git-svn-id: svn://svn.code.sf.net/p/fonttools/code/trunk@2 4cde692c-a291-49d1-8350-778aa11640f8
975 lines
23 KiB
Python
975 lines
23 KiB
Python
"""psCharStrings.py -- module implementing various kinds of CharStrings:
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CFF dictionary data and Type1/Type2 CharStrings.
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"""
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__version__ = "1.0b1"
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__author__ = "jvr"
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import types
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import struct
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import string
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t1OperandEncoding = [None] * 256
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t1OperandEncoding[0:32] = (32) * ["do_operator"]
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t1OperandEncoding[32:247] = (247 - 32) * ["read_byte"]
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t1OperandEncoding[247:251] = (251 - 247) * ["read_smallInt1"]
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t1OperandEncoding[251:255] = (255 - 251) * ["read_smallInt2"]
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t1OperandEncoding[255] = "read_longInt"
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assert len(t1OperandEncoding) == 256
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t2OperandEncoding = t1OperandEncoding[:]
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t2OperandEncoding[28] = "read_shortInt"
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cffDictOperandEncoding = t2OperandEncoding[:]
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cffDictOperandEncoding[29] = "read_longInt"
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cffDictOperandEncoding[30] = "read_realNumber"
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cffDictOperandEncoding[255] = "reserved"
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realNibbles = ['0', '1', '2', '3', '4', '5', '6', '7', '8', '9',
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'.', 'E', 'E-', None, '-']
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class ByteCodeDecompilerBase:
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def read_byte(self, b0, data, index):
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return b0 - 139, index
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def read_smallInt1(self, b0, data, index):
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b1 = ord(data[index])
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return (b0-247)*256 + b1 + 108, index+1
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def read_smallInt2(self, b0, data, index):
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b1 = ord(data[index])
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return -(b0-251)*256 - b1 - 108, index+1
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def read_shortInt(self, b0, data, index):
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bin = data[index] + data[index+1]
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value, = struct.unpack(">h", bin)
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return value, index+2
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def read_longInt(self, b0, data, index):
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bin = data[index] + data[index+1] + data[index+2] + data[index+3]
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value, = struct.unpack(">l", bin)
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return value, index+4
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def read_realNumber(self, b0, data, index):
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number = ''
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while 1:
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b = ord(data[index])
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index = index + 1
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nibble0 = (b & 0xf0) >> 4
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nibble1 = b & 0x0f
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if nibble0 == 0xf:
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break
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number = number + realNibbles[nibble0]
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if nibble1 == 0xf:
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break
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number = number + realNibbles[nibble1]
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return string.atof(number), index
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def _buildOperatorDict(operatorList):
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dict = {}
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for item in operatorList:
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if len(item) == 2:
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dict[item[0]] = item[1]
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else:
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dict[item[0]] = item[1:]
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return dict
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t2Operators = [
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# opcode name
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(1, 'hstem'),
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(3, 'vstem'),
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(4, 'vmoveto'),
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(5, 'rlineto'),
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(6, 'hlineto'),
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(7, 'vlineto'),
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(8, 'rrcurveto'),
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(10, 'callsubr'),
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(11, 'return'),
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(14, 'endchar'),
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(16, 'blend'),
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(18, 'hstemhm'),
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(19, 'hintmask'),
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(20, 'cntrmask'),
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(21, 'rmoveto'),
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(22, 'hmoveto'),
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(23, 'vstemhm'),
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(24, 'rcurveline'),
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(25, 'rlinecurve'),
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(26, 'vvcurveto'),
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(27, 'hhcurveto'),
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# (28, 'shortint'), # not really an operator
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(29, 'callgsubr'),
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(30, 'vhcurveto'),
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(31, 'hvcurveto'),
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((12, 3), 'and'),
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((12, 4), 'or'),
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((12, 5), 'not'),
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((12, 8), 'store'),
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((12, 9), 'abs'),
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((12, 10), 'add'),
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((12, 11), 'sub'),
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((12, 12), 'div'),
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((12, 13), 'load'),
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((12, 14), 'neg'),
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((12, 15), 'eq'),
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((12, 18), 'drop'),
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((12, 20), 'put'),
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((12, 21), 'get'),
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((12, 22), 'ifelse'),
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((12, 23), 'random'),
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((12, 24), 'mul'),
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((12, 26), 'sqrt'),
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((12, 27), 'dup'),
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((12, 28), 'exch'),
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((12, 29), 'index'),
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((12, 30), 'roll'),
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((12, 34), 'hflex'),
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((12, 35), 'flex'),
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((12, 36), 'hflex1'),
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((12, 37), 'flex1'),
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]
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class T2CharString(ByteCodeDecompilerBase):
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operandEncoding = t2OperandEncoding
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operators = _buildOperatorDict(t2Operators)
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def __init__(self, bytecode=None, program=None):
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if program is None:
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program = []
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self.bytecode = bytecode
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self.program = program
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def __repr__(self):
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if self.bytecode is None:
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return "<%s (source) at %x>" % (self.__class__.__name__, id(self))
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else:
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return "<%s (bytecode) at %x>" % (self.__class__.__name__, id(self))
