问题
I have a F# function:
let removeEven (listToGoUnder : _ list) =
let rec listRec list x =
match list with
| [] -> []
| head::tail when (x%2 = 0) -> head :: listRec (tail) (x+1)
| head::tail -> listRec (tail) (x+1)
listRec listToGoUnder 0
It removes all elements at an even index in a list.
It works if I give the list some imput, like removeEven ['1';'2';'3'] I get ['1';'3'] which I am supposed to. But when I insert a empty list as parameter, I get this error:
stdin(78,1): error FS0030: Value restriction. The value 'it' has been inferred to have generic type
val it : '_a list Either define 'it' as a simple data term, make it a function with explicit arguments or, if you do not intend for it to be generic, add a type annotation.
Help, anybody?
回答1:
The empty list ([]) is quite special; it can be a list of any type. Therefore, the compiler complains that you don't have a specific type for []. Adding type annotation on the argument helps to solve the problem:
let results = removeEven ([]: int list)
or more idiomatic type annotation as suggested by @kvb:
let results: int list = removeEven []
This is probably beyond the question, but your function should be named as removeOdd since indices often start from 0 and your function removes all elements with odd indices. Moreover, things are much more clear if you use pattern matching on first two elements of the list rather than keep a counter x for checking indices:
let rec removeOdd = function
| [] -> []
| [x] -> [x]
| x::_::xs -> x::removeOdd xs
来源:https://stackoverflow.com/questions/9413483/f-value-restriction-in-empty-list