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I have several dataframes in which I want to delete each row that matches a certain string. I used the following code to do it:

 df[!(regexpr("abc", df$V4) ==1),]

How can I delete the row that is following, e.g. if I delete row n as specified by the code above, how can I additionally delete row n+1?

My first try was to simply find out the indices of the desired rows, but that won't work, as I need to delete rows in different dataframes which are of different lengths. So the indices vary.

Thanks!

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up vote 0 down vote accepted

Use which() on your logical expression and then you can just add 1 to the result.

sel <- which(grep("abc", df$V4))
sel <- c(sel, sel+1)
df[-sel,]
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So, with help from a friend, I ended up with this code, which is basically what you suggested: del <- c(which(regexpr("abc", df$V4) ==1),(which(regexpr("abc", df$V4) ==1)+1)) df2 <- df[-del,] – kat Jun 14 '12 at 14:48

I would suggest taking out and manipulating the logical vector directly. Suppose we have the vector:

x = c(5,0,1, 4, 3)

and we want to do:

x[x > 3]

First, note that:

R> (s_n = x>3)
[1]  TRUE FALSE FALSE  TRUE FALSE

So

R> (s_n1 = as.logical(s_n + c(F, l[1:(length(s_n)-1)])))
[1]  TRUE  TRUE FALSE  TRUE  TRUE

Hence,

x[s_n1]

gives you what you want.


In your particular example, something like:

s_n = !(regexpr("abc", df$V4) == 1)
s_n1 = as.logical(s_n + c(F, l[1:(length(s_n)-1)])))
df[s_n1, ]

should work.

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1  
1+ Agree with the logic, but readability would be improved if you used a different symbol for your logical vector. Solitary letter l is much too similar to 1 at least in the font used on my browser above. – 42- Jun 13 '12 at 12:30
    
@Dwin Good point – csgillespie Jun 13 '12 at 13:54
df[which(!(regexpr("abc", df$V4) ==1))+c(0,1),]
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