In the given figure a circle touches the sides $P Q, Q R$ and $P R$ of $△ P Q R$ at the points $X, Y$ and $Z$ respectively. Show that $P X + Q Y + R Z = X Q + Y R + Z P = \frac{1}{2}$ (perimeter of $△ P Q R$ ).

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Solution

Since lenth from an exterior point to a circle are equal.
Therefore PX $=$ PZ.....1
QY $=$ QX......2
RZ $=$ RY........3
Adding equation 1,2 and 3 ,we get
PX+QY+RZ $=$ PZ+QX+RY
Now,
Perimeter of triangle PQR $=$ PQ+PR+QR
$=$ (PX+XQ)+(QY+YR)+(PZ+ZR)
$=$ (PX+PZ)+(QX+QY)+(RZ+RY)
$=$ 2PX+2QY+2RZ
$=$ 2(PX+QY+RZ)
Therefore,PX+QY+RZ $=$ XQ+YR+ZP $=$ $\frac{1}{2}$ (perimeter of triangle PQR)

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