Hãy nhập câu hỏi của bạn vào đây, nếu là tài khoản VIP, bạn sẽ được ưu tiên trả lời.
a.
\(y'=\dfrac{3}{cos^2\left(3x-\dfrac{\pi}{4}\right)}-\dfrac{2}{sin^2\left(2x-\dfrac{\pi}{3}\right)}-sin\left(x+\dfrac{\pi}{6}\right)\)
b.
\(y'=\dfrac{\dfrac{\left(2x+1\right)cosx}{2\sqrt{sinx+2}}-2\sqrt{sinx+2}}{\left(2x+1\right)^2}=\dfrac{\left(2x+1\right)cosx-4\left(sinx+2\right)}{\left(2x+1\right)^2}\)
c.
\(y'=-3sin\left(3x+\dfrac{\pi}{3}\right)-2cos\left(2x+\dfrac{\pi}{6}\right)-\dfrac{1}{sin^2\left(x+\dfrac{\pi}{4}\right)}\)
Chứng minh các biểu thức đã cho không phụ thuộc vào x.
Từ đó suy ra f'(x)=0
a) f(x)=1⇒f′(x)=0f(x)=1⇒f′(x)=0 ;
b) f(x)=1⇒f′(x)=0f(x)=1⇒f′(x)=0 ;
c) f(x)=\(\frac{1}{4}\)(\(\sqrt{2}\)-\(\sqrt{6}\))=>f'(x)=0
d,f(x)=\(\frac{3}{2}\)=>f'(x)=0
b: \(y=\dfrac{1}{2}\sin4x-1\)
\(-1< =\sin4x< =1\)
\(\Leftrightarrow-\dfrac{1}{2}< =\dfrac{1}{2}\cdot\sin4x< =\dfrac{1}{2}\)
\(\Leftrightarrow-\dfrac{3}{2}< =\dfrac{1}{2}\cdot\sin4x-1< =-\dfrac{1}{2}\)
Do đó: \(y_{max}=\dfrac{-1}{2}\) khi \(4x=\dfrac{\Pi}{2}+k\Pi\)
hay \(x=\dfrac{\Pi}{8}+\dfrac{k\Pi}{4}\)
\(y_{min}=\dfrac{-3}{2}\) khi \(4x=-\dfrac{\Pi}{2}+k\Pi\)
hay \(x=-\dfrac{\Pi}{8}+\dfrac{k\Pi}{4}\)
g: \(0>=-2\left|\cos x\right|>=-2\)
\(\Leftrightarrow5>=-2\left|\cos x\right|+5>=3\)
Do đó: \(y_{max}=5\) khi \(\)\(\cos x=0\)
hay \(x=\dfrac{\Pi}{2}+k\Pi\)
\(y_{min}=3\) khi \(\cos x=-1\)
hay \(x=-\Pi+k2\Pi\)
2.
a. ĐKXĐ: \(x\ne\frac{\pi}{2}+k\pi\)
Miền xác định đối xứng
\(f\left(-x\right)=\frac{-x+tan\left(-x\right)}{\left(-x\right)^2+1}=\frac{-x-tanx}{x^2+1}=-\frac{x+tanx}{x^2+1}=-f\left(x\right)\)
Hàm lẻ
b. \(f\left(-x\right)=\frac{5\left(-x\right).cos\left(-5x\right)}{sin^2\left(-x\right)+2}=\frac{-5x.cos5x}{sin^2x+2}=-f\left(x\right)\)
Hàm lẻ
c. \(f\left(-x\right)=\left(-2x-3\right)sin\left(-4x\right)=\left(2x+3\right)sin4x\)
Hàm không chẵn không lẻ
d. \(f\left(-x\right)=sin^4\left(-2x\right)+cos^4\left(-2x-\frac{\pi}{6}\right)\)
\(=sin^42x+cos^4\left(2x+\frac{\pi}{6}\right)\)
Hàm ko chẵn ko lẻ
1. ĐKXĐ:
a.
\(cos\left(x-\frac{\pi}{4}\right)\ne0\)
\(\Leftrightarrow x-\frac{\pi}{4}\ne\frac{\pi}{2}+k\pi\)
\(\Leftrightarrow x\ne\frac{3\pi}{4}+k\pi\)
b.
\(x^2-1\ne0\Leftrightarrow x\ne\pm1\)
c.
Hàm xác định trên R
d.
\(cosx\ne0\Leftrightarrow x\ne\frac{\pi}{2}+k\pi\)
3.
\(f\left(x+\frac{\pi}{3}\right)=cos\left(x+\frac{\pi}{3}\right)\Rightarrow f'\left(x+\frac{\pi}{3}\right)=-sin\left(x+\frac{\pi}{3}\right)\)
\(f'\left(x-\frac{\pi}{6}\right)=-sin\left(x-\frac{\pi}{6}\right)\)
\(f'\left(0\right)=-sin\left(0\right)=0\)
\(2f'\left(x+\frac{\pi}{3}\right).f'\left(x-\frac{\pi}{6}\right)=2sin\left(x+\frac{\pi}{3}\right)sin\left(x-\frac{\pi}{6}\right)\)
\(=cos\left(\frac{\pi}{2}\right)-cos\left(2x+\frac{\pi}{6}\right)=-cos\left(2x+\frac{\pi}{6}\right)\)
\(f'\left(0\right)-f\left(2x+\frac{\pi}{6}\right)=0-cos\left(2x+\frac{\pi}{6}\right)=-cos\left(2x+\frac{\pi}{6}\right)\)
\(\Rightarrow2f'\left(x+\frac{\pi}{3}\right)f'\left(x-\frac{\pi}{6}\right)=f'\left(0\right)-f\left(2x+\frac{\pi}{6}\right)\) (đpcm)
4.
\(y=3\left(sin^4x+cos^4x\right)-2\left(sin^6x+cos^6x\right)\)
\(=3\left(sin^2x+cos^2x\right)^2-6sin^2x.cos^2x-2\left(sin^2x+cos^2x\right)^3+6sin^2x.cos^2x\left(sin^2x+cos^2x\right)\)
\(=3-2=1\)
\(\Rightarrow y'=0\) ; \(\forall x\)
5.
\(y=\left(\frac{sinx}{1+cosx}\right)^3=\left(\frac{sinx\left(1-cosx\right)}{1-cos^2x}\right)^3=\left(\frac{sinx\left(1-cosx\right)}{sin^2x}\right)^3=\left(\frac{1-cosx}{sinx}\right)^3\)
\(y'=3\left(\frac{1-cosx}{sinx}\right)^2\left(\frac{sin^2x-cosx\left(1-cosx\right)}{sin^2x}\right)=3\left(\frac{1-cosx}{sinx}\right)^2\left(\frac{1-cosx}{sin^2x}\right)=\frac{3\left(1-cosx\right)^3}{sin^4x}\)
\(\Rightarrow y'.sinx-3y=\frac{3\left(1-cosx\right)^3}{sin^3x}-3\left(\frac{1-cosx}{sinx}\right)^3=0\) (đpcm)