lexpar said:Homework Statement
Find all solutions for 6sin2x-5sinx+1=0 over the interval [0, 2pi[
The Attempt at a Solution
6sin2x-5sinx+1
(-3sin+1)(-2sin+1)
1/3 and 1/2
On unit circle, 1/2 is equal to pi/6 and 5pi/6... Not sure how to figure out 1/3!
Any help would be much appreciated!
lexpar said:You'll have to forgive me for having no idea what I'm talking about... This entire section of trig was thrown at my class during this last week in preparation for exams. To clarify:
sin(x)=1/3
x= .34
Can I go further than this in expressing it? Thanks again for your nearly instant response.
So, I learned from simplifying that the y coordinate of the points on the unit circle (which is describing the x-axis of my function) are 1/2 and 1/3. The y coordinate of 1/2 is described as 30 degrees and 150 degrees on the unit circle, or pi/6 and 5pi/6. To find the other two, I must find the sin of the distance they are equal to. So,HallsofIvy said:In your original post you said "On unit circle, 1/2 is equal to pi/6 and 5pi/6". Now you know better than that! "1/2= 0.5" while pi/6 is about .52. What you meant was that sin(pi/6)= 1/2. LCKurtz was suggesting that you be more careful about saying what you mean!
On the unit circle, sin(t) is the y coordinate of a point at distance t from (1, 0) measured around the circle. Two points on the same horizontal line will have the say y value. If you draw a horizontal line at y= 1/3, it crosses the line twice, at points that are symmetric with respect to the x-axis. Yes one of the points is a distance .3398, approximately, around the circle from (1, 0), and the other point, because it is symmetrically placed, is that same distance from the point (-1, 0). Since (-1, 0) is the entire half circle, a distance of [itex]\pi[/itex] from (1, 0), that symmetrical point is a distance [itex]\pi- .3398[/itex] from it, just as [itex]5\pi/6= \pi- \pi/6[/itex].
Why not? My calculator says that sin(pi- .3398)= sin(2.802)= .33333...lexpar said:So, I learned from simplifying that the y coordinate of the points on the unit circle (which is describing the x-axis of my function) are 1/2 and 1/3. The y coordinate of 1/2 is described as 30 degrees and 150 degrees on the unit circle, or pi/6 and 5pi/6. To find the other two, I must find the sin of the distance they are equal to. So,
sin(x)= 1/3
x=sin-1(1/3)
x=.3398
Then to figure out where the second point is, I need to do:
sin(pi-.3398)= .3333? That doesn't seem to make sense to me.
Yes, it really is! (Although I wouldn't use four significant digits for .3398 and only two for 2.8. I would say, as I did above, that pi- .3398= 2.802.)I wrote the above paragraph explaining how I understand this system to work so you could correct me in any instances where I'm wrong.
EDIT: or is it really as simple as pi-.3398... as in 2.8?
lexpar said:Homework Statement
Find all solutions for 6sin2x-5sinx+1=0 over the interval [0, 2pi[
The Attempt at a Solution
6sin2x-5sinx+1
(-3sin+1)(-2sin+1)
1/3 and 1/2
On unit circle, 1/2 is equal to pi/6 and 5pi/6... Not sure how to figure out 1/3!
Any help would be much appreciated!
No, the equation in the OP is quadratic in form, but is NOT a quadratic equation. It is also NOT a quadric (fourth-degree) equation.Susanne217 said:firstly the above is a quadric equation where D = 1
so [tex]x = \frac{5 \pm 1}{12}[/tex] which implies that x is x = 1/2 or x = 1/3 and if you look in your Calculus book you will find howto convert to radians !
You're right - quartic is the right term for a fourth-degree equation. Quadric is also a word that is used most often in the term "quadric surfaces," which include paraboloids, ellipsoids, spheres, and hyperboloids.Char. Limit said:This is already seemingly over... but I just want to say one thing... isn't a fourth-degree equation called a quartic? Or is "quadric" also a name?
There are several methods for finding solutions for trig equations, including the unit circle, trigonometric identities, and the use of inverse trigonometric functions.
The domain of a trig function is typically all real numbers, while the range depends on the specific function. For example, the range of sine and cosine functions is between -1 and 1, while the range of tangent and cotangent functions is all real numbers.
For trig equations with multiple angles, you can use trigonometric identities such as double angle, half angle, and sum and difference formulas to simplify the equation and find the solutions.
Calculators can be helpful in solving trig equations, especially for more complex equations. However, it is important to understand the steps and methods for solving these equations by hand in order to use a calculator effectively.
You can check your solution by plugging it back into the original equation and seeing if it satisfies the equation. You can also use a graphing calculator to graph both sides of the equation and see if they intersect at the solution you found.