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Consider the following hypothetical situation.

As part of an application you are developing in python, you must format a list of objects and assign each subsequent item to a provided keyword as a tuple. Here is the syntax:

entries = [keyword, [obj1, obj2, obj3, ...]]    # Original list of object entries

formatted = [(keyword, obj1), (keyword, obj2), (keyword, obj3), ...]

Here is the function that you propose (let me know if this can be more efficient):

def format(keyword, entries):
    return [(keyword, x) for x in entries[1][0]]

Here is the function applied:

foo = format(entries[0], entries[1])

Flexibility Question

Notice that the entries variable in the format function has static index integers 1 and 0. Suppose that you anticipate that new terms may potentially be appended to the entries list. Would you normally use index variables instead of constants (expect incrementing constants for later items that will go into the list), and if so, would you use local or global indices? How do you account for this type of flexibility in your code?

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2  
If I find myself using variables for indexes for this entries in many places, I would consider making it a namedtuple or a class. –  satoru Jan 5 '13 at 1:07
1  
As another point: Maybe you want format to take a single parameter in the first place (and then split it internally), so you can just do foo = format(entries). Or, alternatively, maybe foo = format(*entries) is the best way to do it. Without seeing more of your infrastructure, it's hard to be sure how clean that will end up looking. –  abarnert Jan 5 '13 at 1:10
2  
Note that format can be accomplished with itertools.izip_longest -- list(itertools.izip_longest([],['foo','bar','baz'],fillvalue='keyword')) -- much of time you don't even need a list, the iterable object works just fine :) –  mgilson Jan 5 '13 at 1:13
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For format() i think you meant return [(keyword, x) for x in entries]. –  martineau Jan 5 '13 at 1:16
2  
@Biff: entries is both a global and a function argument, and in the function the argument will be used. –  martineau Jan 5 '13 at 1:22

2 Answers 2

up vote 4 down vote accepted

You are passing the function a keyword and a one-dimensional list. Why bother with the indices in the function definition? As written I get.

e = ['spam', ['aa','bb','cc','dd']]

def format(keyword, entries):
    return [(keyword, x) for x in entries[1][0]]

format(e[0], e[1])
[('spam', 'b')]

Depending on what the object is, you may get an index error. Indices aren't neccessary within the function.

def format(keyword, entries):
    return [(keyword, x) for x in entries]

format(e[0], e[1])
[('spam', 'aa'), ('spam', 'bb'), ('spam', 'cc'), ('spam', 'dd')]

This was already answered by martineau in the comments that I failed to read, so credit where credit is due. Sorry.

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That certainly makes this more flexible knowing that indices aren't necessary. I would consider this the correct answer because you have made me realize that indices aren't necessary. –  Biff Jan 5 '13 at 1:24
2  
This just shows how to fix what I was indicating in my comments. –  martineau Jan 5 '13 at 1:26
    
+1 @martineau, thanks. –  Biff Jan 5 '13 at 1:27
    
I am going to utilize the compacted *args technique with this as well. –  Biff Jan 5 '13 at 1:28
    
Sorry, martineau, I'm new here and didn't see the comment. I'll edit my post accordingly. –  Jamie Duby Jan 5 '13 at 1:30

Putting together various solutions from the comments (Satoru.Logic and mgilson probably deserve more credit than me here):

def format(entries): # no need to split it in the caller
    # consider yield from instead of return in 3.3+
    return itertools.izip_longest([], entries[1][1][0], fill=entries[0])

foo = format(entries)

However, I'm not sure your original code was actually right.

When you call format(entries[0], entries[1]), that's going to be format(keyword, [obj1, obj2, obj3, ...]). Then, inside format, you're iterating over entries[1][0], which means obj2[0], ignoring all of the other entries. That doesn't seem correct. If obj2 is actually the string 'obj2', for example, that's the letter 'o'. So, [(keyword, x) for x in entries[1][0]] will just be [('keyword', 'o')].

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I have not used itertools yet - will look into that. –  Biff Jan 5 '13 at 1:22
    
What's the advantage of yield from compared to return in python 3.3+? I don't see a difference here (other than return will work with earlier versions. Also, it's zip_longest in python3. –  mgilson Jan 5 '13 at 1:27
    
It's not an advantage of yield from over return, but an advantage of yield from over yield, if you want to make format be an actual generator function. In most cases, you really don't care either way, but if you do care, and you're on the fence, you may say "No, it's too much of a pain to loop and yield" with 2.7 or 3.2, but "Yeah, why not" with 3.3. I guess I should have explained that better in the answer. –  abarnert Jan 5 '13 at 1:49

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