-2

Very new to R.

I have a simple data set with two columns : name and length. The data I have shows some names that have two occurrences. How do I average these lengths and then only list 1 name with the averaged length instead of the 2? Thank you.

11

Here is a couple of approaches:

-With base R:

aggregate(length~name,d,mean)
#   name length
# 1    a    5.0
# 2    b    8.5
# 3    c    7.0

-With the dplyr package (definitely worth spending time to explore)

library(dplyr)
d %>% 
  group_by(name) %>% 
  summarize(avg=mean(length))
# Source: local data frame [3 x 2]
# 
# name avg
# 1    a 5.0
# 2    b 8.5
# 3    c 7.0

Sample reproducible data set could be produced by these commands:

set.seed(1)
d <- data.frame(name=sample(letters[1:3],size=5,replace=TRUE),length=sample(10,size=5,replace=TRUE))

#   name length
# 1    a      9
# 2    b     10
# 3    b      7
# 4    c      7
# 5    a      1
2

And how about an original solution with a linear fit! in just one line:

    lm(length ~ name - 1, df)$coef
### namea nameb namec 
###   5.0   8.5   7.0 
  • this approach has the advantage of not needing the na.rm argument – agenis Mar 5 '15 at 0:18
  • And the disadvantage of silently dropping NAs. – Gregor Mar 5 '15 at 1:40
  • exactly. But it's a disadvantage only if you're not aware of it, that's why I mention it ;) – agenis Mar 5 '15 at 9:33
1

Or using data.table (data from @Marat Talipov's post)

library(data.table)
setDT(d)[, list(length=mean(length)), name][]
0

Definitely not the R way or the best way but you could do

library(sqldf)
df <- howeveryougetyourdata.csv
sqldf('SELECT AVG(length) average_length FROM df WHERE name IN ("this","that"))
0

If I understand you correctly, you're looking to calculate the mean length for each name. I'd tackle it like this.

library(plyr)
df.new <- ddply(df, .(name), summarise, length=mean(length))

Given you're new to R, I encourage you to take the time to learn some of Hadley Wickham's packages plyr (or dplyr), reshape2 and ggplot2. They're specifically designed to make lots of these data operations more intuitive than base R.

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