I'm trying to eliminate from a first dataframe all of the rows for which a certain value is in a second dataframe.

Using the R programming language for statistical data analysis.

This is the first question I post here, so bear with me if you please ;)

I work with confidential data, so I recreated the problem with an example.

Name=c("Bussieres", "Nelson")
Fname=c("Paul", "Robert")
comp1=data.frame(Name, Fname, Tel)

comp2=data.frame(Name, Fname, Tel)

comp1 returns:

   Name Fname Tel
1 Bussieres   Paul 123
2    Nelson Robert 234

comp2 returns:

   Name Fname Tel
1 Bussieres Robert 123
2 Bussieres   Paul 234
3    Nelson   Paul 345
4    Nelson  Paula 456

Now, what I want is to return the rows of comp1 for which "Name" and "Fname" are not identical in comp2.

The expected return, to be stored in a new dataframe comp3, would be (slight edit done here, posted erronous expected results):

   Name Fname Tel
1    Nelson Robert 234

My first attempts were with using the match function, but that didn't quite work.

The following attempt at a for loop also didn't work.

for (i in comp1[,"Name"]){for (j in comp3[,"Name"]){if i!=j return comp3=x1["Name"==i,]}}

I'm surprised that I can't find basic (primitive) functions in R to do this, as excluding certain observations from a data set would be a very routine procedure.


A data.table solution:

dt1 <- data.table(comp1, key=c("Name", "Fname"))
dt2 <- data.table(comp2, key=c("Name", "Fname"))

#      Name  Fname Tel
# 1: Nelson Robert 234
  • Sorry, I meant different, so I'll correct the output in the question. – Gabriel Bergevin-Estable Feb 2 '13 at 0:09
  • Sure, I've edited the answer as well. – Arun Feb 2 '13 at 0:13
  • The answer proposed by Arun worked. Thanks! I installed the data.table package, and run the above script. To eliminate all errors from data collection, I also capitalised the Name and Fname values. I did this via Excel however, so I'll be looking for a solution in R to this issue at another time ;) – Gabriel Bergevin-Estable Feb 2 '13 at 21:47

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