1
a = [5,7,3,1,2]
for i in a:
    for j in a:
        if(i==j):
            continue
        else:
            print(i,j)
    print("")

output:

5 7
5 3
5 1
5 2

7 5
7 3
7 1
7 2

3 5
3 7
3 1
3 2

1 5
1 7
1 3
1 2

2 5
2 7
2 3
2 1

My code just displays all the values but will skip the values which matches but if I want dont want to display values which are printed already like if value (5,7) is printed it should not print again as (7,5). Once value 5 7 is printed so for next iteration it should not display 7 5 and this should happen with all values in array. Please someone help me. Thank you. If there is duplication of question please guide me to that question.

4
7

Easiest is to use itertools.combinations which takes care of avoiding repetitions for you:

from itertools import combinations
a = [5, 7, 3, 1, 2]
for x, y in combinations(a, 2):
    print(x, y)

5 7
5 3
5 1
5 2
7 3
7 1
7 2
3 1
3 2
1 2

If you want to do it without library help, you can do the following, using enumerate and slicing:

for i, x in enumerate(a):
    for y in a[i+1:]:  # combine only with elements after x (index i)
        print(x, y)
0
2

Use combinations form itertools:

from itertools import combinations
for tup in combinations([5,7,3,1,2],2):
    print(tup[0],tup[1])
5 7
5 3
5 1
5 2
7 3
7 1
7 2
3 1
3 2
1 2
2
  • ohh thank you very much that really worked thanks for the answer – Shivam Aug 31 '18 at 7:13
  • @ShivamDalvi Glad to help! – Space Impact Aug 31 '18 at 7:19
0

Yes you can. Try following:

a = [5,7,3,1,2]
for i in range(len(a)):
    for j in a[i:]:
        if(a[i]==j):
            continue
        else:
            print(a[i],j)
    print("")

This will give output:

5 7
5 3
5 1
5 2

7 3
7 1
7 2

3 1
3 2

1 2
0

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.