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def needsDecompilation(self):
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return self.bytecode is not None
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def setProgram(self, program):
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self.program = program
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self.bytecode = None
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def getToken(self, index,
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len=len, ord=ord, getattr=getattr, type=type, StringType=types.StringType):
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if self.bytecode is not None:
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if index >= len(self.bytecode):
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return None, 0, 0
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b0 = ord(self.bytecode[index])
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index = index + 1
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code = self.operandEncoding[b0]
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handler = getattr(self, code)
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token, index = handler(b0, self.bytecode, index)
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else:
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if index >= len(self.program):
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return None, 0, 0
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token = self.program[index]
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index = index + 1
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isOperator = type(token) == StringType
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return token, isOperator, index
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def getBytes(self, index, nBytes):
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if self.bytecode is not None:
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newIndex = index + nBytes
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bytes = self.bytecode[index:newIndex]
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index = newIndex
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else:
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bytes = self.program[index]
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index = index + 1
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assert len(bytes) == nBytes
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return bytes, index
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def do_operator(self, b0, data, index):
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if b0 == 12:
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op = (b0, ord(data[index]))
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index = index+1
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else:
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op = b0
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operator = self.operators[op]
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return operator, index
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def toXML(self, xmlWriter):
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from misc.textTools import num2binary
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if self.bytecode is not None:
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xmlWriter.dumphex(self.bytecode)
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else:
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index = 0
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args = []
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while 1:
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token, isOperator, index = self.getToken(index)
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if token is None:
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break
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if isOperator:
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args = map(str, args)
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if token in ('hintmask', 'cntrmask'):
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hintMask, isOperator, index = self.getToken(index)
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bits = []
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for byte in hintMask:
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bits.append(num2binary(ord(byte), 8))
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hintMask = repr(string.join(bits, ""))
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line = string.join(args + [token, hintMask], " ")
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else:
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line = string.join(args + [token], " ")
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xmlWriter.write(line)
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xmlWriter.newline()
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args = []
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else:
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args.append(token)
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t1Operators = [
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# opcode name
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(1, 'hstem'),
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(3, 'vstem'),
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(4, 'vmoveto'),
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(5, 'rlineto'),
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(6, 'hlineto'),
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(7, 'vlineto'),
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(8, 'rrcurveto'),
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(9, 'closepath'),
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(10, 'callsubr'),
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(11, 'return'),
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(13, 'hsbw'),
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(14, 'endchar'),
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(21, 'rmoveto'),
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(22, 'hmoveto'),
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(30, 'vhcurveto'),
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(31, 'hvcurveto'),
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((12, 0), 'dotsection'),
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((12, 1), 'vstem3'),
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((12, 2), 'hstem3'),
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((12, 6), 'seac'),
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((12, 7), 'sbw'),
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((12, 12), 'div'),
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((12, 16), 'callothersubr'),
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((12, 17), 'pop'),
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((12, 33), 'setcurrentpoint'),
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]
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class T1CharString(T2CharString):
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operandEncoding = t1OperandEncoding
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operators = _buildOperatorDict(t1Operators)
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def decompile(self):
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if hasattr(self, "program"):
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return
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program = []
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index = 0
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while 1:
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token, isOperator, index = self.getToken(index)
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if token is None:
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break
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program.append(token)
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self.setProgram(program)
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class SimpleT2Decompiler:
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def __init__(self, localSubrs, globalSubrs):
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self.localSubrs = localSubrs
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self.localBias = calcSubrBias(localSubrs)
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self.globalSubrs = globalSubrs
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self.globalBias = calcSubrBias(globalSubrs)
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self.reset()
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def reset(self):
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self.callingStack = []
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self.operandStack = []
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self.hintCount = 0
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self.hintMaskBytes = 0
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def execute(self, charString):
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self.callingStack.append(charString)
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needsDecompilation = charString.needsDecompilation()
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if needsDecompilation:
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program = []
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pushToProgram = program.append
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else:
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pushToProgram = lambda x: None
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pushToStack = self.operandStack.append
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index = 0
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while 1:
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token, isOperator, index = charString.getToken(index)
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if token is None:
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break # we're done!
