In an experiment, the period of oscillation of a simple pendulum was observed to e 2.63 s, 2.56 s, 2.42 s, 2.71 s and 2.80 s. the mean absolute error is

The period of oscillation of a simple pendulum in the experiment is recorded as 2.63 s , 2.56 s , 2.42 s , 2.71 s , and 2.80 s . Find the average absolute error.

The period of oscillation of a simple pendulum in the experiment is recorded as 2.63 s , 2.56 s , 2.42 s , 2.71 s , and 2.80 s . Find the average absolute error.

In successive measurement, the reading of the period of oscillation of a simple pendulum were found to be 2.63s, 2.56s, 2.71s and 2.80s in an experiment. Calculate (i) mean value of the period oscillation (ii) absolute errer in each measurement (iii) mean absolute error (iv) releative error (v) percentage error and (vi) express the result in proper form.

We measure the period of oscillation of a simple pendulum. In successive measurements, the readings turn out to the 2.63 sec, 2.56 sec, 2.42 se, 2.71 sec, 2.80 sec

The time period of a simple pendulum is 2 s. Find its frequency .

The time period of oscillation of a simple pendulum is sqrt(2)s . If its length is decreased to half of initial length, then its new period is

The time period of a simple pendulum is 2 s. What is its frequency?

The mass and the diameter of a planet are three times the repective value for the Earth. The period of oscillation of a simple pendulum on the Earth is 2 s. The period of oscillation of the same pendulum on the planet would be:

The readings of a length come out to be 2.63 m , 2.56 m , 2.42 m , 2.71 m and 2.80 m . Calculate the absolute errors and relative errors or percentage errors.

The period of oscillation of a simple pendulum is given by T=2pisqrt((l)/(g)) where l is about 100 cm and is known to have 1 mm accuracy. The period is about 2 s. The time of 100 oscillation is measrued by a stop watch of least count 0.1 s. The percentage error is g is