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I’m trying to create a basic parser for math equations using Parsec, and I’m having some trouble using the buildExpressionParser function.

I’ve created a parsecParse function, but it just hangs forever when I call it in ghci: parse parsecParse "" "200*6". I can’t figure out why. Any ideas?

module Equation where

import Control.Applicative hiding (many, (<|>))

import Text.Parsec.Char (char, digit)
import Text.Parsec.Combinator (many1, option)
import Text.Parsec.Expr (Assoc (..), Operator (..), buildExpressionParser)
import Text.Parsec.Prim ((<|>), try)
import Text.Parsec.String (Parser)

data Equation = Leaf Double | Tree Op Equation Equation deriving (Show)
data Op = Plus | Minus | Multiply | Divide deriving (Show)

parsecParse :: Parser Equation
parsecParse = try parseOperator <|> parseDouble

parseDouble :: Parser Equation
parseDouble = fmap (Leaf . read) $ (++) <$> integer <*> fraction
    where integer  = many1 digit
          fraction = option "" $ (:) <$> char '.' <*> many1 digit

parseOperator :: Parser Equation
parseOperator = buildExpressionParser table parsecParse
    where table     = [[ getOp '*' Multiply, getOp '/' Divide ],
                       [ getOp '+' Plus,     getOp '-' Minus ]]
          getOp c o = Infix (char c >> return (Tree o)) AssocLeft
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1 Answer 1

up vote 2 down vote accepted

You are getting problems because parseOperator is recursing back on itself in leftmost position, something which Parsec cannot handle directly, and which gives an infinite recursion.

The last argument to buildExpressionParser should be a parser that parses more "basic" elements.

It is fine to recurse indirectly on parseOperator, e.g. to handle parenthesized elements, but not such that it ends up in the leftmost position of itself.

share|improve this answer
    
I’m a little confused, because the examples I’ve seen[1][2] also seem to pass themselves recursively to buildExpressionParser. What’s the difference between what they’re doing and what I’m trying to do? [1]: hackage.haskell.org/package/parsec-3.1.5/docs/… [2]: blog.moertel.com/posts/… –  Blake Haswell Aug 12 at 11:25
    
@BlakeHaswell I tried to formulate better. –  Ørjan Johansen Aug 12 at 11:28
    
Given that, if I change my function to parsecParse = char '(' *> parseOperator <* char ')' <|> parseDouble and I call it using parse parseOperator "" "200*6+5" then everything works. –  Blake Haswell Aug 12 at 11:48

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