cos2x+2sinxcosx=-1的解集怎么算的?
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cos2x+2sinxcosx=-1
cos2x+sin2x=-1
√2cos(2x+π/4)=-1
cos(2x+π/4)=-√2/2
2x+π/4=2kπ+3π/4或2x+π/4=2kπ+5π/4
2x=2kπ+π/2或2x=2kπ+π
x=kπ+π/4或x=kπ+π/2
cos2x+sin2x=-1
√2cos(2x+π/4)=-1
cos(2x+π/4)=-√2/2
2x+π/4=2kπ+3π/4或2x+π/4=2kπ+5π/4
2x=2kπ+π/2或2x=2kπ+π
x=kπ+π/4或x=kπ+π/2
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cos2x+2sinxcosx=-1
cos2x +sin2x =-1
√2 sin( 2x + π/4)= -1
sin( 2x + π/4)= -√2/2
2x +π/4 = -π/4 +2kπ
2x = -π/2 +2kπ
x = -π/4 + kπ
cos2x +sin2x =-1
√2 sin( 2x + π/4)= -1
sin( 2x + π/4)= -√2/2
2x +π/4 = -π/4 +2kπ
2x = -π/2 +2kπ
x = -π/4 + kπ
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cos2x+2sinxcosx=-1
cos2x+sin2x=-1
√2sin(2x+π/4)=-1
sin(2x+π/4)=-√2/2
2x+π/4=3π/2+2kπ
解得x=5π/8+kπ k为整数
cos2x+sin2x=-1
√2sin(2x+π/4)=-1
sin(2x+π/4)=-√2/2
2x+π/4=3π/2+2kπ
解得x=5π/8+kπ k为整数
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cos2x+2sinxcosx=-1
√2 sin( 2x + π/4)= -1 sin( 2x + π/4)= -√2/2
2x +π/4 = -π/4 +2kπ x = -π/4 + kπ k∈z
√2 sin( 2x + π/4)= -1 sin( 2x + π/4)= -√2/2
2x +π/4 = -π/4 +2kπ x = -π/4 + kπ k∈z
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