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Q => In the given figure, altitudes AD and CE of ∆ ABC intersect each other at the point P. Show that: (i) ∆AEP ~ ∆ CDP(ii) ∆ABD ~ ∆ CBE(iii) ∆AEP ~ ∆ADB(iv) ∆ PDC ~ ∆ BEC |
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Answer» rong>HERE IS YOUR ANSWER MATE.....; GIVEN that AD and CE are the altitudes of TRIANGLE ABC and these altitudes INTERSECT each other at P. (i) In ΔAEP and ΔCDP, ∠AEP = ∠CDP (90° each) ∠APE = ∠CPD (Vertically OPPOSITE angles) Hence, by AA similarity criterion, ΔAEP ~ ΔCDP (ii) In ΔABD and ΔCBE, ∠ADB = ∠CEB ( 90° each) ∠ABD = ∠CBE (Common Angles) Hence, by AA similarity criterion, ΔABD ~ ΔCBE (iii) In ΔAEP and ΔADB, ∠AEP = ∠ADB (90° each) ∠PAE = ∠DAB (Common Angles) Hence, by AA similarity criterion, ΔAEP ~ ΔADB (iv) In ΔPDC and ΔBEC, ∠PDC = ∠BEC (90° each) ∠PCD = ∠BCE (Common angles) Hence, by AA similarity criterion, ΔPDC ~ ΔBEC Hope It's Helpful....:)@ItzPyscho17 |
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