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प्रश्न
In ∆ ABC, AD ⊥ BC.
Prove that AC2 = AB2 +BC2 − 2BC x BD
In ∆ ABC (Figure 3), AD ⊥ BC.
Prove that AC2 = AB2 +BC2 − 2BC x BD
उत्तर
Applying Pythagoras theorem in ΔADB, we obtain
AD2 + DB2 = AB2
⇒ AD2 = AB2 − DB2 .....(1)
Applying Pythagoras theorem in ΔADC, we obtain
AD2 + DC2 = AC2
AB2 − BD2 + DC2 = AC2 ...[Using equation (1)]
AB2 − BD2 + (BC − BD)2 = AC2
AC2 = AB2 − BD2 + BC2 + BD2 −2BC x BD
AC2 = AB2 + BC2 − 2BC x BD
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