95

I have a named character vector returned from xmlAttrs like this:

testVect <- structure(c("11.2.0.3.0", "12.89", "12.71"), .Names = c("db_version", 
             "elapsed_time", "cpu_time"))

I would like to convert it to a data frame that looks like this:

testDF <- data.frame("db_version"="11.2.0.3.0","elapsed_time"=12.89,"cpu_time"=12.71)
head(testDF)
  db_version elapsed_time cpu_time
1 11.2.0.3.0        12.89    12.71
88

It's as simple as data.frame(as.list(testVect)). Or if you want sensible data types for your columns, data.frame(lapply(testVect, type.convert), stringsAsFactors=FALSE).

4
  • 1
    Oddly, the tibble analog of this does not work: data_frame(as.list(testVect)) return a 5 row data frame. – CoderGuy123 Mar 19 '18 at 21:34
  • 5
    @Deleet tibble will work with as_tibble(as.list(testVect)) or as_data_frame(as.list(testVect)) (as_data_frame is an alias for as_tibble). – JWilliman Apr 2 '18 at 22:11
  • 2
    In line with comments by @Deleet and @JWillliman, data.table(as.list(...)) does not work, but instead as.data.table(as.list(...)) does. – merv Jul 3 '18 at 20:57
  • @Matthew Plourde Whether stringsAsFactors True or False, it gives the same data type. How to not change the data type? – AMS Jul 19 '20 at 19:10
61

The answers from @MatthewPlourde and @JackRyan work, but if you have a long named vector it is annoying to have a data frame with one row and many columns. If you'd rather have a "key" column and a "value" column with many rows, any of the following should work:

data.frame(keyName=names(testVect), value=testVect, row.names=NULL)

##        keyName      value
## 1   db_version 11.2.0.3.0
## 2 elapsed_time      12.89
## 3     cpu_time      12.71


## Suggested by @JWilliman
tibble::enframe(testVect)

## # A tibble: 3 x 2
##   name         value
##   <chr>        <chr>
## 1 db_version   11.2.0.3.0
## 2 elapsed_time 12.89
## 3 cpu_time     12.71


## Suggested by @Joe
stack(testVect)
##       values          ind
## 1 11.2.0.3.0   db_version
## 2      12.89 elapsed_time
## 3      12.71     cpu_time
6
  • sad that there's no one-liner – JelenaČuklina Jan 31 '18 at 16:29
  • 5
    Can also use tibble::enframe(testVect). – JWilliman Apr 2 '18 at 22:18
  • 2
    stack(testVect) also does this but leaves the values as characters. – Joe Nov 10 '18 at 19:15
  • @Jelena-bioinf as one-liner with dplyr syntax, you can use testVect %>% as.list %>% as.data.frame %>% tidyr::gather() This actually produces the 'key' and 'value' columns which @dnlbrky referred to. – Agile Bean Nov 28 '18 at 3:46
  • stack(), what an underrated function! – stevec Jul 25 '20 at 15:41
20

I'm going to take a stab at this:

test.vector <- as.data.frame(t(testVect))
class(test.vector)
1
  • 1
    Or even shorter, simply data.frame(t(testVect)) – tjebo Mar 4 '19 at 18:06
4

I used to use the functions suggested in these answers (as.list, as_tibble, t, enframe, etc.) but have since found out that dplyr::bind_rows now works to do exactly what the original question asks with a single function call.

library(dplyr)
testVect <- structure(c("11.2.0.3.0", "12.89", "12.71"), .Names = c("db_version", "elapsed_time", "cpu_time"))
testVect %>% bind_rows
#> # A tibble: 1 x 3
#>   db_version elapsed_time cpu_time
#>   <chr>      <chr>        <chr>   
#> 1 11.2.0.3.0 12.89        12.71

Created on 2019-11-10 by the reprex package (v0.3.0)

As shown in tidyverse - prefered way to turn a named vector into a data.frame/tibble

1
named vector %>% as_tibble(.,rownames="column name of row.names")
1
  • Please add some explanation around here so everybody can learn. As of now a one-liner is a bit shallow. – harmonica141 Oct 31 '20 at 18:22
1

Here's an example using tibble:

named_vector_df = tibble(name = names(named_vector), value = named_vector)

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.