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My goal is to group the list below by multiples of 7 (ie 7,14,21)

mylist=[1,3,7,8,10,14,15,19,22]

Ideal result:[(1,3,7),(8,10,14),(15,19),(22)]

My attempt:

>>>groups=[]
>>> for x in itertools.groupby(mylist,lambda x: x<=range(7,49,7)):
             groups.append(x)
>>> groups
[(True, <itertools._grouper object at 0x0000000002EBC128>)]

Any ideas on how to arrive at the ideal result? Thanks.

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3 Answers 3

up vote 2 down vote accepted

You can use:

itertools.groupby(mylist, lambda x: (x - 1) // 7)

Your current attempt compares each item to the range object, not the values it produces. This makes no sense, and is a TypeError in Python 3.x.

To unpack the groupby object to a list of tuples:

list(map(lambda g: tuple(g[1]), itertools.groupby(...)))
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thanks for the solution. However, I got the following result which is not the ideal thing i'm looking for:<itertools.groupby object at 0x0000000002EB8598> –  Tiger1 Mar 26 at 9:23
    
@Tiger1 that is the correct result! I will edit my question to demonstrate unpacking this object. –  jonrsharpe Mar 26 at 9:25
    
many thanks for the solution. It works. –  Tiger1 Mar 26 at 9:56

jonrsharpe gives an excellent solution. This alternative is universal (not necessarily Python-specific) and correct for obvious reasons:

groups = []
l = [1,3,7,8,10,14,15,19,22]
a = 0
sublist = []
for item in l:
    if 7*a<item and item<=7*(a+1):
        sublist.append(item)
    else:
        groups.append(tuple(sublist))
        a = item/7 
        sublist = [item]

if sublist:
    groups.append(tuple(sublist))
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thanks for the solution, although its a bit lengthy. –  Tiger1 Mar 26 at 9:40

I think this code help you:

if __name__ == '__main__':
    a = [1,3,7,8,10,14,15,19,22]
    b = []
    c = set()
    for i in a:
        x = i/7
        if i%7 == 0:
            x -= 1
        b.append(x)
        c.add(x)
    c = list(c)
    a.sort()
    res = []
    for i in c:
        res.append(b.count(i))
    count = 0
    for i in res:
        print a[count:count+i]
        count += i
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This gives the wrong answer, and only prints it –  jonrsharpe Mar 26 at 9:38
    
This edited code is working now –  Vijay Kumar Mar 26 at 9:59
    
This only works for the case where a is sorted (which may be adequate, but should be made clear), and will still just print the output! You could simplify - c = set(b), for example, and look into list comprehensions –  jonrsharpe Mar 26 at 10:35
    
now its working, –  Vijay Kumar Mar 26 at 10:40
    
No, it isn't - if the user inputs [1, 3, 10, 6] they may not expect [(1, 3, 6), (10,)] rather than [(1, 3), (10,), (6,)]. And c = list(c) has added nothing; my point was that you could build just b in the for loop (or with a list comp.) then easily create c = set(b) in one step. –  jonrsharpe Mar 26 at 10:56

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