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I'm new to python and I'm having a problem that I'm not able to solve.

I have the following 2D array:

valuearray = [['A', '21', '45'], ['A', '12', '23'], 
              ['A', '54', '21'], ['A', '15', '54'], 
              ['B', '23', '53'], ['B', '34', '53'], 
              ['B', '32', '54'], ['B', '24', '13'], 
              ['C', '31', '43'], ['C', '42', '54'], 
              ['C', '35', '54'], ['C', '12', '11']]

A  21 45
A  12 23
A  54 21
A  15 54
B  23 53
B  34 53
B  32 54
B  24 13
C  31 43
C  42 54
C  35 54
C  12 11

I need to generate from this array another array that have the unique values of valuearray[0] , the maximum of valuearray[1] for each valuearray[0] and the minimum valuearray[2] for each valuearray[0]

The result would be:

resarray[]

    A  54 21
    B  34 13
    C  42 11

EDIT: sorry for not presenting what I tried

    uniquenames = []
    un = []
    for i in range(len(valuearray)):
            un.append(valuearray[i][0])
    uniquenames=uniq(un)

test = []
for ci in range(len(valuearray)):
    for gn in range(len(uniquenames)):
        if(valuearray[ci][0] == uniquenames[gn]):
                      # i don't know what to do here
                      i tried append(valuearray[ci][0] , max(valuearray[ci][1]),min( valuearray[ci][2]))

but append only take one parametre, so I don't know how to continue.

And uniq is a function that gives me the unique values from a list.

share|improve this question
4  
Fascinating. What have you tried? –  Joel Cornett Apr 29 '12 at 11:19
    
Also, that isn't how lists are displayed in Python. Give the repr() of the list when you ask questions, it'll make people a lot more willing to help. (Although showing effort yourself will work even better). –  Lattyware Apr 29 '12 at 11:24
    
Downvoting. Make an effort besides just transcribing your homework. –  ddaa Apr 29 '12 at 11:27
    
Are all A's, B's, and C's grouped together and arranged in order? –  Joel Cornett Apr 29 '12 at 12:12
    
Also, try to represent your arrays in the format they are in Python. –  Joel Cornett Apr 29 '12 at 12:12

1 Answer 1

up vote 3 down vote accepted

We can do this pretty easily with itertools.groupby and zip():

data = [
    ['A', '21', '45'],
    ['A', '12', '23'],
    ['A', '54', '21'],
    ['A', '15', '54'],
    ['B', '23', '53'],
    ['B', '34', '53'],
    ['B', '32', '54'],
    ['B', '24', '13'],
    ['C', '31', '43'],
    ['C', '42', '54'],
    ['C', '35', '54'],
    ['C', '12', '11']
]

from itertools import groupby
from operator import itemgetter

for name, values in groupby(data, itemgetter(0)):
    _, first, second = zip(*values)
    print(name, max(first), min(second))

What we are doing here is using groupby() to group the list items by the first item. This gives us three lists - a list for the records beginning with A, then a list for B, then C. It's also worth noting that groupby() doesn't require your list to be sorted.

We then extract the values from these lists by using zip() to unzip the values from a list of triplets into three lists of single values. We throw away the first column as it's just A, B or C as is relevant, and then take the maximum and minimum of the other columns to get the values you wanted.

Which gives us:

A 54 21
B 34 13
C 42 11

Edit:

If you have your values as text, then you can use a list comprehension and str.split() to make a list out of it:

data = """\
A  21 45
A  12 23
A  54 21
A  15 54
B  23 53
B  34 53
B  32 54
B  24 13
C  31 43
C  42 54
C  35 54
C  12 11\
"""

data = [value.split() for value in data.split("\n")]

Another Edit:

As per the chat, you can discard extra columns like so:

Python 3.x:

for name, values in groupby(data, itemgetter(0)):
    _, first, second, *_ = zip(*values)
    print(name, max(first), min(second))

Python 2.x:

for name, values in groupby(data, itemgetter(0)):
    first, second = zip(*values)[1:3]
    print name, max(first), min(second)

And to make the output a list, rather than printing the values:

def max_min_by_group(group):
    for name, values in group:
        _, first, second, *_ = zip(*values)
        yield [name, max(first), min(second)]

new = [item for item in max_min_by_group(groupby(data, itemgetter(0)))]

We simply use a list comprehension and a generator (we could do this in one big line but it would be unwieldy and unreadable). This gives us:

[['A', '54', '21'], ['B', '34', '13'], ['C', '42', '11']]
share|improve this answer
    
how should i transform my array to this format ?? –  ifreak Apr 29 '12 at 12:14
    
@ifreak As you said 'I have a 2D array', I presumed you had a list of lists. –  Lattyware Apr 29 '12 at 12:18
    
yes, but this will woek in case i had to add other columns to the array ?? or other rows ?? –  ifreak Apr 29 '12 at 12:19
    
@ifreak: If you read it, you can clearly see this will work if you add more rows, however, it would not work with more columns - you did not mention it needing to work with more columns, and did not say how you wanted more columns to act if they were added. –  Lattyware Apr 29 '12 at 12:20
    
basically i've got the list from a text file, but i might need to add columns to the file and then do this method, in this case how should i act(update the code) to make it more dynamic ??? –  ifreak Apr 29 '12 at 12:45

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