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I have written the code but it's showing incorrect output for fourth largest element.Let me know what should I do?

test=[4, 6, 9, 4, 3, 88, 3, 2]
test.sort()
print("Original list: ",test)
res=[]
for i in test:
    if i not in res:
             res.append(i)
print("Removing duplicates: ",res)
print("4th largest element: ",test[-4])
2
  • 1
    you're printing test[-4]; it should be res[-4]
    – Rm4n
    Aug 20, 2021 at 15:03
  • print("Original list: ",test) doesn't make sense immediately after sorting and hence changing the original list. It isn't the original list anymore. Aug 20, 2021 at 15:05

3 Answers 3

5

You are very close you can just use the build in sorted function and get the [-4] index on the return value

test = [4, 6, 9, 4, 3, 88, 3, 2]
fourth = sorted(test)[-4]
print(fourth)

To remove duplicates make the test a set

test = [4, 6, 9, 4, 3, 88, 3, 2]
fourth = sorted(set(test))[-4]
print(fourth)
4
  • This doesn't remove duplicates
    – Rm4n
    Aug 20, 2021 at 15:06
  • set removes the duplicates
    – mama
    Aug 20, 2021 at 15:08
  • 1
    You are right that set will remove duplicates, but the problem is that there is no protection from an IndexError if there are fewer 4 items left after duplicate removal. Aug 20, 2021 at 15:10
  • You can fix that with try catch or another way
    – mama
    Aug 20, 2021 at 15:11
1

Breaking everything down:

test=[4, 6, 9, 4, 3, 88, 3, 2] 
test = set(test) # Converting to set to get only unique numbers
test = list(test) # Converting back to list
test.sort(reverse = True) # Sorting in decreasing order
if len(test) >= 4: # Checking whether 4th element exists or not
    print(test[3]) # Printing 4th largest element
else:
    print("Not enough elements")
1

You could use heapq.nlargest like:

>>> heapq.nlargest(4, test)[-1]
4

For small lists this might be slower than just sorting, but in the general case it should perform better since it does not require sorting the full list. I haven't tested the performance versus sorting though.

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