Computer Algebra

Noah’s Arc Found ?

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A Gift That Keeps On Giving

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We see from “Seek-Lock-Strike!” Again that given the missile’s position (x, y),

\frac{dx}{dy}=\frac{a+v_a t-x}{b-y}

where x and y are themselves functions of time t.

It means

\frac{dx}{dy} = \frac{\frac{dx}{dt}}{\frac{dy}{dt}}=\frac{a+v_a t-x}{b-y}\implies \frac{dx}{dt} = \frac{a+v_a t-x}{b-y}\cdot\frac{dy}{dt}.

That is, let \kappa(x,y,t) = \frac{a+v_a t-x}{b-y},

\frac{dx}{dt}=\kappa\cdot \frac{dy}{dt}.\quad\quad\quad(1)

We also have (see “Seek-Lock-Strike!”)

v_m = \sqrt{(\frac{dx}{dt})^2+(\frac{dy}{dt})^2}\implies v_m = \sqrt{1+\kappa^2}|\frac{dy}{dt}| .

Since \frac{dy}{dt} >0,

\frac{dy}{dt} = \frac{v_m}{\sqrt{1+\kappa^2}}.\quad\quad\quad(2)

Substitute (2) into (1) yields

\frac{dx}{dt} = \frac{v_m\cdot \kappa}{\sqrt{1+\kappa^2}}.\quad\quad\quad(3)

It follows that (x(t), y(t)), the position of the missile satisfies the initial-value problem

\begin{cases} \frac{dx}{dt} = \frac{\kappa\cdot v_m}{\sqrt{1+\kappa^2}} \\ \frac{dy}{dt} = \frac{v_m}{\sqrt{1+\kappa^2}} \\x(0)=0, y(0)=0\end{cases}\quad\quad\quad(4)

To obtain the missile’s trajectory, we solve (4) numerically using the Runge-Kutta algorithm. It integrates (4) from t=0 to t= t_* (see “Seek-Lock-Strike!”).

Fig. 1 a=100\;m, b=3000\;m, v_a=1500\;ms^{-1},v_m=2000\;ms^{-1}

The missile strike is illustrated in Fig. 1 and 2.

Fig. 2 a=100\;m, b=3000\;m, v_a=1500\;ms^{-1},v_m=2000\;ms^{-1}

Fig. 3 a=-1200\;m, b=3000\;m, v_a=1500\;ms^{-1},v_m=2000\;ms^{-1}

The trajectories shown are much smoother than those in “Seek-Lock-Strike!” Animated.

“Seek-Lock-Strike!” Again

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We can derive a different governing equation for the missile in “Seek-Lock-Strike!“.

Fig. 1

Looking from a different viewpoint (Fig. 1), we see

\frac{dx}{dy} = \frac{a+v_at-x}{b-y}.\quad\quad\quad(1)

Solving (1) for t,

t = -\frac{\frac{dx}{dy}y-b\frac{dx}{dy}-x+a}{v_a}.\quad\quad\quad(2)

We also have

v_m t = \int\limits_{0}^{y}\sqrt{1+(\frac{dx}{dy})^2} \implies t = \frac{\int\limits_{0}^{y}\sqrt{1+(\frac{dx}{dy})^2}\;dy}{v_m}.\quad\quad\quad(3)

Equate (1) and (2) gives

-\frac{\frac{dx}{dy}y-b\frac{dx}{dy}-x+a}{v_a}-\frac{\int\limits_{0}^{y}\sqrt{1+(\frac{dx}{dy})^2}\;dy}{v_m} = 0.\quad\quad\quad(4)

The governing eqaution emerges after differentiate (4) with respect to x:

-\frac{d^2x}{dy^2}y+b\frac{d^2x}{dy^2}-\frac{v_a\sqrt{1+(\frac{dx}{dy})^2}}{v_m} = 0.\quad\quad\quad(5)

We let p = \frac{dx}{dy} so \frac{d^2x}{dy^2} = \frac{d}{dy}\left(\frac{dx}{dy}\right)=\frac{dp}{dy} and express (5) as

\frac{dp}{dy}(b-y) -r\sqrt{1+(\frac{dx}{dy})^2} = 0\quad\quad\quad(*)

where r = \frac{v_a}{v_m}.

Fig. 2

Using Omega CAS Explorer, we compute the missile’s striking time t_* (see Fig. 3). It agrees with the result obtained previously.

Fig. 3

Exercise-1 Obtain the missile’s trajectory from (*).

