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I am storing animation key frames from Cinema4D(using the awesome py4D) into a lists of lists:

props = [lx,ly,lz,sx,sy,sz,rx,ry,rz]

I printed out the keyframes for each property/track in an arbitrary animation and they are of different lengths:

track Position . X has 24 keys
track Position . Y has 24 keys
track Position . Z has 24 keys
track Scale . X has 1 keys
track Scale . Y has 1 keys
track Scale . Z has 1 keys
track Rotation . H has 23 keys
track Rotation . P has 24 keys
track Rotation . B has 24 keys

Now if I want to use those keys in Blender I need to do something like:

  1. go to the current frame
  2. set the properties for that key frame( can be location,rotation,scale) and insert a keyframe

So far my plan is to:

  1. Loop from 0 to the maximum number of key frames for all the properties
  2. Loop through each property
  3. Check if it has a value stored for the current key, if so, go to the frame in Blender and store the values/insert keyframe

Is this the best way to do this ?

This is the context for the question.

First I need to find the largest list that props stores. I'm new to python and was wondering if there was a magic function that does that for you. Similar to max(), but for list lengths.

At the moment I'm thinking of coding it like this:

# after props are set
lens = []
for p in props: lens.append(len(p))
maxLen = max(lens)

What would be the best way to get that ?

Thanks

2 Answers 2

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max(enumerate(props), key = lambda tup: len(tup[1]))

This gives you a tuple containing (index, list) of the longest list in props.

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  • +1 for using a function specifically designed for this purpose.
    – Brian
    Commented Jun 30, 2010 at 13:56
  • What if there is an equality? Say inside listA, I have three sub-lists with sizes of 3, 3, 2? It then will return? Commented Sep 6, 2013 at 6:53
  • @perfectionm1ng A simple test confirms that the first one is chosen, and although this behaviour doesn't seem to be specifically mentioned in the 2.x documentation for max (it is in 3.x), I'd be surprised if you couldn't rely on it. Commented Sep 6, 2013 at 12:14
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You can use a generator expression:

maxLen = max(len(p) for p in props)
2
  • This gets you the length of the largest length. You'll need to pass over the list a 2nd time to get the list itself if you do it this way.
    – Brian
    Commented Jun 30, 2010 at 13:49
  • From shambulator's answer, this answer could be changed to maxList = max(a, key = lambda tup: len(tup)) . So, max is a "magic function that does that for you," since it can take in a key parameter.
    – Brian
    Commented Jun 30, 2010 at 13:53

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