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pushToProgram(token)
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if isOperator:
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handlerName = "op_" + token
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if hasattr(self, handlerName):
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handler = getattr(self, handlerName)
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rv = handler(index)
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if rv:
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hintMaskBytes, index = rv
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pushToProgram(hintMaskBytes)
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else:
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self.popall()
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else:
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pushToStack(token)
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if needsDecompilation:
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charString.setProgram(program)
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assert program[-1] in ("endchar", "return", "callsubr", "callgsubr", "seac")
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del self.callingStack[-1]
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def pop(self):
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value = self.operandStack[-1]
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del self.operandStack[-1]
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return value
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def popall(self):
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stack = self.operandStack[:]
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self.operandStack[:] = []
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return stack
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def push(self, value):
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self.operandStack.append(value)
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def op_return(self, index):
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if self.operandStack:
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pass
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def op_endchar(self, index):
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pass
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def op_callsubr(self, index):
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subrIndex = self.pop()
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subr = self.localSubrs[subrIndex+self.localBias]
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self.execute(subr)
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def op_callgsubr(self, index):
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subrIndex = self.pop()
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subr = self.globalSubrs[subrIndex+self.globalBias]
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self.execute(subr)
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def op_hstemhm(self, index):
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self.countHints()
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op_vstemhm = op_hstemhm
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def op_hintmask(self, index):
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if not self.hintMaskBytes:
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self.countHints()
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self.hintMaskBytes = (self.hintCount + 7) / 8
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hintMaskBytes, index = self.callingStack[-1].getBytes(index, self.hintMaskBytes)
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return hintMaskBytes, index
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op_cntrmask = op_hintmask
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def countHints(self):
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assert self.hintMaskBytes == 0
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args = self.popall()
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self.hintCount = self.hintCount + len(args) / 2
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class T2OutlineExtractor(SimpleT2Decompiler):
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def __init__(self, localSubrs, globalSubrs, nominalWidthX, defaultWidthX):
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SimpleT2Decompiler.__init__(self, localSubrs, globalSubrs)
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self.nominalWidthX = nominalWidthX
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self.defaultWidthX = defaultWidthX
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def reset(self):
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import Numeric
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SimpleT2Decompiler.reset(self)
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self.hints = []
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self.gotWidth = 0
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self.width = 0
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self.currentPoint = Numeric.array((0, 0), Numeric.Int16)
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self.contours = []
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def getContours(self):
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return self.contours
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def newPath(self):
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self.contours.append([[], [], 0])
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def closePath(self):
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if self.contours and self.contours[-1][2] == 0:
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self.contours[-1][2] = 1
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def appendPoint(self, point, isPrimary):
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import Numeric
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point = self.currentPoint + Numeric.array(point, Numeric.Int16)
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self.currentPoint = point
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points, flags, isClosed = self.contours[-1]
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points.append(point)
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flags.append(isPrimary)
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def popallWidth(self, evenOdd=0):
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args = self.popall()
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if not self.gotWidth:
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if evenOdd ^ (len(args) % 2):
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self.width = self.nominalWidthX + args[0]
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args = args[1:]
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else:
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self.width = self.defaultWidthX
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self.gotWidth = 1
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return args
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def countHints(self):
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assert self.hintMaskBytes == 0
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args = self.popallWidth()
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self.hintCount = self.hintCount + len(args) / 2
