A student measures the time period of `100` ocillations of a simple pe – InterviewSolution

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1.	A student measures the time period of `100` ocillations of a simple pendulum four times. The data set is `90 s`, 91 s, 95 s, and 92 s`. If the minimum division in the measuring clock is `1 s`, then the reported men time should be:A. `(92 +-2)s`B. `(92 +- 5)s`C. `(92 +- 1.8)s`D. `(92 +- 3)s`
Answer» Correct Answer - (a) Mean value of time period `=(90 + 91 +92 +95)/(4) = 92 s` Mean absolute error `=( \| 92 - 90 \| + \|92- 91\| + \|92 - 92 \| + \|92 - 95\|)/(4)` `=( 2+1+0 +3)/(4) = 1.5 s` :. Value of time period `= (92 +- 1.5)s` As least count = 1s :. Value of time period = `(92 +- 2) s.`

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A student measures the time period of `100` ocillations of a simple pendulum four times. The data set is `90 s`, 91 s, 95 s, and 92 s`. If the minimum division in the measuring clock is `1 s`, then the reported men time should be:A. `(92 +-2)s`B. `(92 +- 5)s`C. `(92 +- 1.8)s`D. `(92 +- 3)s`