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Here is my OrderedDict dictionary:

 >>> dic = OrderedDict([('16-17,1,5,BUY,BUY,-6,9', 10), ('19-20,1,1,BUY,BUY,-1,1',1)])
 >>> dic
     OrderedDict([('16-17,1,5,BUY,BUY,-6,9', 10), ('19-20,1,1,BUY,BUY,-1,1', 11)])
 >>> for k,v in dic.iteritems():
 ...     print k
 ...     k1 = k.split(',')
 ...     print k1
 ...     print "value",v
 ...     print k1.append(v)
 ... 
 16-17,1,5,BUY,BUY,-6,9
 ['16-17', '1', '5', 'BUY', 'BUY', '-6', '9']
 value 10
 None
 19-20,1,1,BUY,BUY,-1,1
 ['19-20', '1', '1', 'BUY', 'BUY', '-1', '1']
 value 11
 None

Why it is printing "None"?

share|improve this question
    
printing .append, .extend, .sort, anything that modifies the list that already exists, will always print None. Just print k1[-1] on the next line instead if you want to print the newly appended item. –  agf Aug 11 '11 at 16:20

2 Answers 2

up vote 2 down vote accepted

It's not a problem with OrderedDict.

append returns None but modifies the list in place. So you could replace the line with

k1.append(v)
print k1
share|improve this answer

Because append returns nothing.

print prints the return value of k1.append(v), but there is no return value from k1.append(v)

share|improve this answer
    
specificially, the line print k1.append(v) prints the result of k1.append(v) and append does just what MByD says. –  IfLoop Aug 11 '11 at 16:16
    
Actually Here Value and List are available,I am appending value into list then How ? –  Navaneethan Aug 11 '11 at 16:17

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