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解答:
△ABC中,
cosA=4/知耐5, sinA=√(1-cos²A)=3/5, tanA=sinA/cosA=3/4
tanB=2,
cos²B=cos²B/(sin²肢高B+cos²B)=1/(1+tan²B)=1/5
cosB=√5/5 sinB=2√5/5,
(1) sin(A-B)
=sinAcosB-cosAsinB
=(3/5)*(√5/5)-(4/5)*(2√5/5)
=-√5/5
(2) tan(A+B)
=(tanA+tanB)/(1-tanAtanB)
=(2+3/历猛尺4)/(1-2*3/4)
=(8+3)/(4-6)
=-11/2
△ABC中,
cosA=4/知耐5, sinA=√(1-cos²A)=3/5, tanA=sinA/cosA=3/4
tanB=2,
cos²B=cos²B/(sin²肢高B+cos²B)=1/(1+tan²B)=1/5
cosB=√5/5 sinB=2√5/5,
(1) sin(A-B)
=sinAcosB-cosAsinB
=(3/5)*(√5/5)-(4/5)*(2√5/5)
=-√5/5
(2) tan(A+B)
=(tanA+tanB)/(1-tanAtanB)
=(2+3/历猛尺4)/(1-2*3/4)
=(8+3)/(4-6)
=-11/2
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