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CSE 221: Probabilistic Analysis of Computer Systems Topics covered: Stochastic processes Bernoulli and Poisson processes (Sec. 6.1,6.3.,6.4)

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Presentation on theme: "CSE 221: Probabilistic Analysis of Computer Systems Topics covered: Stochastic processes Bernoulli and Poisson processes (Sec. 6.1,6.3.,6.4)"— Presentation transcript:

1 CSE 221: Probabilistic Analysis of Computer Systems Topics covered: Stochastic processes Bernoulli and Poisson processes (Sec. 6.1,6.3.,6.4)

2 Introduction  Example: Count the number of cars in a service station, each time a car departs:  In between, two departures, some cars may arrive:  Family of random variables:

3 Introduction (contd..)  State space of the process:  Parameter index:

4 Classification of processes  Discrete vs. continuous state-space:  Discrete vs. continuous parameter space: :  Four types of processes:

5 Discrete-state, discrete-parameter process  Example: Number of cars in a service station, at the departure of each car.

6 Discrete-state, continuous-parameter process  Example: Number of cars in a service station at time t.

7 Continuous-state, discrete-parameter process  Example: Average waiting time for service, at the departure of each car.

8 Continuous-state, continuous-parameter process  Example: Total service time of all the cars in the system, at time t.

9 Bernoulli process  Sequence or a family of Bernoulli random variables:  Type:  Parameters:

10 Bernoulli process (contd..)  Random variable Yn – Number of successes in n trials:  Random variable Ti – Number of trials until the first success:

11 Poisson process  Count the number of event arrivals in an interval:  Successive occurrence of events:

12 Poisson process (contd..)  Superposition of Poisson processes:

13 Poisson process (contd..)  Decomposition of a Poisson process:


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