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A student was measuring water in a graduated cylinder. The student read the amount of water at 20 ml. The actual amount of water in the graduated cylinder was 17 ml, What is the approximate percent error?
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A student was measuring water in a graduated cylinder. The student read the amount of water at 20 ml. The actual amount of water in the graduated cylinder was 17 ml, What is the approximate percent error?

User PT Vyas
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1 Answer

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Recall that percent error is given by the formula:


|\frac{real\text{ value-measured value}}{\text{real value}}|\cdot100

Therefore in our case this becomes:


|(17-20)/(17)|\cdot100=|(3)/(17)|\cdot100\approx17.65

Therefore the rounded (to two decimals) answer is : 17.65 %

User Rick Ballard
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