a) \(x=-45^0+k90^0,k\in\mathbb{Z}\)

b) \(x=-\dfrac{\pi}{6}+k\pi,k\in\mathbb{Z}\)

c) \(x=\dfrac{3\pi}{4}+k2\pi,k\in\mathbb{Z}\)

d) \(x=300^0+k540^0,k\in\mathbb{Z}\)

boring

đặt \(t=\tan x+\cot x\)

Thì PT trở thành

\(t^2-2=\dfrac{1}{2}t+1\)

\(\Leftrightarrow2t^2-t-6=0\Leftrightarrow t=2;t=-\dfrac{3}{2}\)

a) TH1 \(t=2\Leftrightarrow\tan x+\cot x=2\Leftrightarrow\tan^2x-2\tan x+1=0\)

\(\Leftrightarrow\tan x=1\Leftrightarrow x=\dfrac{\pi}{4};x=\dfrac{\pi}{4}+\pi\)(vì \(x\in\left(0;2\pi\right)\)

b) TH2:\(t=-\dfrac{3}{2}\Leftrightarrow\tan x+\dfrac{1}{\tan x}=-\dfrac{3}{2}\Leftrightarrow2\tan^2x+3\tan x+1=0\)

\(\Leftrightarrow\tan x=-1;\tan x=-\dfrac{1}{2}\)

+)\(\tan x=-1\Leftrightarrow x=-\dfrac{\pi}{4}+\pi;x=-\dfrac{\pi}{4}+2\pi\)

+) \(\tan x=-\dfrac{1}{2}\Leftrightarrow x=-0,46365+\pi;x=-0,46365+2\pi\)

Vậy trong khoảng đã cho PT có 6 No

ĐKXĐ: \(cosx\ne0\Rightarrow x\ne\dfrac{\pi}{2}+k\pi\)

\(\dfrac{tan^2x+tanx}{tan^2x+1}=\dfrac{\sqrt{2}}{2}sin\left(\dfrac{\pi}{4}+x\right)\)

\(\Leftrightarrow cos^2x\left(tan^2x+tanx\right)=\dfrac{\sqrt{2}}{2}\left(sin\dfrac{\pi}{4}.cosx+cos\dfrac{\pi}{4}.sinx\right)\)

\(\Leftrightarrow sin^2x+sinxcosx=\dfrac{1}{2}\left(sinx+cosx\right)\)

\(\Leftrightarrow sinx\left(sinx+cosx\right)-\dfrac{1}{2}\left(sinx+cosx\right)=0\)

\(\Leftrightarrow\left(sinx-\dfrac{1}{2}\right)\left(sinx+cosx\right)=0\)

\(\Leftrightarrow\left[{}\begin{matrix}sinx=\dfrac{1}{2}\\sinx+cosx=0\end{matrix}\right.\) \(\Leftrightarrow\left[{}\begin{matrix}sinx=\dfrac{1}{2}\\\sqrt{2}.sin\left(x+\dfrac{\pi}{4}\right)=0\end{matrix}\right.\) \(\Leftrightarrow\left[{}\begin{matrix}x=\dfrac{\pi}{6}+k2\pi\\x=\dfrac{5\pi}{6}+k2\pi\\x=\dfrac{-\pi}{4}+k\pi\end{matrix}\right.\)

có thể giải thích rõ ở dấu tương đương 1 và 2 cho em hiểu làm sao để rút gọn nó thành như vậy được không ạ

giúp mk với

a) Ta có:

sin(x+1)=23⇔[x+1=arcsin23+k2πx+1=π−arcsin23+k2π⇔[x=−1+arcsin23+k2πx=−1+π−arcsin23+k2π;k∈Zsin⁡(x+1)=23⇔[x+1=arcsin⁡23+k2πx+1=π−arcsin⁡23+k2π⇔[x=−1+arcsin⁡23+k2πx=−1+π−arcsin⁡23+k2π;k∈Z

b) Ta có:

sin22x=12⇔1−cos4x2=12⇔cos4x=0⇔4x=π2+kπ⇔x=π8+kπ4,k∈Zsin22x=12⇔1−cos⁡4x2=12⇔cos⁡4x=0⇔4x=π2+kπ⇔x=π8+kπ4,k∈Z

c) Ta có:

cot2x2=13⇔⎡⎢⎣cotx2=√33(1)cotx2=−√33(2)(1)⇔cotx2=cotπ3⇔x2=π3+kπ⇔x=2π3+k2π,k∈z(2)⇔cotx2=cot(−π3)⇔x2=−π3+kπ⇔x=−2π3+k2π;k∈Zcot2x2=13⇔[cot⁡x2=33(1)cot⁡x2=−33(2)(1)⇔cot⁡x2=cot⁡π3⇔x2=π3+kπ⇔x=2π3+k2π,k∈z(2)⇔cot⁡x2=cot⁡(−π3)⇔x2=−π3+kπ⇔x=−2π3+k2π;k∈Z

d) Ta có:

tan(π12+12x)=−√3⇔tan(π12+12π)=tan(−π3)⇔π12+12=−π3+kπ⇔x=−5π144+kπ12,k∈Z

Vậy nghiệm của phương trình đã cho là: x=−5π144+kπ12,k∈Z

a)
\(sin\left(x+1\right)=\dfrac{2}{3}\Leftrightarrow\left[{}\begin{matrix}x+1=arcsin\dfrac{2}{3}+k2\pi\\x+1=\pi-arcsin\dfrac{2}{3}+k2\pi\end{matrix}\right.\)
\(\Leftrightarrow\left[{}\begin{matrix}x=arcsin\dfrac{2}{3}-1+k2\pi\\x=\pi-arcsin\dfrac{2}{3}-1+k2\pi\end{matrix}\right.\)\(\left(k\in Z\right)\).

a: \(\Leftrightarrow\tan\left(x-\dfrac{\Pi}{5}\right)=-\cot x=\tan\left(x+\dfrac{\Pi}{2}\right)\)

\(\Leftrightarrow x-\dfrac{\Pi}{5}=x+\dfrac{\Pi}{2}+k\Pi\)

\(\Leftrightarrow k\Pi=-\dfrac{7}{10}\Pi\)

hay k=-7/10(vô lý)

b: \(\Leftrightarrow\cos x=\dfrac{1}{2}\)

\(\Leftrightarrow\left[{}\begin{matrix}x=\dfrac{\Pi}{3}+k2\Pi\\x=-\dfrac{\Pi}{3}+k2\Pi\end{matrix}\right.\)