Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

Background:
I have a very large list of 3D cartesian coordinates, I need to process this list to group the coordinates by their Z coordinate (ie all coordinates in that plane). Currently, I manually create groups from the list using a loop for each Z coordinate, but if there are now dozens of possible Z (was previously handling only 2-3 planes)coordinates this becomes impractical. I know how to group lists based on like elements of course, but I am looking for a method to automate this process for n possible values of Z.

Question:
What's the most efficient way to automate the process of grouping list elements of the same Z coordinate and then create a unique list for each plane?

Code Snippet:
I'm just using a simple list comprehension to group individual planes:
newlist=[x for x in coordinates_xyz if insert_possible_Z in x]
I'm looking for it to automatically make a new unique list for every Z plane in the data set.

Data Format:
((x1,y1,0), (x2, y2, 0), ... (xn, yn, 0), (xn+1,yn+1, 50),(xn+2,yn+2, 50), ... (x2n+1,y2n+1, 100), (x2n+2,y2n+2, 100)...)etc.
I want to automatically get all coordinates where Z=0, Z=50, Z=100 etc. Note that the value of Z (increments of 50) is an example only, the actual data can have any value.

Notes:
My data is imported either from a file or generated by a separate module in lists. This is necessary for interface with another program (that I have not written).

Thanks in advance for any help! :)

share|improve this question
    
Can you post your current code? How are the coordinates stored right now? list?dict?tuple? –  Ofir Israel Sep 26 '13 at 14:38
    
Added a snippet for clarity :) –  MarkyD43 Sep 26 '13 at 15:03
    
Is the Z-data continuous or discrete? If it is continuous, do you need to bin the data by a predefined range? –  Swiftfoottim Sep 26 '13 at 15:15

3 Answers 3

The most efficient way to group elements by Z and make a list of them so grouped is to not make a list.

itertools.groupby does the grouping you want without the overhead of creating new lists.

Python generators take a little getting used to when you aren't familiar with the general mechanism. The official generator documentation is a good starting point for learning why they are useful.

share|improve this answer
    
Hi, I'm taking your advice and trying to get familiar with using generators (after reading the documentation I realise there are several areas of my code that would be better suited to using them), I was just wondering if it was possible to post a brief example of how best to do use groupby? I've tried to implement it as in the documentation but it's not working as I expected, and I very much appreciate the help! –  MarkyD43 Oct 5 '13 at 13:11
    
Please add the relevant lines that are "not working as expected" to your question, or perhaps open a new question. –  msw Oct 5 '13 at 13:20

If I am interpreting this correctly, you have a set of coordinates C = (X,Y,Z) with a discrete number of Z values. If this is the case, why not use a dictionary to associate a list of the coordinates with the associated Z value as a key?

You're data structure would look something like:

z_ordered = {}
z_ordered[3] = [(x1,y1,z1),(x2,y2,z2),(x3,y3,z3)]

Where each list associated with a key has the same Z-value.

Of course, if your Z-values are continuous, you may need to modify this, say by making the key only the whole number associated with a Z-value, so you are binning in increments of 1.

share|improve this answer

So this is the simple solution I came up with:

groups=[]
groups[:]=[]
No_Planes=#Number of planes
dz=#Z spacing variable here

for i in range(No_Planes):
    newlist=[x for x in coordinates_xyz if i*dz in x]
    groups.append(newlist)

This lets me manipulate any plane within my data set simply with groups[i]. I can also manipulate my spacing. This is also an extension of my existing code, as I realised after reading @msw's response about itertools, looping through my current method was staring me in the face, and far more simple than I imagined!

share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.