Answer:3
Step-by-step explanation:
Given
There are total 40 students in a class
No of students with Pierced Nose n(N)=7
No of students with Pierced ear n(E)=36
and we know using sets
[tex]n\left ( N\cup E\right )=n\left ( E\right )+n\left ( N\right )-n\left ( N\cap E\right )[/tex]
where [tex]n\left ( N\cup E\right )=[/tex]Students either nose or ear Pierced
[tex]n\left ( N\cap E\right )=[/tex]no of students having both nose and ear pierced
[tex]40=7+36-n\left ( N\cap E\right )[/tex]
[tex]n\left ( N\cap E\right )=43-40=3[/tex]
