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Separating different elements in list
I'm trying to separate same elements from list and make individual list which contains same elements. I guess you will understand after running this program https://code.sololearn.com/cX0ZeMVDbz5m/?ref=app
6 Respuestas
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Because the condition if prev!=i doesn't become true, because there is no different element after 6
The last group will always be missing in final, so just append it from ls2 after the loop
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Your code only works, if the elements are already grouped, for [1, 2, 1] it would give [[1], [2], [1]]
I don't know if that's intentional or not.
If not and the output should be [[1, 1], [2]], here are two short solutions;
print([[val] * ls1.count(val) for val in sorted(set(ls1))])
from collections import Counter
print([[val] * freq for val, freq in Counter(ls1).items()])
The one with Counter has better performance
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def getPairs(arr, n):
ls = []
for i in range(0, n):
for j in range(i + 1, n):
if arr[i] == arr[j]:
ls.append([arr[i],arr[j]])
return ls
# Driver function
arr = [1, 1, 9, 2, 2, 8, 3, 3, 4, 4, 5, 6, 6]
n = len(arr)
print(getPairs(arr, n))
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Shail Murtaza great!
And remember that python "comes with batteries included", meaning that for all standard tasks it most likely offers a solution or at least functions that help you a lot. Use them to not only make your code shorter, but also more readable
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Thank you very much
You saved my time
I was unable to figure out that simple thing.
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iTech your code tries to solve something different, and it has a problem when an element occurs more than 2 times. Also you don't need to give n to the function