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  1. "This module implements an Earley Parser"
  2. # The parser uses a parse-forest to keep track of derivations and ambiguations.
  3. # When the parse ends successfully, a disambiguation stage resolves all ambiguity
  4. # (right now ambiguity resolution is not developed beyond the needs of lark)
  5. # Afterwards the parse tree is reduced (transformed) according to user callbacks.
  6. # I use the no-recursion version of Transformer, because the tree might be
  7. # deeper than Python's recursion limit (a bit absurd, but that's life)
  8. #
  9. # The algorithm keeps track of each state set, using a corresponding Column instance.
  10. # Column keeps track of new items using NewsList instances.
  11. #
  12. # Author: Erez Shinan (2017)
  13. # Email : erezshin@gmail.com
  14. from ..tree import Tree
  15. from ..visitors import Transformer_InPlace, v_args
  16. from ..common import ParseError, UnexpectedToken
  17. from .grammar_analysis import GrammarAnalyzer
  18. from ..grammar import NonTerminal
  19. class Derivation(Tree):
  20. def __init__(self, rule, items=None):
  21. Tree.__init__(self, 'drv', items or [])
  22. self.meta.rule = rule
  23. self._hash = None
  24. def _pretty_label(self): # Nicer pretty for debugging the parser
  25. return self.rule.origin if self.rule else self.data
  26. def __hash__(self):
  27. if self._hash is None:
  28. self._hash = Tree.__hash__(self)
  29. return self._hash
  30. class Item(object):
  31. "An Earley Item, the atom of the algorithm."
  32. def __init__(self, rule, ptr, start, tree):
  33. self.rule = rule
  34. self.ptr = ptr
  35. self.start = start
  36. self.tree = tree if tree is not None else Derivation(self.rule)
  37. @property
  38. def expect(self):
  39. return self.rule.expansion[self.ptr]
  40. @property
  41. def is_complete(self):
  42. return self.ptr == len(self.rule.expansion)
  43. def advance(self, tree):
  44. assert self.tree.data == 'drv'
  45. new_tree = Derivation(self.rule, self.tree.children + [tree])
  46. return self.__class__(self.rule, self.ptr+1, self.start, new_tree)
  47. def __eq__(self, other):
  48. return self.start is other.start and self.ptr == other.ptr and self.rule == other.rule
  49. def __hash__(self):
  50. return hash((self.rule, self.ptr, id(self.start))) # Always runs Derivation.__hash__
  51. def __repr__(self):
  52. before = list(map(str, self.rule.expansion[:self.ptr]))
  53. after = list(map(str, self.rule.expansion[self.ptr:]))
  54. return '<(%d) %s : %s * %s>' % (id(self.start), self.rule.origin, ' '.join(before), ' '.join(after))
  55. class NewsList(list):
  56. "Keeps track of newly added items (append-only)"
  57. def __init__(self, initial=None):
  58. list.__init__(self, initial or [])
  59. self.last_iter = 0
  60. def get_news(self):
  61. i = self.last_iter
  62. self.last_iter = len(self)
  63. return self[i:]
  64. class Column:
  65. "An entry in the table, aka Earley Chart. Contains lists of items."
  66. def __init__(self, i, FIRST, predict_all=False):
  67. self.i = i
  68. self.to_reduce = NewsList()
  69. self.to_predict = NewsList()
  70. self.to_scan = []
  71. self.item_count = 0
  72. self.FIRST = FIRST
  73. self.predicted = set()
  74. self.completed = {}
  75. self.predict_all = predict_all
  76. def add(self, items):
  77. """Sort items into scan/predict/reduce newslists
  78. Makes sure only unique items are added.
  79. """
  80. for item in items:
  81. item_key = item, item.tree # Elsewhere, tree is not part of the comparison
  82. if item.is_complete:
  83. # XXX Potential bug: What happens if there's ambiguity in an empty rule?
  84. if item.rule.expansion and item_key in self.completed:
  85. old_tree = self.completed[item_key].tree
  86. if old_tree == item.tree:
  87. is_empty = not self.FIRST[item.rule.origin]
  88. if not is_empty:
  89. continue
  90. if old_tree.data != '_ambig':
  91. new_tree = old_tree.copy()
  92. new_tree.meta.rule = old_tree.meta.rule
  93. old_tree.set('_ambig', [new_tree])
  94. old_tree.meta.rule = None # No longer a 'drv' node
  95. if item.tree.children[0] is old_tree: # XXX a little hacky!
