Vacuum angle

From formulasearchengine
Jump to navigation Jump to search

Template:Differential equations

In mathematics, the method of undetermined coefficients is an approach to finding a particular solution to certain inhomogeneous ordinary differential equations and recurrence relations. It is closely related to the annihilator method, but instead of using a particular kind of differential operator (the annihilator) in order to find the best possible form of the particular solution, a "guess" is made as to the appropriate form, which is then tested by differentiating the resulting equation. For complex equations, the annihilator method or variation of parameters is less time consuming to perform.

Undetermined coefficients is not as general a method as variation of parameters, since it only works for differential equations that follow certain forms.[1]

Description of the method

Consider a linear non-homogeneous ordinary differential equation of the form

any(n)+a(n1)y(n1)+...+a1y+a0y=g(x).

The method consists of finding the general homogeneous solution yc for the complementary linear homogeneous differential equation

any(n)+a(n1)y(n1)+...+a1y+a0y=0,

and a particular integral yp of the linear non-homogeneous ordinary differential equation based on g(x). Then the general solution y to the linear non-homogeneous ordinary differential equation would be

y=yc+yp.[2]

If g(x) consists of the sum of two functions h(x)+w(x) and we say that yp1 is the solution based on h(x) and yp2 the solution based on w(x). Then, using a superposition principle, we can say that the particular integral yp is

yp=yp1+yp2.[2]

Typical forms of the particular integral

In order to find the particular integral, we need to 'guess' its form, with some coefficients left as variables to be solved for. This takes the form of the first derivative of complementary function. Below is a table of some typical functions and the solution to guess for them.

Function of x Form for y
keax Ceax
kxn,n=0,1,2, Knxn+Kn1xn1++K1x+K0
kcos(ax)orksin(ax) Kcos(ax)+Msin(ax)
keaxcos(bx)orkeaxsin(bx) eax(Kcos(bx)+Msin(bx))
(i=1nkixi)eaxcos(bx)or(i=1nkixi)eaxsin(bx)    eax((i=1nQixi)cos(bx)+(i=1nRixi)sin(bx))

If a term in the above particular integral for y appears in the homogeneous solution, it is necessary to multiply by a sufficiently large power of x in order to make the solution independent. If the function of x is a sum of terms in the above table, the particular integral can be guessed using a sum of the corresponding terms for y.[1]

Examples

Example 1

Find a particular integral of the equation

y+y=tcost.

The right side t cos t has the form

Pneαtcosβt

with n=1, α=0, and β=1.

Since α + iβ = i is a simple root of the characteristic equation

λ2+1=0

we should try a particular integral of the form

yp=t[F1(t)eαtcosβt+G1(t)eαtsinβt]=t[F1(t)cost+G1(t)sint]=t[(A0t+A1)cost+(B0t+B1)sint]=(A0t2+A1t)cost+(B0t2+B1t)sint.

Substituting yp into the differential equation, we have the identity

tcost=yp+yp=[(A0t2+A1t)cost+(B0t2+B1t)sint]+[(A0t2+A1t)cost+(B0t2+B1t)sint]=[2A0cost+2(2A0t+A1)(sint)+(A0t2+A1t)(cost)]+[2B0sint+2(2B0t+B1)cost+(B0t2+B1t)(sint)]+[(A0t2+A1t)cost+(B0t2+B1t)sint]=[4B0t+(2A0+2B1)]cost+[4A0t+(2A1+2B0)]sint.

Comparing both sides, we have

4B0=12A0+2B1=04A0=02A1+2B0=0

which has the solution A0 = 0, A1 = 1/4, B0 = 1/4, B1 = 0. We then have a particular integral

yp=14tcost+14t2sint.
Example 2

Consider the following linear nonhomogeneous differential equation:

dydx=y+ex.

This is like the first example above, except that the nonhomogeneous part (ex) is not linearly independent to the general solution of the homogeneous part (c1ex); as a result, we have to multiply our guess by a sufficiently large power of x to make it linearly independent.

Here our guess becomes:

yp=Axex.

By substituting this function and its derivative into the differential equation, one can solve for A:

ddx(Axex)=Axex+ex
Axex+Aex=Axex+ex
A=1.

So, the general solution to this differential equation is thus:

y=c1ex+xex.
Example 3

Find the general solution of the equation:

dydt=t2y

f(t), t2, is a polynomial of degree 2, so we look for a solution using the same form,

yp=At2+Bt+C, where
dypdt=2At+B

Plugging this particular integral with constants A, B, and C into the original equation yields,

2At+B=t2(At2+Bt+C), where
t2At2=0 and Bt=2At and C=B

Replacing resulting constants,

yp=t22t+2

To solve for the general solution,

y=yp+yc

where yc is the homogeneous solution yc=c1et, therefore, the general solution is:

y=t22t+2+c1et

References

43 year old Petroleum Engineer Harry from Deep River, usually spends time with hobbies and interests like renting movies, property developers in singapore new condominium and vehicle racing. Constantly enjoys going to destinations like Camino Real de Tierra Adentro.

  • Elementary Differential Equations and Boundary Value Problems (4th Edition), W.E. Boyce, R.C. Diprima, Wiley International, John Wiley & Sons, 1986, ISBN 0-471-83824-1
  • Mathematical methods for physics and engineering, K.F. Riley, M.P. Hobson, S.J. Bence, Cambridge University Press, 2010, ISBN 978-0-521-86153-3
  1. 1.0 1.1 Ralph P. Grimaldi (2000). "Nonhomogeneous Recurrence Relations". Section 3.3.3 of Handbook of Discrete and Combinatorial Mathematics. Kenneth H. Rosen, ed. CRC Press. ISBN 0-8493-0149-1.
  2. 2.0 2.1 Dennis G. Zill (2001). A first course in differential equations - The classic 5th edition. Brooks/Cole. ISBN 0-534-37388-7.