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#
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# hint operators
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#
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def op_hstem(self, index):
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self.popallWidth() # XXX
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def op_vstem(self, index):
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self.popallWidth() # XXX
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def op_hstemhm(self, index):
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self.countHints()
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#XXX
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def op_vstemhm(self, index):
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self.countHints()
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#XXX
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#def op_hintmask(self, index):
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# self.countHints()
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#def op_cntrmask(self, index):
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# self.countHints()
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#
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# path constructors, moveto
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#
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def op_rmoveto(self, index):
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self.closePath()
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self.newPath()
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self.appendPoint(self.popallWidth(), 1)
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def op_hmoveto(self, index):
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self.closePath()
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self.newPath()
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self.appendPoint((self.popallWidth(1)[0], 0), 1)
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def op_vmoveto(self, index):
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self.closePath()
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self.newPath()
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self.appendPoint((0, self.popallWidth(1)[0]), 1)
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def op_endchar(self, index):
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self.closePath()
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#
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# path constructors, lines
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#
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def op_rlineto(self, index):
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args = self.popall()
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for i in range(0, len(args), 2):
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point = args[i:i+2]
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self.appendPoint(point, 1)
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def op_hlineto(self, index):
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self.alternatingLineto(1)
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def op_vlineto(self, index):
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self.alternatingLineto(0)
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#
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# path constructors, curves
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#
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def op_rrcurveto(self, index):
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"""{dxa dya dxb dyb dxc dyc}+ rrcurveto"""
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args = self.popall()
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for i in range(0, len(args), 6):
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dxa, dya, dxb, dyb, dxc, dyc, = args[i:i+6]
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self.rrcurveto((dxa, dya), (dxb, dyb), (dxc, dyc))
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def op_rcurveline(self, index):
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"""{dxa dya dxb dyb dxc dyc}+ dxd dyd rcurveline"""
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args = self.popall()
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for i in range(0, len(args)-2, 6):
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dxb, dyb, dxc, dyc, dxd, dyd = args[i:i+6]
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self.rrcurveto((dxb, dyb), (dxc, dyc), (dxd, dyd))
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self.appendPoint(args[-2:], 1)
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def op_rlinecurve(self, index):
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"""{dxa dya}+ dxb dyb dxc dyc dxd dyd rlinecurve"""
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args = self.popall()
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lineArgs = args[:-6]
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for i in range(0, len(lineArgs), 2):
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self.appendPoint(lineArgs[i:i+2], 1)
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dxb, dyb, dxc, dyc, dxd, dyd = args[-6:]
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self.rrcurveto((dxb, dyb), (dxc, dyc), (dxd, dyd))
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def op_vvcurveto(self, index):
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"dx1? {dya dxb dyb dyc}+ vvcurveto"
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args = self.popall()
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if len(args) % 2:
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dx1 = args[0]
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args = args[1:]
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else:
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dx1 = 0
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for i in range(0, len(args), 4):
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dya, dxb, dyb, dyc = args[i:i+4]
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self.rrcurveto((dx1, dya), (dxb, dyb), (0, dyc))
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dx1 = 0
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def op_hhcurveto(self, index):
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"""dy1? {dxa dxb dyb dxc}+ hhcurveto"""
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args = self.popall()
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if len(args) % 2:
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dy1 = args[0]
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args = args[1:]
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else:
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dy1 = 0
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|
for i in range(0, len(args), 4):
|
|
dxa, dxb, dyb, dxc = args[i:i+4]
|
|
self.rrcurveto((dxa, dy1), (dxb, dyb), (dxc, 0))
|
|
dy1 = 0
|
|
|
|
def op_vhcurveto(self, index):
|
|
"""dy1 dx2 dy2 dx3 {dxa dxb dyb dyc dyd dxe dye dxf}* dyf? vhcurveto (30)
|
|
{dya dxb dyb dxc dxd dxe dye dyf}+ dxf? vhcurveto
|
|
"""
|
|
args = self.popall()
|
|
while args:
|
|
args = self.vcurveto(args)
|
|
if args:
|
|
args = self.hcurveto(args)
|
|
|
|
def op_hvcurveto(self, index):
|
|
"""dx1 dx2 dy2 dy3 {dya dxb dyb dxc dxd dxe dye dyf}* dxf?
