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I have a set of points xyz8,

I want to randomly get 10% of points.

Then I want to randomly get 10% of the remaining 90%

Then I want to randomly get 10% of the remaining 70%

etc until all points done

How can I go about doing this?

Any advice is hugely appreciated

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marked as duplicate by Bill the Lizard Oct 25 '13 at 12:38

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

    
Suppose you have 1000 elements, the first round you sample 100. In the second round, do you sample 100 from 900 or 90 from 900? –  CT Zhu Sep 14 '13 at 1:50
    
@CTZhu Oh, now I understand your comment on my question. Obviously I assumed OP meant 10% of the total each time, not of the remainder ... this avoids zeno's paradox, but who knows what the application is. –  askewchan Sep 14 '13 at 3:46
1  
yes sorry 10% of the total , see comment below. thanks! –  West1234 Sep 14 '13 at 11:54

2 Answers 2

something like:

import random

l = [1,2,3,4]
random.shuffle(l)
while len(l) > 0:
    choice = l[:len(l) / 10]
    l = l[len(l) / 10:]
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I interpret this as you want to split the points into 10 equal-sized segments. You can simply do this by shuffling them and reshaping the list:

np.random.shuffle(points)
points.shape = (10,-1) + points.shape[1:]

Then you can access the first 10% as points[0], the second as points[1], etc.

This still works for a multidimensional array since shuffle will only shuffle along the first axis.

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1  
I am not sure this is correct. The result of this implementation would mean the probability of being sampled are the same in each of the 10 10% segments. But in the original question, the first set has p=0.1, the second has p=(1-0.1)*0.1=0.09 and so on. The probability is not equal across all 10 segments. –  CT Zhu Sep 14 '13 at 1:27
    
No, each particle has equal chance of being in each division, regardless of the order of the sampling. Otherwise the probability does not add to 1. –  askewchan Sep 14 '13 at 3:13
    
I have 50 XYZC. I need A random 10% of those numbers eg 5 , I perform a calculation on the C for these 5 numbers , then i need another different 5 numbers, perform a calculation on there C . Then i need another different 5 numbers, perform a calculation on there C. And do this until I have no numbers left. Everytime I do a calculation on the C i need it to change on the total 50XYZC –  West1234 Sep 14 '13 at 11:52
    
My application has to do with a point cloud simplification method im working on –  West1234 Sep 14 '13 at 11:53

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