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Limits & Continuityhard
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Determine the value of kkk such that f(x)={ln⁡(1+kx)xx<0x2+4x≥0f(x) = \begin{cases} \frac{\ln(1+kx)}{x} & x < 0 \\ x^2 + 4 & x \ge 0 \end{cases}f(x)={xln(1+kx)​x2+4​x<0x≥0​ is continuous at x=0x=0x=0.