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41 votes
41 votes
The average value of the function y = x² – 1 on [0, 12] is

User Tamizhgeek
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1 Answer

18 votes
18 votes

Answer:

47.

Explanation:

1) the rule:


f_(avr)=(1)/(b-a) \int\limits^b_a {f(x)} \, dx ,

where a;b are 0 and 12, f(x)=x²-1.

2) according to the rule above:


f_(avr)=(1)/(12-0) \int\limits^(12)_0 {(x^2-1)} \, dx=(1)/(12)((x^3)/(3)-x)|^(12)_0=48-1=47.

User Cashe
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