P will be

Two events A and B will be independent, if(A) A and B are mutually exclusive(B) P(Aprime ∩ Bprime)=[1-P(A)][1-P(B)] (C) P(A) = P(B) (D) P(A) + P(B) = 1

Assertion : Two identical bulbs when connected across a battery, produce a total power P. When they are connected across the same battery in series total power consumed will be (P)/(4) . Reason : In parallel, P=P_(1)+P_(2) and in series P=(P_(1)P_(2))/(P_(1)+P_(2))

If the sum of P terms of an A.P. is q and the sum of q terms is p , then the sum of p+q terms will be (a) 0 (b) p-q (c) p+q (d) (p+q)

In a P_(4) molecule, the P – P – P bond angle is :

If P is a two-rowed matrix satisfying P' = P^(-1) , then P can be

P - P - P bond angle in white phosphorous is

If P = {2, 3}, then P xx P is equal to

If A and B be independent events with P(A) = 1/4 and (P(A cupB) = 2P(B) - P(A) , then P(B) is equal to

Let A and B be two events such that P(A) gt 0 . Statement-1 : If P(A) + P(B) gt 1 , then P(B//A)ge 1-P(overline(B))//P(A) Statement-2 : If P(A//overline(B))ge P(A), " then " P(A) ge P(A//B) .

The proposition (p to ~p) ^^ (~p to p) is a