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If a, b, c are in A.P. then prove that (a – c)^2 = 4(b^2 – ac).

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If a, b, c are in A.P. then prove that (a – c)2 = 4(b2 – ac).

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Given a, b, c are in A.P. 

n = 10 

∴ b – a = c – b

2 b = a + c 

Squaring on both sides, 

(a + c)2 = (2b)2 

a2 + c2 + 2ac = 4b2 

(a – c)2 + 2ac + 2ac = 4b2 

[a2 + c2 = (a – c)2 + 2ac] 

(a – c)2 = 4b2 – 4ac 

(a – c)2 = 4(b2 – ac) 

Hence it is proved. 

Aliter: Given a, b, c are in A.P.

b – a = c – b 

2b = a + c 

To prove, (a – c)2 = 4(b2 – ac) 

L.H.S.= (a – c)2 

= a2 + c2 – 2 ac 

= (a + c)2 – 2 ac – 2ac 

= (a + c)2 – 4ac 

= (2b)2 – 4ac (2b = a + c) 

= 4b2 – 4ac = 4 (b2 – ac) = R.H.S 

∴ L.H.S = R.H.S., Hence proved.

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