Register
Oliver estimates the weight of his cat to be 16 pounds. The actual weight of his cat is 14.25 pounds. What is the percent error of Oliver's estimate? Round the percent to the nearest tenth if necessary.
40.8k views
2 votes
Oliver estimates the weight of his cat to be 16 pounds. The actual weight of his cat is 14.25 pounds. What is the percent error of Oliver's estimate? Round the percent to the nearest tenth if necessary.

User Dplesa
by
4.6k points

1 Answer

4 votes

We have that the 100% of the weight is 14.25 pounds. Then, using a rule of three, we can find the percent change to 16 pounds:


\begin{gathered} 14.25\rightarrow100\% \\ 16\rightarrow x\% \\ \Rightarrow x=(16\cdot100)/(14.25)=(1600)/(14.25)=112.3 \\ x=112.3 \end{gathered}

then the percent change is:


112.3\%-100\%=12.3\%

therefore, the percent error of Oliver's estimate is 12.3%

User Aspian
by
4.9k points
Ask a Question
Welcome to QAmmunity.org, where you can ask questions and receive answers from other members of our community.

5.6m questions

7.3m answers

Other Questions

What is the value of x? (-4) - x = 5
1/7 + 3/14 equivalent fractions
185g in the ratio 2:3
(3x1,000,000)+(3x100,000)+(2x100) what is this number written in standard form?
The function h = -t2 + 95 models the path of a ball thrown by a boy where h represents height, in feet, and t represents the time, in seconds, that the ball is in the air. Assuming the boy lives at sea
Link Copied!