6

I have the following list:

seqList = [0, 6, 1, 4, 4, 2, 4, 1, 7, 0, 4, 5]

I want to print the items in the list only when it is present more than once(in this case value 1 and 4) and I want to ignore the first value in the list (in this case value 0)

To count how many times each value is present in the list I have the following code:

from collections import Counter

seqList = [0, 6, 1, 4, 4, 2, 4, 1, 7, 0, 4, 6]

c = dict(Counter(seqList))
print(c)

with output:

{0: 2, 6: 1, 1: 2, 4: 4, 2: 1, 7: 1, 5: 1}

But I want to ignore everything but 1 and 4 And the first 0 in the list shouldn't count.

The output I want to print is:

-value 1 appears multiple times (2 times)
-value 4 appears multiple times (4 times)

Does anyone have an idea how I could achieve this?

  • This is a good question! It shows clear examples and expected output. – exhuma Nov 26 at 8:49
  • Thank you :) I spend 30 mins writing as precise as possible. – Nawin Narain Nov 26 at 9:01
5

You could make the following adjustments:

c = Counter(seqList[1:])  # slice to ignore first value, Counter IS a dict already 

# Just output counts > 1
for k, v in c.items():
    if v > 1:
        print('-value {} appears multiple times ({} times)'.format(k, v))

# output
-value 1 appears multiple times (2 times)
-value 4 appears multiple times (4 times)
-1

A nice one-liner with list comprehension would look like this:

[print(f'- value {k} appears multiple times ({v} times)') for k, v in c.items() if v > 1]
  • Don't use list comprehensions for side effects – schwobaseggl Nov 26 at 8:48
  • Though it is partially working, it is not ignoring the first element. either we could delete the first element or ignore it. Better c = dict(Counter(seqList[1:])) ignores the first element in the counter – Rohithsai Sai Nov 26 at 8:58

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.