Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I have a list that is taken from id3. tags from an .mp3. When i print the list, its a mixture of strings and tuples with unicode.

I get the following from a straight print out of the list.

[('album', [u'Singles']), ('artist', [u'Led Zeppelin']), ('title', [u'Kashmir'])]

I want to have this:

album Singles, artist Led Zeppelin, title Kashmir

I have tried to use the following:

nvar = filter(lambda x: x!="[u'" and x!="(" and x!=")" and x!="]", var)

which prints:

[('album', [u'Singles']), ('artist', [u'Led Zeppelin']), ('title', [u'Kashmir'])]

I can use:

>>> nvar = filter(lambda x: x!="[" and x!="'" and x!="(" and x!=")" and x!="]", str(var))
>>> nvar
'album, uSingles, artist, uLed Zeppelin, title, uKashmir'

but I am left with the u from unicode. If I use x!="u", then any word with a u in it will wrong after that function runs.

Also this seems to be the hard way to do things.

Any ideas? Thanks in advance.

share|improve this question

2 Answers 2

up vote 1 down vote accepted

Assuming that tags is indeed a Python list containing 2-tuples of (str, list), then:

tags = [('album', [u'Singles']), ('artist', [u'Led Zeppelin']), ('title', [u'Kashmir'])]
print ', '.join('{} {}'.format(el[0], el[1][0]) for el in tags)
# album Singles, artist Led Zeppelin, title Kashmir
share|improve this answer
    
Jon, You are super awesome!!! Thank you. So much simpler and cleaner! –  david_p Jul 20 '13 at 19:37

Something like below should work. Since the 'u' is between the '(' and "'" it will not affect the 'real' data.

    def Plain(self, U_String) :
          P_String = str(U_String)
          m=re.search("^\(\u?\'(.*)\'\,\)$", P_String)
          if (m) :  #Typical unicode
             P_String = m.group(1).decode("utf8")
          return P_String  
share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.