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I have the following dataset:

text <- c(1:13)
numbers <- c(1,1,1,1,1,1,1,1,1,1,1,1,1)
test <- data.frame(
    text =text,
    is.numeric.feature = numbers)

   text is.numeric.feature
1     1                  1
2     2                  1
...
13    13                 1

Now I want to remove all rows where the numeric feature == 0 (there are none here, but in other datasets there are) When I use the following command, my complete dataset is empty, what did I do wrong?

test[-c(which(test$is.numeric.feature==0)),]
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@Ksilem. What you need is data[data$is.numeric.feature != 0,]. The problem with your code is that which returns an integer(0) result, which leads to an empty data frame as output –  Ramnath May 26 '11 at 8:22
    
thanks, if you add that as an answer, I'll accept it. That worked –  Sir Ksilem May 26 '11 at 8:24

3 Answers 3

up vote 3 down vote accepted

The reason is that which(data$is.numeric.feature==0) returns integer(0) when there are no zeros.

> Data[-integer(0),]
[1] text               is.numeric.feature
<0 rows> (or 0-length row.names)

To overcome this, better work with logical vectors :

Data[Data$is.numeric.feature!=0,]

On a sidenote, the c() in your oneliner is redundant. which returns a vector anyway. And please, never ever give your dataframe or vectors a name that's also the name of a function. You will run into trouble at one point.

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Here's another way of doing this.

data[!data$is.numeric.feature == 0, ]
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It goes wrong because the which statement returns integer(0), an empty integer vector. Indexing -numeric(0) is not interpreted as "dont omit anything" but as indexing integer(0) which means "index nothing". I think it should go right if there is at least one zero in your data.

But you don't need which anyway and the logical vector is fine. These both work:

data[data$is.numeric.feature!=0,]

subset(data,is.numeric.feature!=0)
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