Given f(x)=-3x+2 and g(x)=2x^3, which of the following are true? Check all correct answer(s).

Mathematics

1 answer:

coldgirl [10]4 years ago

5 0

A) f(x)Xg(x)=-6x^4+4x^3

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Need to be able to check my work with this problem.

kirill [66]

Answer:

You are correct

Step-by-step explanation:

Hi,

$(f+g)(x)=6x-12+3x+8=9x-4\\\\(f-g)(x)=6x-12-3x-8=3x-20$

Thanks

5 0

3 years ago

What is 6.597 x 10^4 in standard form?

ipn [44]

65970
6.597 * 10^4
6.597 * 10000
= 65970

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3 years ago

What are the factors of -x²+2x+35

xxTIMURxx [149]

(-x + 7)(x + 5)
Bc if you split -x^2 and 35 into 2 parts to get 2x it’ll be x(7)= 7x & -x(5)= -5x —> 7x-5x=2x
(I hope that made sense?)

6 0

4 years ago

Which function is undefined for x = 0? y=3√x-2 y=√x-2 y=3√x+2 y=√x=2

Andre45 [30]

For this case, we must indicate which of the given functions is not defined for $x = 0$

By definition, we know that:

$f (x) = \sqrt {x}$ has a domain from 0 to infinity.

Adding or removing numbers to the variable within the root implies a translation of the function vertically or horizontally. For it to be defined, the term within the root must be positive.

Thus, we observe that:

$y = \sqrt {x-2}$ is not defined, the term inside the root is negative when $x = 0$ .

While $y = \sqrt {x + 2}$ if it is defined for $x = 0.$

$f(x)=\sqrt[3]{x}$ , your domain is given by all real numbers.

Adding or removing numbers to the variable within the root implies a translation of the function vertically or horizontally. In the same way, its domain will be given by the real numbers, independently of the sign of the term inside the root.

So, we have:

$y = \sqrt [3] {x-2}$ with x = 0: $y = \sqrt [3] {- 2}$ is defined.