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I made 3 functions which work perfectly fine each alone:

checkNumber -checks if a string contains only digits

checkStreetName - checks if a string contains only letters

isAbbreviation - checks if a string is "Ave." or "St."

I made the function checkAdd that uses the other functions

the function checkAdd gets a list of strings and should return True if:

the first string contains only numbers

the last string ="Ave." or St."

and the rest of the strings in between should contain letters

for example: ["123", "asdd", "Ave."] is legal address

However I am getting false instead of true and I don't know why. I checked each and every function alone. (by the way I am not aloud to use some of the ready made functions in Haskell)

so for this input : ["123", "asdd", "Ave."] I got false . why ?

I must also say that the strange thing is that it works fine when I keep 2 conditions instead of 3 in checkAdd

checkNumber:: String->Bool
checkNumber  xs =((length(filter isDigit xs ))== length(xs))

checkStreetName:: String->Bool
checkStreetName xs  =((length(filter isLetter1 xs ))== length(xs))

isLetter1:: Char->Bool
isLetter1 ch   =((ch>='A' && ch<='Z') || (ch>='a' && ch<='z'))


checkAdd :: [String]->Bool
checkAdd (num:xs) = (checkNumber num  &&  (all1 checkStreetName (tail xs)) &&        isAbbreviation (last1 xs))


all1 :: (String->Bool)->[String] -> Bool
all1 f xs = ((length(filter f xs)) == length(xs))

isAbbreviation:: String->Bool
isAbbreviation str |str=="Ave." || str=="St."    =True
               |otherwise                    =False

last1 :: [a]->a
last1 (x:[])      = x
last1 (x:xs)      =last1 xs
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Is this for learning or real world use? For real world, this approach is not going to give you good results. –  Daenyth May 22 '14 at 17:48
    
for learning only –  Shiran May 22 '14 at 17:48
    
The way you are representing the adress tight now is very "stringly typed" and easily breaks. For example, you need to worry about the list having 2 or 4 elements and there is no wat to add non-string items to the list. You should consider representing the address as a tuple or using a record. –  hugomg May 22 '14 at 17:52
2  
Another tip: as a rule of thumb, you don't want to be calling length on lists because it is inneficient and will loop forever on infinite lists. Instead of coding all1 in terms of filter code it in terms of foldr or via manual recursion. –  hugomg May 22 '14 at 17:54
1  
You could easily have figured out the problem with some ghci testing. –  leftaroundabout May 22 '14 at 17:55

1 Answer 1

up vote 2 down vote accepted

The problem you have is simply that "Ave." contains a non-letter character, namely '.', but all1 (just a re-definition of all) requires it to fulfill checkStreetName. To fix this, for instance test all1 checkStreetName $ init xs instead of all1 checkStreetName xs.

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