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Actually i have a dict

x1={'b;0':'A1;B2;C3','b;1':'aa1;aa2;aa3','a;1': 'a1;a2;a3', 'a;0': 'A;B;C'}

Actually here my convention is 'a;0','b;0' will contain tags and 'a;1','b;1' will have corresponding values, based on this i have to group and print. From this dict what output i want is

<a>       #this is group name
<A>a1</A> # this are tags n values
<B>a2</B>
<C>a3</C>
</a>
<b>
<A1>aa1</A1>
<B2>aa2</B2>
<C1>aa3</C1>
</b>

This is the sample dict which i given like this many groups may come like c;0:.... d;0.....

I am using code like a=[] b=[] c=[] d=[] e=[] for k,v in x1.iteritems(): if k.split(";").count('0')==1: # i am using this bcoz a;0,b;0 contains tag so i am checking if they contain zero split it. a=k.split(";") # this contains a=['a','0','b','0'] b=v.split(";") # this contains 'a;0','b;0' values else: c=v.split(";") # this contains 'a;1','b;1' values for i in range(0,len(b)): d=b[i] e=c[i] print "<%s>%s<%s>"%(c,e,c) Actually this code is working only 50% when single group is their in dict('a;1': 'a1;a2;a3', 'a;0': 'A;B;C') and when multiple groups r their in dict ('b;0':'A1;B2;C3','b;1':'aa1;aa2;aa3','a;1': 'a1;a2;a3', 'a;0': 'A;B;C') in both cases it prints aa1 aa2 aa3 its printing only recent value not all values

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Huh...? Please format the code. –  wim Mar 8 '12 at 6:26
2  
maybe there is a better way to store your data. –  monkut Mar 8 '12 at 6:36
    
@wim i am new to python, i think now its formatted i think. can u say me the code for this –  user1182090 Mar 8 '12 at 6:48
    
@monkut.Their r many groups which i stored like this so i need code for this type. i can use if,else but if their r 100 groups i need add 100 if elif................... else conditions. –  user1182090 Mar 8 '12 at 6:49
    
what error does it show? –  Kyss Tao Mar 8 '12 at 7:27

1 Answer 1

Be aware: dictionaries have no order. So the iteritems() loop does not necessarily start with 'b;0'. Try for example

for k,v in x1.iteritems():
    print k

to see. On my computer it gives

a;1
a;0
b;0
b;1

This gives a problem since your code assumes the keys to come in the order they appear in the definition of x1 [edit: or rather that they come in order]. You can e.g. iterate over sorted keys instead:

for k in sorted(x1.keys()):
    v = x1[k]
    print k, v

Then the problem with the order is solved. But I think you have more problems in your code.

Edit: Data structures:

it might be better to store your data in some way like

 x1 = {'a': [('A','a1'),('B','a2'),('C','a3')], 'b': ... }

if you cannot change the format, this is how you could convert your data:

x1f = {}
for k in x1.iterkeys():
    tag, id = k.split(';')
    if int(id) == 0:
        x1f[tag] = zip(x1[k].split(';'), x1[tag+';'+'1'].split(';'))
print x1f

From there it should be easier to convert to the desired output.

And depending if you want extend the complexity of the output in future, you might want to consider using pyxml:

from xml.dom import minidom
doc = minidom.Document()

then you can use the createElement and appendChild methods.

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Thanks@Kyss Tao its printing in order,now i need that to be split and print in xml format which i posted with question –  user1182090 Mar 8 '12 at 8:54
    
guys any one help me solving this pls.. its not printing all values. –  user1182090 Mar 8 '12 at 10:18
    
please update your code, so it does not run into the problem I explained; make sure it is formatted; and append the error msg it produces, or the unexpected output you get –  Kyss Tao Mar 8 '12 at 15:54

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