举一反三
- 将函数f(x)=sin(2x-π3)
- 函数f(x)=sin(2x-π/4),x属于【0,π/2】的递增区间是?
- 求微分方程[img=634x60]17da653955cf9e7.png[/img]的特解。 ( ) A: sin(2*x)/3 - cos(x) - cos(x)/3 B: sin(2*x)/3 - cos(x) - sin(x)/3 C: cos(2*x)/3 - cos(x) - sin(x)/3 D: sin(2*x)/3 - sin(x) - sin(x)/3
- f(x)=cos(2x-丌/3)化为sin
- 17e0b849d3a4a3b.jpg,计算[img=19x34]17e0ab14a855463.jpg[/img]的实验命令为( ). A: syms x; f=diff((1+sin(x)^2)/cos(x),1)f=2*sin(x) + (sin(x)*(sin(x)^2 + 1))/cos(x)^2 B: f=diff((1+sinx^2)/cosx,1)f=1/2/x^(1/2)/(1-x)^(1/2) C: syms x;f=diff((1+sinx^2)/cosx,1)f=2*sin(x) + (sin(x)*(sin(x)^2 + 1))/cos(x)^2
内容
- 0
【单选题】如图所示,函数f(x)=sin(ωx+φ) 的图象与二次函数y=- x 2 + x+1的图象交于点A(x 1 ,0)和B(x 2 ,1),则f(x)的解析式为() A. f(x)=sin B. f(x)=sin C. f(x)=sin D. f(x)=sin
- 1
函数\(y = { { \sin x} \over x}\)的导数为( ). A: \( { { x\cos x - \sin x} \over { { x^2}}}\) B: \( { { x\cos x + \sin x} \over { { x^2}}}\) C: \( { { x\sin x - \cos x} \over { { x^2}}}\) D: \( { { x\sin x + \cos x} \over { { x^2}}}\)
- 2
求方程 的根的程序( )。 A: A.solve(sin(x)-2*x+0.5=0,x); B: B.solve(sin(x)-2*x+0.5=0,'x'); C: C.solve('sin(x)-2*x+0.5=0','x'); D: D.solve('sin(x)-2*x+0.5=0',x);
- 3
求微分方程[img=364x55]17da65386dfd612.png[/img]的通解; ( ) A: - cos(2*x)*exp(x)*(x/4 - sin(4*x)/16) + C23*cos(2*x)*exp(x) + C24*sin(2*x)*exp(x) B: (3*sin(2*x)*exp(x))/32 - (sin(6*x)*exp(x))/32 - cos(2*x)*exp(x)*(x/4 - sin(4*x)/16) + C23*cos(2*x)*exp(x) + C24*sin(2*x)*exp(x) C: - sin(4*x)/16) + C23*cos(2*x)*exp(x) + C24*sin(2*x)*exp(x) D: (sin(6*x)*exp(x))/32 - cos(2*x)*exp(x)*(x/4 - sin(4*x)/16) + C23*cos(2*x)*exp(x) + C24*sin(2*x)*exp(x)
- 4
设f(x)是可导函数,且f′(x)=sin<sup>2</sup>[sin(x+1)],f(0)=4,f(x)的反函数是x=φ(y),则φ′(4)=()。 A: 1/sin<sup>2</sup>(sin1) B: sin<sup>2</sup>(sin1) C: -sin<sup>2</sup>(sin1) D: -1/sin<sup>2</sup>(sin1)