Newton’s Pi Simplified

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We know from “arcsin” :

\frac{d}{dx} \arcsin(x) = \frac{1}{\sqrt{1-x^2}}.

Integrate from 0 to x\; (0<x<1):

\int\limits_{0}^{x}\frac{d}{dx}\arcsin(x)\;dx = \int\limits_{0}^{x}\frac{1}{\sqrt{1-x^2}}\;dx

gives

\arcsin(x)\bigg|_{0}^{x} = \int\limits_{0}^{x}\frac{1}{\sqrt{1-x^2}}\;dx.

i.e.,

\arcsin(x) = \int\limits_{0}^{x}\frac{1}{\sqrt{1-x^2}}\;dx.\quad\quad\quad(\star)

Rewrite the integrand \frac{1}{\sqrt{1-x^2}} as

(1-x^2)^{-\frac{1}{2}}= (1+(-x^2))^{-\frac{1}{2}}

so that by the extended binomial theorem (see “A Gem from Issac Newton“),

\frac{1}{\sqrt{1-x^2}}\overset{(A-1)}{=} \sum\limits_{i=0}^{\infty}\binom{-\frac{1}{2}}{i}1^{-\frac{1}{2}-i}(-x^2)^i.

Hence,

\frac{1}{\sqrt{1-x^2}} = \sum\limits_{i=0}^{\infty}\binom{-\frac{1}{2}}{i}(-1)^i x^{2i}.

And,

\int\limits_{0}^{x}\frac{1}{\sqrt{1-x^2}}\;dx=\int\limits_{0}^{x}\sum\limits_{i=0}^{\infty}\binom{-\frac{1}{2}}{i}(-1)^i x^{2i}\;dx = \sum\limits_{i=0}^{\infty}\int\limits_{0}^{x}\binom{-\frac{1}{2}}{i}(-1)^i x^{2i}\;dx = \sum\limits_{i=0}^{\infty}\binom{-\frac{1}{2}}{i}(-1)^i \frac{x^{2i+1}}{2i+1}.

It follows that by (\star),

\arcsin(x) = \sum\limits_{i=0}^{\infty}\binom{-\frac{1}{2}}{i}(-1)^i \frac{x^{2i+1}}{2i+1}.

Let x=\frac{1}{2}, we have

\frac{\pi}{6} = \sum\limits_{i=0}^{\infty}\binom{-\frac{1}{2}}{i}(-1)^i \frac{(\frac{1}{2})^{2i+1}}{2i+1}.

And so,

\pi = 6 \sum\limits_{i=0}^{\infty}\binom{-\frac{1}{2}}{i}(-1)^i \frac{1}{2^{2i+1} 2i+1}.

Fig. 1

See also “Newton’s Pi“.

Given 0 < x <1, prove:

|-x^2| < 1.\quad\quad\quad(A-1)

proof

Since 0<x<1 \implies 0< x^2 < 1, |-x^2|=|x^2|=x^2 < 1.

Exercise-1 Compute \pi by applying the extended binomial theorem to \frac{\pi}{6} = \int\limits_{0}^{\frac{1}{\sqrt{3}}}\frac{1}{1+x^2}\;dx.

Exercise-2 Can we compute \pi by applying the extended binomial theorem to \frac{\pi}{4}=\int\limits_{0}^{1}\frac{1}{1+x^2}\;dx? Explain.

Newton’s Pi

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Fig. 1

Shown in Fig. 1 is a semicircle centered at C (\frac{1}{2}, 0) with radius = \frac{1}{2}. Its equation is

(x-\frac{1}{2})^2+y^2=(\frac{1}{2})^2, 0 \le x \le 1, y \ge 0.

Simplifying and solving for y gives

y = x^{\frac{1}{2}}\cdot(1-x)^{\frac{1}{2}}.\quad\quad\quad(1)

We see that

Area (sector OAC) = Area (sector OAB) + Area (triangle ABC).\quad\quad(*)

And,

a = BC = \frac{1}{2}-\frac{1}{4} = \frac{1}{4}, \quad\quad h = AB = \sqrt{AC^2-BC^2} = \sqrt{\frac{1}{2} - \frac{1}{4}}=\frac{\sqrt{3}}{2}.

It means

Area (triangle ABC) = \frac{1}{2}ah =\frac{1}{2}\cdot\frac{1}{4}\cdot\frac{\sqrt{3}}{4} = \frac{\sqrt{3}}{32}.\quad\quad\quad(2)

Moreover,

\cos(\theta) = \frac{BC}{AC} = \frac{\frac{1}{4}}{\frac{1}{2}} = \frac{1}{2} \implies \theta = \frac{\pi}{3}.

