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I'm trying to implement the rselect algorithm that I just learnt in class. However, cant seem to figure out where Im going wrong in the implementation. Here's my code. *EDIT * : I tried using the info provided in the answer by David,but my code still acts weird. Here's the revised code:

def rselect(seq,length,i):# i is the i'th order statistic.
    if len(seq)<=1:return seq
    lo,pi,hi,loc_pi= random_partition(seq
    if loc_pi==i:return pi 
    if loc_pi>i:return rselect(lo,loc_pi-1,i) 
    elif loc_pi<i:return rselect(hi,length-loc_pi,i-loc_pi)#
from random import choice  
def random_partition(seq):
    pi =choice(seq)
    #print 'pi',pi
    loc_pi=seq.index(pi)
    print 'Location',loc_pi
    lo=[x for x in seq if x<=pi]
    hi=[x for x in seq if x>pi]
    return lo,pi,hi,len(lo)+1   #--A

def test_rselect(seq,i):
    print 'Sequence',seq
    l=len(seq)
    print 'Statistic', rselect(seq,l,i)

However the output is different at different times and even right at times!. I'm a noob to both algorithms and python, any help on where Im going wrong would be much appreciated. Edit: Im getting different values for the ith order statistic each time I run the code , which is my issue For instance each run of the code as below gives

Revised Output:
/py-scripts$ python quicksort.py
Sequence [54, -1, 1000, 565, 64, 2, 5]
Statistic Location 1
-1
@ubuntu:~/py-scripts$ python quicksort.py
Sequence [54, -1, 1000, 565, 64, 2, 5]
Statistic Location 5
Location 1
Location 0
-1

Expected output: Im expecting find the ith order statistic here.

And therefore

test_rselect([54,-1,1000,565,64,2,5],2) should return 5 as the Statistic all the time .

Any help in where Im going wrong with this implementation would be helpful.. Thanks!!
EDIT 2: From trying to analyse the algorithm I believe the error lies in how I'm returning the pivot location(loc_pi) in line marked A. Considering the following sequence of events for the above program.

test_rselect( [ 55, 900, -1,10, 545, 250], 3) // call to input array 

calls rselect ([ 55, 900, -1,10, 545, 250],6,3)

    1st  call to random_partition:
        pi=545 and loc_pi=4
        lo=[55,-1,10,250,545]
        hi=[900]
    return to rselect function (lo,545,hi,6)
    here loc_pi>i: so rselect(lo,5,3)// and discard the hi part

    2nd recursive call to rselect:
    2nd recursive call to random_partition:
        call random_partition on (lo) // as 'hi' is discarded
        pi=55 loc_pi=0
        lo=[-1,10,55]
        hi=[250,545]
        return to rselect(lo,55,hi,4)
        here loc_pi>i: rselect(lo,3,3)// The pivot element is lost already as it is in 'hi' here!!

Any help on how I can deal with returning the location of the pivot element, in order to to gain the correct o/p would be helpful. Setting a bounty, for an answer that clearly explains where I'm doing it wrong and how I could correct it ( great tips are welcome since I'm looking forward to learn :)). Looking forward to great answers!

share|improve this question
3  
What is wrong with this? What would correct operation look like? –  Marcin May 15 '12 at 17:06
    
If it is random, than the results should theoretically always be different –  Woot4Moo May 15 '12 at 17:09
    
Err I posted before question was complete, I think. My problem is that the program is returning different values of the ith order statistic –  KodeSeeker May 15 '12 at 17:10
2  
@Woot4Moo: There are plenty of randomized algorithms that produce deterministic results (randomness can be used to reduce expected running time or memory requirements). –  NPE May 15 '12 at 17:19
    
What am I missing? The output is different each time (all except for the "Sequence", which is supposed to be the same because it is printed before anything is done to it- see the line print 'Sequence',seq. So in what way is it deterministic? –  David Robinson May 15 '12 at 18:04

3 Answers 3

up vote 1 down vote accepted
+50

I don't think there is any principal error (in how you are returning the pivot or otherwise), it's just a lot of off-by-one (ore even two) confusion, plus I think you mean to compare with i on the first line of rselect, not 1.

