Given `n_(1) = 50, n_(2) = 40, sigma_(1) = 9, sigma_(2) = 6, d_(1) = 4, d_(2) = 5`
Find the combined standard deviation.

A data consists of n observations x_(1), x_(2), ..., x_(n). If Sigma_(i=1)^(n) (x_(i) + 1)^(2) = 9n and Sigma_(i=1)^(n) (x_(i) - 1)^(2) = 5n , then the standard deviation of this data is

Figure shown two infinitely large conducting plates A and B. If electric field at C due to charge densities sigma_(1), sigma_(2), sigma_(3) and sigma_(40 is E hat(i) , find sigma_(2) and sigma_(3) in terms of E. Derive a relation between sigma_(1) and sigma_(4) .

The mean square deviation of a set of observation x_(1), x_(2)……x_(n) about a point m is defined as (1)/(n)Sigma_(i=1)^(n)(x_(i)-m)^(2) . If the mean square deviation about -1 and 1 of a set of observation are 7 and 3 respectively. The standard deviation of those observations is

If the standard deviation of n observation x_(1), x_(2),…….,x_(n) is 5 and for another set of n observation y_(1), y_(2),………., y_(n) is 4, then the standard deviation of n observation x_(1)-y_(1), x_(2)-y_(2),………….,x_(n)-y_(n) is

There is a slab of refractive index n_(2) placed as shown. Medium on two side are n_(1) and n_(3) . Width of slab is d_(2) . An object is placed at distance d_(1) from surface AB and observer is at distance d_(3) from surface CD . Given n_(1)= air [ref. index =1] and n_(2) is glass [ref. index = 3//2 ], d_(1) = 12 cm and d_(2) = 9 cm,d_(3) = 4 cm . If object starts to move with speed of 12 cm//sec towards the slab then find the speed of image as seen by observer [given n_(3)= air =(ref. index =1 )].

The standard deviation (sigma) of variate x is the square root of the A.M. of the squares of all deviations of x from the A.M. observations. If x_i//f_i , i=1,2,… n is a frequency distribution then sigma=sqrt(1/N Sigma_(i=1)^(n) f_i(x_i-barx)^2), N=Sigma_(i=1)^(n) f_i and variance is the square of standard deviation. Coefficient of dispersion is sigma/x and coefficient of variation is sigma/x xx 100 The standard deviation for the set of numbers 1,4,5,7,8 is 2.45 then coefficient of dispersion is

The standard deviation (sigma) of variate x is the square root of the A.M. of the squares of all deviations of x from the A.M. observations. If x_i//f_i , i=1,2,… n is a frequency distribution then sigma=sqrt(1/N Sigma_(i=1)^(n) f_i(x_i-barx)^2), N=Sigma_(i=1)^(n) f_i and variance is the square of standard deviation. Coefficient of dispersion is sigma/x and coefficient of variation is sigma/x xx 100 For a given distribution of marks mean is 35.16 and its standard deviation is 19.76 then coefficient of variation is

Find the sum Sigma_(j=1)^(n) Sigma_(i=1)^(n) I xx 3^j

If Sigma_(i=1)^(2n) cos^(-1) x_(i) = 0 ,then find the value of Sigma_(i=1)^(2n) x_(i)

A data consists of n observations : x_(1), x_(2),……, x_(n) . If Sigma_(i=1)^(n)(x_(i)+1)^(2)=11n and Sigma_(i=1)^(n)(x_(i)-1)^(2)=7n , then the variance of this data is