Question

let O be any point in the interior of triangle ABC. Prove that:
(i) OB+OC (ii)OA+OB+OC (iii)1/2(AB+BC+CA)

Answer 1

Step-by-step explanation:

this is the brief solution of this questuon

Answer 2

Answer:

ABC is divided into 3 triangles AOB ,BOC and

AOC

In AOB , By inequality property of triangle ,

OA +OB > AB -------(I)

In BOC , By inequality property of triangle ,

OB +OC > BC -------(II)

In AOC , By inequality property of triangle ,

OC +OA > AC -------(III)

On Adding Eq (i) (ii) and (iii)

OA+OB+OB+OC+OC+OA > AB+BC+AC

2OA+2OB +20C > AB+BC+AC2(OA+OB+OC)> AB+BC+AC

 AB+BC+AC < 2(OA+OB+OC)

Hence Proved