|
|
{dxa dxb dyb dyc dyd dxe dye dxf}+ dyf?
|
|
"""
|
|
args = self.popall()
|
|
while args:
|
|
args = self.hcurveto(args)
|
|
if args:
|
|
args = self.vcurveto(args)
|
|
|
|
#
|
|
# path constructors, flex
|
|
#
|
|
def op_hflex(self, index):
|
|
XXX
|
|
def op_flex(self, index):
|
|
XXX
|
|
def op_hflex1(self, index):
|
|
XXX
|
|
def op_flex1(self, index):
|
|
XXX
|
|
|
|
#
|
|
# MultipleMaster. Well...
|
|
#
|
|
def op_blend(self, index):
|
|
XXX
|
|
|
|
# misc
|
|
def op_and(self, index):
|
|
XXX
|
|
def op_or(self, index):
|
|
XXX
|
|
def op_not(self, index):
|
|
XXX
|
|
def op_store(self, index):
|
|
XXX
|
|
def op_abs(self, index):
|
|
XXX
|
|
def op_add(self, index):
|
|
XXX
|
|
def op_sub(self, index):
|
|
XXX
|
|
def op_div(self, index):
|
|
num2 = self.pop()
|
|
num1 = self.pop()
|
|
d1 = num1/num2
|
|
d2 = float(num1)/num2
|
|
if d1 == d2:
|
|
self.push(d1)
|
|
else:
|
|
self.push(d2)
|
|
def op_load(self, index):
|
|
XXX
|
|
def op_neg(self, index):
|
|
XXX
|
|
def op_eq(self, index):
|
|
XXX
|
|
def op_drop(self, index):
|
|
XXX
|
|
def op_put(self, index):
|
|
XXX
|
|
def op_get(self, index):
|
|
XXX
|
|
def op_ifelse(self, index):
|
|
XXX
|
|
def op_random(self, index):
|
|
XXX
|
|
def op_mul(self, index):
|
|
XXX
|
|
def op_sqrt(self, index):
|
|
XXX
|
|
def op_dup(self, index):
|
|
XXX
|
|
def op_exch(self, index):
|
|
XXX
|
|
def op_index(self, index):
|
|
XXX
|
|
def op_roll(self, index):
|
|
XXX
|
|
|
|
#
|
|
# miscelaneous helpers
|
|
#
|
|
def alternatingLineto(self, isHorizontal):
|
|
args = self.popall()
|
|
for arg in args:
|
|
if isHorizontal:
|
|
point = (arg, 0)
|
|
else:
|
|
point = (0, arg)
|
|
self.appendPoint(point, 1)
|
|
isHorizontal = not isHorizontal
|
|
|
|
def rrcurveto(self, p1, p2, p3):
|
|
self.appendPoint(p1, 0)
|
|
self.appendPoint(p2, 0)
|
|
self.appendPoint(p3, 1)
|
|
|
|
def vcurveto(self, args):
|
|
dya, dxb, dyb, dxc = args[:4]
|
|
args = args[4:]
|
|
if len(args) == 1:
|
|
dyc = args[0]
|
|
args = []
|
|
else:
|
|
dyc = 0
|
|
self.rrcurveto((0, dya), (dxb, dyb), (dxc, dyc))
|
|
return args
|
|
|
|
def hcurveto(self, args):
|
|
dxa, dxb, dyb, dyc = args[:4]
|
|
args = args[4:]
|
|
if len(args) == 1:
|
|
dxc = args[0]
|
|
args = []
|
|
else:
|
|
dxc = 0
|
|
self.rrcurveto((dxa, 0), (dxb, dyb), (dxc, dyc))
|
|
return args
|
|
|
|
|
|
class T1OutlineExtractor(T2OutlineExtractor):
