Math, asked by khimkhimprasad, 9 months ago

factorise 2x^3-5x^2-19x-42

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Answered by shruti10dhiman

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Step-by-step explanation: I Hope you like the answer

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Answered by kush193874

Step-by-step explanation:

Answer:

factors of 42 ----> ±1, ±2, ±3, ±6, ±7

$f(1) = 2(1) {}^{3} - 5(1) {}^{2} - 19(1) + 42 \\ \\ = 2 - 5 - 19 + 42 ≠ 0$

$f( - 1) = 2( - 1) {}^{3} - 5( -1 ) - 19( - ) + 42 \\ \\ = - 3 - 5 + 19 + 42 ≠ 0$

$f( - 2) = 2( - 2) {}^{3} - 5( - 2) {}^{2} - 19( - 12) + 42 \\ \\ = - 16 - 20 + 19 + 42 \\ \\ ≠ 0$

$f(2) = 2(2) {}^{3} - 5(2) {}^{2} - 19(2) + 42 \\ \\ = 16 - 20 - 38 + 4$

x = 2 is zero

Therefore, (x – 2) is factor.

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