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Here is an example of what I am doing.

x <- c(a="2",b="4",c="2",d="9")
df <- data.frame(names = c("d","c","a","b"))

x is a named vector of values in a different order from how they appear in df$names. I need to form a new column in the data frame which takes the values from x. Here's what I wrote.

df$vals <- sapply(df$names,function(t) x[t])

This code works fine with this toy example, but I am working with a data frame that has over 150,000 rows and this is just taking an obscenely long time. Is sapply a slow way to do this?

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Presumably your dataframe is not in exact reverse order of your x names :-( ... and all x names exist in the dataframe. –  Carl Witthoft Feb 3 at 14:07
    
All of the x names do exist in the data frame. To provide some more context, an igraph graph was generated via various other processes where each entry in df$names is a vertex in the graph. x is a vector of the degrees of all the vertices. The names of the vertices are preserved, but I have no idea how the order of the vertices was determined in igraph—some black magic presumably. So now I am taking the degrees of the vertices in the igraph graph and putting them back into the data frame. –  crf Feb 3 at 14:12

1 Answer 1

up vote 1 down vote accepted
df$vals <- x[match(df$names, names(x))]

match is very fast (20 times+ in this example case).

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awesome. Is there a reason that my method should be so slow? –  crf Feb 3 at 13:45
    
wow I just ran this code and it was practically instantaneous. My code was actually unmanageably slow. –  crf Feb 3 at 13:50
    
match is designed for such purposes. sapply will create overhead. (Afaik, the apply-family commands are convenient substitutes for loops to make R more like an interactive command line exploration tool than just a programing language.) –  lukeA Feb 3 at 13:51
    
@crf yea I remember thinking the same when I found out about it. :) –  lukeA Feb 3 at 13:53
1  
Or just df$vals <- x[df$names]... –  hadley Feb 3 at 15:32

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