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I've been trying to figure out what I'm doing wrong.

I am pulling cell values from Excel--Ones for category, subitem and requirements.

If the category and subitem already exists in the dict

ldict

I want to append it. I am currently doing it like so:

ldict[(cat, sub)].append(req)

where cat, sub, and req are unicode values from Excel converted to strings:

req = unicodedata.normalize('NFKD', sh.Cells(a,i).Value).encode('ascii','ignore')

However, I keep getting this error:

Traceback (most recent call last):
File "C:\Users\jenhuang\My Documents\dude\comparestrings.py", line 35, in <module>
ldict[(cat, sub)].append(req)
AttributeError: 'str' object has no attribute 'append'

My overall goal is to search these requirement strings within a certain category and subcategory for common words. This is to see if I can create an automated process where I can suggest categories and subcategories for requirement strings.

Any ideas?

EDIT

I assume it's because my interpreter is calling

ldict[(cat,sub)]

as a string. I'm looking for a solution to this.

share|improve this question
    
What's in the cat, sub, req, and ldict[(cat, sub)], and what do you want to end up in ldict[(cat, sub)] after this line? Without knowing what you're trying to do, we can't tell you how to do it, or what you're doing wrong. –  abarnert Jul 12 '13 at 23:51
    
@abarnert I've edited it. Please take a look now. –  James.Wyst Jul 13 '13 at 0:18
    
I still don't see what's in ldict[(cat, sub)], or what you want to end up there after this line. Is it supposed to be a string holding a word? A list holding a bunch of such strings? A dict mapping sets of words to some other type? A sorted dict mapping sockets to stack frames using the peer IP address as the key? –  abarnert Jul 13 '13 at 0:32
    
@abarnert ldict[(cat, sub)] is a dict of tuples holding a bunch of strings. –  James.Wyst Jul 13 '13 at 0:59
    
That's not possible. If the values are tuples of strings, the error message would be 'tuple' object has no attribute 'append'. So, you obviously don't have what you think you have, and you're not going to be able to fix it until you figure out what you have. Try printing out those values and their types to see where you've gotten confused. At any rate, if you did have tuples of strings, you can't append to a tuple—but you can just do ldict[(cat, sub)] = ldict[(cat, sub)] + (req,), which is probably good enough. –  abarnert Jul 13 '13 at 1:04

2 Answers 2

up vote 1 down vote accepted

append() is a list method. The dict has a string there. If you want to append items to a list, you need to build your dictionary to contain lists. I would suggest something like ldict.setdefault(key, []).append(whatever) whenever putting values into this dictionary to ensure you always have a list.

share|improve this answer
    
Great answer! I was also thinking about setting the key--tuple(category, subcategory)--to the first string as a list with only one string in it. IE ldict[(cat, subcat)] = [req] and then ldict[(cat,sub)].append(req) for future strings found. Would this work? –  James.Wyst Jul 13 '13 at 7:46
    
@Doof12 Sure it'd work but then you'd have to have a special case to detect if it's the first item. Using setdefault() that behavior is built in. What makes the most sense depends on the flow of your program. –  Sean McSomething Jul 15 '13 at 22:26

I guess what you're trying to do is this:

ldict[(cat, sub)] = req

Just like Sean suggested: if you're trying to access the list with the key (cat, sub) in ldict and then append req to it, use setdefault():

ldict.setdefault((cat, sub), []).append(req)

This one sets the value of (cat, sub) to an empty list if not set before, otherwise it returns the list and finally appends req to it.

And since this obviously is the answer, do Sean a favour and accept his answer…

share|improve this answer
    
I'm actually trying to append a new value to an existing list of values. –  James.Wyst Jul 13 '13 at 0:20
    
To what list and which values? If you do ldict[(cat, sub)].append(req), you try to append req to a (yet not described) value with the key (cat, sub) in the dict edict. I don't understand why Sean's answer does not solve your problem… –  septi Jul 13 '13 at 1:18
    
It does! Sorry about that, thanks for replying! –  James.Wyst Jul 13 '13 at 7:44

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