Here's my take on it, with as little change as possible:

def rselect(seq,length,i):# i is the i'th order statistic.
    if len(seq)<=i:return seq
    lo,pi,hi,loc_pi= random_partition(seq)
    if loc_pi==i:return pi 
    if loc_pi>i:return rselect(lo,loc_pi,i) 
    elif loc_pi<i:return rselect(hi,length-(loc_pi+1),i-(loc_pi+1))
from random import choice  
def random_partition(seq):
    pi =choice(seq)
    lo=[x for x in seq if x<=pi]
    hi=[x for x in seq if x>pi]
    return lo,pi,hi,len(lo)-1

Edit: Here's a version that should work if there are duplicate elements. Now, I had to change some more, so I took out some stuff I found confusing in order to make it easier for myself.

def rselect(seq,i):# i is the i'th order statistic.
    if len(seq)<=i:return seq
    lo,pi,hi= random_partition(seq)
    if i < len(lo):return rselect(lo,i) 
    if i < len(seq)-len(hi): return pi 
    return rselect(hi,i-(len(seq)-len(hi)))
from random import choice
def random_partition(seq):
    pi =choice(seq)
    lo=[x for x in seq if x<pi]
    hi=[x for x in seq if x>pi]
    return lo,pi,hi

def test_rselect(seq,i):
    print 'Sequence',seq
    stat=rselect(seq,i)
    print 'Statistic', stat
share|improve this answer
    
That was a great solution,considering it does only a few changes to my approach . However I dont think its helping when there are duplicate entries, does it? –  KodeSeeker May 31 '12 at 9:12
    
Oh, I didn't realize you cared about duplicate entries. See my edit. –  njlarsson May 31 '12 at 10:12
    
Thanks for the edit. Now could you explain the rationale behind using if len(seq)<=i instead of 1.? I used 1earlier for the function to exit the loop if the size of the sequence was = 1 element. –  KodeSeeker May 31 '12 at 10:36
1  
I assumed that this was kind of an "exception throw": it handles the case where there are not enough elements in seq for it to contain an i-th one. But I don't see any particular reason for returning the whole seq in this case, it's just that it's what you did. –  njlarsson May 31 '12 at 10:40
    
Thanks for the explanation ! –  KodeSeeker May 31 '12 at 11:52

The problem with your algorithm is your determination of loc_pi. For example, consider the case where 1000 is the first pi chosen in loc_pi=seq.index(pi). In that case, loc_pi will equal 2 since 1000 is at index 2 of the sequence, and the function will return 1000, which we know is absolutely not order statistic 2.

Thus, we know we can't determine loc_pi based on the index of the randomly chosen pi. After all, that list is in an arbitrary order- its position means nothing. What you are actually trying to get for that loc_pi value is the number of elements in that sublist that are below your chosen pi. And thankfully, that is easy to get! Just change the line:

    return lo,pi,hi,loc_pi

to

    return lo,pi,hi,len(lo) + 1

And you'll find it performs correctly and consistently!

dynamic-oit-vapornet-c-913:test dgrtwo$ python test21.py
Sequence [54, -1, 1000, 565, 64, 2, 5]
Statistic pi 565
Location 3
pi 5
Location 5
pi -1
Location 0
pi 2
Location 0
2
dynamic-oit-vapornet-c-913:test dgrtwo$ python test21.py
Sequence [54, -1, 1000, 565, 64, 2, 5]
Statistic pi -1
Location 1
pi 54
Location 0
pi 5
Location 2
pi 2
Location 0
2

ETA: Please also note that your algorithm as written will not always work if there are ties in the input sequence. Try a few examples and you will see what I mean. There are simple ways to solve it that I am sure you can figure out.

