If the probability of frame being lost is P. Then, calculate the mean no. of transmission for the frame to make it success. Here the probability of frame being lost is P. So the probability of frame reaching safely would be (1-P).

Ciolan3u

Ciolan3u

Answered question

2022-09-06

If the probability of frame being lost is P. Then, calculate the mean no. of transmission for the frame to make it success.
Here the probability of frame being lost is P. So the probability of frame reaching safely would be ( 1 P ) .
Now lets consider that the frame will reach safely in k-th transmission. That means that the frame being lost k 1 times and reached in k-th time with probability ( 1 P ) .. Now a frame requires k-transmissions exactly when the first k 1 attempts fail .... this happens with probability P k-1 and the k-th transmission succeeds , this happens with probability 1 P .
For k = 1 ,, the probability = ( 1 P )
For k = 2 , the probability = P ( 1 P )
For k = 3 ,, the probability = P 2 ( 1 P ) . . . . . . . . . . . . . . . . . . . . . . . . . . .
So the mean number of transmission will be = ( 1 P ) + P ( 1 P ) + P 2 ( 1 P )..........Which gives me 1. But here mean of the transmission will have to be calculated not the probability mean.So how to calculate the mean of the transmission? But solution saying,
k = 1 k P k
k = 1 k ( 1 P ) P k 1
= ( 1 P ) k = 1 k P k 1
= ( 1 P ) . 1 ( 1 P ) 2 = 1 ( 1 P )
I don't understand how they multiply P k-1 ( P 1 ) by k.

Answer & Explanation

esacefp

esacefp

Beginner2022-09-07Added 11 answers

Step 1
E X = x X x p ( x )
Step 2
here p ( X = x ) = P x 1 ( 1 P )
E X = x = 1 x p ( X = x ) = x = 1 x P x 1 ( 1 P ) = 1 1 P
you initially calculated this:
x X p ( x ) = 1

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