If (1 /b-a) + (1 /b-c) = (1 /a) + (1 /c), then a, b, c are in

Question

If (1 /b-a) + (1 /b-c) = (1 /a) + (1 /c), then a, b, c are in (A) A.P. (B) G.P (C) H.P. (D) none of these

Tardigrade Admin · Accepted Answer

(1/b-a) + (1/b-c) = (1/a) +(1/c) ⇒ (1/b-a) -(1/c) = (1/a)-(1/b-c) ⇒ ( c-b +a/(b-c)c) = (b-c-a/a(b-c)) ⇒ (1/(b-a)c) -(1/a(b-c) ) ⇒ ab-ac = -bc +ac ⇒ 2ac = ab+bc = b(a+c) ⇒ b=(2ac/a+c) ⇒ a, b, c are in H.P.

Q. If b−a1​+b−c1​=a1​+c1​, then a,b,c are in

A.P.

G.P

H.P.

none of these

b−a1​+b−c1​=a1​+c1​ ⇒b−a1​−c1​ =a1​−b−c1​ ⇒(b−c)cc−b+a​=a(b−c)b−c−a​ ⇒(b−a)c1​−a(b−c)1​ ⇒ab−ac=−bc+ac ⇒2ac=ab+bc=b(a+c) ⇒b=a+c2ac​ ⇒a,b,c are in H.P.

Q. If $\frac{1}{b - a} + \frac{1}{b - c} = \frac{1}{a} + \frac{1}{c}$ , then $a, b, c$ are in