$\int(3x-2) dx$
A: $3x^2-2x + C$
B: $3x-2 +C$
C: $\frac{3}{2} x^2 -2x$
D: $\frac{3}{2} x^2 -2x + C$
A: $3x^2-2x + C$
B: $3x-2 +C$
C: $\frac{3}{2} x^2 -2x$
D: $\frac{3}{2} x^2 -2x + C$
举一反三
- 微分方程$y' = \sqrt{x},y(1)=0$的解为 A: $ \frac{2}{3} x^{\frac{3}{2}} + C $ B: $ \frac{2}{3} x^{\frac{3}{2}} -\frac{2}{3} $ C: $ x^{\frac{3}{2}}-1 $ D: $ x^{\frac{3}{2}}+C $
- 函数$f(x)={{\text{e}}^{2x-{{x}^{2}}}}$在$x=0$处的$3$次Taylor多项式为 A: $1+2x+2{{x}^{2}}+2{{x}^{3}}$ B: $1+2x+2{{x}^{2}}-4{{x}^{3}}$ C: $1+2x+{{x}^{2}}+\frac{2}{3}{{x}^{3}}$ D: $1+2x+{{x}^{2}}-\frac{2}{3}{{x}^{3}}$
- $(-x-1)(x^{4}+2x^{3}-x^{2}-4x-2)+(x+2)(x^{4}+x^{3}-x^{2}-2x-2)$的结果是( )。 A: $x^{2}-2$; B: $x^{3}-x^{2}-1$; C: $2x^{3}-4x-2$; D: $x^{4}+3x-2.$
- 方程${{x}^{2}}{{y}^{''}}-(x+2)(x{{y}^{'}}-y)={{x}^{4}}$的通解是( ) A: $y={{C}_{1}}x+{{C}_{2}}{{e}^{x}}-(\frac{1}{2}{{x}^{3}}+{{x}^{2}})$ B: $y={{C}_{1}}x+{{C}_{2}}{{e}^{x}}-(\frac{1}{2}{{x}^{3}}+{{x}^{4}})$ C: $y={{C}_{1}}x+{{C}_{2}}x{{e}^{x}}-(\frac{1}{2}{{x}^{3}}+{{x}^{4}})$ D: $y={{C}_{1}}x+{{C}_{2}}x{{e}^{x}}-(\frac{1}{2}{{x}^{3}}+{{x}^{2}})$
- \( d({e^ { { x^2}}} + 3) = 2x{e^ { { x^2}}}dx \)( ).