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Why would this

if 1 \
and 0:

simplest of code choke on tokenize/untokenize cycle

import tokenize
import cStringIO

def tok_untok(src):
    f = cStringIO.StringIO(src)
    return tokenize.untokenize(tokenize.generate_tokens(f.readline))

src='''if 1 \\
and 0:
print tok_untok(src)

It throws:

File "/mnt/home/anushri/", line 13, in <module>
  print tok_untok(src)
File "/mnt/home/anushri/", line 6, in tok_untok
File "/usr/lib/python2.6/", line 262, in untokenize
  return ut.untokenize(iterable)
File "/usr/lib/python2.6/", line 198, in untokenize
File "/usr/lib/python2.6/", line 187, in add_whitespace
  assert row <= self.prev_row

Is there a workaround without modifying the src to be tokenized (it seems \ is the culprit)

Another example where it fails is if no newline at end e.g. src='if 1:pass' fails with same error

Workaround: But it seems using untokenize different way works

def tok_untok(src):
    f = cStringIO.StringIO(src)
    tokens = [ t[:2] for t in tokenize.generate_tokens(f.readline)]
    return tokenize.untokenize(tokens)

i.e. do not pass back whole token tuple but only t[:2]

though python doc says extra args are skipped

Converts tokens back into Python source code. The iterable must return sequences with at least two elements, the token type and the token string. Any additional sequence elements are ignored.

share|improve this question
It works OK in Python 2.5, throws the AssertionError on 2.7. –  TryPyPy Jan 19 '11 at 12:58

1 Answer 1

up vote 3 down vote accepted

Yes, it's a known bug and there is interest in a cleaner patch than the one attached to that issue. Perfect time to contribute to a better Python ;)

share|improve this answer
See my edit for workaround, so fix may be easy –  Anurag Uniyal Jan 19 '11 at 13:16

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