Revision as of 08:10, 28 January 2013 by Mboutin (Talk | contribs)

(diff) ← Older revision | Latest revision (diff) | Newer revision → (diff)


Given that E and F are events such that P(E)=0.6 and P(F) = 0.3 and P(E and F) = 0.2 find P(E/F) and P(F/E)

solution:

P(E/F) = P(E and F)/P(F) = 0.2/0.3 = 2/3

P(F/E) = P(E and F)/P(E) = 0.2/0.6 = 1/3

Comments/questions/discussions

  • Did you forget to put a link to your page on the assignment page?
  • This would be a VERY easy exam problem. In a typical problem, you should expect to have to compute the probabilities for each event and for the intersection on your own, at the very least. -pm


Back to first bonus point opportunity, ECE302 Spring 2013

Retrieved from "https://www.projectrhea.org/rhea/index.php?title=ECE301_conditional_probability_bonus&oldid=53488"
Shortcuts
Help Main Wiki Page Random Page Special Pages Log in
Search

Alumni Liaison

has a message for current ECE438 students.

Sean Hu, ECE PhD 2009