11

I am trying to figure out what combination of clothing customers are buying together. I can figure out the exact combination, but the problem I can't figure out is the count that includes the combination + others.

For example, I have:

Cust_num  Item    Rev
Cust1     Shirt1  $40
Cust1     Shirt2  $40
Cust1     Shorts1 $40
Cust2     Shirt1  $40
Cust2     Shorts1 $40

This should result in:

Combo                  Count
Shirt1,Shirt2,Shorts1    1
Shirt1,Shorts1           2

The best I can do is unique combinations:

Combo                 Count
Shirt1,Shirt2,Shorts1   1
Shirt1,Shorts1          1

I tried:

df = df.pivot(index='Cust_num',columns='Item').sum()
df[df.notnull()] = "x"
df = df.loc[:,"Shirt1":].replace("x", pd.Series(df.columns, df.columns))
col = df.stack().groupby(level=0).apply(','.join)
df2 = pd.DataFrame(col)
df2.groupby([0]).size().reset_index(name='counts')

But that is just the unique counts.

  • 3
    I feel like this is one sort of problem pandas would not be suitable for. – cs95 Apr 8 at 4:31
8

Using pandas.DataFrame.groupby:

grouped_item = df.groupby('Cust_num')['Item']
subsets = grouped_item.apply(lambda x: set(x)).tolist()
Count = [sum(s2.issubset(s1) for s1 in subsets) for s2 in subsets]
combo = grouped_item.apply(lambda x:','.join(x))
combo = combo.reset_index()
combo['Count']=Count

Output:

  Cust_num                   Item  Count
0    Cust1  Shirt1,Shirt2,Shorts1      1
1    Cust2         Shirt1,Shorts1      2
  • How is finding subsets finding inclusive combination of df['Item']? Subsets are not combinations. Below is output of what you doing: {' Shirt2', ' Shorts1', ' Shirt1'}: True followed by {' Shorts1', ' Shirt1'}: True and then {' Shorts1', ' Shirt1'}: True. Then you sum then to get [1,2]. I agree my approach i did is wrong so is yours. I would think @ResidentSleeper has correct answer. – Kill3rbee Apr 8 at 7:08
  • @Chris, I think you need to find combination of Item first which would give you your subsets. You would sum unique. FYI, I did not mock your comment. I was asking a question just like you asked me a question. I did not throw a hissy or downvote you. Thanks for sharing – Kill3rbee Apr 8 at 7:45
  • @LeeMtoti Apologies for a strong language. I've deleted it. BTW, grouped_item contains a combination of each CustN's choice of clothing. lambda x: set(x) was implemented for a issubset comparison. As you pointed out, issubset returns True if and only if a set is contained in other set, which I still believe is what OP wants. – Chris Apr 8 at 7:48
  • I believe the term combination is subtle misleading. My understanding is a set of each customer's choices of Item. Hope this makes my answer and intention clearer. – Chris Apr 8 at 7:50
  • Apologies if the language wasn't correct. I wasn't sure how to describe it. I tried this with the first 1,000 customers, and it worked! I'm running it now with the full list. – lys_dad Apr 8 at 15:42
2

Late answer, but you can use:

df = df.groupby(['Cust_num'], as_index=False).agg(','.join).drop(columns=['Rev']).set_index(['Item']).rename_axis("combo").rename(columns={"Cust_num": "Count"})
df['Count'] = df['Count'].str.replace(r'Cust','')

combo                   Count                 
Shirt1,Shirt2,Shorts1     1
Shirt1,Shorts1            2
2

I think you need to create a combination of items first.

How to get all possible combinations of a list’s elements?

I used the function from Dan H's answer.

from itertools import chain, combinations
def all_subsets(ss):
    return chain(*map(lambda x: combinations(ss, x), range(0, len(ss)+1)))

uq_items = df.Item.unique()

list(all_subsets(uq_items))

[(),
 ('Shirt1',),
 ('Shirt2',),
 ('Shorts1',),
 ('Shirt1', 'Shirt2'),
 ('Shirt1', 'Shorts1'),
 ('Shirt2', 'Shorts1'),
 ('Shirt1', 'Shirt2', 'Shorts1')]

And use groupby each customer to get their items combination.

ls = []

for _, d in df.groupby('Cust_num', group_keys=False):
    # Get all possible subset of items
    pi = np.array(list(all_subsets(d.Item)))

    # Fliter only > 1
    ls.append(pi[[len(l) > 1 for l in pi]])

Then convert to Series and use value_counts().

pd.Series(np.concatenate(ls)).value_counts()

(Shirt1, Shorts1)            2
(Shirt2, Shorts1)            1
(Shirt1, Shirt2, Shorts1)    1
(Shirt1, Shirt2)             1
  • This probably works, but I keep getting a "Memory Error". I'll have to look for a solution for the memory issue as I can't use my desktop for this project (sensitive data). – lys_dad Apr 8 at 14:54
  • I did the first 1000 customers and it worked! Any suggestion for low memory laptops? – lys_dad Apr 8 at 15:25
  • @lys_dad The accepted answer has already solved your memory problem, right? – ResidentSleeper Apr 8 at 18:34
  • 1
    It does, yes. But thank you for your elegant solution! – lys_dad Apr 8 at 20:45
0

My version which I believe is easier to understand

new_df = df.groupby("Cust_num").agg({lambda x: ''.join(x.unique())})

new_df ['count'] = range(1, len(new_df ) + 1)

Output:

                            Item      Rev count
                        <lambda> <lambda>      
Cust_num                                       
Cust1      Shirt1 Shirt2 Shorts1      $40     1
Cust2             Shirt1 Shorts1      $40     2

Since you do not need the Rev column, you can drop it:

new_df = new_df = new_df.drop(columns=["Rev"]).reset_index()

new_df

Output:

  Cust_num                    Item count
                          <lambda>      
0    Cust1   Shirt1 Shirt2 Shorts1     1
1    Cust2          Shirt1 Shorts1     2

This edit is to respond to @Chris by looking at his approach written using list comprehension. He created an list of sets:

[{' Shirt1', ' Shirt2', ' Shorts1'}, {' Shirt1', ' Shorts1'}]

Then next step finds the subsets:

for s1 in subsets:
    for s2 in subsets:
        if s2.issubset(s1):
            print("{}: {}".format(s2,s2.issubset(s1)))

Output:

{' Shirt2', ' Shorts1', ' Shirt1'}: True
{' Shorts1', ' Shirt1'}: True
{' Shorts1', ' Shirt1'}: True

You asked me to explain myself and I did. However after thinking about it, I realized your approach was wrong too. As such I was not mocking you, but thanking you for making me think about my solution. Also thanks to @ResidentSleeper for his solution.

  • @Chris thank for mocking my comment and down voting my answer. I did not downvote your answer out of the spirit of learning from each other. – Kill3rbee Apr 8 at 7:17
  • @Chris thanks for removing the downvote. Whole point is to learn from each other while helping each other. – Kill3rbee Apr 8 at 8:29

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