If 8! [(1/3!)+(5/4!)] =9Pr ,then the value of r is equal to

Question

If 8! [(1/3!)+(5/4!)] =9Pr ,then the value of r is equal to (A) 4 (B) 5 (C) 3 (D) 2

Tardigrade Admin · Accepted Answer

We have, 8 ![(1/3 !)+(5/4 !)]= 9 Pr ⇒ 8 ![(1/3 !)+(b/4 ⋅(3 !))]= 9 Pr ⇒ (8 !/3 !)(1+(5/4))= 9 Pr ⇒ (8 ! 9/3 ! 4)= 9 Pr ⇒ (9 !/4 !)=(9 !/(9-r) !) On comparing, we get 9-r=4 ⇒ r=5

Q. If 8![3!1​+4!5​​]=9Pr​,then the value of r is equal to

4

5

3

2

1

We have, 8![3!1​+4!5​]=9Pr​ ⇒8![3!1​+4⋅(3!)b​]=9Pr​ ⇒3!8!​(1+45​)=9Pr​ ⇒3!48!9​=9Pr​ ⇒4!9!​=(9−r)!9!​ On comparing, we get 9−r=4 ⇒r=5

Q. If $8! [\frac{1}{3 !} + \frac{5}{4 !}] =^{9} P_{r},$ then the value of $r$ is equal to