Question 6
The perimeter of a triangle with vetices (0,4), (0,0) and (3,0) is:
(A) 5
(B) 12
(C) 11
(D) $7 + \sqrt{5}$

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Solution

We plot the vertice of a triangles i.e. (0,4) (0,0) and (3,0) on the paper shown as given below

Now, perimeter of $Δ$ AOB = Sum of the length of all its sides = d(AO)+d(OB)+d(AB)
$∵ Distance between the points (x_{1}, y_{1}) a n d (x_{2}, y_{2}), d = \sqrt{(x_{2} - x_{1})^{2} + (y_{2} - y_{1})^{2}} ∴ Distance between A(0,4) and O(0,0)$
$+ Distance between O(0,0) and B(3,0)$
$+ Distance between A(0,4), and B(3,0) = \sqrt{(0 - 0)^{2} + (0 - 4)^{2}} + \sqrt{(3 - 0)^{2} + (0 - 0)^{2}}$
$+ \sqrt{(3 - 0)^{2} + (0 - 4)^{2}} = \sqrt{0 + 16} + \sqrt{9 + 0} + \sqrt{(3)^{2} + (4)^{2}} = 4 + 3 + \sqrt{9 + 16} = 7 + \sqrt{25} = 7 + 5 = 12 Hence, the required perimeter of triangle is 12.$

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