Figure illustrates an aligned system consisting of three thin lenses. The system is located in air. Determine:

(a) the position of the point of convergence of a parallel incoming from the left after passing through the system,
(b) the distance between teh first lens and a point lying on the axis to the left of the system, at which that point and its image are located symmetrically with respect to the lens system.

When a parallel beam comes from `'oo'` from left , after refraction from `L_(1)` it forms image at 10 cm from `L_(1)`.
This image will behave as a object for `L_(2)`
So object distance from `'L_(2)' = +5 cm`
So image formed at v : `(1)/(v) - (1)/(5) = (1)/(-10)`
`implies (1)/(v) = (1)/(5) - (1)/(10) =(1)/(10) implies v = 10 cm`
Therefore `L_(2)` will form a image at +10 cm from `L_(2)` on the right side . This image will act as object for `L_(3)`
Object distance for `L_(3) = +5 cm`
final image at v = ?
`(1)/(v) - (1)/(u) = (1)/(f) implies (1)/(v) - (1)/((+5)) = (1)/((10)) implies (1)/(v) = (1)/(5) + (1)/(10)`
`implies (1)/(v) = (3)/(10) implies v = (10)/(3) ` cm from `L_(3)`
Ray converges at d =`(10)/(3)` cm from `L_(3)`
(b)
`(1)/(v) + (1)/(x) = (1)/(f) implies v = (fx)/(x-f) implies 5 - (fx)/(x-f) implies (1)/(v_(t)) - (1)/(v) = (1)/(f)`
`(1)/(v_(1)) + ((1)/(5 - (fx)/(x-f))) = (1)/(-f) implies (1)/(v_(1)) = (1)/(f) - ((1)/(5-(fx)/(x-f)))`
`5 - v_(1) = u implies ( 5 - (fu)/(u-f)) = v_(1) implies (5u - 5f -fu)/(u-f)`
`(1)/(v_(1)) = (u-f)/(5u-5f -fu)` + (1)/(f) + (f)/(5 - (fx)/(x-f)) = (-u+f)/(5u-5f-fx)`
`(1)/(f) + (x-f)/((5x -5f -fx) = (f-u)/(5x -5f -fu)`
Putting the value after solving x = `(50)/(3)` cm