Here,givena=1

d=4−1=3

and,sn​=287

Now,

sn​=2n​(2a+(n−1)d)

⇒287=2n​(2×1+(n−1)3)

⇒287=2n​(2+3n−3)

⇒574=n(3n−1)

⇒574=3n2−n⇒3n2−n−574=0

on solving the quadratic equaton using formula n=2a−b±b2−4ac

​​We get n=14 & 3−41​[does not exist] so, n=14

Now,

sn​=2n​(a+1)

⇒287=214​(1+x)

⇒574=14(1+x)

⇒(1+x)=14574​⇒1+x=41

⇒x=41−1

∴x=40

x=40 is the solution.​