If f(k)=1∫−1√1−x2√k+1−xdx, then the value of 99∑k=0f(k)� – InterviewSolution

1.	If f(k)=1∫−1√1−x2√k+1−xdx, then the value of 99∑k=0f(k)π is
Answer» If $f (k) = 1 \int - 1 \frac{\sqrt{1 - x^{2}}}{\sqrt{k + 1} - x} d x,$ then the value of $99 \sum k = 0 \frac{f (k)}{π}$ is

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