5

For example:

n::Uint8 = 0x00
x::Uint8 = n + 0x10
ERROR: type: typeassert: expected Uint8, got Uint64

I assume this happens because methods(+) for a::Uint8, b::Uint8 is not defined so n is auto-promoted to Uint64. Is there a better way to deal with this than casting everything back to it's pre-promoted type after every operation? Isn't this something that the interpreter should be able to handle automatically (i.e. if it's told x should be assigned a Uint8 after the addition)?

  • 1
    This behavior was a deliberate choice in julia 0.3, to reduce the risk of overflow. – tholy Feb 9 '15 at 11:39
  • The only case for which I would have found old behaviour useful was I think one for which it didn't apply (int64 -> bigint doesn't auto promote). – user3467349 Feb 9 '15 at 19:54
7

I don't think there is a better way in Julia 0.3 than

julia> typeof(uint8(0x00 + 0x10))
UInt8

but in Julia 0.4 you don't need to worry as it doesn't do that automatic promotion anymore:

julia> typeof(0x00 + 0x10)
UInt8
  • Ah yeah I hadn't used Julia in a while - I just tried it in 0.4, it seems + methods for smaller int and uint types got added to dispatch. – user3467349 Feb 9 '15 at 1:59
  • 1
    Yeah there was some logic to the old behavior, but I think for most people the new behavior makes a lot more sense. – IainDunning Feb 9 '15 at 2:27
  • 1
    Note that x+y does not check for overflow on either julia 0.3 or julia 0.4. If that's a concern, on 0.4 you'll need to mimic the promotion behavior yourself, e.g., convert(UInt8, convert(UInt16, x) + y) for x and y both UInt8. On 0.4 convert will throw an error if the resulting value overflows UInt8. – tholy Feb 9 '15 at 11:42

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