貌似不难,sin(a+b)cos(c-b)-cos(b+a)sin(b-c)sin(a-b)sin(b-c)-cos(a-b)cos(c-b)请写出详细过程.(不然本人看不懂)为什么?我写的不够清楚还是...
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貌似不难,sin(a+b)cos(c-b)-cos(b+a)sin(b-c)sin(a-b)sin(b-c)-cos(a-b)cos(c-b)请写出详细过程.(不然本人看不懂)为什么?我写的不够清楚还
貌似不难,sin(a+b)cos(c-b)-cos(b+a)sin(b-c)sin(a-b)sin(b-c)-cos(a-b)cos(c-b)请写出详细过程.(不然本人看不懂)为什么?我写的不够清楚还是...
貌似不难,
sin(a+b)cos(c-b)-cos(b+a)sin(b-c)
sin(a-b)sin(b-c)-cos(a-b)cos(c-b)请写出详细过程.(不然本人看不懂)
为什么?我写的不够清楚还是...
貌似不难,sin(a+b)cos(c-b)-cos(b+a)sin(b-c)sin(a-b)sin(b-c)-cos(a-b)cos(c-b)请写出详细过程.(不然本人看不懂)为什么?我写的不够清楚还是...
1.sin(a+b)cos(c-b)-cos(b+a)sin(b-c)=sin(a+b)cos(c-b)+cos(a+b)sin(c-b)
=sin[(a+b)+(c-b)]=sin(a+c)
2.sin(a-b)sin(b-c)-cos(a-b)cos(c-b)=sin(a-b)sin(b-c)-cos(a-b)cos(b-c)
=-[cos(a-b)cos(b-c)-sin(a-b)sin(b-c)]=-cos[(a-b)+(b-c)]=-cos(a-c)
=cos(a-c)
参考正弦和余弦和与差的公式即可
麻烦将a+b和c-b看成a+b+c-b 然后用三角函数的那个公式 1化为cos(a+b+c-b) 第二题同
用正弦公式和余弦公式,把括号里的看成一个整体
貌似不难,sin(a+b)cos(c-b)-cos(b+a)sin(b-c)sin(a-b)sin(b-c)-cos(a-b)cos(c-b)请写出详细过程.(不然本人看不懂)为什么?我写的不够清楚还是...
cos(a-b)cos(b-c)+sin(a-b)sin(b-c)=
cos(A)*tan(B)*sin(C)
sin(A+B/2)=cos(C/2)
cos²a-cos²b=c,则sin(a+b)sin(a-b)=
非线性方程解析解-x0*cos(b)*cos(c)-y0*(-sin(a)*cos(b)*cos(c)-cos(a)*sin(c))-z0*(-cos(a)*cos(b)*cos(c)+sin(a)*sin(c))=0-x0*cos(b)*sin(c)-y0*(-sin(a)*cos(b)*sin(c)+cos(a)*cos(c))-z0*(-cos(a)*cos(b)*sin(c)-sin(a)*cos(c))=0 -x0*cos(b)-y0*sin(a)*co
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求非线性方程组的“解析解”-x0*cos(b)*cos(c)-y0*(-sin(a)*cos(b)*cos(c)-cos(a)*sin(c))-z0*(-cos(a)*cos(b)*cos(c)+sin(a)*sin(c))=0 -x0*cos(b)*sin(c)-y0*(-sin(a)*cos(b)*sin(c)+cos(a)*cos(c))-z0*(-cos(a)*cos(b)*sin(c)-sin(a)*cos(c))=0 -x0*cos
若sin²A+sin²B+cos²C
sin²A+sin²B=cos²C
sin(a-b)sin(b-r)-cos(a-b)cos(r-b)
数学三角函数的提A,b,c,∈(0,90) ,sin a + sin c = sin b ,cos b + cos c= cos a ,则b-a
cos平方a-cos平方b=A -cos{a+b}乘以cos{a-b}Bcos{a+b}乘以cos{a-b}C-sin{a+b}乘以sin{a-b}Dsin{a+b}乘以sin{a-b}要过程
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△ABC的内切圆半径为R,外接圆半径为R,则r/(4R)得知等于A.sin(A/2)sin(B/2)sin(C/2)B.cos(A/2)cos(B/2)sin(C/2)C.sin(A/2)cos(B/2)cos(C/2)D.sin(A/2)sin(B/2)cos(C/2)求详解,最好标明公式的值 sinA+sinB=2sin[(A+B)/2]cos[(A
化简(sin(a-b)-2sin a cos b)/2sin a sin b +coa(a+b)