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So I am working on Problem 31.

I have written the following function in hopes to determine if a number is a prime:

isPrime :: Integer -> Bool

isPrime x = prime x 2
            where
            prime :: Integer -> Integer -> Bool
            prime x y | ((y*y) < x) and ((x `mod` y) /= 0) = prime x (y+1)
                      | ((y*y) >= x) = True
                      | otherwise = False

My logic was make an isPrime function, and have a function within isPrime called prime to store 2 parameters, the number I want to check to see if it is prime (x) and an iterator to check all the numbers below sqrt of x and see if they divide x. prime has 3 guards:

| ((y*y) < x) and ((x `mod` y) == 0) = prime x (y+1)

This line is supposed to say: is the number I passed less than the square root of x (((y*y) < x)) and if it is check if x is divisible by y (((xmody) /= 0)), if it isn't I use recursion and increment y to check again with a higher number.

This line:

| ((y*y) >= x) = True

Is supposed to be like if all the numbers below the square root don't divide x in anyway, x must be prime.

Finally, this line:

| otherwise = False

means that a number somewhere along the line a number divided x so it is not prime.

I thought the code I wrote made sense, I know it isn't the most efficient, considering I could just check primes below sqrt x and not all the numbers below sqrt x, but anyways, I am having problems with this statement:

((y*y) < x)

GHCi says:

The function `(y * y) < x' is applied to two arguments, but its type `Bool' has none

I thought that the < was supposed to take in two arguments and return a Bool, the error message doesn't really make sense to me. Can you help me figure out what I am doing wrong? Thanks.

Quick edit now that I got it to run, this line:

| ((y*y) >= x) = True

should be:

| ((y*y) > x) = True
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2 Answers 2

up vote 9 down vote accepted

To explain what's happening here... the problem isn't with <, it's with the whole expression:

((y*y) < x) and ((x `mod` y) /= 0)

What you're missing is the backticks around and:

((y*y) < x) `and` ((x `mod` y) /= 0)

When you use a function infix like that, if it isn't an operator (i.e. made of symbols, like ++), then you need to surround it with backticks.

Alternately, you can use it non-infix as a function, like:

and ((y*y) < x) ((x `mod` y) /= 0)

Now to explain the error message. What the compiler is saying is that you're trying to use the expression ((y*y) < x) as a function. Since function application in Haskell doesn't use brackets, anything like f x y is a function f applied to two arguments x and y.

Since you forgot to put backticks around the and, Haskell interprets ((y*y) < x) and ((x `mod` y) /= 0) as you trying to apply the function ((y*y) < x) to the arguments and and ((x `mod` y) /= 0). Of course, this doesn't work, because ((y*y) < x) returns Bool, which isn't a function, so it complains with "The function (y * y) < x is applied to two arguments, but its type Bool has none". Bool isn't a function type, and so it has no arguments.

...

Of course, the other error you have now is that it should be && not and - and has type [Bool] -> Bool.

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1  
Urgh. Anyone know how to include backticks inside backticks on SO? I can't seem to escape them. –  Porges Mar 16 '12 at 3:44
4  
&& is the function for "logical and", with type Bool -> Bool -> Bool. and is a similar function with type [Bool] -> Bool, so putting backticks around it won't help here. –  Ben Mar 16 '12 at 3:54
    
@Porges: Fixed that for you. So far as I know, you need to use <code>...</code> with backslash-escaped backticks inside. –  Jon Purdy Mar 16 '12 at 4:05
4  
You can just surround a string with backticks with two backticks to format it as code. –  ehird Mar 16 '12 at 4:19
    
@Ben: did you read the whole thing? That's what the last bit says. –  Porges Mar 17 '12 at 2:46

I think you mean to use && rather than and. After doing that it loads without any errors.

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Mother of god it runs now. I've been scratching my head on why the heck it doesn't work, I'm surprised it doesn't give me something like and isn't recognized or something like that. Oh, side note I made a slight error in my algorithm: | ((y*y) >= x) = True should be: | ((y*y) > x) = True –  user667648 Mar 16 '12 at 3:41
1  
@anon: and is also a function, but it does something else. –  Porges Mar 16 '12 at 3:44
2  
@anon: and is recognized — it's just that it's not an infix operator. and is a function that takes a list and returns whether all of the elements in that list are True. What Haskell thought you were trying to do was apply the function (y * y) < x with an argument of the and function. (y * y) < x is not a function, so it fails. –  icktoofay Mar 16 '12 at 3:44
1  
@anon and is recognised; it's a function with type [Bool] -> Bool. It would be possible to have a function with type ([Bool] -> Bool) -> Bool -> Bool, which is the type that would be needed at the position of your (y * y) < x expression. So a message about using an expression of type Bool really is the most accurate error the compiler can give you here; it's the only thing that's wrong. –  Ben Mar 16 '12 at 4:06

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