limx→1lnxx−1\lim\limits_{x \to 1}\dfrac{\ln x}{x - 1}x→1limx−1lnx.
∫−ππx2sinxdx=\int_{- \pi}^{\pi}x^2\sin xdx =∫−ππx2sinxdx=( ).
(A)222
(B)000
(C)111
(D)−1-1−1
若f(x)={sinx,x<0−ax,x≥0f(x)=\begin{cases}\sin x, & x < 0\\-ax, & x\geq0\end{cases}f(x)={sinx,−ax,x<0x≥0在x=0x = 0x=0处可导,求aaa的值.
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