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Im trying to write a function using currying to compute a Collatz series... But im getting lost when trying to write the parameters for construct6(...)

def c: Int => Int = construct6(isEven)(dec, inc)

//DONT KNOW WHAT TO DO HERE
def construct6: ((Int => Boolean) => (Int => Int, Int => Int)) => (i => (e, o)) = { 
    if (i(n)) e(n) else o(n)
}

def isEven: (Int) => (Boolean) = (a) => (a % 2 == 0)
def dec: (Int) => (Int) = (a) => (a / 2)
def inc: (Int) => (Int) = (a) => (a * 3 + 1)
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your function construct6 doesn't even accept a parameter n... I'm not sure exactly what you are asking? –  Andrew Cassidy Feb 17 at 17:09
    
I need to construct construct6 that way, so that c() can use it.. somehow... –  Torhan Bartel Feb 17 at 17:13
    
I think I answered your question to a certain extent... contruct6 still needs to take n: Int. You can partially apply the curried function with the values to make a function that Int => Int. Sound like what you are looking for? –  Andrew Cassidy Feb 17 at 17:15
    
Method def c: Int => Int = construct6(isEven)(dec, inc) is given. I need to adapt construct6 so c() can use it... –  Torhan Bartel Feb 17 at 17:20

2 Answers 2

You're construct6 function MUST take a Int n. Here is the function curried 3 times...

def construct6(i: Int => Boolean)(e: Int => Int, o: Int => Int)( n: Int): Int = 
    if (i(n)) e(n) else o(n)

When dealing with problems like this it is always important to look at the type signatures and see that they match up. Notice that construct6 MUST return an Int. We can doing some functional magic to make a function with a type signature to match Int => Int by doing this:

val c: Int => Int = construct6(isEven)(dec, inc)(_: Int)

We are partially applying the function you want for i, e, o, and leaving n as a variable.

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Add some explanation to your code. –  DontVoteMeDown Feb 17 at 17:32

Given:

def isEven: (Int) => (Boolean) = (a) => (a % 2 == 0)
def dec: (Int) => (Int) = (a) => (a / 2)
def inc: (Int) => (Int) = (a) => (a * 3 + 1)

you are still missing the n parameter to construct6 (as Andrew Cassidy says). Since you need to curry its parameters, it's more readable if you define construct6 like this (but it's basically the same definition you gave, I just added the n:Int at the end):

def construct6 (i:Int => Boolean)(e:(Int => Int)) (o:(Int => Int))(n:Int)
 = if (i(n)) e(n) else o(n)

you can now define c as a Int=>Int by leaving out the last parameter n to construct6. In the REPL:

scala> def c: Int => Int = construct6(isEven)(dec)(inc)
c: Int => Int

scala> c(8)
res0: Int = 4

which I believe is what you were trying to do.

If you want to infer c's type instead of specifying it as a Int => Int explicitly) you will have to use the omnipresent _ to confirm to Scala that you're not just leaving out anything by mistake:

scala> def c2= construct6(isEven)(dec)(inc) _
c2: Int => Int

scala> c2(8)
res1: Int = 4
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made a similar update... good answer here! –  Andrew Cassidy Feb 17 at 17:48
    
@AndrewCassidy: sorry, I didn't notice that my answer is now a duplicate of yours! –  Paolo Falabella Feb 17 at 17:52
    
It's cool! I still upvoted you. The slight differences may be valuable to someone : ). In particular the _ –  Andrew Cassidy Feb 17 at 17:55
    
@AndrewCassidy ...which by the way I just realized is not even strictly needed if you give the type of c explicitly. Still mostly a duplicate though. I would just integrate your answer with whatever you believe is missing and I can delete mine –  Paolo Falabella Feb 17 at 18:00

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