29

I have the following string:

[1] "10012      ----      ----      ----      ----       CAB    UNCH                    CAB"

I want to split this string by the gaps, but the gaps have a variable number of spaces. Is there a way to use strsplit() function to split this string and return a vector of 8 elements that has removed all of the gaps?

One line of code is preferred.

  • 9
    read.table(text = yourstring)? – Henrik Jul 14 '14 at 16:51
  • @Henrik post as answer, please? I have used it million times. – zx8754 Nov 22 '19 at 12:58
  • @zx8754 Thanks for the heads-up. I'm not quite sure though; OP wants to "return a vector of 8 elements", whereas read.table would result in a data.frame with 8 columns. So it doesn't seem like the right tool here? – Henrik Nov 22 '19 at 15:54
38
0

Just use strsplit with \\s+ to split on:

x <- "10012      ----      ----      ----      ----       CAB    UNCH       CAB"
x
# [1] "10012      ----      ----      ----      ----       CAB    UNCH       CAB"
strsplit(x, "\\s+")[[1]]
# [1] "10012" "----"  "----"  "----"  "----"  "CAB"   "UNCH"  "CAB"  
length(.Last.value)
# [1] 8

Or, in this case, scan also works:

scan(text = x, what = "")
# Read 8 items
# [1] "10012" "----"  "----"  "----"  "----"  "CAB"   "UNCH"  "CAB"  
| improve this answer | |
12
0

strsplit function itself works, by simply using strsplit(ss, " +"):

ss = "10012      ----      ----      ----      ----       CAB    UNCH                    CAB"

strsplit(ss, " +")
[[1]]
[1] "10012" "----"  "----"  "----"  "----"  "CAB"   "UNCH"  "CAB"  

HTH

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