Since \theta is one-third of the \pi angle forming the semicircle, the sector is likewise a third of the semicircle. Namely,

Area (sector OAC) = \frac{1}{3} Area (semicircle) = \frac{1}{3} \cdot \frac{1}{2} \pi (\frac{1}{2})^2 = \frac{\pi}{24}.\quad\quad\quad(3)

Area (sector OAB) is the area under the curve y=x^{\frac{1}{2}}\cdot(1-x)^{\frac{1}{2}} from its starting point 0 to the point x=\frac{1}{4}. i.e.,

Area (sector OAB)

= \int\limits_{0}^{\frac{1}{4}}x^{\frac{1}{2}}\cdot(1-x)^{\frac{1}{2}}\;dx

= \int\limits_{0}^{\frac{1}{4}}x^{\frac{1}{2}}\cdot((-x)+1)^{\frac{1}{2}}\;dx

By the extended binomial theorem: (x+y)^r=\sum\limits_{i=0}^{\infty }x^iy^{r-i}, x, y, r \in R, |x|< |y| (see “A Gem from Isaac Newton“)

= \int\limits_{0}^{\frac{1}{4}}x^{\frac{1}{2}}\sum\limits_{i=0}^{\infty}\binom{\frac{1}{2}}{i}(-x)^i\;dx

=\int\limits_{0}^{\frac{1}{4}}x^{\frac{1}{2}}\sum\limits_{i=0}^{\infty}\binom{\frac{1}{2}}{i}(-1)^ix^i\;dx

= \int\limits_{0}^{\frac{1}{4}}\sum\limits_{i=0}^{\infty}\binom{\frac{1}{2}}{i}(-1)^ix^{\frac{2i+1}{2}}\;dx

= \sum\limits_{i=0}^{\infty}\binom{\frac{1}{2}}{i}(-1)^i\int\limits_{0}^{\frac{1}{4}}x^{\frac{2i+1}{2}}\;dx

=\sum\limits_{i=0}^{\infty}\binom{\frac{1}{2}}{i}(-1)^i\frac{2}{2i+3}x^{\frac{2i+3}{2}}\bigg|_{0}^{\frac{1}{4}}

x=\frac{1}{4} \implies x^{\frac{2i+3}{2}} simplifies beautifully: \left(\sqrt{\frac{1}{4}}\right)^{2i+3}=\left(\frac{1}{2}\right)^{2i+3}.

=\sum\limits_{i=0}^{\infty}\binom{\frac{1}{2}}{i}(-1)^i\frac{2}{2i+3}(\frac{1}{2})^{2i+3}

=\sum\limits_{i=0}^{\infty}\binom{\frac{1}{2}}{i}\frac{1}{4(2i+3)}(-\frac{1}{4})^i.\quad\quad\quad(4)

Expressing (*) by (3), (2) and (4), we have

\frac{\pi}{24}=\sum\limits_{i=0}^{\infty}\binom{\frac{1}{2}}{i}\frac{(-1)^i}{4^{i+1}(2i+3)}+\frac{\sqrt{3}}{32}.

Therefore,

\pi=24\left(\sum\limits_{i=0}^{\infty}\binom{r}{i}\frac{(-1)^i}{4^{i+1}(2i+3)}+\frac{\sqrt{3}}{32}\right).\quad\quad\quad(5)

Observe first that

\sqrt{3} = \sqrt{4-1} = \sqrt{4(1-\frac{1}{4})}=2\sqrt{1-\frac{1}{4}}=2\sqrt{\frac{-1}{4}+1}=2(\frac{-1}{4}+1)^{\frac{1}{2}}

and so we replace (\frac{-1}{4}+1)^{\frac{1}{2}} by its binomial expansion. As a result,

\sqrt{3} = 2\sum\limits_{i=0}^{\infty}\binom{\frac{1}{2}}{i}(-\frac{1}{4})^i.\quad\quad\quad(6)

Substituting (6) into (5) then yields

\pi = \sum\limits_{i=0}^{\infty}\binom{\frac{1}{2}}{i}\left(-\frac{1}{4}\right)^i\left(\frac{1}{4(2i+3)} + \frac{2}{32}\right).

Fig. 2 shows that with just ten terms (0 to 9) of the binomial expression, we have found \pi correct to seven decmal places.

Fig. 2