Files
nx_post_support/server/libs/tclint/lexer.py
T

244 lines
6.0 KiB
Python

import ply.lex as lex
from typing import Tuple
TOK_BACKSLASH_NEWLINE = "BACKSLASH_NEWLINE"
TOK_BACKSLASH_SUB = "BACKSLASH_SUB"
TOK_NEWLINE = "NEWLINE"
TOK_SEMI = "SEMI"
TOK_WS = "WS"
TOK_QUOTE = "QUOTE"
TOK_ARG_EXPANSION = "ARG_EXPANSION"
TOK_LBRACE = "LBRACE"
TOK_RBRACE = "RBRACE"
TOK_STAR = "STAR"
TOK_LBRACKET = "LBRACKET"
TOK_RBRACKET = "RBRACKET"
TOK_DOLLAR = "DOLLAR"
TOK_LPAREN = "LPAREN"
TOK_RPAREN = "RPAREN"
TOK_HASH = "HASH"
TOK_ALPHA_CHARS = "ALPHA_CHARS"
TOK_NUM_CHARS = "NUM_CHARS"
TOK_NAMESPACE_SEP = "NAMESPACE_SEP"
TOK_CHAR = "CHAR"
TOK_CONTENTS = "CONTENTS"
TOK_EOF = None
STATE_BRACEDWORD = "bracedword"
class TclSyntaxError(Exception):
def __init__(self, message, start: Tuple[int, int], end: Tuple[int, int]):
super().__init__(message)
self.start = start
self.end = end
class _LexTable:
tokens = (
TOK_BACKSLASH_NEWLINE,
TOK_BACKSLASH_SUB,
TOK_NEWLINE,
TOK_SEMI,
TOK_WS,
TOK_QUOTE,
TOK_ARG_EXPANSION,
TOK_LBRACE,
TOK_RBRACE,
TOK_STAR,
TOK_LBRACKET,
TOK_RBRACKET,
TOK_DOLLAR,
TOK_LPAREN,
TOK_RPAREN,
TOK_HASH,
TOK_ALPHA_CHARS,
TOK_NUM_CHARS,
TOK_NAMESPACE_SEP,
TOK_CHAR,
TOK_CONTENTS,
)
# This defines a conditional lexing state for parsing braced words. This is a
# performance optimization; since there are few special characters in this context,
# we can use a smaller set of tokens to parse them faster. This has a large impact
# since most Tcl programs have a large number of braced words. Any token with
# `bracedword` in its name is included in this state. Tokens that are included in
# this state and the default state also include `INITIAL` in their name.
states = ((STATE_BRACEDWORD, "exclusive"),)
def _tok(self, t):
pos = (t.lexer.lineno, t.lexer.colno)
t.lexer.lineno += t.value.count("\n")
index = t.value.rfind("\n")
if index == -1:
t.lexer.colno += len(t.value)
else:
remaining = t.value[index + 1 :]
t.lexer.colno = len(remaining) + 1
t.value = (t.value, pos)
return t
# Priority important
def t_bracedword_INITIAL_BACKSLASH_NEWLINE(self, t):
r"\\\n"
return self._tok(t)
# Priority important
def t_bracedword_INITIAL_BACKSLASH_SUB(self, t):
r"\\."
return self._tok(t)
def t_NEWLINE(self, t):
r"\n"
return self._tok(t)
def t_SEMI(self, t):
r";"
return self._tok(t)
# TODO: should use \s?
def t_WS(self, t):
r"[\t\v\f\r ]+"
return self._tok(t)
def t_QUOTE(self, t):
r'"'
return self._tok(t)
# Must be higher priority than LBRACE
def t_ARG_EXPANSION(self, t):
r"\{\*\}"
return self._tok(t)
def t_bracedword_INITIAL_LBRACE(self, t):
r"\{"
return self._tok(t)
def t_bracedword_INITIAL_RBRACE(self, t):
r"\}"
return self._tok(t)
def t_STAR(self, t):
r"\*"
return self._tok(t)
def t_LBRACKET(self, t):
r"\["
return self._tok(t)
def t_RBRACKET(self, t):
r"\]"
return self._tok(t)
def t_DOLLAR(self, t):
r"\$"
return self._tok(t)
def t_LPAREN(self, t):
r"\("
return self._tok(t)
def t_RPAREN(self, t):
r"\)"
return self._tok(t)
def t_HASH(self, t):
r"\#"
return self._tok(t)
# Valid non-numeric chars in variable names
def t_ALPHA_CHARS(self, t):
r"[A-Za-z_]+"
return self._tok(t)
# Valid numeric chars in variable names
# This is split up from the above to facilitate expression parsing, since
# e.g. 1eq1 can't be a single token.
def t_NUM_CHARS(self, t):
r"[0-9]+"
return self._tok(t)
def t_NAMESPACE_SEP(self, t):
r"::+"
return self._tok(t)
def t_bracedword_CONTENTS(self, t):
r"[^{}\\]+"
return self._tok(t)
# Catch-all. TODO: inefficient, should probably munch multiple chars
def t_CHAR(self, t):
r"."
return self._tok(t)
# Error handling rule
# TODO: do we need this? since we have a catch-all...
# there is a warning
def t_bracedword_INITIAL_error(self, t):
print("Illegal character '%s'" % t.value[0])
t.lexer.skip(1)
def __init__(self):
self.lexer = lex.lex(object=self)
self.lexer.lineno = 1
self.lexer.colno = 1
def new_lexer(self, pos=None):
lexer = self.lexer.clone()
lexer.lineno = 1
lexer.colno = 1
if pos is not None:
line, col = pos
lexer.lineno = line
lexer.colno = col
return lexer
# Calling `lex.lex()` performs an expensive reflection process to generate the lexer.
# This singleton class holds a preinitialized lexer that can then be cloned to create
# individual instances.
LexTable = _LexTable()
class Lexer:
def __init__(self, pos=None):
self.lexer = LexTable.new_lexer(pos)
self.current = None
def input(self, text):
self.lexer.input(text)
self.current = self.lexer.token()
def type(self):
if self.current is None:
return TOK_EOF
return self.current.type
def value(self):
if self.current is None:
return None
return self.current.value[0]
def pos(self):
if self.current is None:
return (self.lexer.lineno, self.lexer.colno)
return self.current.value[1]
def next(self):
self.current = self.lexer.token()
def expect(self, *tokens, message, pos):
if self.type() not in tokens:
self.next() # munch another token to update position
raise TclSyntaxError(message, pos, self.pos())
self.next()
def assert_(self, *tokens):
assert self.current.type in tokens
self.next()