Counting similar elements

There's probably a million ways to do this, but I would do something like this: from random import randint # create a list with repeated elements l = [randint(1, 10) for i in range(20)] # sample output: [9, 10, 5, 9, 10, 10, 1, 2, 9, 3, 5, 9, 9, 9, 6, 5, 4, 5, 7, 10] # create a set with the unique elements in the list s = set(l) # sample output: {1, 2, 3, 4, 5, 6, 7, 9, 10} # create a dictionary with the single elements and their count c = {item: l.count(item) for item in s} print(c) # sample output: {1: 1, 2: 1, 3: 1, 4: 1, 5: 4, 6: 1, 7: 1, 9: 6, 10: 4} If you only want repeated elements: c = {item: l.count(item) for item in s if l.count(item) > 1} print(c) # sample output: {5: 4, 9: 6, 10: 4} If you want to use a predefined module, you can use collections.Counter: from collections import Counter from random import randint l = [randint(1, 10) for i in range(20)] print(Counter(l)) # sample output: Counter({9: 6, 10: 4, 5: 4, 1: 1, 2: 1, 3: 1, 6: 1, 4: 1, 7: 1})

Anna 👍👍

Anna thank you.....can we use nested for loop? count=0 For i in list: For j in list: If i==j: count = count+1 Why this code not giving right answer?

You probably could use a nested for loop, but it's unnecessarily complicated in my opinion because you have to make sure that the items aren't compared to themselves: l = [1, 2] # list without duplicates for i in l: for j in l: print(i, j) # result: 1 1 # looks like a duplicate 1 2 2 1 2 2 # looks like a duplicate This works a bit better, but it's still not correct: l = [1, 2, 2] # list with one repeated element for i in range(len(l)): for j in range(len(l)): if i == j: continue # make sure that items are not compared to themselves if l[i] == l[j]: print('found duplicate:', l[i]) # output: found duplicate: 2 found duplicate: 2 # still wrong: duplicate found, but counted twice

your_list.count('that element')