274

Is there a more succinct way to get one column of a dplyr tbl as a vector, from a tbl with database back-end (i.e. the data frame/table can't be subset directly)?

require(dplyr)
db <- src_sqlite(tempfile(), create = TRUE)
iris2 <- copy_to(db, iris)
iris2$Species
# NULL

That would have been too easy, so

collect(select(iris2, Species))[, 1]
# [1] "setosa"     "setosa"     "setosa"     "setosa"  etc.

But it seems a bit clumsy.

1
  • 1
    is collect(iris2)$Species less clumsy?
    – CJ Yetman
    May 25, 2017 at 12:39

8 Answers 8

301

With dplyr >= 0.7.0, you can use pull() to get a vector from a tbl.


library(dplyr, warn.conflicts = FALSE)
db <- src_sqlite(tempfile(), create = TRUE)
iris2 <- copy_to(db, iris)
vec <- pull(iris2, Species)
head(vec)
#> [1] "setosa" "setosa" "setosa" "setosa" "setosa" "setosa"
126

As per the comment from @nacnudus, it looks like a pull function was implemented in dplyr 0.6:

iris2 %>% pull(Species)

For older versions of dplyr, here's a neat function to make pulling out a column a bit nicer (easier to type, and easier to read):

pull <- function(x,y) {x[,if(is.name(substitute(y))) deparse(substitute(y)) else y, drop = FALSE][[1]]}

This lets you do either of these:

iris2 %>% pull('Species')
iris2 %>% pull(Species)
iris2 %>% pull(5)

Resulting in...

 [1] 21.0 21.0 22.8 21.4 18.7 18.1 14.3 24.4 22.8 19.2 17.8 16.4 17.3 15.2 10.4 10.4 14.7 32.4 30.4 33.9 21.5 15.5 15.2 13.3 19.2 27.3 26.0 30.4 15.8 19.7 15.0 21.4

And it also works fine with data frames:

> mtcars %>% pull(5)
 [1] 3.90 3.90 3.85 3.08 3.15 2.76 3.21 3.69 3.92 3.92 3.92 3.07 3.07 3.07 2.93 3.00 3.23 4.08 4.93 4.22 3.70 2.76 3.15 3.73 3.08 4.08 4.43
[28] 3.77 4.22 3.62 3.54 4.11

A nice way to do this in v0.2 of dplyr:

iris2 %>% select(Species) %>% collect %>% .[[5]]

Or if you prefer:

iris2 %>% select(Species) %>% collect %>% .[["Species"]]

Or if your table isn't too big, simply...

iris2 %>% collect %>% .[["Species"]]
4
  • 2
    I like your pull function. I'd just add one simplification for cases where there's only one variable: pull <- function(x, y) { if (ncol(x) == 1) y <- 1 else y x[ , if (is.name(substitute(y))) deparse(substitute(y)) else y, drop = FALSE][[1]] } so you can go with iris2 %>% pull()
    – Rappster
    Jan 15, 2016 at 12:18
  • 8
    You can also use the magrittr exposition operator (%$%) to pull a vector from a data frame. i.e. iris2 %>% select(Species) %>% collect() %$% Species.
    – seasmith
    Jan 7, 2017 at 18:44
  • @Luke1018 you should create an answer out of this comment
    – rrs
    Mar 29, 2017 at 3:37
  • pull() will be implemented in dplyr version 0.6 github.com/tidyverse/dplyr/commit/…
    – nacnudus
    Apr 23, 2017 at 11:01
86

You can also use unlist which I find easier to read because you do not need to repeat the name of the column or specify the index.

iris2 %>% select(Species) %>% unlist(use.names = FALSE)
3
  • 1
    This seems the most versatile method as it works identically with vectors and data.frames, i.e. it enables functions to be more agnostic.
    – geotheory
    Mar 14, 2017 at 10:03
  • I was just looking for an answer to this exact question and unlist is precisely what I needed. Thanks! May 19, 2017 at 14:29
  • unlist can also extract values from multiple columns (combining all values into a single vector), while dplyr::pull is limited to a single column.
    – filups21
    Apr 20, 2018 at 12:26
23

I would use the extract2 convenience function from magrittr:

library(magrittr)
library(dplyr)

iris2 %>%
  select(Species) %>%
  extract2(1)  
2
  • Did you mean to use collect() between select and extract2?
    – nacnudus
    Nov 26, 2014 at 9:26
  • 10
    use_series(Species) is perhaps even more readable. Thanks for alerting me to these functions, there are several other handy ones where that came from.
    – nacnudus
    Nov 26, 2014 at 9:27
22

I'd probably write:

collect(select(iris2, Species))[[1]]

Since dplyr is designed for working with tbls of data, there's no better way to get a single column of data.

