- quadratic functions the easy way
- working out quadratic equations
- graphing quadratic equation
- solve the vertex point
- solving two step equations examples
- ti-89 simultaneous
- solving additional mathematics simultaneous equations
- explain solving equations
- x squared excel
- "playboy pontoon boats"
- h k form quadratic equation
- how to find real roots in equations
- quadratic equation worksheet
- solve quadric form
- problem solving using quadratic functions
- solving a quadratic simultaneous equation
- find the quadratic equation
- quadratic basic math
- careers that require solving quadratic equations by factoring
- good quadratic equation program for ti 89
|
|
Solving Quadratic Equations Rules
Solving Quadratic Equations
But there was more!:I'm looking for the equation of a demand curve, which is usually negative sloping, i.e. y = -x. Well, at least that is how it should look. However, I know that y = -x is a linear equation, and that's not exactly what I need. I guess it could be negatively exponential, but I just don't know. Perhaps it might help to give you a few examples of the points on the curve (points are in x:y format)
1) 1,000:400
2) 1,500:300
3) 2,400:200
4) 4,000:100
I should think that the y-intercept would be around 800. It doesn't matter very much whether the curve touches the x-axis, but I would think that the curve would start approaching it around 8,000 or 9,000.
This is actually the curve that I'm trying to find the equation for. Not only that, but then instead of having it in the format of y = ... , I would need it in the format x = ... If you could show me how to find that, I would appreciate it very much.
Answer:
The curve looks like the top right of a circle as I visualise it. You will find it difficult though to work out the exact equation of the curve.
Perhaps this may help put it in the form x=ay^2+bx+c:
y=ax^2+bx+c
y-c=ax^2+bx
You then have to complete the square:
y-c=sq( rt(a)x+(b/(2rt(a)) ) - b^2/4a (test it by multiplying it out. I may have made a mistake)
y-c+b^2/4a= sq( rt(a)x + (b/2rt(a)) )
rt( y-c+b^2/4a ) =rt(a)x + (b/2rt(a))
rt( y-c+b^2/4a)- (b/2rt(a)) = rt(a)x
<rt( y-c+b^2/4a ) - (b/2rt(a)) >/ <rt(a)>= x
A bit difficult to follow, so suggest writing it out on paper. Have used sq to mean ^2 at times and obviously rt(x) to mean the square-root of x. May be some mistakes here so apologise in advance if so, but gives the general idea on how to isolate x
Winston Churchill was right: education is too important to be left ... - Telegraph.co.uk
Winston Churchill was right: education is too important to be left ... Telegraph.co.uk, United Kingdom - Jun 6, 2008 But they did once require some real knowledge of, say, quadratic equations, or pre-20th-century English literature, or translating English into Latin (much ... |
error
