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Singular solution

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A singular solution y_s(x) of an ordinary differential equation is a solution that is tangent to every solution from the family of general solutions. By tangent we mean that there is a point x where y_s(x) = y_c(x) and y'_s(x) = y'_c(x) where y_c is any general solution.

Usually, singular solutions appear in differential equations when there is a need to divide in a term that might be equal to zero. Therefore, when one is solving a differential equation and using division one must check what happens if the term is equal to zero, and whether it leads to a singular solution.

[edit] Example

Consider the following Clairaut's equation:

$y(x) = x \cdot y' + (y')^2 \,\!$

where primes denote derivatives with respect to x. We write y' = p and then

$y(x) = x \cdot p + (p)^2. \,\!$

Now, we shall take the differential according to x:

$p = y' = p + x p' + 2 p p' \,\!$

which by simple algebra yields

$0 = ( 2 p + x )p'. \,\!$

This condition is solved if 2p+x=0 or if p'=0.

If p' = 0 it means that y' = p = c = constant, and the general solution is:

$y_c(x) = c \cdot x + c^2 \,\!$

where c is determined by the initial value.

If x + 2p = 0 than we get that p = −(1/2)x and substituting in the ODE gives

$y_s(x) = -(1/2)x^2 + (-(1/2)x)^2 = -(1/4) \cdot x^2. \,\!$

Now we shall check whether this is a singular solution.

First condition of tangency: y_s(x) = y_c(x). We solve

$c \cdot x + c^2 = y_c(x) = y_s(x) = -(1/4) \cdot x^2 \,\!$

to find the intersection point, which is ( $- 2 c, - c 2$ ).

Second condition tangency: y'_s(x) = y'_c(x).

We calculate the derivatives:

$y_c'(-2 \cdot c) = c \,\!$

$y_s'(-2 \cdot c) = -(1/2) \cdot x |_{x = -2 \cdot c} = c. \,\!$

We see that both requirements are satisfied and therefore y_s is tangent to general solution y_c. Hence,

$y_s(x) = -(1/4) \cdot x^2 \,\!$

is a singular solution for the family of general solutions

$y_c(x) = c \cdot x + c^2 \,\!$

of this Clairaut equation:

$y(x) = x \cdot y' + (y')^2. \,\!$

Note: The method shown here can be used as general algorithm to solve any Clairaut's equation, i.e. first order ODE of the form

$y(x) = x \cdot y' + f(y'). \,\!$

[edit] See also

caustic (mathematics).

Retrieved from "http://en.wikipedia.org/wiki/Singular_solution"

Categories: Differential equations

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