In a ABC- if 2 s - a - b - c and s - b s - c - x sin 2 A -2- then x- -MP PET 1992-A- caB- bcC- abD- abc

The correct option is B bc sin A/2 = √((s b)(s c)/bc)⇒ bc sin^2 A/2 = (s b)(s c) Hence x = bc. ...

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Area Using Semiperimeter

In a ABC, if ...

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In a $△ A B C,$ if 2s = a + b + c and (s-b)(s-c)=x $s i n^{2} \frac{A}{2},$ then x = [MP PET 1992]

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In a $△ A B C,$ if 2s = a + b + c and (s-b)(s-c)=x $s i n^{2} \frac{A}{2},$ then x = [MP PET 1992]

Δ A B C

2 s = a + b + c

\frac{s (s - a)}{b c} - \frac{(s - b) (s - c)}{b c} =

△ A B C

c^{2} = a^{2} + b^{2}

2 s = a + b = c

4 s (s - a) (s - b) (s - c)

△

\frac{B}{2}

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