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प्रश्न
In the following example, can the segment joining the given points form a triangle? If triangle is formed, state the type of the triangle considering sides of the triangle.
A(√2, √2), B(−√2, −√2), C(−√6, √6)
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उत्तर
By distance formula,
d(A, B) = `sqrt((x_2 − x_1)^2 + (y_2 − y_1)^2)`
d(A, B) = `sqrt((−sqrt2 − sqrt2)^2 + (−sqrt2− sqrt2)^2)`
d(A, B) = `sqrt((−2sqrt2)^2 + (−2sqrt2)^2)`
d(A, B) = `sqrt(8 + 8)`
d(A, B) = `sqrt(16)`
∴ d(A, B) = 4 ...(i)
d(B, C) = `sqrt((x_2 − x_1)^2 + (y_2 − y_1)^2`
d(B, C) = `sqrt([−sqrt6 − (− sqrt2)]^2 + [sqrt6 − (− sqrt2)]^2)`
d(B, C) = `sqrt((−sqrt6 + sqrt2)^2 + (sqrt6 + sqrt2)^2)`
d(B, C) = `sqrt(6 - 2sqrt12 + 2 + 6 + 2sqrt12 + 2)`
d(B, C) = `sqrt(16)`
∴ d(B, C) = 4 ...(ii)
d(A, C) = `sqrt((x_2 − x_1)^2 + (y_2 − y_1)^2`
d(A, C) = `sqrt((−sqrt6 − sqrt2)^2 + (sqrt6 − sqrt2)^2)`
d(A, C) = `sqrt(6 + 2sqrt12 + 2 + 6 - 2sqrt12 + 2)`
d(A, C) = `sqrt(16)`
∴ d(A, C) = 4 ...(iii)
On adding (i) and (ii),
d(A, B) + d(B, C) = 4 + 4 = 8
∴ d(A, B) + d(B, C) + d(A, C) ...[From (iii)]
∴ Points A, B, C are non collinear points. We can construct a triangle through 3 non collinear points.
∴ The segment joining the given points form a triangle.
Since, AB = BC = AC
∴ ∆ABC is an equilateral triangle.
∴ The segments joining the points A, B and C will form an equilateral triangle.
