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miss_case_summary

Summarise the missingness in each case


Description

Provide a summary for each case in the data of the number, percent missings, and cumulative sum of missings of the order of the variables. By default, it orders by the most missings in each variable.

Usage

miss_case_summary(data, order = TRUE, add_cumsum = FALSE, ...)

Arguments

data

a data.frame

order

a logical indicating whether or not to order the result by n_miss. Defaults to TRUE. If FALSE, order of cases is the order input.

add_cumsum

logical indicating whether or not to add the cumulative sum of missings to the data. This can be useful when exploring patterns of nonresponse. These are calculated as the cumulative sum of the missings in the variables as they are first presented to the function.

...

extra arguments

Value

a tibble of the percent of missing data in each case.

See Also

Examples

miss_case_summary(airquality)

## Not run: 
# works with group_by from dplyr
library(dplyr)
airquality %>%
  group_by(Month) %>%
  miss_case_summary()

## End(Not run)

naniar

Data Structures, Summaries, and Visualisations for Missing Data

v0.6.0
MIT + file LICENSE
Authors
Nicholas Tierney [aut, cre] (<https://orcid.org/0000-0003-1460-8722>), Di Cook [aut] (<https://orcid.org/0000-0002-3813-7155>), Miles McBain [aut] (<https://orcid.org/0000-0003-2865-2548>), Colin Fay [aut] (<https://orcid.org/0000-0001-7343-1846>), Mitchell O'Hara-Wild [ctb], Jim Hester [ctb], Luke Smith [ctb]
Initial release

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