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H(t)=(t+3)^2+5 Over which interval does h have a negative average rate of change? Choose 1 answer: (Choice A) −2≤t≤0 (Choice B) 1≤t≤4 (Choice C) −4≤t≤−3 (Choice D) −3≤t≤4

H(t)=(t+3)^2+5 Over which interval does h have a negative average rate of change? Choose 1 answer: (Choice A) −2≤t≤0 (Choice B) 1≤t≤4 (Choice C) −4≤t≤−3 (Choice D) −3≤t≤4
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H(t)=(t+3)^2+5

Over which interval does h have a negative average rate of change?


Choose 1 answer:


(Choice A)


−2≤t≤0


(Choice B)


1≤t≤4


(Choice C)


−4≤t≤−3


(Choice D)


−3≤t≤4

User Khunshan
by
8.9k points

1 Answer

5 votes

Answer:

Choice C


-4\leq t\leq-3

Explanation:


h(t)=(t+3)^2+5

Rate of change
=h'(t)


h'(t)=(d)/(dt)h(t)\\ h'(t)=2(t+3)

For negative rate of change
h'(t)\leq0


2(t+3)\leq0\\(t+3)\leq0\\t\leq-3

Choice C satisfies this condition.

User Pierrefevrier
by
8.4k points
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