f^ is the best stage effort and it remains the same for all stages.since the logical effort of 2 i/p NOR is 5/3, (5/(5/3)) gives the electrical effort which equals 3.since electrical effort=cout/cin and cout =45 in this case and cin=y,y=15. same for x(3 i/p nand,g=5/3) but the only difference is cout=2*y since we have two parallel nor gates which give parallel capacitances so cout/cin=(2*15)/x i hope you understand this

@@anonyomoysuser3454 thanks for your reply ,i will look into this after a while Thanks again

@@anonyomoysuser3454 Thanks a lot bro..

Here he used this formula -> Delay = N*F^(1/N) + P

due to branching there is a branching effort also.......what u have written is true for a single stage.......for multi stage B also comes into picture

@@shubhamkumarsaurav5212 still it should be GBH + P

@@extremeworrired1692 he has found the minimum achievable delay along path, previous video 23:47