Hadamard regularization: Difference between revisions

Template:Renormalization and regularization In mathematics, Hadamard regularization (also called Hadamard finite part or Hadamard's partie finie) is a method of regularizing divergent integrals by dropping some divergent terms and keeping the finite part, introduced by Template:Harvs. Template:Harvs showed that this can be interpreted as taking the meromorphic continuation of a convergent integral.

If the Cauchy principal value integral $${\displaystyle 𝒞{\displaystyle \underset{a}{\overset{b}{\int }}}\frac{f(t)}{t-x}dt(\text{for }a<x<b)}$$ exists, then it may be differentiated with respect to Template:Mvar to obtain the Hadamard finite part integral as follows: $${\displaystyle \frac{d}{dx}\left(𝒞{\displaystyle \underset{a}{\overset{b}{\int }}}\frac{f(t)}{t-x}dt\right)=\mathscr{H}{\displaystyle \underset{a}{\overset{b}{\int }}}\frac{f(t)}{(t-x{)}^2}dt(\text{for }a<x<b).}$$

Note that the symbols ${\displaystyle 𝒞}$ and ${\displaystyle \mathscr{H}}$ are used here to denote Cauchy principal value and Hadamard finite-part integrals respectively.

The Hadamard finite part integral above (for Template:Math) may also be given by the following equivalent definitions: $${\displaystyle \mathscr{H}{\displaystyle \underset{a}{\overset{b}{\int }}}\frac{f(t)}{(t-x{)}^2}dt=\underset{\epsilon \to 0^{+}}{\lim }\{{\displaystyle \underset{a}{\overset{x-\epsilon }{\int }}}\frac{f(t)}{(t-x{)}^2}dt+{\displaystyle \underset{x+\epsilon }{\overset{b}{\int }}}\frac{f(t)}{(t-x{)}^2}dt-\frac{f(x+\epsilon )+f(x-\epsilon )}{\epsilon }\},}$$ $${\displaystyle \mathscr{H}{\displaystyle \underset{a}{\overset{b}{\int }}}\frac{f(t)}{(t-x{)}^2}dt=\underset{\epsilon \to 0^{+}}{\lim }\{{\displaystyle \underset{a}{\overset{b}{\int }}}\frac{(t-x{)}^{2}f(t)}{((t-x{)}^2+{\epsilon }^2{)}^2}dt-\frac{\pi f(x)}{2\epsilon }-\frac{f(x)}{2}(\frac{1}{b-x}-\frac{1}{a-x})\}.}$$

The definitions above may be derived by assuming that the function Template:Math is differentiable infinitely many times at Template:Math, that is, by assuming that Template:Math can be represented by its Taylor series about Template:Math. For details, see Template:Harvs. (Note that the term Template:Math in the second equivalent definition above is missing in Template:Harvs but this is corrected in the errata sheet of the book.)

Integral equations containing Hadamard finite part integrals (with Template:Math unknown) are termed hypersingular integral equations. Hypersingular integral equations arise in the formulation of many problems in mechanics, such as in fracture analysis.

Consider the divergent integral $${\displaystyle {\displaystyle \underset{-1}{\overset{1}{\int }}}\frac{1}{t^2}dt=\left(\underset{a\to 0^{-}}{\lim }{\displaystyle \underset{-1}{\overset{a}{\int }}}\frac{1}{t^2}dt\right)+\left(\underset{b\to 0^{+}}{\lim }{\displaystyle \underset{b}{\overset{1}{\int }}}\frac{1}{t^2}dt\right)=\underset{a\to 0^{-}}{\lim }(-\frac{1}{a}-1)+\underset{b\to 0^{+}}{\lim }(-1+\frac{1}{b})=+\mathrm{\infty }}$$ Its Cauchy principal value also diverges since $${\displaystyle 𝒞{\displaystyle \underset{-1}{\overset{1}{\int }}}\frac{1}{t^2}dt=\underset{\epsilon \to 0^{+}}{\lim }({\displaystyle \underset{-1}{\overset{-\epsilon }{\int }}}\frac{1}{t^2}dt+{\displaystyle \underset{\epsilon }{\overset{1}{\int }}}\frac{1}{t^2}dt)=\underset{\epsilon \to 0^{+}}{\lim }(\frac{1}{\epsilon }-1-1+\frac{1}{\epsilon })=+\mathrm{\infty }}$$ To assign a finite value to this divergent integral, we may consider $${\displaystyle \mathscr{H}{\displaystyle \underset{-1}{\overset{1}{\int }}}\frac{1}{t^2}dt=\mathscr{H}{\displaystyle \underset{-1}{\overset{1}{\int }}}\frac{1}{(t-x{)}^2}dt{|}_{x=0}=\frac{d}{dx}\left(𝒞{\displaystyle \underset{-1}{\overset{1}{\int }}}\frac{1}{t-x}dt\right){|}_{x=0}}$$ The inner Cauchy principal value is given by $${\displaystyle 𝒞{\displaystyle \underset{-1}{\overset{1}{\int }}}\frac{1}{t-x}dt=\underset{\epsilon \to 0^{+}}{\lim }({\displaystyle \underset{-1}{\overset{-\epsilon }{\int }}}\frac{1}{t-x}dt+{\displaystyle \underset{\epsilon }{\overset{1}{\int }}}\frac{1}{t-x}dt)=\underset{\epsilon \to 0^{+}}{\lim }(\ln \left|\frac{\epsilon +x}{1+x}\right|+\ln \left|\frac{1-x}{\epsilon -x}\right|)=\ln \left|\frac{1-x}{1+x}\right|}$$ Therefore, $${\displaystyle \mathscr{H}{\displaystyle \underset{-1}{\overset{1}{\int }}}\frac{1}{t^2}dt=\frac{d}{dx}(\ln \left|\frac{1-x}{1+x}\right|){|}_{x=0}=\frac{2}{x^2-1}{|}_{x=0}=-2}$$ Note that this value does not represent the area under the curve Template:Math, which is clearly always positive. However, it can be seen where this comes from. Recall the Cauchy principal value of this integral, when evaluated at the endpoints, took the form ${\displaystyle \underset{\epsilon \to 0^{+}}{\lim }(\frac{1}{\epsilon }-1-1+\frac{1}{\epsilon })=+\mathrm{\infty }}$

If one removes the infinite components, the pair of ${\displaystyle \frac{1}{\epsilon }}$ terms, that which remains is ${\displaystyle \underset{\epsilon \to 0^{+}}{\lim }(-1-1)=-2}$

which equals the value derived above.

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