Find tje value of K for which the equation x² + k (2x + k -1) + 2=0 has real and equal roots
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just equate equation to zero. And u will get it answer
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Answer:
k=2
Step-by-step explanation:
x^2 + k(2x + k-1) + 2 = 0
x^2 + 2kx + k^2-k+2 = 0
to have equal roots
(2k)^2 = 4 (k^2-k+2)
4k^2 = 4k^2-4k+8
4k = 8
k = 2
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