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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
msoham1911:
YOU HAVE NOT PROVED ANY OF THE EQUATIONS GIVEM
GIVEN*
I proved all 4.
And it is right:)
Of Which Question are you talking about 16 or 17?
1y
ds=r.d.theta ...integral constant changes by +2 ....find answer ..to get question no.
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