_csv, col_types = cols(.default = "c"))

If you like a tidyverse solution:

files %>%
  map_df(~read_csv(.x, col_types = cols(.default = "c")))

Which will bind the whole thing into a data frame at the end.

1
  • thank you. I have been struggling with this for hours.
    – Nova
    Feb 27 '19 at 14:30

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