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The csv file has the following content:

Cautus Drogisterijen B.V.
Cautus Drogisterijen B.V.
Clever Franke
De Inrichting
Teva Pharmaceuticals Europe B.V.

The names get imported from a csv and then converted etc.

I have the following script:

#Gegevens
l = (gegevens)
#script
#Welke sleutels moet hij pakken
sortkey = operator.itemgetter(1,5)
#De identieke sleutel selecteren
l_clean = sorted(l,key=sortkey)
#delijst maken
l_final = [(k, list(v)) for k,v in groupby(l_clean, key = operator.itemgetter(1))]
#importeer csv optie
import csv
#bestand kiezen
with open('export.csv', 'wb') as f:
    #Write 
    writer = csv.writer(f)
    #loop over de lijst
    for k,v in l_final:
    #welke gegevens hij moet tonen
       info_rest = v[0][:5]+v[0][5:]
       #combineerd de verzekeringen
       info_combine = map(operator.itemgetter(5),v)
       uniekid = k
       verzl = info_combine
       name = info_rest[0]
       risicoadr = info_rest[2]
       polisnummer = info_rest[3]
       relatienummer = info_rest[4]
       aanhef = info_rest[6]
       contactpersoon = info_rest[7]
       emailadr = info_rest[8]
       klantgegevens = []      
       #lijst met alle gegevens
       klantgegevens1 = [uniekid,naam,verz,risicoadr,polisnummer,relatienummer,aanhef,contactpersoon,emailadr]       
       klantgegevens.append (klantgegevens1)     
       for i, w in enumerate(name):
           print (i,w)

       #welke gegevens hij erin moet schrijven
       writer.writerow(klantgegevens)

That produces this output:

(0, 'C')
(1, 'a')
(2, 'u')
(3, 't')
(4, 'u')
(5, 's')
(6, ' ')
(7, 'D')
(8, 'r')
(9, 'o')
(10, 'g')
(11, 'i')
(12, 's')
(13, 't')
(14, 'e')
(15, 'r')
(16, 'i')
(17, 'j')
(18, 'e')
(19, 'n')
(20, ' ')
(21, 'B')
(22, '.')
(23, 'V')
(24, '.')
(0, 'C')
(1, 'a')
(2, 'u')
(3, 't')
(4, 'u')
(5, 's')
(6, ' ')
(7, 'D')
(8, 'r')
(9, 'o')
(10, 'g')
...

As you can see he loops on every letter in the name and gives the letter a number but what I want is that my output looks like this:

(0, 'cautus drogisterij B.V.')
(1, 'cautus drogisterij B.V.')

That every name gets a number.

share|improve this question
1  
what's name here? –  undefined is not a function Oct 24 '12 at 11:48
    
replace print(x,i) by print(x,name) ? I'm not sure I understand your question. –  pistache Oct 24 '12 at 11:50
2  
how about your previous question? –  undefined is not a function Oct 24 '12 at 11:52
2  
It would be better if you post that list of names. Because if your name is a list of names, then that would work fine. –  Rohit Jain Oct 24 '12 at 11:54
4  
it would be better if you post actual code and actual output. You have print(x,i) when they output is from something more similar to print(i, x) –  SilentGhost Oct 24 '12 at 12:00
show 8 more comments

2 Answers 2

up vote 0 down vote accepted

You have an outer loop that iterates over the list of names. Therefore this current loop iterates over string name. Unfortunately, supplied code is too short to glimpse anything more than that.

Edit: Come on your comment is clearly saying "loop over de lijst". Just remove this whole for-loop and just print(k, name)

share|improve this answer
    
i will show you the whole script then –  sjeggiepop Oct 24 '12 at 12:04
    
@sjeggiepop: no need for that. just post relevant code. –  SilentGhost Oct 24 '12 at 12:06
    
This is to mutate the data i import from another list so i can't simply remove it –  sjeggiepop Oct 24 '12 at 12:43
    
@sjeggiepop: I mean this for: for i, w in enumerate(name): –  SilentGhost Oct 24 '12 at 12:44
    
so u are saying that i make a loop in a loop and that is what creates the problem? –  sjeggiepop Oct 24 '12 at 12:57
show 2 more comments

If your name is a list of names, then your code should work fine, provided, you don't have another loop enclosing that loop: -

This works: -

>>> name = ['rohit', 'jain']
>>> for i,x in enumerate(name):
    print (i, x)


(0, 'rohit')
(1, 'jain')

However, this is what you get, where you might have an outer loop, iterating over the list: -

>>> name = ['rohit', 'jain']
>>> for name in name:
        for i, x in enumerate(name):
            print (i, x)


(0, 'r')
(1, 'o')
(2, 'h')
(3, 'i')
(4, 't')
(0, 'j')
(1, 'a')
(2, 'i')
(3, 'n')

UPDATE: -

Your info_rest is actually a 1-D list: -

for k,v in l_final:
    info_rest = v[0][:5]+v[0][5:]

The above code gives you 1-D list from the 2-D list v: -

>>> v = [['rohit', 'jain'], ['a', 'ab']]
>>> info_rest = v[0][:5]+v[0][5:]
>>> info_rest
['rohit', 'jain']

So, when you say: -

name = info_rest[0];  # name contains 'rohit;

Your name will contains a string rather than a list. - 'rohit' in this case

So, rather than iterating over your name: -

for i, w in enumerate(name):
           print (i,w)

just print it: -

print (k, name)  # k is the index from outer loop
share|improve this answer
    
Take a look at the updated post, to the know what actual problem is –  Rohit Jain Oct 24 '12 at 12:28
    
This for is to mutate data i can't simply remove it to make this work because the script will be worthless then k is btw the unique index and contains the name + street name –  sjeggiepop Oct 24 '12 at 12:53
    
@sjeggiepop. Then in that case, you will get the output you are getting, because your loop is iterating over a string, not the list. Or, you need to refactor your code, and clean it up, to post only relevant code block. –  Rohit Jain Oct 24 '12 at 12:56
    
@sjeggiepop. And I'm just saying to replace that for-loop with that print statement. –  Rohit Jain Oct 24 '12 at 12:57
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