Latest revision as of 16:07, 21 October 2017

The Airy function $\mathrm{Bi}$ (sometimes called the "Bairy function") is a solution of the Airy differential equation $$y' '(z)-zy(z)=0,$$ which is linearly independent from the Airy Ai function.

Aairy $\mathrm{Bi}$ function.
Domain coloring of $\mathrm{Bi}$.

Properties

Relationship between Airy Bi and modified Bessel I
Relationship between Scorer Gi and Airy functions
Relationship between Scorer Hi and Airy functions

Videos

Leading Tsunami wave reaching the shore (27 November 2009)
Series solution of ode: Airy's equation (3 November 2010)
Airy differential equation (26 November 2013)

References

The mathematics of rainbows
Tables of Weyl Fractional Integrals for the Airy Function
Special Functions: An Introduction to the Classical Functions of Mathematical Physics
Airy function zeros

@@ Line 1: / Line 1: @@
-The Airy function $\mathrm{Ai}$ and "Bairy" function $\mathrm{Bi}$ are given by the formulas
+__NOTOC__
-$$\mathrm{Ai}(x) = \dfrac{1}{\pi} \displaystyle\int_0^{\infty} \cos \left( \dfrac{t^3}{3} + xt \right) dt$$
-and
-$$\mathrm{Bi}(x) = \dfrac{1}{\pi} \displaystyle\int_0^{\infty} \left[ e^{-\frac{t^3}{3} + xt} + \sin \left( \dfrac{t^3}{3}+xt \right) \right] dt.$$
-[[File:Airyai.png|500px]]
+The Airy function $\mathrm{Bi}$ (sometimes called the "Bairy function") is a solution of the [[Airy differential equation]]
+$$y' '(z)-zy(z)=0,$$
+which is [[linearly independent]] from the [[Airy Ai]] function.
-[[File:Airybi.png|500px]]
+<div align="center">
+<gallery>
+File:Airybiplot.png|Aairy $\mathrm{Bi}$ function.
+File:Complexairybiplot.png|[[Domain coloring]] of $\mathrm{Bi}$.
+</gallery>
+</div>
 =Properties=
-<div class="toccolours mw-collapsible mw-collapsed">
+[[Relationship between Airy Bi and modified Bessel I]]<br />
-<strong>Theorem:</strong> The function $\mathrm{Ai}$ is a solution to the differential equation
+[[Relationship between Scorer Gi and Airy functions]]<br />
-$$y''(z) - zy(z) = 0.$$
+[[Relationship between Scorer Hi and Airy functions]]<br />
-<div class="mw-collapsible-content">
-<strong>Proof:</strong> Suppose that $y$ has the form
-$$y(z) = \displaystyle\int_{\gamma} f(t)e^{zt} dt,$$
-where $\gamma$ is an as-of-yet undefined contour in the complex plane. Assuming that we may differentiate under the integral it is clear that
-$$y''(z)=\displaystyle\int_{\gamma} f(t)t^2 e^{zt} dt.$$
-Thus we plug this representation into the differential equation to get
-$$(*) \hspace{35pt} y''(z)-zy(z) = \displaystyle\int_{\gamma} (t^2-z)f(t)e^{zt} dt = 0.$$
-Now we integrate by parts to see
-$$\begin{array}{ll}
-\displaystyle\int_{\gamma} zf(t)e^{zt} dt &= \displaystyle\int_{\gamma} f(t) \dfrac{d}{dt} e^{zt} dt \\
-&= -f(t)e^{zt} \Bigg |_{\gamma} + \displaystyle\int_{\gamma} f'(t)e^{zt} dt.
-\end{array}$$
-We will pick the contour $\gamma$ to enforce $f(t)e^{zt} \Bigg |_{\gamma}=0$. We will do this by first determining the function $f$. Plugging this back into the formula $(*)$ yields
-$$\begin{array}{ll}
-&= y''(z) - zy(z) \\
-&= f(t)e^{zt} \Bigg |_{\gamma} + \displaystyle\int_{\gamma} (t^2f(t)-f'(t))e^{zt} dt.
-\end{array}$$
-We have the freedom to choose $f$ and $\gamma$. We will choose $f$ so that
-$$t^2f(t)-f'(t)=0.$$
-This is a simple differential equation whose solution [http://www.wolframalpha.com/input/?i=t^2f%28t%29-f%27%28t%29%3D0 is]
-$$f(t)=c e^{-\frac{t^3}{3}}.$$
-So we have derived
-$$y(z)=\displaystyle\int_{\gamma} e^{zt - \frac{t^3}{3}} dt.$$
-To pick the contour $\gamma$ note that the integrand of $y$ is an [[entire function]] and hence if $\gamma$ is a simple closed curve we would have $y(z)=0$ for all $z \in \mathbb{C}$.
-The variable of the integral defining $y$ is $t$ and for $t \in \mathbb{C}$ with $|t|$ very large, the cubic term in the exponent dominates. Hence consider polar form $t=|t|e^{i\theta}$ and compute
+=Videos=
-$$e^{-\frac{t^3}{3}} = \exp\left( \frac{-|t|^3 e^{3i\theta}}{3} \right).$$
+[https://www.youtube.com/watch?v=HlX62TkR6gc&noredirect=1 Leading Tsunami wave reaching the shore (27 November 2009)]<br />
-Notice that the inequality $\mathrm{Re} \hspace{2pt} e^{3i\theta} > 0$ forces $\cos(3\theta)>0$ yielding three sectors defined by $\theta$:
+[https://www.youtube.com/watch?v=0jnXdXfIbKk&noredirect=1 Series solution of ode: Airy's equation (3 November 2010)]<br />
-$$-\dfrac{\pi}{6} < \theta < \dfrac{\pi}{6},$$
+[https://www.youtube.com/watch?v=oYJq3mhg5yE&noredirect=1 Airy differential equation (26 November 2013)]<br />
-$$\dfrac{\pi}{2}  < \theta < \dfrac{5\pi}{6},$$
-$$\dfrac{7\pi}{6} < \theta < \dfrac{3\pi}{2}.$$
-Picking the contour $\gamma$ so that it tends to complex infinity inside two of the sectors forces the condition $f(t)e^{zt} \Bigg |_{\gamma}=0$. █
-</div>
-</div>
 =References=
+[http://www.ams.org/samplings/feature-column/fcarc-rainbows The mathematics of rainbows]<br />
+[http://www.ams.org/journals/mcom/1979-33-145/S0025-5718-1979-0514831-8/S0025-5718-1979-0514831-8.pdf Tables of Weyl Fractional Integrals for the Airy Function]<br />
+[http://www.amazon.com/Special-Functions-Introduction-Classical-Mathematical/dp/0471113131 Special Functions: An Introduction to the Classical Functions of Mathematical Physics]<br />
+[http://www.people.fas.harvard.edu/~sfinch/csolve/ai.pdf Airy function zeros]
+=See Also=
+[[Airy Ai]] <br />
+[[Scorer Gi]] <br />
+[[Scorer Hi]] <br />
+[[Category:SpecialFunction]]

Difference between revisions of "Airy Bi"

Latest revision as of 16:07, 21 October 2017

Properties

Videos

References

See Also

Navigation menu

Personal tools

Namespaces

Variants

Views

More

Search

Navigation

Tools