|
|
|
|
def __init__(self, subrs):
|
|
self.subrs = subrs
|
|
self.reset()
|
|
|
|
def reset(self):
|
|
self.flexing = 0
|
|
self.width = 0
|
|
self.sbx = 0
|
|
T2OutlineExtractor.reset(self)
|
|
|
|
def popallWidth(self, evenOdd=0):
|
|
return self.popall()
|
|
|
|
def exch(self):
|
|
stack = self.operandStack
|
|
stack[-1], stack[-2] = stack[-2], stack[-1]
|
|
|
|
#
|
|
# path constructors
|
|
#
|
|
def op_rmoveto(self, index):
|
|
if self.flexing:
|
|
return
|
|
self.newPath()
|
|
self.appendPoint(self.popall(), 1)
|
|
def op_hmoveto(self, index):
|
|
if self.flexing:
|
|
# We must add a parameter to the stack if we are flexing
|
|
self.push(0)
|
|
return
|
|
self.newPath()
|
|
self.appendPoint((self.popall()[0], 0), 1)
|
|
def op_vmoveto(self, index):
|
|
if self.flexing:
|
|
# We must add a parameter to the stack if we are flexing
|
|
self.push(0)
|
|
self.exch()
|
|
return
|
|
self.newPath()
|
|
self.appendPoint((0, self.popall()[0]), 1)
|
|
def op_closepath(self, index):
|
|
self.closePath()
|
|
def op_setcurrentpoint(self, index):
|
|
args = self.popall()
|
|
x, y = args
|
|
self.currentPoint[0] = x
|
|
self.currentPoint[1] = y
|
|
|
|
def op_endchar(self, index):
|
|
self.closePath()
|
|
|
|
def op_hsbw(self, index):
|
|
sbx, wx = self.popall()
|
|
self.width = wx
|
|
self.sbx = sbx
|
|
self.currentPoint[0] = sbx
|
|
def op_sbw(self, index):
|
|
self.popall() # XXX
|
|
|
|
#
|
|
def op_callsubr(self, index):
|
|
subrIndex = self.pop()
|
|
subr = self.subrs[subrIndex]
|
|
self.execute(subr)
|
|
def op_callothersubr(self, index):
|
|
subrIndex = self.pop()
|
|
nArgs = self.pop()
|
|
#print nArgs, subrIndex, "callothersubr"
|
|
if subrIndex == 0 and nArgs == 3:
|
|
self.doFlex()
|
|
self.flexing = 0
|
|
elif subrIndex == 1 and nArgs == 0:
|
|
self.flexing = 1
|
|
# ignore...
|
|
def op_pop(self, index):
|
|
pass # ignore...
|
|
|
|
def doFlex(self):
|
|
finaly = self.pop()
|
|
finalx = self.pop()
|
|
self.pop() # flex height is unused
|
|
|
|
p3y = self.pop()
|
|
p3x = self.pop()
|
|
bcp4y = self.pop()
|
|
bcp4x = self.pop()
|
|
bcp3y = self.pop()
|
|
bcp3x = self.pop()
|
|
p2y = self.pop()
|
|
p2x = self.pop()
|
|
bcp2y = self.pop()
|
|
bcp2x = self.pop()
|
|
bcp1y = self.pop()
|
|
bcp1x = self.pop()
|
|
rpy = self.pop()
|
|
rpx = self.pop()
|
|
|
|
# call rrcurveto
|
|
self.push(bcp1x+rpx)
|
|
self.push(bcp1y+rpy)
