PROBABILITY                                    15



                A u %=(s:s~Aors~(a)
                But, by definition, there are no s E  (a. Thus,
                                             AU@=(S:SEA)=A
                An0={s:s~Aands~@)
                But, since there are no s E  (a, there cannot be an s such that s E A and s E 0. Thus,
                                                 An@=@
                Note  that Eq. (1.55) shows that  (a is mutually excIusive with  every other event and  including with
                itself.

       1.16.  Show that the null (or empty) set   is a subset of every set A.
                From the definition of intersection, it follows that
                                      (A n B) c A   and   (A  n B) c B
             for any pair of events, whether they are mutually exclusive or not. If A and B are mutually exclusive events,
             that is, A n B = a, then by  Eq. (1.56) we obtain
                                          (acA     and   (a c B                         (1.57)
             Therefore, for any event A,
                                                  @cA                                   (1 .58)
             that is, 0 is a subset of every set A.

       1.17.  Verify Eqs. (1 .1 8) and (1.1 9).

                                    A,  then s I$  U A,  .
                Suppose first that s E  (1 )       )
                That is, if  s is not contained in any of the events A,, i = 1, 2, . . . , n,  then s is contained in Ai for all
                i = 1, 2, . . . , n. Thus



                Next, we assume that



                Then s is contained in A, for all i = 1,2, . . . , n, which means that s is not contained in Ai for any i = 1,
                2,  . . . , n, implying that




                Thus,

                This proves Eq. (1 .1 8).
                Using Eqs. (1 .l8) and (1.3), we have



                Taking complements of both sides of the above yields



                which is Eq. (1 .l9).