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I've been all over looking for a solution to this recently, and so far to no avail. I'm coming from php to python, and running into an associative array difference I'm not sure now to overcome.

Take this line:

data[user]={i:{'item':row[0],'time':row[1]}}

This overwrites each of my data[user] entries, obviously, as it's not appending, it's just replacing the data each time.

In php if I wanted to append a new bit of data in a for loop, I could do

data[user][i][]=array('item'=>'x','time'=>'y'); // crude example

In python, I can't do:

data[user][]={i:{'item':row[0],'time':row[1]}}

It barfs on my []

I also can't do:

data[user][i]={'item':row[0],'time':row[1]}

where I is my iterator through the loop... and I think it's because the data[user] hasn't been defined, yet, as of the operating? I've created the data={}, but I don't have it populated with the users as keys, yet.

In python, do I have to have a key defined before I can define it including a sub-key?

I've tried a bunch of .append() options, and other weird tricks, but I want to know the correct method of doing this.

I can do:

data[user,i]={'item':row[0],'time':row[1]}

but this isn't what I want.

What's my proper method here, python friends?

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Alright, it seems I haven't been as clear as I'd hoped. The issue isn't adding data[user]=stuff. The issue is adding data[user][i]=stuff –  captrap Mar 21 '11 at 19:01
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4 Answers

up vote 6 down vote accepted

Something like this should work. Note that unlike PHP, Python has separate primitive types for numeric arrays (called "lists") and associative arrays (called "dictionaries" or "dicts").

if user not in data:
    data[user] = []
data[user].append({'item': row[0], 'time': row[1]})
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This is what I was looking for. The syntax for: .append({}) <-- didn't realize I could put my curly braces inside of the append. Beautiful. Thank you. –  captrap Mar 21 '11 at 19:05
2  
Except don't call a list an "array" because there is also array.array. –  Wooble Mar 21 '11 at 19:11
    
@Wooble good point, corrected. I haven't yet needed that one so I forget it exists. –  Zack Mar 21 '11 at 19:18
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import collections

data = collections.defaultdict(list)
for user,row,time in input:
    data[user].append({'row':row, 'time':time})
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defaultdict is the way to go if you can use it. I didn't use it because the OP might be in a situation where they can't (for instance, if data is being provided by some other library module) –  Zack Mar 21 '11 at 19:20
    
@Zack you can use defaultdict with any class as long as it can be instantiated with 0 arguments, and even if not, you can use functools.partial to provide the instantiation arguments beforehand. Silly example: defaultdict(partial(raw_input, "initial_string? ")) –  Lauritz V. Thaulow Mar 21 '11 at 20:27
    
@lazyr I think you misunderstand - imagine that the construction of the object stored in the variable data is not under the control of the OP, so they're stuck with whatever type it has. For instance, what if data = shelve.open(...) ? –  Zack Mar 21 '11 at 20:43
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You can also use setdefault() and do something like:

userData = data.setdefault(user, {})
userData[i] = {'item': row[0], 'time': row[1]}
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also interesting. Thank you. =D –  captrap Mar 21 '11 at 19:08
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If data[user] is a list, you can append to it with data[user].append({'item':row[0],'time':row[1]}).

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