  96. raise ParseError("Infinite recursion in grammar! (Rule %s)" % item.rule)
  97. if item.tree not in old_tree.children:
  98. old_tree.children.append(item.tree)
  99. # old_tree.children.append(item.tree)
  100. else:
  101. self.completed[item_key] = item
  102. self.to_reduce.append(item)
  103. else:
  104. if item.expect.is_term:
  105. self.to_scan.append(item)
  106. else:
  107. k = item_key if self.predict_all else item
  108. if k in self.predicted:
  109. continue
  110. self.predicted.add(k)
  111. self.to_predict.append(item)
  112. self.item_count += 1 # Only count if actually added
  113. def __bool__(self):
  114. return bool(self.item_count)
  115. __nonzero__ = __bool__ # Py2 backwards-compatibility
  116. class Parser:
  117. def __init__(self, parser_conf, term_matcher, resolve_ambiguity=None):
  118. analysis = GrammarAnalyzer(parser_conf)
  119. self.parser_conf = parser_conf
  120. self.resolve_ambiguity = resolve_ambiguity
  121. self.FIRST = analysis.FIRST
  122. self.postprocess = {}
  123. self.predictions = {}
  124. for rule in parser_conf.rules:
  125. self.postprocess[rule] = rule.alias if callable(rule.alias) else getattr(parser_conf.callback, rule.alias)
  126. self.predictions[rule.origin] = [x.rule for x in analysis.expand_rule(rule.origin)]
  127. self.term_matcher = term_matcher
  128. def parse(self, stream, start_symbol=None):
  129. # Define parser functions
  130. start_symbol = NonTerminal(start_symbol or self.parser_conf.start)
  131. _Item = Item
  132. match = self.term_matcher
  133. def predict(nonterm, column):
  134. assert not nonterm.is_term, nonterm
  135. return [_Item(rule, 0, column, None) for rule in self.predictions[nonterm]]
  136. def complete(item):
  137. name = item.rule.origin
  138. return [i.advance(item.tree) for i in item.start.to_predict if i.expect == name]
  139. def predict_and_complete(column):
  140. while True:
  141. to_predict = {x.expect for x in column.to_predict.get_news()
  142. if x.ptr} # if not part of an already predicted batch
  143. to_reduce = set(column.to_reduce.get_news())
  144. if not (to_predict or to_reduce):
  145. break
  146. for nonterm in to_predict:
  147. column.add( predict(nonterm, column) )
  148. for item in to_reduce:
  149. new_items = list(complete(item))
  150. if item in new_items:
  151. raise ParseError('Infinite recursion detected! (rule %s)' % item.rule)
  152. column.add(new_items)
  153. def scan(i, token, column):
  154. next_set = Column(i, self.FIRST)
  155. next_set.add(item.advance(token) for item in column.to_scan if match(item.expect, token))
  156. if not next_set:
  157. expect = {i.expect for i in column.to_scan}
  158. raise UnexpectedToken(token, expect, stream, set(column.to_scan))
  159. return next_set
  160. # Main loop starts
  161. column0 = Column(0, self.FIRST)
  162. column0.add(predict(start_symbol, column0))
  163. column = column0
  164. for i, token in enumerate(stream):
  165. predict_and_complete(column)
  166. column = scan(i, token, column)
  167. predict_and_complete(column)
  168. # Parse ended. Now build a parse tree
  169. solutions = [n.tree for n in column.to_reduce
  170. if n.rule.origin==start_symbol and n.start is column0]
  171. if not solutions:
  172. raise ParseError('Incomplete parse: Could not find a solution to input')
  173. elif len(solutions) == 1:
  174. tree = solutions[0]
  175. else:
  176. tree = Tree('_ambig', solutions)
  177. if self.resolve_ambiguity:
  178. tree = self.resolve_ambiguity(tree)
  179. return ApplyCallbacks(self.postprocess).transform(tree)
  180. class ApplyCallbacks(Transformer_InPlace):
  181. def __init__(self, postprocess):
  182. self.postprocess = postprocess
  183. @v_args(meta=True)
  184. def drv(self, children, meta):
  185. return self.postprocess[meta.rule](children)