Let, the first term of two APs be a₁ and a₂ respectively

And the common difference of these APs be d.

For the first A.P.,we know,

a_n = a+(n−1)d

Therefore,

a₁₀₀ = a₁+(100−1)d

= a₁ + 99d

a₁₀₀₀ = a₁+(1000−1)d

a₁₀₀₀ = a₁+999d

For second A.P., we know,

a_n = a+(n−1)d

Therefore,

a₁₀₀ = a₂+(100−1)d

= a₂+99d

a₁₀₀₀ = a₂+(1000−1)d

= a₂+999d

Given that, difference between 100^th term of the two APs = 100

Therefore, (a₁+99d) − (a₂+99d) = 100

a₁−a₂ = 100……………………………………………………………….. (i)

Difference between 1000^th terms of the two APs

(a₁+999d) − (a₂+999d) = a₁−a₂

From equation (i),

This difference, a₁−a₂ = 100

Hence, the difference between 1000^th terms of the two A.P. will be 100.