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I am getting a list in which I am saving the results in the following way

City Percentage
Mumbai  98.30
London 23.23
Agra    12.22
.....

List structure is [["Mumbai",98.30],["London",23.23]..]

I am saving this records in form of a list.I need the list to be sort top_ten records.Even if I get cities also, it would be fine.

I am trying to use the following logic, but it fails for to provide accurate data

if (condition):
    if b not in top_ten:
        top_ten.append(b)   
        top_ten.remove(tmp)

Any other solution,approach is also welcome.

EDIT 1

for a in sc_percentage:
            print a

List I am getting

(<ServiceCenter: DELHI-DLC>, 100.0)
(<ServiceCenter: DELHI-DLE>, 75.0)
(<ServiceCenter: DELHI-DLN>, 90.909090909090907)
(<ServiceCenter: DELHI-DLS>, 83.333333333333343)
(<ServiceCenter: DELHI-DLW>, 92.307692307692307)
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2  
What does this have to do with Django? –  Ignacio Vazquez-Abrams Jun 25 '13 at 10:36
    
Are you looping through your list while removing items? Because that's never a good idea... –  Haidro Jun 25 '13 at 10:37
    
What is the list structure ?? Is it like [[Mumbai,98.30],[London,23.33]..] ? –  Tushar Makkar Jun 25 '13 at 10:38
    
The logic works in java, I am beginner in django, so probably I am following a wrong approach –  onkar Jun 25 '13 at 10:38
    
@TusharMakkar yes –  onkar Jun 25 '13 at 10:38

4 Answers 4

up vote 0 down vote accepted

Sort the list first and then slice it:

>>> lis = [['Mumbai', 98.3], ['London', 23.23], ['Agra', 12.22]]
>>> print sorted(lis, key = lambda x : x[1], reverse = True)[:10] #[:10] returns first ten items
[['Mumbai', 98.3], ['London', 23.23], ['Agra', 12.22]]

To get data in list form from that file use this:

with open('abc') as f:
    next(f)  #skip header 
    lis = [[city,float(val)]  for city, val in( line.split() for line in f)]
    print lis 
    #[['Mumbai', 98.3], ['London', 23.23], ['Agra', 12.22]]  

Update:

new_lis = sorted(sc_percentage, key = lambda x : x[1], reverse = True)[:10]
for item in new_lis:
   print item

sorted returns a new sorted list, as we need to sort the list based on the second item of each element so we used the key parameter.

key = lambda x : x[1] means use the value on the index 1(i.e 100.0, 75.0 etc) of each item for comparison.

reverse= True is used for reverse sorting.

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I am using eclipse. The code is not working . sorted(sc_percentage, key = lambda x : x[1], reverse = True)[:10] –  onkar Jun 25 '13 at 10:47
    
"not working" means what? –  Alfe Jun 25 '13 at 10:47
    
@onkar Please post sc_percentage in question body. –  Ashwini Chaudhary Jun 25 '13 at 10:48
    
What error is it showing ? –  Tushar Makkar Jun 25 '13 at 10:48
    
I am unable to get revised list –  onkar Jun 25 '13 at 10:53

You have to convert your input into something Python can handle easily:

with open('input.txt') as inputFile:
    lines = inputFile.readLines()
records = [ line.split() for line in lines ]
records = [ float(percentage), city for city, percentage in records ]

Now the records contain a list of the entries like this:

[ [ 98.3, 'Mumbai' ], [ 23.23, 'London' ], [ 12.22, Agra ] ]

You can sort that list in-place:

records.sort()

You can print the top ten by slicing:

print records[0:10]

If you have a huge list (e. g. millions of entries) and just want the top ten of these in a sorted way, there are better ways than sorting the whole list (which would be a waste of time then).

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The list is calculated locally it self. Please can you simplify the code a bit. –  onkar Jun 25 '13 at 10:46

If the list is fairly short then as others have suggested you can sort it and slice it. If the list is very large then you may be better using heapq.nlargest():

>>> import heapq
>>> lis = [['Mumbai', 98.3], ['London', 23.23], ['Agra', 12.22]]
>>> heapq.nlargest(2, lis, key=lambda x:x[1])
[['Mumbai', 98.3], ['London', 23.23]]

The difference is that nlargest only makes a single pass through the list and in fact if you are reading from a file or other generated source need not all be in memory at the same time.

You might also be interested to look at the source for nlargest() as it works in much the same way that you were trying to solve the problem: it keeps only the desired number of elements in a data structure known as a heap and each new value is pushed into the heap then the smallest value is popped from the heap.

Edit to show comparative timing:

>>> import random
>>> records = []
>>> for i in range(100000):
    value = random.random() * 100
    records.append(('city {:2.4f}'.format(value), value))


>>> import heapq
>>> heapq.nlargest(10, records, key=lambda x:x[1])
[('city 99.9995', 99.99948904248298), ('city 99.9974', 99.99738898315216), ('city 99.9964', 99.99642759230214), ('city 99.9935', 99.99345173704319), ('city 99.9916', 99.99162694442714), ('city 99.9908', 99.99075084123544), ('city 99.9887', 99.98865134685201), ('city 99.9879', 99.98792632193258), ('city 99.9872', 99.98724339718686), ('city 99.9854', 99.98540548350132)]
>>> timeit.timeit('sorted(records, key=lambda x:x[1])[:10]', setup='from __main__ import records', number=10)
1.388942152229788
>>> timeit.timeit('heapq.nlargest(10, records, key=lambda x:x[1])', setup='import heapq;from __main__ import records', number=10)
0.5476185073315492

On my system getting the top 10 from 100 records is fastest by sorting and slicing, but with 1,000 or more records it is faster to use nlargest.

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For printing the top 10 cities you can use :

Sort the list first and then slice it:

>>> lis = [['Mumbai', 98.3], ['London', 23.23], ['Agra', 12.22]]
>>> [k[0] for k in sorted(lis, key = lambda x : x[1], reverse = True)[:10]]
    ['Mumbai', 'London', 'Agra']

For the given list

 >>>: lis=[("<ServiceCenter: DELHI-DLC>", 100.0),("<ServiceCenter: DELHI-DLW>", 92.307692307692307),("<ServiceCenter: DELHI-DLE>", 75.0),("<ServiceCenter: DELHI-DLN>", 90.909090909090907),("<ServiceCenter: DELHI-DLS>", 83.333333333333343)]

 >>>:t=[k[0] for k in sorted(lis, key = lambda x : x[1], reverse = True)[:10]]
 >>>:print t
['<ServiceCenter: DELHI-DLC>',
'<ServiceCenter: DELHI-DLW>',
'<ServiceCenter: DELHI-DLN>',
'<ServiceCenter: DELHI-DLS>',
'<ServiceCenter: DELHI-DLE>']

Sorted function returns the sorted list with key as the compare function .

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Hey I am using eclipse environment and a newbie in python development. Please can you modify the code and make it more simpler. Thank you for understanding –  onkar Jun 25 '13 at 11:00
    
Can you please show me the output of the list instead of printing the individual elements ? That is use print sc_percentage instead of printing using for loop . –  Tushar Makkar Jun 25 '13 at 11:02
    
@onkar You need to add print "new list" explicitly to get the output –  Tushar Makkar Jun 25 '13 at 11:11

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