0

I am new to F# and I do not understand how a bit shift works in F#.

I tried the command below in fsi.

> 4
- |>((<<<) 1uy);;

The screen shot is as below.

enter image description here

Why is this result 16uy but not 8uy?

Even confused me more when I tried the command below because the result is 48uy...

> 4
- |>((<<<) 3uy);;

Would you somebody describe me how this works?

3
  • 1
    Please attempt to paste the code as text instead of linking an image. We can help with the formatting if needed. Apr 5 '20 at 0:30
  • Thank you for your comment. I did not know how to copy the code from fsi screen. It will be grateful if you could help me the formatting.
    – Tyam
    Apr 5 '20 at 1:16
  • Thank you for the formatting.
    – Tyam
    Apr 6 '20 at 22:50
2

From the documentation:

Bitwise left-shift operator. The result is the first operand with bits shifted left by the number of bits in the second operand. Bits shifted off the most significant position are not rotated into the least significant position. The least significant bits are padded with zeros. The type of the second argument is int32.

It's been a while since I've used F#, but assuming its operator prefixing works like Haskell's then the way you've used it:

4 |> ((<<<) 1uy)

will apply 1 as the left-hand argument, and 4 as the right-hand argument:

1 <<< 4

Which will be 16.

To get it to equal 8, try removing the parentheses around the operator itself (meaning it won't be prefixed but instead just partially applied with the right-hand argument) to get:

4 |> (<<< 1uy)

and that should give you 8, assuming it's valid F# syntax.

0

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.