已知f′(5)=−4f'(5) = - 4f′(5)=−4,则极限limh→0f(5)−f(5+h)2h=\lim\limits_{h \to 0}\dfrac{f(5) - f(5 + h)}{2h} =h→0lim2hf(5)−f(5+h)=( ).
(A)000
(B)222
(C)−2-2−2
(D)−4-4−4
设y=x2lnxy = x^2\ln xy=x2lnx,则y′=y' =y′=( ).
(A)2xlnx+2x2x\ln x + 2x2xlnx+2x
(B)2xlnx+x2x\ln x + x2xlnx+x
(C)2lnx+12\ln x + 12lnx+1
(D)2lnx+32\ln x + 32lnx+3
函数y=x3+12x+1y = x^3 + 12x + 1y=x3+12x+1在定义域内( ).
(A)单调增加
(B)单调减少
(C)先增后减
(D)先减后增
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