Math

1420 MHz

Posted on by John

There are four manmade object that have left our solar system: Pioneer 10, Pioneer 11, Voyager 1, and Voyager 2.

Yesterday I wrote about the Golden Record which is on both of the Voyager probes. Some of the graphics on the cover of the Golden Record is also on plaques attached to the Pioneer probes. In particular, the two plaques and the two record covers have the following image.

Pioneer plaque hydrogen diagram

This image is essential to decoding the rest of the images. It represents a “spin flip transition” of a neutral hydrogen atom. This event has a frequency of 1420.405 MHz, corresponding to a wavelength of about 21 cm. The little hash mark is meant to indicate that this is a unit of measurement, both of length (21 cm) and time (the time it takes light to travel 21 cm).

The thought behind the unit of measurement was that it might make sense to an extraterrestrial being. Frequencies associated with hydrogen atoms are more universal than seconds (which ultimately derive from the period of Earth’s rotation) or meters (which derive from the circumference of the Earth).

The Wow! signal

The frequency 1420 MHz is special, so special that scientists believed advanced civilizations would recognize it. That’s why an astronomer, Jerry R. Ehman, was excited to observe a strong signal at that frequency on August 15, 1977. (Incidentally, this was five days before Voyager 2 was launched.)

Ehman wrote “Wow!” on a computer printout of the signal, and the signal has become known as “the Wow! signal.”

Ehman thought this signal might have come from an extraterrestrial intelligence for the same reason we were using its frequency in our message to potential extraterrestrials.

Wow! 6DQUJ5

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Day of the week centuries from now

Posted on by John

Yesterday I wrote a post outlining mental math posts I’d written over the years. I don’t write about mental math that often, but I’ve been writing for a long time, and so the posts add up. In the process of writing the outline post I noticed a small gap.

In the post on mentally calculating the day of the week I focus on this century, then tersely say “For dates in the 20th century, add 1. For dates in the 22nd century, subtract 2.” This post will expand on that. I’ll say a little more about what these rules mean, how to extend them to other centuries, and why they work.

Dates in the 20th century

Suppose you wanted to know the day of the week for July 4, 1976. You could use the method in the post linked above and end up with Saturday. Moving ahead one day of the week gives you Sunday.

Dates in future centuries

For days in the 2100s you would find the day of the week for the corresponding date in this century, then subtract two days. For the 2200s you’d add three days, and for the 2300s you’d add one day.

The Gregorian calendar repeats every 400 years, so if you can find the days of the week for the years 2000 through 2399, you can find the day of the week for all years in the future by subtracting enough multiples of 400 to get into that range of years. For example, in the year 2825, September 18 will fall on a Thursday because it falls on a Thursday today in 2025.

You could also go backward by centuries as well as forward, but there’s a complication. If you run the Gregorian calendar backward far enough, you run into a time before the Gregorian calendar was adopted.

Why the rules work

So why do the century adjustment rules work? There’s a simple but incomplete explanation, and a more complicated complete explanation.

Partial explanation

The number of days in most centuries, i.e. those not divisible by 400, is

365 × 100 + 24 = 36524

which is congruent to 5 mod 7, which is congruent to −2 mod 7. Dates in the 2100s are 36524 days ahead of their counterparts in the 2000s, so we move back two days in the week. The same applies when going from the 2100s to the 22oos, and from the 2200s to the 2300s.

For example, September 18, 2125 is 36524 days from now—note that February, 2100 will not have a Leap Day—and so it will fall two days earlier in the week, on a Tuesday.

That explanation is mostly correct, but there’s a wrinkle. Not all dates in the 2100s are 36524 days ahead of their counterparts in the 2000s. There are indeed 36524 days between September 18, 2025 and September 18, 2125. But here are 36525 days between January 1, 2000 and January 1, 2100. The former was on a Saturday and the latter will be on a Friday. It would seem that our process is wrong, but it’s not.

Full explanation

Let’s go back and look at the algorithm for finding days of the week,

  1. Take the last two digits of the year and add the number of times 4 divides that number [1].
  2. Add a constant corresponding to the month.
  3. Add the day of the month.
  4. Subtract 1 in January or February of a leap year.
  5. Take the remainder by 7.
  6. Adjust for the century.

