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So theres this question in my book and it doesn't state exactly how to go about actually calculating utilization anywhere, and i'm not being able to find any substantial information regarding everything i need to solve this question.(My mid term is next week).

Anyway, here's the question:

The distance from earth to a distant planet is approximately 9 × 10^10 m. What is the channel utilization if a stop-and-wait protocol is used for frame transmission on a 64 Mbps point-to-point link? Assume that the frame size is 32 KB and the speed of light is 3 × 10^8 m/s.

Suppose a sliding window protocol is used instead. For what send window size will the link utilization be 100%? You may ignore the protocol processing times at the sender and the receiver.

thanks to anyone who has any idea.

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"assuming base 10 for kilo and mega" You are wrong man... KB=1024 BYTES=1024x8 bits (base 2) Mbps=1000 bits per second (base 10) –  nonlinearly Mar 30 '13 at 11:41
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2 Answers 2

up vote 5 down vote accepted

This is a fairly simple question. Utilization is the part of time that the medium is being used with "good" byte, that is bytes of payload (no headers or ack/nack frames).

in your question there is no header specified and ack size is not given I will assume they are both of size 0.

for the S&W case:

each period is Tx + propagation + ack propagation = Tx + RTT

Tx=32KB/64Mbps = 0.004 seconds (assuming base 10 for kilo and mega)
RTT= 2 *( 9*10^10m) / (3*10^8m/s) = 600 seconds
Utilization = 0.004 / (600 + 0.004) = 6.667x10^-6 = 6.667x10^-4 %

this is very bad utilization since the medium is very long and there is a lot of time wasted for waiting for the ack.

for sliding window: since there is no error probability I assume is is 0. to get to 100% utilization you need to keep transmitting packets while you wait for the acks that means for the whole period.

period = 600.004 seconds
1 Tx = 0.004 seconds

for non stop Tx you need to transmit 600.004/0.004 packets each period => 150001 should be your window size.

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period = 600.004 seconds

1 Tx = 0.004 seconds

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