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let _ as s = "abc" in s ^ "def"

So how should understand this?


I guess it is some kind of let pattern = expression thing?

First, what's the meaning/purpose/logic of let pattern = expression?

Also, in pattern matching, I know there is pattern as identifier usage, in let _ as s = "abc" in s ^ "def", _ is pattern, but behind as, it is an expression s = "abc" in s ^ "def", not an identifier, right?

edit:

finally, how about this: (fun (1 | 2) as i -> i + 1) 2, is this correct?

I know it is wrong, but why? fun pattern -> expression is allowed, right?


I really got lost here.

share|improve this question
up vote 4 down vote accepted

The expression let pattern = expr1 in expr2 is pretty central to OCaml. If the pattern is just a name, it lets you name an expression. This is like a local variable in other language. If the pattern is more complicated, it lets you destructure expr1, i.e., it lets you give names to its components.

In your expression, behind as is just an identifier: s. I suspect your confusion all comes down to this one thing. The expression can be parenthesized as:

let (_ as s) = "abc" in s ^ "def"

as Andreas Rossberg shows.

Your final example is correct if you add some parentheses. The compiler/toplevel rightly complains that your function is partial; i.e., it doesn't know what to do with most ints, only with 1 and 2.

Edit: here's a session that shows how to add the parentheses to your final example:

$ ocaml
        OCaml version 4.00.0

# (fun (1 | 2) as i -> i + 1) 2;;
Error: Syntax error
# (fun ((1 | 2) as i) -> i + 1) 2;;
Warning 8: this pattern-matching is not exhaustive.
Here is an example of a value that is not matched:
0
- : int = 3
#

Edit 2: here's a session that shows how to remove the warning by specifying an exhaustive set of patterns.

$ ocaml
        OCaml version 4.00.0

# (function ((1|2) as i) -> i + 1 | _ -> -1) 2;;
- : int = 3
# (function ((1|2) as i) -> i + 1 | _ -> -1) 3;;
- : int = -1
# 
share|improve this answer
    
in my final example, (1 | 2) as i should have priority, right? – Jackson Tale Dec 13 '12 at 10:51
1  
It would be nice to have an OCaml standard, but for now I'd say the compiler is the authority on the language! In parser.y you'll see that MINUSGREATER has higher precedence than AS. So the parentheses are required. – Jeffrey Scofield Dec 13 '12 at 15:55
    
ok, so how to make (fun ((1 | 2) as i) -> i + 1) 2;; correct? can I write (fun (((1|2) as i) -> i+1 | _ -> -1)) 2? just add other cases – Jackson Tale Jan 14 '13 at 16:39
    
fun takes just one pattern. You can use function with multiple patterns. See Edit 2. – Jeffrey Scofield Jan 14 '13 at 17:28

The grouping is let (_ as s) = "abc" -- which is just a convoluted way of saying let s = "abc", because as with a wildcard pattern _ in front is pretty much useless.

share|improve this answer
    
Please see my edit. – Jackson Tale Dec 12 '12 at 23:31

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