5

I have a set containing a single item, in this case a string:

b = Set(["A"])

I want to get that single item out. What's the best way of doing this? The only way I can figure out to do it is using a loop:

single_item = ""
for item in b
    single_item = item
end

which gets my what I need

julia> single_item
"A"

but I feel like there must be an easier way.

2 Answers 2

6

how about

julia> collect(b)[1]
"A"

edit

as the legendary Dan Getz suggested, consider doing

julia> collect(take(b,1))[1]
"A" 

if memory is an issue

4
  • Aha, collect turns a set into an array, I did not know that. Thanks, that's much better! Commented Nov 9, 2016 at 9:42
  • 1
    This might can allocate a whole vector for collect(b). collect(take(b,1))[1] might be more efficient, and even more low-level: first(next(b,start(b)))
    – Dan Getz
    Commented Nov 9, 2016 at 10:13
  • Style trivia: I have seen people prefer the use of [] instead of [1] when it is expected that there is only one item in a list, as a visual way of indicating this is the case. Commented Nov 9, 2016 at 17:54
  • If I'd never seen that before, that would undoubtedly confuse me
    – isebarn
    Commented Nov 10, 2016 at 9:16
5

I suggest first

julia> b = Set(["A"])
Set(ASCIIString["A"])

julia> first(b)
"A"

We can profile this, looking at number of allocations. (since memory allocating is slow). I would ignore the actual timing since this is a single run. The results shown are the second run of each call. with b declared const.

julia> @time first(b)
  0.000003 seconds (4 allocations: 160 bytes)
"A"


julia> @time collect(b)[1]
  0.000005 seconds (5 allocations: 240 bytes)
"A"


julia> @time first(next(b,start(b)))
  0.000007 seconds (5 allocations: 192 bytes)
"A"
2
  • Thanks @Oxinabox , did not remember this variant of first. The 4 allocation of first(b) are actually an artifact of measurement, no allocations are made. Looking inside the implementation can even double performance again with the following implementation: getsingleton(x::Set{String}) = x.dict.count == 1 ? x.dict.keys[findfirst(x.dict.slots,0x1)] : throw(ArgumentError("must be a singleton")). And use @benchmark getsingleton(b) after loading BenchmarkTools package.
    – Dan Getz
    Commented Nov 9, 2016 at 15:29
  • Yeah, I was going to comment as such, but got distracted. thanks. Feel free to edit. Commented Nov 9, 2016 at 15:44

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