Find the illegal values of b in the fraction 2b ^2 + 3b − 10 b ^2 − 2b − 8 . A. b = −5 and 2 B. b = −2 and −4 C. B = −5, −2, 2, and 4 D. b = −2 and 4

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asked Mar 22, 2019 228k views

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Marcos Duarte · Answer 1 · 2019-03-27T09:40:34+0000

1) It seems that the fraction is:

2b^2 + 3b - 10
---------------------
b^2 - 2b - 8

2) Given that the division by 0 is not defined, the illegal values of b are those that make b^2 - 2 b - 8 = 0

3) Solve b^2 - 2b - 8 = 0

You can factor: b^2 - 2b - 8 = (b - 4 ) (b + 2)

=> b = 4 and b =- 2

4) Answer: option D. b = - 2 and 4.

Find the illegal values of b in the fraction 2b ^2 + 3b − 10 b ^2 − 2b − 8 . A. b = −5 and 2 B. b = −2 and −4 C. B = −5, −2, 2, and 4 D. b = −2 and 4

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