Do tam giác ABC vuông tại A và \(\widehat{B}=30^o\) \(\Rightarrow C=60^o\)

\(\Rightarrow\left(\overrightarrow{AB},\overrightarrow{BC}\right)=150^o;\)\(\left(\overrightarrow{BA},\overrightarrow{BC}\right)=30^o;\left(\overrightarrow{AC},\overrightarrow{CB}\right)=120^o\)

\(\left(\overrightarrow{AB},\overrightarrow{AC}\right)=90^o;\left(\overrightarrow{BC},\overrightarrow{BA}\right)=30^o\).Do vậy:

a) \(\cos\left(\overrightarrow{AB},\overrightarrow{BC}\right)+\sin\left(\overrightarrow{BA},\overrightarrow{BC}\right)+\tan\frac{\left(\overrightarrow{AC},\overrightarrow{CB}\right)}{2}\)

\(=\cos150^o+\sin30^o+\tan60^o\)

\(=-\frac{\sqrt{3}}{2}+\frac{1}{2}+\sqrt{3}\)

\(=\frac{\sqrt{3}+1}{2}\)

b) \(\sin\left(\overrightarrow{AB},\overrightarrow{AC}\right)+\cos\left(\overrightarrow{BC},\overrightarrow{AB}\right)+\cos\left(\overrightarrow{CA},\overrightarrow{BA}\right)\)

\(=\sin90^o+\cos30^o+\cos0^o\)

\(=1+\frac{\sqrt{3}}{2}\)

\(=\frac{2+\sqrt{3}}{2}\)

\(\begin{array}{l}A = \sin \left( {a - 17^\circ } \right)\cos \left( {a + 13^\circ } \right) - \sin \left( {a + 13^\circ } \right)\cos \left( {a - 17^\circ } \right)\\A = \sin \left( {a - 17^\circ  - a - 13^\circ } \right) = \sin \left( { - 30^\circ } \right) =  - \frac{1}{2}\end{array}\)

\(\begin{array}{l}B = \cos \left( {b + \frac{\pi }{3}} \right)\cos \left( {\frac{\pi }{6} - b} \right) - \sin \left( {b + \frac{\pi }{3}} \right)\sin \left( {\frac{\pi }{6} - b} \right)\\B = \cos \left( {b + \frac{\pi }{3} + \frac{\pi }{6} - b} \right) = \cos \frac{\pi }{2} = 0\end{array}\)

a)     \(\tan \left( {a + b} \right) = \frac{{\sin \left( {a + b} \right)}}{{\cos \left( {a + b} \right)}} = \frac{{\sin a.\cos b + \cos a.\sin b}}{{\cos a.\cos b - \sin a.\sin b}}\)

\(\begin{array}{l} = \frac{{\sin a.\cos b + \cos a.\cos b}}{{\cos a.\cos b - \sin a.\sin b}} = \frac{{\sin a.\cos b}}{{\cos a.\cos b - \sin a.\sin b}} + \frac{{\cos a.\sin b}}{{\cos a.\cos b - \sin a.\sin b}}\\ = \frac{{\frac{{\sin a.\cos b}}{{\cos a.\cos b}}}}{{\frac{{\cos a.\cos b - \sin a.\sin b}}{{\cos a.\cos b}}}} + \frac{{\frac{{\cos a.\sin b}}{{\cos a.\cos b}}}}{{\frac{{\cos a.\cos b - \sin a.\sin b}}{{\cos a.\cos b}}}} = \frac{{\tan a}}{{1 - \tan a.\tan b}} + \frac{{\tan b}}{{1 - \tan a.\tan b}}\\ = \frac{{\tan a + \tan b}}{{1 - \tan a.\tan b}}\end{array}\)

\( \Rightarrow \tan \left( {a + b} \right) = \frac{{\tan a + \tan b}}{{1 - \tan a.\tan b}}\)

b)      

\(\tan \left( {a - b} \right) = \tan \left( {a + \left( { - b} \right)} \right) = \frac{{\tan a + \tan \left( { - b} \right)}}{{1 - \tan a.\tan \left( { - b} \right)}} = \frac{{\tan a - \tan b}}{{1 + \tan a.\tan b}}\)

a)     \(\cos \left( {a + b} \right) = \sin \left[ {\left( {\frac{\pi }{2} - a} \right) - b} \right] = \sin \left( {\frac{\pi }{2} - a} \right).\cos b - \cos \left( {\frac{\pi }{2} - a} \right).\sin b = \cos a.\cos b - \sin a.\sin b\)

b)     \(\cos \left( {a - b} \right) = \cos \left[ {a + \left( { - b} \right)} \right] = \cos a.\cos \left( { - b} \right) - \sin a.\sin \left( { - b} \right) = \sin a.\sin b + \cos a.\cos b\)

\(A=\frac{2sinx.cosx+sinx}{1+2cos^2x-1+cosx}=\frac{sinx\left(2cosx+1\right)}{cosx\left(2cosx+1\right)}=\frac{sinx}{cosx}=tanx\)

\(B=\frac{cosa}{sina}\left(\frac{1+sin^2a}{cosa}-cosa\right)=\frac{cosa}{sina}\left(\frac{1+sin^2a-cos^2a}{cosa}\right)=\frac{cosa}{sina}.\frac{2sin^2a}{cosa}=2sina\)

\(C=\frac{1+cos2x+cosx+cos3x}{2cos^2x-1+cosx}=\frac{1+2cos^2x-1+2cos2x.cosx}{cos2x+cosx}=\frac{2cosx\left(cosx+cos2x\right)}{cos2x+cosx}=2cosx\)

\(D=\frac{2sinx.cosx.\left(-tanx\right)}{-tanx.sinx}-2cosx=2cosx-2cosx=0\)

\(E=cos^2x.cot^2x-cot^2x+cos^2x+2cos^2x+2sin^2x\)

\(E=cot^2x\left(cos^2x-1\right)+cos^2x+2=\frac{cos^2x}{sin^2x}\left(-sin^2x\right)+cos^2x+2=2\)

\(F=\frac{sin^2x\left(1+tan^2x\right)}{cos^2x\left(1+tan^2x\right)}=\frac{sin^2x}{cos^2x}=tan^2x\)

Câu G mẫu số có gì đó sai sai, sao lại là \(2sina-sina?\)

\(H=sin^4\left(\frac{\pi}{2}+a\right)-cos^4\left(\frac{3\pi}{2}-a\right)+1=cos^4a-sin^4a+1\)

\(=\left(cos^2a-sin^2a\right)\left(cos^2a+sin^2a\right)+1=cos^2a-\left(1-cos^2a\right)+1=2cos^2a\)