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Re: In the figure above, side lengths AB, BD, and DC are all equ [#permalink]
x + angl ADB=65

y=50

Definitely B is greater
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Re: In the figure above, side lengths AB, BD, and DC are all equ [#permalink]
pranab223 wrote:
sandy wrote:
In the figure above, side lengths AB, BD, and DC are all equal.

Quantity A
Quantity B
x
y


A) Quantity A is greater.
B) Quantity B is greater.
C) The two quantities are equal.
D) The relationship cannot be determined from the information given.


In the \(\triangle BDC\)

\(BD = DC\), so it is an isosceles \(\triangle\)

i.e. \(\angle DBC = \angle DCB = 65°\)

How do we know that ∠DBC should equal ∠DCB?

and \(\angle y\)= \(180° - (2 * 65°) = 50°\)



Now in \(\triangle ADB\)

\(\angle DAB = \angle BDC = x°\) ( since AB = BD)

therefore \(\angle DBC = \angle DAB + \angle BDC\) (exterior angle is sum of two opposite interior angle)

or\(65° = 2x°\)

or \(x° = 32.5°\)

therefore QTY A < QTY B
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Re: In the figure above, side lengths AB, BD, and DC are all equ [#permalink]
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