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I have a data frame, brfss2013 with 330 variables and 491775 obs.

One variable is

brfss2013$sex
2 levels... Factor w/ 2 levels "Male","Female": 2 2 2 2 1 2 2 2 1 2 ...

All I want to do is filter all the Females into a data frame called females.

I've tried:

females <- filter(brfss2013$sex, sex == 'Female')
Error in UseMethod("filter_") : 
  no applicable method for 'filter_' applied to an object of class "factor"

also

females <-  filter(as.character(brfss2013$sex == 'Female'))
Error in UseMethod("filter_") : 
  no applicable method for 'filter_' applied to an object of class "character"

Any thoughts on this?

  • Try brfss2013.new <- brfss2013[brfss2013$sex %in% "Female", ]. – jay.sf May 13 '19 at 22:14
  • Look at the help for dplyr::filter: it's called on a data frame. You're calling it on a factor. – camille May 13 '19 at 22:19
1

The issue arises from the filter syntax. You supply a vector, brfss2013$sex as the first parameter to the filter function when it's looking for a dataframe, brfss2013. When corrected, the filter function can be used to return a dataframe containing only those rows where the sex variable equals Female:

library(dplyr)
females <- filter(brfss2013, sex == "Female") 
| improve this answer | |
  • Many thanks. That fixed my issue. I try not to post on here too much as I'm really still learning to code. I deeply appreciate the patience and guidance. – enjaku May 13 '19 at 22:32
  • 1
    @enjaku Glad I could help. One way of checking this is to use the base R class() function on the filter inputs. class(brfss2013) reveals that it is a dataframe table while class(brfss2013$sex) reveals that it is a factor vector. The documentation for filter indicates that the first parameter requires a table input. – icj May 14 '19 at 0:57

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