The approximate value of f(5.001) where f(x)=x3−7x2+15, is: – InterviewSolution

1.	The approximate value of f(5.001) where f(x)=x3−7x2+15, is:
Answer» The approximate value of $f (5.001)$ where $f (x) = x^{3} - 7 x^{2} + 15,$ is:

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