4
  • Can't say fairer than that. It arose interactively in the console when I tried using unique(table$column) to check for spurious values.
    – nacnudus
    Feb 8, 2014 at 10:49
  • 4
    @nacnudus for that case you could also do group_by(column) %.% tally()
    – hadley
    Feb 8, 2014 at 15:00
  • 13
    An argument drop = TRUE to dplyr::select would be amazing for the quite many use cases where we actually need to extract the vectors. Apr 19, 2016 at 3:38
  • This was the only way I could get a column out of my Sparklyr sdf. Pull wasn't working for me on version 0.7.8.
    – Meep
    Feb 7, 2019 at 22:42
17

@Luke1018 proposed this solution in one of the comments:

You can also use the magrittr exposition operator (%$%) to pull a vector from a data frame.

For example:

iris2 %>% select(Species) %>% collect() %$% Species

I thought it deserved its own answer.

5
  • I was looking for this.
    – Diego-MX
    Jun 15, 2017 at 17:00
  • How would I do this if I want to pass not the colname itself but a string variable that contains it?
    – mzuba
    Aug 7, 2017 at 22:16
  • @mzuba tibble(x = 1:10, y = letters[1:10]) %>% select_("x") %>% unlist() and you could also add another %>% unname() at the end if you want, but for my purposes I haven't found that last pipe chain link to be necessary. You could also specify use.names = FALSE in the unlist() command, which does the same thing as also adding unname() onto the pipe chain.
    – Mark White
    Jun 19, 2018 at 14:37
  • 1
    @mzuba I would use the pull command now. My solution was written prior to dplyr version 0.6.
    – rrs
    Jun 20, 2018 at 13:12
  • 1
    Note that %$% works on any list, whereas pull() doesn't Jun 26, 2018 at 14:48
8

If you are used to using square brackets for indexing, another option is to just to wrap the usual indexing approach in a call to deframe(), e.g.:

library(tidyverse)

iris2 <- as_tibble(iris)

# using column name
deframe(iris2[, 'Sepal.Length'])

# [1] 5.1 4.9 4.7 4.6 5.0 5.4

# using column number
deframe(iris2[, 1])

# [1] 5.1 4.9 4.7 4.6 5.0 5.4

That and pull() are both pretty good ways of getting a tibble column.

1

Another faster way to extract a column as a vector is convert dataframe to list using c() function and then:

c(iris)$Species
c(iris)$Sepal.Length

Column to vector using a dplyr approach:

iris %>% select(Sepal.Length) %>% 
         as.matrix() %>% 
         as.vector()

In case you want All the values of the dataset as a vector you simply do:

# I have this tibble:
iris %>% as_tibble() %>% head(3)
   Sepal.Length Sepal.Width Petal.Length Petal.Width Species
          <dbl>       <dbl>        <dbl>       <dbl> <fct>  
 1          5.1         3.5          1.4         0.2 setosa 
 2          4.9         3            1.4         0.2 setosa 
 3          4.7         3.2          1.3         0.2 setosa 

Do this for column values order (5.1, 4.9 ,4.7,...):

iris %>% as_tibble() %>% as.matrix %>% as.vector()

  [1] "5.1"        "4.9"        "4.7"       
  [4] "4.6"        "5.0"        "5.4"       
  [7] "4.6"        "5.0"        "4.4"       
 [10] "4.9"        "5.4"        "4.8" 
 ....
[742] "virginica"  "virginica"  "virginica" 
[745] "virginica"  "virginica"  "virginica" 
[748] "virginica"  "virginica"  "virginica"

And do this for row values order (5.1, 3.5, 1.4,...):

iris %>% as_tibble() %>% as.matrix %>% t() %>% as.vector()

  [1] "5.1"        "3.5"        "1.4"       
  [4] "0.2"        "setosa"     "4.9"       
  [7] "3.0"        "1.4"        "0.2"       
 [10] "setosa"     "4.7"        "3.2"       
 [13] "1.3"        "0.2"        "setosa"
 ....
[739] "2.0"        "virginica"  "6.2"       
[742] "3.4"        "5.4"        "2.3"       
[745] "virginica"  "5.9"        "3.0"       
[748] "5.1"        "1.8"        "virginica"

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