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Hello I want calculate the mean of a variable hhmmss that have NA values.

     X1500m
1   0:04:13
2   0:04:06
3   0:03:50
4   0:03:42
5   NA
6   NA
7   NA
8   0:03:59
9   NA
10  NA
11  NA
12  0:03:50

If I hadn't have NA values I could calculate the mean using library(chron) and this commandtimes(mean(as.numeric(times(X1500m)))).

I use times(mean(as.numeric(times(X1500m)),na.rm=T)) but it doesn't give me the mean.

I know that I can export the dataframe in a vector and after delete NA values, but I'm working with data frame with a lot of variables and It would be a little tired.

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I think the problem is likely at a higher level. That looks like the printed output is as you say from a dataframe and you need to extract the values of the "X1500m" column from whatever the dataframe is named. –  BondedDust Dec 10 '13 at 18:21

3 Answers 3

up vote 0 down vote accepted
dput(timedf)
structure(list(X1500m = c("0:04:13", "0:04:06", "0:03:50", "0:03:42", 
NA, NA, NA, "0:03:59", NA, NA, NA, "0:03:50")), .Names = "X1500m", row.names = c(NA, 
-12L), class = "data.frame")

# testing my hunch expressed above that you needed to extract from the dataframe first:
times(mean(as.numeric(times(timedf$X1500m)),na.rm=T))

Warning in convert.times(times., fmt) : NAs introduced by coercion
Warning in convert.times(times., fmt) : NAs introduced by coercion
Warning in convert.times(times., fmt) : NAs introduced by coercion
Warning in convert.times(times., fmt) :
  time-of-day entries out of range in positions NA,NA,NA,NA,NA,NA set to NA
[1] 00:03:57

Boy, the times function really, really, wants you to see that you have NA's doesn't it. It does eventually get around to delivering a sensible mean.

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This should work for you -

timearray <- c(
  '0:04:13',
'0:04:06',
'0:03:50',
'0:03:42',
  NA
)

timearray <- strptime(timearray,'%H:%M:%S')
mean(timearray, na.rm = TRUE)

The result will include a date which you can remove, or retain, depending on your usage.

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This will not handle the case where number of hours is greater than 24 though.. –  Chinmay Patil Dec 10 '13 at 18:16
    
@ChinmayPatil - ?strftime - %H Hours as decimal number (00–23). As a special exception times such as 24:00:00 are accepted for input, since ISO 8601 allows these. Why do you say it won't work? –  Codoremifa Dec 10 '13 at 18:22

Using this chron library this can help

library(chron)
s = c("00:04:13", "00:04:06", "00:03:50", "00:03:42", NA, NA, NA, "00:03:59", NA, NA,NA, "0:03:50")
#format the time to a date format
strptime(s, format = '%H:%M:%S')
times <- chron(times = s)
mean(times,na.rm=TRUE)
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