share|improve this answer
    
I havent been able to test your suggestion yet, but out of curiosity shouldnt we return len(lo)+1, instead of len(lo), to include the pivot element as well? –  KodeSeeker May 16 '12 at 4:33
    
Quite right; I was thinking of indexed by 1 for some reason. Fixed (though now it will give a different output, I don't have the chance to change that) –  David Robinson May 16 '12 at 15:58
    
:I tried to run to run the code with your suggestion but I get a totally weird output for instance with the input ` test_rselect([54,-1,1000,565,64,2,5],2)` I get :@ubuntu:~/py-scripts$ python Dselect.py Sequence [54, -1, 1000, 565, 64, 2, 5] Statistic pi 54 Location 0 pi -1 Location 1 -1 .Which really doesnt serve the purpose. Could you help? –  KodeSeeker May 19 '12 at 15:29

If you change:

return lo,pi,hi,len(lo)+1

to:

return lo,pi,hi,len(lo)

and add a closing bracket ) so that the syntax error is corrected, like so:

lo,pi,hi,loc_pi= random_partition(seq)

It will work reliably for sequences with no repeated entries:

for i in xrange(1,8):
    print rselect([54,-1,1000,565,64,2,5],7,i),
#Output:
-1 2 5 54 64 565 [1000]

Which is the expected output.

I guess my main advice would be to try and code following the style guidlines! Your code is pretty tricky to read at a glance!

The parameter length is redundant, so can be removed altogether. And also sometimes the last entry would be returned as a single value list, so I've changed that (although it will know fall over if you pass it an empty list, probably not a big deal). Here is the code in slightly more readable format, with a correction to allow for repeated entries:

from random import choice, shuffle

def rselect(seq, i):
    lo, hi, pi, loc_pi = random_partition(seq)
    if loc_pi == i or (min(lo) == max(lo) and not hi):
        return pi
    elif loc_pi > i:
        return rselect(lo, i)
    elif loc_pi < i:
        return rselect(hi, i - loc_pi)

def random_partition(seq):
    pi = choice(seq)
    lo = [x for x in seq if x <= pi]
    hi = [x for x in seq if x > pi]
    return lo, hi, pi, len(lo)

#this is a nice way to test it:
cat = range(1,21)
for i in xrange(1,21):
    shuffle(cat)
    print rselect(cat,i),

#Output:
1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 16 17 18 19 20
share|improve this answer
    
I dont really think it solves the problem. I dont see the statistic printed as a result. Could you elaborate what your solution does? I tried it using my input sequence , the solution works in some cases and doesnt in others for instance test_rselect([54,-1,1000,56,5,64,2,5],3) returns an IndexError on line if loc_pi>i:return rselect(lo,loc_pi+1,i) . Do improve your answer. Thanks! –  KodeSeeker May 30 '12 at 16:41
    
@KodeSeeker - I've updated to allow for repeated elements in the input sequence (thats what the problem was with: [54,-1,1000,56,5,64,2,5]). –  fraxel May 31 '12 at 8:02
    
What does your input sequence really do ? I dont see what happens with rselect(cat,i) there .Could you please explain the test function? –  KodeSeeker May 31 '12 at 8:47
    
@KodeSeeker - Sure. First we create a list of numbers, 1 to 20 (its nice to use numbers that are in a sequence and the same as the expected output i value, as it means we can see if the code is working easier). Then we shuffle this list, so it is in a random order. Then we perform rselect on it, to return the ith element. We do this over all possible i, and each time cat is shuffled differently, so its quiet a good test (I think - although it doesn't have repeated elements, so I missed that issue..). another cool way to do it would be to put print rselect(cat,i) == sorted(cat)[i-1]. –  fraxel May 31 '12 at 8:59
    
I think we're not on the same page. I expect the ith order statistic to be printed. When I run your code I only get an ordered list instead. I'm a noob to Python, am I missing something here? –  KodeSeeker May 31 '12 at 9:10

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