An AP consists of 50 terms of which the third term is 12 and the last term is 106. Find the 29th term.
It is also given that a3=12 and a50=106
Using formula an=a+(n−1)d to find nth term of AP, we get
a50=a+(50−1)d⇒106=a+49d⋯(1)
a3=a+(3−1)d⇒12=a+2d⋯(2)
Subtracting (1) and (2), we get,
⇒47d=94
⇒d=2
Substituting d in (2), we get,
a+2(2)=12
a=12−4=8
The 29th term is,
a29=a+(29−1)d=8+28(2)=8+56=64