\(\dfrac{sin\left(a-b\right)}{sina.sinb}+\dfrac{sin\left(b-c\right)}{sinb.sinc}+\dfrac{sin\left(c-a\right)}{sinc.sina}\)

\(=\dfrac{sina.cosb-cosa.sinb}{sina.sinb}+\dfrac{sinb.cosc-cosb.sinc}{sinb.sinc}+\dfrac{sinc.cosa-cosc.sina}{sina.sinc}\)

\(=\dfrac{cosb}{sinb}-\dfrac{cosa}{sina}+\dfrac{cosc}{sincc}-\dfrac{cosb}{sinb}+\dfrac{cosa}{sina}-\dfrac{cosc}{sincc}\)

\(=0\)

\(\sqrt{\frac{y+1}{\left(x+2\right)^2}}.\sqrt{\frac{\left(x-2\right)^6}{y^2-2y+1}}\)

\(=\frac{\sqrt{y+1}}{x+2}\sqrt{\frac{\left(x-2\right)^6}{\left(y-1\right)^2}}\)

\(=\frac{\sqrt{y+1}}{x+2}.\frac{\left(x-2\right)^6}{y-1}\)

\(=\frac{-\left(x-2\right)^5\sqrt{y+1}}{y-1}\)

a) Đồ thị như hình bên.

b) tgα = = 1,

tgβ = = = ,

tgɣ = = = √3.

Suy ra α = 45⁰, β = 30⁰, ɣ = 60⁰ .

a) Đồ thị như hình bên.

b) tgα = = 1,

tgβ = = = ,

tgɣ = = = √3.

Suy ra α = 45⁰, β = 30⁰, ɣ = 60⁰ .

Bạn cần viết đề bằng công thức toán để được hỗ trợ tốt hơn

a) Vì $90^{\circ }<\alpha <180^{\circ }$ nên $\cos \alpha <0$ mặt khác ${\sin }^2\alpha +{\cos }^2\alpha =1$ suy ra $\cos \alpha =-\sqrt{1-{\sin }^2\alpha }=-\sqrt{1-\genfrac{}{}{0ex}{}{1}{9}}=-\genfrac{}{}{0ex}{}{2\sqrt{2}}{3}$.

Do đó $\tan \alpha =\genfrac{}{}{0ex}{}{\sin \alpha }{\cos \alpha }=\genfrac{}{}{0ex}{}{\genfrac{}{}{0ex}{}{1}{3}}{-\genfrac{}{}{0ex}{}{2\sqrt{2}}{3}}=-\genfrac{}{}{0ex}{}{1}{2\sqrt{2}}$.

b) Vì ${\sin }^2\alpha +{\cos }^2\alpha =1$ nên $\sin \alpha =\sqrt{1-{\cos }^2\alpha }=\sqrt{1-\genfrac{}{}{0ex}{}{4}{9}}=\genfrac{}{}{0ex}{}{\sqrt{5}}{3}$ và $\cot \alpha =\genfrac{}{}{0ex}{}{\cos \alpha }{\sin \alpha }=\genfrac{}{}{0ex}{}{-\genfrac{}{}{0ex}{}{2}{3}}{\genfrac{}{}{0ex}{}{\sqrt{5}}{3}}=-\genfrac{}{}{0ex}{}{2}{\sqrt{5}}$.

c) Vì $\tan \gamma =-2\sqrt{2}<0\Rightarrow \cos \alpha <0$ mặt khác ${\tan }^2\alpha +1=\genfrac{}{}{0ex}{}{1}{{\cos }^2\alpha }$ nên $\cos \alpha =-\sqrt{\genfrac{}{}{0ex}{}{1}{{\tan }^2+1}}=-\sqrt{\genfrac{}{}{0ex}{}{1}{8+1}}=-\genfrac{}{}{0ex}{}{1}{3}$.
Ta có $\tan \alpha =\genfrac{}{}{0ex}{}{\sin \alpha }{\cos \alpha }\Rightarrow \sin \alpha =\tan \alpha \cdot \cos \alpha =-2\sqrt{2}\cdot \left(-\genfrac{}{}{0ex}{}{1}{3}\right)=\genfrac{}{}{0ex}{}{2\sqrt{2}}{3}$ $\Rightarrow \cot \alpha =\genfrac{}{}{0ex}{}{\cos \alpha }{\sin \alpha }=\genfrac{}{}{0ex}{}{-\genfrac{}{}{0ex}{}{1}{3}}{\genfrac{}{}{0ex}{}{2\sqrt{2}}{3}}=-\genfrac{}{}{0ex}{}{1}{2\sqrt{2}}$.

Coi như tất cả các biểu thức cần tính đạo hàm đều xác định.

1.

