The perpendicular bisectors of the sides of a triangle ABC meet at point I. prove that IA=IB=IC

The correct answer is: IA = IB = IC

In ΔABC, in which AD is perpendicular bisector of BC
BE is perpendicular bisector of CA
CF is perpendicular bisector of AB
AD, BE and CF meet at I
To prove IA=IB=IC
In ΔBID and ΔCID
BD = DC  (given)
(AD is perpendicular bisector of BC)
ID = ID (common)
Hence by SAS congruence rule, we have
ΔBID  ⩭ ΔCID
So, IB = IC (Corresponding part of congruent triangle)
Similarly, In ΔCIE and ΔAIE
CE = AE (given)
(BE is perpendicular bisector of AC)
IE = IE (common)
By SAS congruence rule, ΔCIE  ⩭ ΔAIE
IC = IA (Corresponding part of congruent triangle)
Thus, IA = IB = IC