|
|
self.push(bcp2x)
|
|
self.push(bcp2y)
|
|
self.push(p2x)
|
|
self.push(p2y)
|
|
self.op_rrcurveto(None)
|
|
|
|
# call rrcurveto
|
|
self.push(bcp3x)
|
|
self.push(bcp3y)
|
|
self.push(bcp4x)
|
|
self.push(bcp4y)
|
|
self.push(p3x)
|
|
self.push(p3y)
|
|
self.op_rrcurveto(None)
|
|
|
|
# Push back final coords so subr 0 can find them
|
|
self.push(finalx)
|
|
self.push(finaly)
|
|
|
|
def op_dotsection(self, index):
|
|
self.popall() # XXX
|
|
def op_hstem3(self, index):
|
|
self.popall() # XXX
|
|
def op_seac(self, index):
|
|
"asb adx ady bchar achar seac"
|
|
asb, adx, ady, bchar, achar = self.popall() # XXX
|
|
self.contours.append([(asb, adx, ady, bchar, achar), None, -1])
|
|
def op_vstem3(self, index):
|
|
self.popall() # XXX
|
|
|
|
|
|
class DictDecompiler(ByteCodeDecompilerBase):
|
|
|
|
operandEncoding = cffDictOperandEncoding
|
|
dictDefaults = {}
|
|
|
|
def __init__(self, strings):
|
|
self.stack = []
|
|
self.strings = strings
|
|
self.dict = {}
|
|
|
|
def getDict(self):
|
|
assert len(self.stack) == 0, "non-empty stack"
|
|
return self.dict
|
|
|
|
def decompile(self, data):
|
|
index = 0
|
|
lenData = len(data)
|
|
push = self.stack.append
|
|
while index < lenData:
|
|
b0 = ord(data[index])
|
|
index = index + 1
|
|
code = self.operandEncoding[b0]
|
|
handler = getattr(self, code)
|
|
value, index = handler(b0, data, index)
|
|
if value is not None:
|
|
push(value)
|
|
|
|
def pop(self):
|
|
value = self.stack[-1]
|
|
del self.stack[-1]
|
|
return value
|
|
|
|
def popall(self):
|
|
all = self.stack[:]
|
|
del self.stack[:]
|
|
return all
|
|
|
|
def do_operator(self, b0, data, index):
|
|
if b0 == 12:
|
|
op = (b0, ord(data[index]))
|
|
index = index+1
|
|
else:
|
|
op = b0
|
|
operator, argType = self.operators[op]
|
|
self.handle_operator(operator, argType)
|
|
return None, index
|
|
|
|
def handle_operator(self, operator, argType):
|
|
if type(argType) == type(()):
|
|
value = ()
|
|
for arg in argType:
|
|
arghandler = getattr(self, "arg_" + arg)
|
|
value = (arghandler(operator),) + value
|
|
else:
|
|
arghandler = getattr(self, "arg_" + argType)
|
|
value = arghandler(operator)
|
|
self.dict[operator] = value
|
|
|
|
def arg_number(self, name):
|
|
return self.pop()
|
|
def arg_SID(self, name):
|
|
return self.strings[self.pop()]
|
|
def arg_array(self, name):
|
|
return self.popall()
