21

I'm wondering how I can remove the first and last character of a string in Rust.

Example:

Input:

"Hello World"

Output:

"ello Worl"

2
  • What have you tried so far?
    – Alex
    Jan 31, 2021 at 6:45
  • 2
    I got it, after trying, I'll post an answer
    – Henry
    Jan 31, 2021 at 6:48

4 Answers 4

27

You can use the .chars() iterator and ignore the first and last characters:

fn rem_first_and_last(value: &str) -> &str {
    let mut chars = value.chars();
    chars.next();
    chars.next_back();
    chars.as_str()
}

It returns an empty string for zero- or one-sized strings and it will handle multi-byte unicode characters correctly. See it working on the playground.

3
  • This is my favourite answer because it works with multi-byte characters and empty strings.
    – Henry
    Jan 31, 2021 at 8:07
  • 2
    As always when playing with unicode, it is worth remembering the difference between characters and grapheme clusters. For example, there are cases where this will remove an accent on the last glyph or change a compound emoji, rather than removing the whole cluster. So while this gives what the OP asks for, it may not actually be what they want. (More a warning for the OP, than a criticism of this answer - properly handling grapheme clusters is tricky and non-trivial) Feb 1, 2021 at 1:27
  • 2
    @MichaelAnderson Absolutely! I never know how in-depth to go with unicode handling. For more complicated glyphs and emojis, swapping .chars() to .graphemes(true) from the unicode segmentation crate may be necessary.
    – kmdreko
    Feb 1, 2021 at 2:55
8

I did this by using string slices.

fn main() {
    let string: &str = "Hello World";
    let first_last_off: &str = &string[1..string.len() - 1];
    println!("{}", first_last_off);
}

I took all the characters in the string until the end of the string - 1.

4
  • What happens if the string is empty? will the program crash? Jan 31, 2021 at 6:53
  • 1
    I could add an if statement: if string.is_empty() { "" }
    – Henry
    Jan 31, 2021 at 7:11
  • I think this would also work &string[1..];
    – gberth
    Oct 14, 2021 at 13:28
  • 3
    Warning: this code will only work for ASCII characters, where 1 char = 1 byte. If your string starts/ends with a UTF-8 character represented by 2 or more bytes, the code will panic.
    – at54321
    Jan 3 at 20:18
8

…or the trivial solution
also works with Unicode characters:

let mut s = "Hello World".to_string();
s.pop();      // remove last
s.remove(0);  // remove first
2
  • Worth noting that remove is an O(n) operation. May 30 at 10:32
  • @Sarkar Correct – but it doesn't result in a memory allocation.
    – Kaplan
    Jun 6 at 19:17
0

You can also use split_at().

let msg = "Hello, world!";
let msg = msg.split_at(msg.len() - 1);
let msg = msg.0.split_at(1);
println!("{}", msg.1);

ello, world

split_at() returns the following: (&str, &str).

4
  • 1
    You can bind to a tuple to discard the unused part: let (msg, _) = msg.split_at(msg.len() - 1); let (_, msg) = msg.split_at(1) But since this will panic for non-ASCII characters, I would more likely use kmdreko's answer in most cases.
    – trent
    Jan 31, 2021 at 12:46
  • I replaced hello with "Jeg æder blåbærsyltetøj!" (I'm eating blueberryjam in Danish). and it gave "eg æder blåbærsyltetøj".
    – kometen
    Jan 31, 2021 at 13:34
  • 2
    J and ! are ASCII characters. Try Я ем черничное варенье or 블루 베리 잼 먹고 있어요 and you'll see what I mean.
    – trent
    Jan 31, 2021 at 13:38
  • I see. I thought you meant it was counting an UTF-8-character incorrectly and this could lead to a panick.
    – kometen
    Jan 31, 2021 at 13:43

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