Respuesta :
Answer:
(a) There are 35 possible outcomes.
(b) S = {AABAABB, AABABAB, AAABABB, AAABBAB, AAAABBB}
Step-by-step explanation:
Let's assume that the voting slips are marked as A for candidate A and B for candidate B.
There are 4 slips marked as A and 3 slips marked as B.
(a)
There are a total of 7 slips: 4 of A's and 3 of B's.
The number of arrangements of these slips can be determined by computing the permutation of theses 7 slips.
[tex]Permutation=\frac{n!}{n_{A}!\times n_{B}!} =\frac{7!}{4!\times 3!} =\frac{5040}{24\times6}=35[/tex]
Thus, there are 35 possible outcomes when the slips are removed from the box one by one.
The outcomes are
S = {BBBAAAA, BBABAAA, BBAABAA, BBAAABA, BBAAAAB, BABBAAA, BABABAA, BABAABA, BABAAAB, BAABBAA, BAABABA, BAABAAB, BAAABBA, BAAABAB, BAAAABB, ABBBAAA, ABBABAA, ABBAABA, ABBAAAB, ABABBAA, ABABABA, ABABAAB, ABAABBA, ABAABAB, ABAAABB, AABBBAA, AABBABA, AABBAAB, AABABBA, AABABAB, AABAABB, AAABBBA, AAABBAB, AAABABB, AAAABBB}
(b)
The slips are drawn one by one.
The tallies where A remains ahead of B are such that the count for A is always more than B. This implies that the count of A should always start with 2, 3 or 4.
The possible outcomes are:
S = {AABAABB, AABABAB, AAABABB, AAABBAB, AAAABBB}