|
|
|
|
|
|
topDictOperators = [
|
|
# opcode name argument type
|
|
(0, 'version', 'SID'),
|
|
(1, 'Notice', 'SID'),
|
|
(2, 'FullName', 'SID'),
|
|
(3, 'FamilyName', 'SID'),
|
|
(4, 'Weight', 'SID'),
|
|
(5, 'FontBBox', 'array'),
|
|
(13, 'UniqueID', 'number'),
|
|
(14, 'XUID', 'array'),
|
|
(15, 'charset', 'number'),
|
|
(16, 'Encoding', 'number'),
|
|
(17, 'CharStrings', 'number'),
|
|
(18, 'Private', ('number', 'number')),
|
|
((12, 0), 'Copyright', 'SID'),
|
|
((12, 1), 'isFixedPitch', 'number'),
|
|
((12, 2), 'ItalicAngle', 'number'),
|
|
((12, 3), 'UnderlinePosition', 'number'),
|
|
((12, 4), 'UnderlineThickness', 'number'),
|
|
((12, 5), 'PaintType', 'number'),
|
|
((12, 6), 'CharstringType', 'number'),
|
|
((12, 7), 'FontMatrix', 'array'),
|
|
((12, 8), 'StrokeWidth', 'number'),
|
|
((12, 20), 'SyntheticBase', 'number'),
|
|
((12, 21), 'PostScript', 'SID'),
|
|
((12, 22), 'BaseFontName', 'SID'),
|
|
# CID additions
|
|
((12, 30), 'ROS', ('SID', 'SID', 'number')),
|
|
((12, 31), 'CIDFontVersion', 'number'),
|
|
((12, 32), 'CIDFontRevision', 'number'),
|
|
((12, 33), 'CIDFontType', 'number'),
|
|
((12, 34), 'CIDCount', 'number'),
|
|
((12, 35), 'UIDBase', 'number'),
|
|
((12, 36), 'FDArray', 'number'),
|
|
((12, 37), 'FDSelect', 'number'),
|
|
((12, 38), 'FontName', 'SID'),
|
|
# MM, Chameleon. Pft.
|
|
]
|
|
|
|
topDictDefaults = {
|
|
'isFixedPitch': 0,
|
|
'ItalicAngle': 0,
|
|
'UnderlineThickness': 50,
|
|
'PaintType': 0,
|
|
'CharstringType': 2,
|
|
'FontMatrix': [0.001, 0, 0, 0.001, 0, 0],
|
|
'FontBBox': [0, 0, 0, 0],
|
|
'StrokeWidth': 0,
|
|
'charset': 0,
|
|
'Encoding': 0,
|
|
# CID defaults
|
|
'CIDFontVersion': 0,
|
|
'CIDFontRevision': 0,
|
|
'CIDFontType': 0,
|
|
'CIDCount': 8720,
|
|
}
|
|
|
|
class TopDictDecompiler(DictDecompiler):
|
|
|
|
operators = _buildOperatorDict(topDictOperators)
|
|
dictDefaults = topDictDefaults
|
|
|
|
|
|
privateDictOperators = [
|
|
# opcode name argument type
|
|
(6, 'BlueValues', 'array'),
|
|
(7, 'OtherBlues', 'array'),
|
|
(8, 'FamilyBlues', 'array'),
|
|
(9, 'FamilyOtherBlues', 'array'),
|
|
(10, 'StdHW', 'number'),
|
|
(11, 'StdVW', 'number'),
|
|
(19, 'Subrs', 'number'),
|
|
(20, 'defaultWidthX', 'number'),
|
|
(21, 'nominalWidthX', 'number'),
|
|
((12, 9), 'BlueScale', 'number'),
|
|
((12, 10), 'BlueShift', 'number'),
|
|
((12, 11), 'BlueFuzz', 'number'),
|
|
((12, 12), 'StemSnapH', 'array'),
|
|
((12, 13), 'StemSnapV', 'array'),
|
|
((12, 14), 'ForceBold', 'number'),
|
|
((12, 15), 'ForceBoldThreshold', 'number'),
|
|
((12, 16), 'lenIV', 'number'),
|
|
((12, 17), 'LanguageGroup', 'number'),
|
|
((12, 18), 'ExpansionFactor', 'number'),
|
|
((12, 19), 'initialRandomSeed', 'number'),
|
|
]
|
|
|
|
privateDictDefaults = {
|
|
'defaultWidthX': 0,
|
|
'nominalWidthX': 0,
|
|
'BlueScale': 0.039625,
|
|
'BlueShift': 7,
|
|
'BlueFuzz': 1,
|
|
'ForceBold': 0,
|
|
'ForceBoldThreshold': 0,
|
|
'lenIV': -1,
|
|
'LanguageGroup': 0,
|
|
'ExpansionFactor': 0.06,
|
|
'initialRandomSeed': 0,
|
|
}
|
|
|
|
class PrivateDictDecompiler(DictDecompiler):
|
|
|
|
operators = _buildOperatorDict(privateDictOperators)
|
|
dictDefaults = privateDictDefaults
|
|
|
|
|
|
def calcSubrBias(subrs):
|
|
nSubrs = len(subrs)
|
|
if nSubrs < 1240:
|
|
bias = 107
|
|
elif nSubrs < 33900:
|
|
bias = 1131
|
|
else:
|
|
bias = 32768
|
|
return bias
|
|
|