Scenario
Now that the competition gets tough it will Sort out the men from the boys .
Men are the Even numbers and Boys are the odd!alt!alt
Task
Given an array/list [] of n integers , Separate The even numbers from the odds , or Separate the men from the boys!alt!alt
Notes
Return an array/list where Even numbers come first then odds
Since , Men are stronger than Boys , Then Even numbers in ascending order While odds in descending .
Array/list size is at least 4 .
Array/list numbers could be a mixture of positives , negatives .
Have no fear , It is guaranteed that no Zeroes will exists .!alt Repetition of numbers in the array/list could occur , So (duplications are not included when separating).
Input >> Output Examples:
menFromBoys ({7, 3 , 14 , 17}) ==> return ({14, 17, 7, 3})
Explanation:
Since , { 14 } is the even number here , So it came first , then the odds in descending order {17 , 7 , 3} .
menFromBoys ({-94, -99 , -100 , -99 , -96 , -99 }) ==> return ({-100 , -96 , -94 , -99})
Explanation:
Since , { -100, -96 , -94 } is the even numbers here , So it came first in ascending order , then the odds in descending order { -99 }
Since , (Duplications are not included when separating) , then you can see only one (-99) was appeared in the final array/list .
menFromBoys ({49 , 818 , -282 , 900 , 928 , 281 , -282 , -1 }) ==> return ({-282 , 818 , 900 , 928 , 281 , 49 , -1})
Explanation:
Since , {-282 , 818 , 900 , 928 } is the even numbers here , So it came first in ascending order , then the odds in descending order { 281 , 49 , -1 }
Since , (Duplications are not included when separating) , then you can see only one (-282) was appeared in the final array/list .
Solution:
def men_from_boys(arr):
evens, odds = [], []
[odds.append(i) if i%2 else evens.append(i) for i in sorted(set(arr))]
return evens + odds[::-1]
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