Answer:
0.49 or 49%
Step-by-step explanation:
The probability of the handicapper correctly predicting a single game, P(C), is 0.7, therefore, the probability of that same handicapper being correct in each of her next two predictions, P(2C) is:
[tex]P(2C) = P(C)^2\\P(2C) = 0.7^2\\P(2C) = 0.49[/tex]
The probability of her being correct in each of her next two predictions is 0.49 or 49%
