I've got some multivariate data of beauty vs ages. The ages range from 20-40 at intervals of 2 (20, 22, 24....40), and for each record of data, they are given an age and a beauty rating from 1-5. When I do boxplots of this data (ages across the X-axis, beauty ratings across the Y-axis), there are some outliers plotted outside the whiskers of each box.

I want to remove these outliers from the data frame itself, but I'm not sure how R calculates outliers for its box plots. Below is an example of what my data might look like. enter image description here

  • 1
    The boxplot function returns the outliers (among other statistics) invisibly. Try foo <- boxplot(...); foo and read ?boxplot to understand the output. – Joshua Ulrich Jan 24 '11 at 21:37
  • You should edit your question according to comment you gave on @Prasad's answer! – aL3xa Jan 24 '11 at 22:48
  • @aL3xa: it's in the first sentence of the second paragraph. – Joshua Ulrich Jan 24 '11 at 22:56
  • 19
    Relevant: davidmlane.com/ben/outlier.gif – eyjo Jan 24 '11 at 23:05
  • Can you send a link to the data? – wordsforthewise Mar 2 '17 at 23:28
up vote 94 down vote accepted

OK, you should apply something like this to your dataset. Do not replace & save or you'll destroy your data! And, btw, you should (almost) never remove outliers from your data:

remove_outliers <- function(x, na.rm = TRUE, ...) {
  qnt <- quantile(x, probs=c(.25, .75), na.rm = na.rm, ...)
  H <- 1.5 * IQR(x, na.rm = na.rm)
  y <- x
  y[x < (qnt[1] - H)] <- NA
  y[x > (qnt[2] + H)] <- NA
  y
}

To see it in action:

set.seed(1)
x <- rnorm(100)
x <- c(-10, x, 10)
y <- remove_outliers(x)
## png()
par(mfrow = c(1, 2))
boxplot(x)
boxplot(y)
## dev.off()

And once again, you should never do this on your own, outliers are just meant to be! =)

EDIT: I added na.rm = TRUE as default.

EDIT2: Removed quantile function, added subscripting, hence made the function faster! =)

enter image description here

  • Thanks for the help! I would think if R is capable of outputting the outliers in boxplot, I shouldn't have to do these intermediary calculations. As for deleting outliers, this is just for an assignment. – Dan Q Jan 24 '11 at 23:45
  • 3
    OK, I'm missing something here. You want to remove outliers from data, so you can plot them with boxplot. That's manageable, and you should mark @Prasad's answer then, since answered your question. If you want to exclude outliers by using "outlier rule" q +/- (1.5 * H), hence run some analysis, then use this function. BTW, I did this from scratch, w/o Googling, so there's a chance that I've reenvented the wheel with this function of mine... – aL3xa Jan 25 '11 at 0:27
  • 9
    You shouldn't be asking assignment questions on stackoverflow! – hadley Feb 9 '11 at 14:38
  • 6
    Does that mean that we shouldn't answer it either? =) – aL3xa Feb 9 '11 at 19:28
  • 2
    "outliers are just meant to be"? Not necessarily. They may come from measure errors, and must be thoroughly reviewed. When the outlier is too big, it may mean something, or not so much. That's why (at least in biology) the median usually says more about a population than the mean. – Rodrigo Feb 11 '17 at 3:17

Nobody has posted the simplest answer:

x[!x %in% boxplot.stats(x)$out]

Also see this: http://www.r-statistics.com/2011/01/how-to-label-all-the-outliers-in-a-boxplot/

  • 4
    Really elegant. Thanks. But need to be careful if distribution has more than one mode and outliers are indeed only few and scattered. – Earnest_learner Mar 19 '15 at 4:44
  • It would have been great if you were able to get index of them in a dataset. The way you are done will filter based on data value. If box plot is also doing grouping, not necessarily same data value will be outlier in each group – adam Jun 12 '15 at 9:04
  • 1
    It's also important to mention that it does not change the dataset. This is just a filtering method. So if you intend to use the dataset without outliers assign it to a variable. e.g. result = x[!x %in% boxplot.stats(x)$out] – Victor Augusto May 7 '17 at 18:17

Use outline = FALSE as an option when you do the boxplot (read the help!).

