Based on two different cases:
x
=
π
6
,
5
or
3
2
Look below for the explanation of these two cases.
Explanation:
Since,
cos
+
sin
1
we have:
−
So we can replace
in the equation
by
(
)
⇒
or,
0
using the quadratic formula:
b
±
√
4
a
c
for quadratic equation
⋅
8
9
Case I:
for the condition:
≤
to get positive value of
Case II:
to get negative value of
Answer link
Объяснение:
Based on two different cases:
x
=
π
6
,
5
π
6
or
3
π
2
Look below for the explanation of these two cases.
Explanation:
Since,
cos
x
+
sin
2
x
=
1
we have:
cos
2
x
=
1
−
sin
2
x
So we can replace
cos
2
x
in the equation
1
+
sin
x
=
2
cos
2
x
by
(
1
−
sin
2
x
)
⇒
2
(
1
−
sin
2
x
)
=
sin
x
+
1
or,
2
−
2
sin
2
x
=
sin
x
+
1
or,
0
=
2
sin
2
x
+
sin
x
+
1
−
2
or,
2
sin
2
x
+
sin
x
−
1
=
0
using the quadratic formula:
x
=
−
b
±
√
b
2
−
4
a
c
2
a
for quadratic equation
a
x
2
+
b
x
+
c
=
0
we have:
sin
x
=
−
1
±
√
1
2
−
4
⋅
2
⋅
(
−
1
)
2
⋅
2
or,
sin
x
=
−
1
±
√
1
+
8
4
or,
sin
x
=
−
1
±
√
9
4
or,
sin
x
=
−
1
±
3
4
or,
sin
x
=
−
1
+
3
4
,
−
1
−
3
4
or,
sin
x
=
1
2
,
−
1
Case I:
sin
x
=
1
2
for the condition:
0
≤
x
≤
2
π
we have:
x
=
π
6
or
5
π
6
to get positive value of
sin
x
Case II:
sin
x
=
−
1
we have:
x
=
3
π
2
to get negative value of
sin
x
Answer link
Объяснение:
а=1 , b=6 , с=5
D= b²-4ac
D= 36 -4*1*5 =36-20= 16
D>0 два корня уравнения , √D= 4
х₁, х₂ = (-b +- √D) /2a
x₁= (-6-4)/2 =-10/2=-5
x₂= (-6+4)/2 = -2/2=-1
x² -1.8x -3.6 =0
D= (-1.8)² - 4* 1* (-3.6) = 3.24 +14.4 = 17.64
D>0 , √D= 4.2
х₁= (1,8 - 4,2 ) / 2 = 2,4/2=1,2
х₂= (1,8+4,2)/2 = 3
4х²-х-14=0
D= (-1)² -4 *4 *(-14)=1+ 224=225
D>0 , √D= 15
x₁= (1-15)/(2*4)= 14/8= 1.75
x₂= (1+15)/8= 16/8=2
2x²+x-3=0
D= 1 -4*2*(-3) = 1+24=25
D>0 , √D= 5
x₁= (-1-5) /(2*2) = -6/4= -1.5
x₂= (-1+5)/4 =1
2x²-9x=35
2x²-9x-35 =0
D= 81 -4*2*(-35) =81+280=361
D>0 , √D=19
x₁= (9-19)/ (2*2) =-10/4=-2.5
x₂= (9+19)/4 = 28/4=7