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प्रश्न
If x + y + z = 0 then show that `|(1, 1, 1),(x, y, z),(x^3, y^3, z^3)| = 0`, using properties of determinant.
बेरीज
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उत्तर
`Δ = |(1, 1, 1),(x, y, z),(x^3, y^3, z^3)|`
By applying
C1 → C1 – C2
C2 → C2 – C3
⇒ `Δ = |(0, 0, 1),(x - y, y - z, z),(x^3 - y^3, y^3 - z^3, z^3)|`
⇒ `Δ = |(0, 0, 1),(x - y, y - z, z),((x - y), (y - z), z^3),((x^2 + y^2 + xy),(y^2 + z^2 + yz),)|`
⇒ Δ = (x – y) (y – z)
`|(0, 0, 1),(1, 1, z),(x^2 + y^2 + xy, y^2 + z^2 + yz, z^3)|`
⇒ Δ = (x – y) (y – z) [(y2 + z2 + yz) – (x2 + y2 + xy)]
⇒ Δ = (x – y) (y – z) [z2 – x2 + y(z – x)]
⇒ Δ = (x – y) (y – z) [(z – x) (z + x) + y(z – x)]
⇒ Δ = (x – y) (y – z) (z – x) (x + y + z)
But it is given that
x + y + z = 0
∴ Δ = 0.
Hence Proved.
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