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I have a data.frame in R. I want to try two different conditions on two different columns, but I want these conditions to be inclusive. Therefore, I would like to use "OR" to combine the conditions. I have used the following syntax before with lot of success when I wanted to use the "AND" condition. <- data[(data$V1 > 2) & (data$V2 < 4), ]

But I don't know how to use an 'OR' in the above.

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This is pretty basic stuff, so I guess you will encounter similar problems. Maybe you could read one of the manuals? I liked when I began, also has nice tables of the operators. – Sacha Epskamp Feb 8 '11 at 16:27
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3 Answers 3

up vote 77 down vote accepted <- subset(data , V1 > 2 | V2 < 4)

An alternative solution that mimics the behavior of this function and would be more appropriate for inclusion within a function body: <- data[ which( data$V1 > 2 | data$V2 < 4) , ]

Some people criticize the use of which as not needed, but it does prevent the NA values from throwing back unwanted results.

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I like this solution. Thank you DWin. This is very helpful. – Sam Feb 10 '11 at 12:09
BondedDust strikes again... – Matt O'Brien Nov 5 '14 at 20:42
This is the highest voted question and then one finds:… – PatrickT Dec 9 '14 at 13:15
The advantage is compactness and easy of comprehension. The disadvantage is lack of utility in function building tasks. If one wants to replicate this with [ one needs to wrap in which or use additional ! constraints. – BondedDust Dec 9 '14 at 16:47
Is the 'which' required and if not why do you use it? – Cleb Jul 28 at 22:25

You are looking for "|." See <- data[(data$V1 > 2) | (data$V2 < 4), ]
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You may want to wrap which() around that since any NA's in those two columns would get included in the above result. – BondedDust Feb 8 '11 at 16:31
@Sacha Epskamp: That's confusing advice for persons new to R. The "||" operator is not useful for operations on vectors. It has uses, but not in this context. – BondedDust Feb 8 '11 at 16:33
Thanks, thought they were exactly the same. – Sacha Epskamp Feb 8 '11 at 16:38

Just for the sake of completeness, we can use the operators [ and [[:

df <- data.frame(v1 = runif(10), v2 = letters[1:10])

Several options

df[df[1] < 0.5 | df[2] == "g", ] 
df[df[[1]] < 0.5 | df[[2]] == "g", ] 
df[df["v1"] < 0.5 | df["v2"] == "g", ]

df$name is equivalent to df[["name", exact = FALSE]]

Using dplyr:

filter(df, v1 < 0.5 | v2 == "g")

Using sqldf:

sqldf('SELECT *
      FROM df 
      WHERE v1 < 0.5 OR v2 = "g"')

Output for the above options:

          v1 v2
1 0.26550866  a
2 0.37212390  b
3 0.20168193  e
4 0.94467527  g
5 0.06178627  j
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