91

I want to build a HashSet<u8> from a Vec<u8>. I'd like to do this

  1. in one line of code,
  2. copying the data only once,
  3. using only 2n memory,

but the only thing I can get to compile is this piece of .. junk, which I think copies the data twice and uses 3n memory.

fn vec_to_set(vec: Vec<u8>) -> HashSet<u8> {
    let mut victim = vec.clone();
    let x: HashSet<u8> = victim.drain(..).collect();
    return x;
}

I was hoping to write something simple, like this:

fn vec_to_set(vec: Vec<u8>) -> HashSet<u8> {
    return HashSet::from_iter(vec.iter());
}

but that won't compile:

error[E0308]: mismatched types
 --> <anon>:5:12
  |
5 |     return HashSet::from_iter(vec.iter());
  |            ^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^ expected u8, found &u8
  |
  = note: expected type `std::collections::HashSet<u8>`
  = note:    found type `std::collections::HashSet<&u8, _>`

.. and I don't really understand the error message, probably because I need to RTFM.

3
  • FYI: in your first code, you don't need to clone the vector, you just need to declare it as mutable. Either by let mut victim = vec; or in the argument list by: fn vec_to_set(mut vec: Vec<u8>). Oct 1, 2016 at 9:52
  • 6
    You're not using the O notation correctly. O(n) = O(2n) = O(3n) = O(c*n). The point is that constants don't matter. I think that it is clear what you mean but you should probably say just "2n memory" or something instead.
    – Lii
    Oct 1, 2016 at 10:05
  • 1
    Thanks Lii, if O(n) == O(2n) then what is the right way to express that something takes twice as long? It seems useful to be able to compare n and 2n. Thanks.
    – Jared Beck
    Oct 3, 2016 at 1:50

3 Answers 3

86

Because the operation does not need to consume the vector¹, I think it should not consume it. That only leads to extra copying somewhere else in the program:

use std::collections::HashSet;
use std::iter::FromIterator;

fn hashset(data: &[u8]) -> HashSet<u8> {
    HashSet::from_iter(data.iter().cloned())
}

Call it like hashset(&v) where v is a Vec<u8> or other thing that coerces to a slice.

There are of course more ways to write this, to be generic and all that, but this answer sticks to just introducing the thing I wanted to focus on.

¹This is based on that the element type u8 is Copy, i.e. it does not have ownership semantics.

2
  • 4
    This doesn't compile anymore.
    – User
    May 20, 2020 at 10:23
  • Why do we need to use from_iter instead of iter? Could you explain the difference between them?
    – Crispy13
    Jul 15, 2023 at 13:07
57

The following should work nicely; it fulfills your requirements:

use std::collections::HashSet;
use std::iter::FromIterator;

fn vec_to_set(vec: Vec<u8>) -> HashSet<u8> {
    HashSet::from_iter(vec)
}

from_iter() works on types implementing IntoIterator, so a Vec argument is sufficient.

Additional remarks:

  • you don't need to explicitly return function results; you only need to omit the semi-colon in the last expression in its body

  • I'm not sure which version of Rust you are using, but on current stable (1.12) to_iter() doesn't exist

0
35

Converting Vec to HashSet

Moving data ownership

let vec: Vec<u8> = vec![1, 2, 3, 4];
let hash_set: HashSet<u8> = vec.into_iter().collect();

Cloning data

let vec: Vec<u8> = vec![1, 2, 3, 4];
let hash_set: HashSet<u8> = vec.iter().cloned().collect();
4
  • 1
    collect uses FromIterator — this is the same as the above two answers except more verbose.
    – Shepmaster
    Apr 1, 2019 at 12:52
  • fixed type error. This code does not require repeating HashSet in the conversion code
    – Fuji
    Apr 1, 2019 at 16:15
  • There's no repeating of HashSet in the original answers either. Their code: let hash_set = HashSet::<_>::from_iter(vec); vs yours: let hash_set: HashSet<usize> = vec.into_iter().collect()
    – Shepmaster
    Apr 1, 2019 at 16:32
  • You removed the type in your first example to hide the repeat of HashSet code 1: let hash_set: HashSet<usize> = HashSet::<_>::from_iter(vec); code 2: let hash_set: HashSet<usize> = vec.into_iter().collect() Example restored
    – Fuji
    Apr 2, 2019 at 17:05

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