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index = 0
manage = {}
filedata = open(custom_path,'r')
for status in filedata:
    manage[index] = status
    print manage[index]
    index += 1

The output from the above print manage[index] is correct, showing:

yes

yes

yes

yes

yes

Then, i added a new line: manage = str(u'\n,'.join(manage))

and got the following error:

TypeError: sequence item 0: expected string, int found

Changed my code to:

values = ','.join(str(status) for status in manage)

print values

And got the following output (which is wrong):

0,1,2,3,4

I was expecting: yes,yes,yes,yes,yes

Any idea where I went wrong?

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3 Answers 3

up vote 1 down vote accepted

manage is a dictionary that has integer keys. The for-loop iterates over dictionary keys. Change it to: ','.join(line.strip() for line in manage.values()).

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Let me give this a try - Yes, it works. GOOD STUFF! –  Ting Ping Dec 26 '12 at 2:48

This is because manage is a dict not a list, as defined in

manage = {}
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You are iterating over the keys in your dictionary rather than the values.

Try changing this line:

values = ','.join(str(status) for status in manage)

To This:

values = ','.join(val.rstrip("\n") for val in manage.values())

This is also why you get that error, because you tried using your keys.

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you might mean manage.items() in the second loop. Though keys are not used so you could use manage.values() to get only dictionary values. –  J.F. Sebastian Dec 26 '12 at 2:41
    
@J.F.Sebastian Ah, yes. That would be clearer. –  squiguy Dec 26 '12 at 2:42
    
manage = ','.join(str(val) for status, val in manage.values()) returns the following error: ValueError: too many values to unpack –  Ting Ping Dec 26 '12 at 2:45
    
@TingPing You got this when error when you changed your code? Take a look at the other answers too. –  squiguy Dec 26 '12 at 2:48

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