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Orthocentre

The P.V.s o...

Question

The $P . V . s$ of the vertices of a triangle are $2 ¯ i + 3 ¯ j + 4 ¯ k, 4 ¯ i + 6 ¯ j + 3 ¯ k, 3 ¯ i + 2 ¯ j + 3 ¯ k$ $P . V .$ of its orthocentre is

2 ¯ i - 3 ¯ j + 4 ¯ k

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2 ¯ i + 3 ¯ j - 4 ¯ k

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2 ¯ i + 3 ¯ j + 4 ¯ k

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- 2 ¯ i + 3 ¯ j + 4 ¯ k

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Solution

The correct option is C $2 ¯ i + 3 ¯ j + 4 ¯ k$
We have,
$\begin{matrix} A (2 ¯ i + 3 ¯ j + 4 ¯ ¯ ¯ k) B (4 ¯ i + 6 ¯ j + 3 ¯ ¯ ¯ k) C (3 ¯ i + 2 ¯ j + 3 ¯ ¯ ¯ k) A B = \sqrt{14} A c = \sqrt{3} B C = \sqrt{17} \end{matrix}$
Hence,
Triangle is right angled (Pythagorean theorem)
Clearly or the centre is $A$ $(2 ¯ i + 3 ¯ j + 4 ¯ ¯ ¯ k)$
Then,
Option $C$ is correct answer.

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