7

I have a character string ("00010000") and need to identify which position do we see the first "1". (This tells me which month a customer is active)

I have a dataset that looks like this:

id  <- c(1:5)
seq <- c("00010000","00001000","01000000","10000000","00010000")
df <- data.frame(id,seq)

I would like to create a new field identifying the first_month_active for each id.

I can do this manually with a nested ifelse function:

    df$first_month_active <-
        ifelse(substr(df$seq,1,1)=="1",1,
        ifelse(substr(df$seq,2,2)=="1",2,
        ifelse(substr(df$seq,3,3)=="1",3,       
        ifelse(substr(df$seq,4,4)=="1",4,
        ifelse(substr(df$seq,5,5)=="1",5,99 ))))) 

Which gives me the desired result:

  id  seq        first_position
  1   00010000   4
  2   00001000   5
  3   01000000   2
  4   10000000   1
  5   00010000   4

However, this is not an ideal solution for my data, which contains 36 months.

I would like to use a loop with an ifelse statement, however I am really struggling with syntax

for (i in 1:36) {
ifelse(substr(df$seq,0+i,0+i)=="1",0+i,
}

Any ideas would be greatly appreciated

1
  • 2
    I think strsplit might help.
    – Frank
    Mar 18, 2015 at 13:23

7 Answers 7

12

Or try the stringi package

library(stringi)
stri_locate_first_fixed(df$seq, "1")[, 1]
## [1] 4 5 2 1 4
10

Skip the loop and the ifelse:

9 - nchar(as.numeric(seq))
## [1] 4 5 2 1 4

This won't work the same in your data.frame because you coerced seq to factor implicitly, so just do:

9 - nchar(as.numeric(as.character(df$seq)))
## [1] 4 5 2 1 4

Edit: Just for fun, since Frank didn't convert his comment into an answer, here's strsplit solution:

# from original vector
sapply(strsplit(seq, "1"), nchar)[1,] + 1
## [1] 4 5 2 1 4

# from data.frame
sapply(strsplit(as.character(df$seq), "1"), nchar)[1,] + 1
## [1] 4 5 2 1 4
3
  • the first one worked for me (clever solution), but that one makes alot of sense too. wonderful!
    – Chris L
    Mar 18, 2015 at 13:52
  • The apparent string is "00010000" but it should be noted this could be double characters depending on encoding. In that case strtrim should be called first giving the expected length otherwise the strsplit may not have the expected results.
    – John
    Mar 18, 2015 at 13:53
  • Ah, neat trick. I was thinking of the messier sapply(strsplit(c("01001","10000"),"",fixed=TRUE),function(x)which(x=="1")[1])
    – Frank
    Mar 18, 2015 at 14:05
8

You can use gregexpr.

> unlist(gregexpr(pattern=1,seq,fixed=T))
[1] 4 5 2 1 4
1
  • 2
    The problem with this one is that if there is more than one "1" it will report both instead of just the first one. Use regexpr to just get the first one.
    – John
    Mar 18, 2015 at 13:47
8

The following could do this job:

library(stringr)
str_locate(pattern ='1',seq)
6

Some comparisons:

library(stringi)
library(stringr)

seq <- c("00010010","00001000","10000010","10000000","00010000")
seq2 <- rep(seq, 5e6)

system.time(regexpr("1", seq2))
   user  system elapsed 
   4.78    0.03    4.82

system.time(9-nchar(as.numeric(as.character(seq2))))
   user  system elapsed
   34.89    0.18   35.52

system.time(str_locate(pattern ='1',seq2))
   user  system elapsed 
   6.17    0.21    6.53

system.time(stri_locate_first_fixed(seq2, "1")[, 1])
   user  system elapsed
   1.68    0.15    1.84

system.time(nchar(seq2)-round(log10(as.numeric(seq2))))
   user  system elapsed
   7.67    0.09    7.86

system.time(nchar(sub('1.*', '', seq2))+1)
   user  system elapsed
   14.61    0.11   14.93
3
  • 1
    You should use microbenchmark for timings. It is more reliable than system.time.
    – Thomas
    Mar 18, 2015 at 18:55
  • @Thomas all the benchmarks were in seconds differences, there is no need in mocrobenchmark. Mar 18, 2015 at 19:20
  • 1
    You could add "fixed = TRUE" in regexpr to improve performance.
    – alexis_laz
    Mar 18, 2015 at 19:44
3

Another one, using log:

  nchar(seq)-round(log10(as.numeric(seq)))
3

Another option using sub

nchar(sub('1.*', '', seq))+1
#[1] 4 5 2 1 4

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