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Coming from Haskell to play with Nitrogen and running into a few things I can't find examples of, so if somebody could help me out:

Haskell's where (and or let or any type of function nesting with access to parent variables) in erlang? How? Can you?

burnOrDie hotness = foldl1 (>>) $ map burn ["Jimmy", "Adam", "Gonzo"]
  where burn x
          | hotness < 3 = print $ x ++ ": Ouch!"
          | otherwise = print $ x ++ ": GAHHH! *die*"

Partial application? Haskell: addOne = +1

in-line lambda function? Haskell: map (\x -> x+x) [1,2,3]

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2 Answers 2

up vote 6 down vote accepted

I am no expert in erlang but I will try to answer.

Nesting functions

out(A) ->
    X = A + 1,
    SQ = fun(C) -> C*C end,
    io:format("~p",[SQ(X)]).

here SQ function has access to parent variables.

In Lambda

This is same as above, you can use fun to define your anonymous functions.

Partial application

I don't think erlang has partial function application in any sane way. The only thing you can do is to wrap functions to return function.

add(X) -> 
    Add2 = fun(Y) -> X + Y end,
    Add2.

Now you can do something like

1> c(test).
{ok,test}
2> A=test:add(1).
#Fun<test.0.41627352>
3> A(2).
3
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Looks like exactly the details I was looking for. I had a feeling that was the case with partial, you can always do partials with closures as you showed. One question, in your example of X do I have to use fun(something) to make X parameterized so lambdas are really the answer to all 3 of my questions? –  Jimmy Hoffa Nov 13 '12 at 4:47
    
\x -> something is same as fun(X) -> something. You can write functions not taking any argument too. So something like `fun() -> dosomthing with X' will also work because X will already be in the scope. –  Satvik Nov 13 '12 at 5:45
    
Does it have to be SQ = fun(c) -> or can you nest a function as SQ(c) -> ? Also can I put guards on nested functions something like SQ = fun(c) when (c == 1) -> 1; fun(c) when (_) -> c*c. or pattern matching overloads perhaps SQ = fun(0) -> 0; fun(1) -> 1. –  Jimmy Hoffa Nov 13 '12 at 18:11
    
Why don't you try and see. You can also read more about fun here erlang.org/doc/programming_examples/funs.html –  Satvik Nov 14 '12 at 4:45
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Erlang doesn't have nested functions in the sense that Haskell and other languages do. When @Satvik created a function using SQ = fun(C) -> C*C end he was creating a closure, or fun in Erlang, and not a nested function. The syntax fun (...) -> ... end creates a fun or closure. which is not really the same thing.

Partial evaluation as in Haskell does not exist in Erlang, though you can hack it using funs.

You define in-line lambdas (funs) with the fun syntax. So you map becomes:

lists:map(fun (X) -> X+X end, [1,2,3])
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