Question 1183432
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An easy way to solve this is to compute 

    1 - P(complement of indicated outcome)


P(complement of indicated outcome) = P(odd on 1st roll) * P(2 thru 6 on 2nd roll)
= 3/6 * 5/6 = 15/36

and  1 - 15/36 = 21/36  or  {{{ highlight( 7/12 ) }}}

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A longer way is to recognize that there is overlap between the two cases, and we can break it down to three non-overlapping outcomes:

P = P(odd on 1st roll) * P(1 on 2nd roll)
    + P(even on 1st roll) * P(2-6 on 2nd roll)
    + P(even on 1st roll) * P(1 on 2nd roll)

=  (3/6)*(1/6) + (3/6)*(5/6) + (3/6)*(1/6) = (3+15+3)/36 = 21/36 = 7/12, as above.
[ The third term is the case that BOTH rolls produce one of the desired
outcomes. ]

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Yet another way is to use the inclusion-exclusion principle (we add the two probabilities but, recognizing we've overcounted, subtract out the "common" part which was counted twice):

   P = (even on 1st) + (1 on 2nd) - P(even on 1st AND 1 on 2nd)

   P = (3/6)+(1/6) - (3/6)*(1/6) = 4/6 - 3/36 =  24/36 - 3/36 = 21/36 = 7/12, as before.