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Let's say I have a vector of variables like this:

>variable
[1] "A1" "A1" "A1" "A1" "A2" "A2" "A2" "A2" "B1" "B1" "B1" "B1"

and I want to covert this into into a data frame like this:

  treatment time
1         A    1
2         A    1
3         A    1
4         A    1
5         A    2
6         A    2
7         A    2
8         A    2
9         B    1
10        B    1
11        B    1
12        B    1

To that end, I used reshape2's colsplit function. It rquires a pattern to split the string, but I quickly realize there is no obvious pattern to split the two characters without any space. I tried "" and got the following results:

> colsplit(trialm$variable,"",names=c("treatment","time"))
   treatment time
1         NA   A1
2         NA   A1
3         NA   A1
4         NA   A1
5         NA   A2
6         NA   A2
7         NA   A2
8         NA   A2
9         NA   B1
10        NA   B1
11        NA   B1
12        NA   B1

I also tried a lookbehind or lookahead regular expression :

>colsplit(trialm$variable,"(?<=\\w)",names=c("treatment","time"))
Error in gregexpr("(?<=\\w)", c("A1", "A1", "A1", "A1", "A2", "A2", "A2",  : 
  invalid regular expression '(?<=\w)', reason 'Invalid regexp'

but it gave me the above error. How can I solve this problem?

share|improve this question
    
take a look at strsplit. Your code will be something like: trialm$treatment <- sapply(strsplit(trialm$variable, ''), '[', 1) –  Justin Apr 24 '13 at 15:18

6 Answers 6

up vote 6 down vote accepted

substr is another way to do it.

> variable <- c(rep("A1", 4), rep("A2", 4), rep("B1", 4))
> data.frame(treatment=substr(variable, 1,1), time=as.numeric(substr(variable,2,2)))
   treatmen time
1         A    1
2         A    1
3         A    1
4         A    1
5         A    2
6         A    2
7         A    2
8         A    2
9         B    1
10        B    1
11        B    1
12        B    1
share|improve this answer
    
ha! +1 if you think best I'll remove it though. –  user1317221_G Apr 24 '13 at 15:27
1  
But what if some of the variables were, say, "AA1", and "A12"? This method won't succeed with those. –  Ananda Mahto Apr 24 '13 at 16:28
    
@AnandaMahto you're absolutely right –  Jilber Apr 24 '13 at 16:33
    
Ananda, you could use regular expressions in your example to separate letters from numbers in tow columns, then see how many discrete categories you have using those two columns. –  Arhopala Apr 24 '13 at 16:35
1  
@Arhopala, comments are editable within a small time window :) –  Ananda Mahto Apr 24 '13 at 16:37

If a pattern can be detected in your "variable" but there is no clean split character that can be used, then add one :)

library(reshape2)
variable <- c("A1", "A1", "A1", "A1", "A2", "A2", 
              "A2", "A2", "B1", "B1", "B1", "B1")
## Here, we add a "." between upper case letters and numbers
colsplit(gsub("([A-Z])([0-9])", "\\1\\.\\2", variable), 
         "\\.", c("Treatment", "Time"))
#    Treatment Time
# 1          A    1
# 2          A    1
# 3          A    1
# 4          A    1
# 5          A    2
# 6          A    2
# 7          A    2
# 8          A    2
# 9          B    1
# 10         B    1
# 11         B    1
# 12         B    1
share|improve this answer

You could just use strsplit

df <- t(data.frame(strsplit(variable, "")))
rownames(df) <- NULL
colnames(df) <- c("treatment" , "time" )
df
      treatment time
 [1,] "A"       "1" 
 [2,] "A"       "1" 
 [3,] "A"       "1" 
 [4,] "A"       "1" 
 [5,] "A"       "2" 
 [6,] "A"       "2" 
 [7,] "A"       "2" 
 [8,] "A"       "2" 
 [9,] "B"       "1" 
[10,] "B"       "1" 
[11,] "B"       "1" 
[12,] "B"       "1" 

Instead of using t you can use rbind and then coerce to data.frame as follows:

setNames(as.data.frame(do.call(rbind, strsplit(variable, ""))), 
         c("Treatment", "Time"))
#    Treatment Time
# 1          A    1
# 2          A    1
# 3          A    1
# 4          A    1
# 5          A    2
# 6          A    2
# 7          A    2
# 8          B    1
# 9          B    1
# 10         B    1
# 11         B    1
share|improve this answer
    
Perhaps sufficient for the OP's needs, but what if some of the variables were, say, "AA1", and "A12"? This method won't succeed with those. –  Ananda Mahto Apr 24 '13 at 16:29

Another solution using regular expression

require(stringr)
variable <- c(paste0("A", c(rep(1, 4), rep(2, 3))),
              paste0("B", rep(1, 4))
              )

data.frame(
    treatment = str_extract(variable, "[[:alpha:]]"),
    time = as.numeric(str_extract(variable, "[[:digit:]]"))
    )

##    treatment time
## 1          A    1
## 2          A    1
## 3          A    1
## 4          A    1
## 5          A    2
## 6          A    2
## 7          A    2
## 8          B    1
## 9          B    1
## 10         B    1
## 11         B    1
share|improve this answer
    
+1. I think this is the safer than substr and so on if a pattern is discernible but no splitting character is available. –  Ananda Mahto Apr 24 '13 at 16:27

You can use substring() to create vectors then join them using the data.frame function.

yyy<-c("A1", "A1", "A1", "A1", "A2", "A2", "A2", "A2", "B1", "B1", "B1", "B1")

treatment<-substring(yyy, 1,1)

time<-as.numeric(substring(yyy,2,2))

data.frame(treatment,time)
share|improve this answer
    
+1 for realizing that time is a factor and you want it to be numeric using as.numeric. –  Jilber Apr 24 '13 at 15:29

You can use substr to split it:

e.g.

df <- data.frame(treatment =   substr(variable, start = 1, stop = 1),
                 time =        substr(variable, start = 2, stop = 2) )
share|improve this answer
    
beat you by 14 sec. +1 anyway. –  Jilber Apr 24 '13 at 15:26

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