Ответ:
a) x=π/4+kπ/2, k∈Z
b) x={-13π/4; -11π/4; -9π/4;}
Объяснение:
a) √(0,5+sin²x)+cos2x=1
√(0,5+sin²x)+1-2sin²x=1
√(0,5+sin²x)=2sin²x
(√(0,5+sin²x))²=(2sin²x)²
0,5+sin²x=4sin⁴x
4sin⁴x-sin²x-0,5=0
sin²x=t, 0≤t≤1
4t²-t-0,5=0
D=1+8=9=3²
1) t=(1-3)/8=-1/4<0
2) t=(1+3)/8=1/2
sin²x=0,5
2sin²x=1
1-2sin²x=0
cos2x=0
2x=π/2+kπ
x=π/4+kπ/2, k∈Z
b) x∈[-3,5π; -2π]⇒x=
-3,5π≤π/4+kπ/2≤-2π
-3,5π-π/4≤kπ/2≤-2π-π/4
-7π-π/2≤kπ≤-4π-π/2
-7,5π≤kπ≤-4,5π
-7,5≤k≤-4,5, k∈Z⇒k={-7; -6; -5}
x=π/4+kπ/2,
x={-13π/4; -11π/4; -9π/4;}
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Answers & Comments
Ответ:
a) x=π/4+kπ/2, k∈Z
b) x={-13π/4; -11π/4; -9π/4;}
Объяснение:
a) √(0,5+sin²x)+cos2x=1
√(0,5+sin²x)+1-2sin²x=1
√(0,5+sin²x)=2sin²x
(√(0,5+sin²x))²=(2sin²x)²
0,5+sin²x=4sin⁴x
4sin⁴x-sin²x-0,5=0
sin²x=t, 0≤t≤1
4t²-t-0,5=0
D=1+8=9=3²
1) t=(1-3)/8=-1/4<0
2) t=(1+3)/8=1/2
sin²x=0,5
2sin²x=1
1-2sin²x=0
cos2x=0
2x=π/2+kπ
x=π/4+kπ/2, k∈Z
b) x∈[-3,5π; -2π]⇒x=
-3,5π≤π/4+kπ/2≤-2π
-3,5π-π/4≤kπ/2≤-2π-π/4
-7π-π/2≤kπ≤-4π-π/2
-7,5π≤kπ≤-4,5π
-7,5≤k≤-4,5, k∈Z⇒k={-7; -6; -5}
x=π/4+kπ/2,
x={-13π/4; -11π/4; -9π/4;}