3

Given a string str = "üabc123", and size = 5. I want to get the first 5 bytes("üabc"), and the rest of the string("123").

Currently I'm doing:

str = "üabc123"
size = 5
a = binary_part(str, 0, size)      # "üabc"
b = String.trim_leading(str, a)    # "123"

Seems like there would be a cleaner way to do this. Is there another way?

  • Why do you want to count in bytes, not characters? If your input is üüü12 then you will get only half of the third ü, which is not a valid string. – Adam Millerchip Nov 4 '18 at 0:58
  • @AdamMillerchip even worse, if "ü" s there are in composed form (String.normalize(:ufc),) the result will differ. That said, it depends on how those were produced: by typing "ü" with German keyboard, or by typing combined diacritical. – Aleksei Matiushkin Nov 4 '18 at 9:31
7

You can use binary pattern matching

<< a::binary-size(5), b::binary >> = "üabc123"
a == "üabc"
b == "123"
  • Ah thank you. I was trying <<a :: 40, b :: binary>> but getting a number for a, didn't know about binary-size. Thanks! – Peter R Nov 4 '18 at 1:19
  • Unfortunately this answer does not seem to be correct; if I copy-paste it into my iex it produces the result you have shown, while this is a combined u-umlaut, codepoint 252—try (to_charlist("üabc123"))—and it is indeed 1 byte only. Looks like Elixir and/or Erlang does somewhat nasty with binaries here. – Aleksei Matiushkin Nov 4 '18 at 9:39
  • @AlekseiMatiushkin that is the codepoint, not the bytes. Try :binary.bin_to_list(<<252::utf8>>). I'm guessing the OP is dealing with some sort of datasource that specifies an offset in byes for a given string. At least I hope that's the case. – Adam Millerchip Nov 4 '18 at 11:48
0

Here is a oneline split, just out of curiosity:

# make sure u-umlaut is combined diacritical
[lead, trail] =
  str
  |> to_charlist() 
  |> Enum.split(size)
  |> Tuple.to_list()
  |> Enum.map(&to_string/1)
#⇒ ["üabc", "123"]

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