> m <- c(rnorm(10),5,10)
> bp <- boxplot(m, outline = FALSE)

enter image description here

  • 3
    indeed, this will remove the outliers from the boxplot itself, but I want to remove the outliers from the data frame. – Dan Q Jan 24 '11 at 21:53
  • 2
    I see, then as @Joshua said you need to look at the data returned by the boxplot function (in particular the out and group items in the list). – Prasad Chalasani Jan 24 '11 at 21:55

The boxplot function returns the values used to do the plotting (which is actually then done by bxp():

bstats <- boxplot(count ~ spray, data = InsectSprays, col = "lightgray") 
#need to "waste" this plot
bstats$out <- NULL
bstats$group <- NULL
bxp(bstats)  # this will plot without any outlier points

I purposely did not answer the specific question because I consider it statistical malpractice to remove "outliers". I consider it acceptable practice to not plot them in a boxplot, but removing them is a systematic and unjustified mangling of the observational record.

  • 3
    Well, sidestepping the question without knowing why the question was asked is not a good practice either. Yes, it is not good to remove 'outliers' from the data but sometimes you need the data without outliers for specific tasks. In an statistics assignment I had recently, we had to visualise a set without its outliers to determine the best regression model to use for the data. So there! – Alex Essilfie Jun 25 '12 at 19:15
  • 4
    I'm not considering the advice you may have gotten in this regard to "determine the best regression model" to be particularly persuasive. Instead, if you needed to remove outliers for that vaguely stated purpose, then I think it reflects poorly on the persons who advised it rather than being evidence of invalidity of my position. – 42- Jun 25 '12 at 19:25
x<-quantile(retentiondata$sum_dec_incr,c(0.01,0.99))
data_clean <- data[data$attribute >=x[1] & data$attribute<=x[2],]

I find this very easy to remove outliers. In the above example I am just extracting 2 percentile to 98 percentile of attribute values.

I looked up for packages related to removing outliers, and found this package (surprisingly called "outliers"!): https://cran.r-project.org/web/packages/outliers/outliers.pdf
if you go through it you see different ways of removing outliers and among them I found rm.outlier most convenient one to use and as it says in the link above: "If the outlier is detected and confirmed by statistical tests, this function can remove it or replace by sample mean or median" and also here is the usage part from the same source:
"Usage

rm.outlier(x, fill = FALSE, median = FALSE, opposite = FALSE)

Arguments
x a dataset, most frequently a vector. If argument is a dataframe, then outlier is removed from each column by sapply. The same behavior is applied by apply when the matrix is given.
fill If set to TRUE, the median or mean is placed instead of outlier. Otherwise, the outlier(s) is/are simply removed.
median If set to TRUE, median is used instead of mean in outlier replacement. opposite if set to TRUE, gives opposite value (if largest value has maximum difference from the mean, it gives smallest and vice versa) "

Adding to @sefarkas' suggestion and using quantile as cut-offs, one could explore the following option:

newdata <- subset(mydata,!(mydata$var > quantile(mydata$var, probs=c(.01, .99))[2] | mydata$var < quantile(mydata$var, probs=c(.01, .99))[1]) ) 

This will remove the points points beyond the 99th quantile. Care should be taken like what aL3Xa was saying about keeping outliers. It should be removed only for getting an alternative conservative view of the data.

  • is it 0.91 or 0.99? as in mydata$var < quantile(mydata$var, probs=c(.01, .91))[1]) or mydata$var < quantile(mydata$var, probs=c(.01, .99))[1]) – Komal Rathi Apr 13 '17 at 20:20
  • If you have a specific reason to use 91st percentile instead of 99th percentile, you can use it. It is only a heuristic – Earnest_learner Apr 16 '17 at 0:44

Wouldn't:

z <- df[df$x > quantile(df$x, .25) - 1.5*IQR(df$x) & 
        df$x < quantile(df$x, .75) + 1.5*IQR(df$x), ] #rows

accomplish this task quite easily?

Your Answer

By clicking "Post Your Answer", you acknowledge that you have read our updated terms of service, privacy policy and cookie policy, and that your continued use of the website is subject to these policies.

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