\(y'=2sin\sqrt{4x+3}.\left(sin\sqrt{4x+3}\right)'=2sin\sqrt{4x+3}.cos\sqrt{4x+3}.\left(\sqrt{4x+3}\right)'\)

\(=sin\left(2\sqrt{4x+3}\right).\dfrac{4}{2\sqrt{4x+3}}=\dfrac{2sin\left(2\sqrt{4x+3}\right)}{\sqrt{4x+3}}\)

2.

\(y'=3x^3+\dfrac{17}{x\sqrt{x}}\)

3.

\(y'=\dfrac{1}{2\sqrt{\dfrac{sin4x}{cos\left(x^2+2\right)}}}.\left(\dfrac{sin4x}{cos\left(x^2+2\right)}\right)'\)

\(=\dfrac{1}{2\sqrt{\dfrac{sin4x}{cos\left(x^2+2\right)}}}.\dfrac{4cos4x.cos\left(x^2+2\right)+2x.sin4x.sin\left(x^2+2\right)}{cos^2\left(x^2+2\right)}\)

4.

\(y'=-\dfrac{\left(\sqrt{sin^2\left(6-x\right)+4x}\right)'}{sin^2\left(6-x\right)+4x}=-\dfrac{\left[sin^2\left(6-x\right)+4x\right]'}{2\sqrt{\left[sin^2\left(6-x\right)+4x\right]^3}}\)

\(=-\dfrac{2sin\left(6-x\right).\left[sin\left(6-x\right)\right]'+4}{2\sqrt{\left[sin^2\left(6-x\right)+4x\right]^3}}=-\dfrac{-2sin\left(6-x\right).cos\left(6-x\right)+4}{2\sqrt{\left[sin^2\left(6-x\right)+4x\right]^3}}\)

\(=\dfrac{sin\left(12-2x\right)-4}{2\sqrt{\left[sin^2\left(6-x\right)+4x\right]^3}}\)

5.

\(y'=sin^2\left(\dfrac{2x-1}{4-x}\right)+2x.sin\left(\dfrac{2x-1}{4-x}\right).\left[sin\left(\dfrac{2x-1}{4-x}\right)\right]'\)

\(=sin^2\left(\dfrac{2x-1}{4-x}\right)+2x.sin\left(\dfrac{2x-1}{4-x}\right).cos\left(\dfrac{2x-1}{4-x}\right).\left(\dfrac{2x-1}{4-x}\right)'\)

\(=sin^2\left(\dfrac{2x-1}{4-x}\right)+x.sin\left(\dfrac{4x-2}{4-x}\right).\dfrac{7}{\left(4-x\right)^2}\)

a.

\(y'=\dfrac{2-x}{2x^2\sqrt{x-1}}=0\Rightarrow x=2\)

\(y\left(1\right)=0\) ; \(y\left(2\right)=\dfrac{1}{2}\) ; \(y\left(5\right)=\dfrac{2}{5}\)

\(\Rightarrow y_{min}=y\left(1\right)=0\)

\(y_{max}=y\left(2\right)=\dfrac{1}{2}\)

b.

\(y'=\dfrac{1-3x}{\sqrt{\left(x^2+1\right)^3}}< 0\) ; \(\forall x\in\left[1;3\right]\Rightarrow\) hàm nghịch biến trên [1;3]

\(\Rightarrow y_{max}=y\left(1\right)=\dfrac{4}{\sqrt{2}}=2\sqrt{2}\)

\(y_{min}=y\left(3\right)=\dfrac{6}{\sqrt{10}}=\dfrac{3\sqrt{10}}{5}\)

c.

\(y=1-cos^2x-cosx+1=-cos^2x-cosx+2\)

Đặt \(cosx=t\Rightarrow t\in\left[-1;1\right]\)

\(y=f\left(t\right)=-t^2-t+2\)

\(f'\left(t\right)=-2t-1=0\Rightarrow t=-\dfrac{1}{2}\)

\(f\left(-1\right)=2\) ; \(f\left(1\right)=0\) ; \(f\left(-\dfrac{1}{2}\right)=\dfrac{9}{4}\)

\(\Rightarrow y_{min}=0\) ; \(y_{max}=\dfrac{9}{4}\)

d.

Đặt \(sinx=t\Rightarrow t\in\left[-1;1\right]\)

\(y=f\left(t\right)=t^3-3t^2+2\Rightarrow f'\left(t\right)=3t^2-6t=0\Rightarrow\left[{}\begin{matrix}t=0\\t=2\notin\left[-1;1\right]\end{matrix}\right.\)

\(f\left(-1\right)=-2\) ; \(f\left(1\right)=0\) ; \(f\left(0\right)=2\)

\(\Rightarrow y_{min}=-2\) ; \(y_{max}=2\)