Suppose we wanted to find the day of the week for January 1, 2100. The first step gives us 0. The constant for January is 6, so at the end of step 2 we have 6. At the end of step 3 we have 7.

Now comes the key part: in step 4 we do not subtract 1 because 2100 is not a leap year. Step 5 gives us 0, i.e. Sunday. When we adjust for the century by moving back two days, we get Friday.

This explanation is admittedly tedious, but it reveals a subtle part of the algorithm: you have to carry out the algorithm, in particular step 4, for the original year. To find the day of the week for a year in the 2200s, for example, you carry out the algorithm as if it were valid for the 2200s, until you get to the last step.

Related posts

[1] This is known as the year share. There are many ways to calculate it (mod 7) that are less obvious but easier to calculate mentally. It’s interesting that these methods generally look more complicated in writing, but they’re easier to carry out.

Mental math posts

Posted on by John

I’ve written quite a few posts on mental math over the years. I think mental math is important/interesting for a couple reasons. First, there is some utility in being able to carry out small calculations with rough accuracy without having stop and open up a calculator. Second, the constraints imposed by mental calculation make you look at a problem differently, often in interesting ways. An approximate mental calculation often requires more understanding than a precise machine calculation.

Divisibility and factoring

Day of the week

Transcendental functions

This page outlines how to calculate logarithms base 2, e, and 10, and their inverses, linking to other posts for details.

It also outlines computing trig functions, roots, and the gamma function. See the links below for more accurate ways to compute logarithms.

Incidentally, when I’ve posted about these approximations before, inevitably someone will say these are just Taylor approximations. No, they aren’t.

Logarithms

Miscellaneous

Cycles in Marsaglia’s mental RNG

Posted on by John

Last week I wrote about a mental random number generator designed by George Marsaglia. It’s terrible compared to any software RNG, but it produces better output than most people would if asked to say a list of random digits.

Marsaglia’s RNG starts with a two-digit number as a seed state, then at each step replaces n with the 10s digit of n plus 6 times the 1s digit. Here’s the generator in Python form, taken from the earlier post.

state = 42 # Set the seed to any two digit number

def random_digit():
    tens = lambda n: n // 10
    ones = lambda n: n % 10
    global state
    state = tens(state) + 6*ones(state)
    return ones(state)

Only the last digit of the state is returned: the state has two digits but the output has one digit.

Alexander Janßen left an interesting comment on Mastodon regarding the generator:

I’m not sure if it’s already documented anywhere, but a random seed of 59 sticks and always returns a 9. This is similiar to the initial state of 0 (which is more trivial). In return that means, that the state 59 is never reached from any other sequence.

To explore this further, let’s look at just the states of the mental RNG, not the output digits.

If you start with the state 1, you will produce each of the numbers from 1 to 58 in a cycle. It follows that if you start at any number between 1 and 58 you’ll produce the same sequence of states in a cycle, though starting at a different point in the cycle.

… → 1 → 6 → 36 → 39 → … → 1 → …

If you start at 59, you’ll stay at 59 because 5 + 6×9 = 59. In this case, the RNG literally does what is described in the Dilbert cartoon below.

Over here we have our random number generator. nine nine nine nine nine nine ...

Collatz interlude

If you start with a seed larger than 59, you’ll eventually land on a state less than 59, and then produce the same cycle as described above. This is reminiscent of the Collatz conjecture, which I describe here as follows.

The Collatz conjecture asks whether the following procedure always terminates at 1. Take any positive integer n. If it’s odd, multiply it by 3 and add 1. Otherwise, divide it by 2. For obvious reasons the Collatz conjecture is also known as the 3n + 1 conjecture.

The Collatz conjecture remains an open question, though there has been some progress on the problem. I routinely get email from people who say they have no training in math but believe they have solved the problem. Recently they have begun to explain how an LLM led them to their proof.

Does the Collatz sequence get stuck in a cycle for some starting point? Nobody knows. But we can show every starting point for Marsaglia’s mental RNG ends up in a cycle.

Back to Marsaglia

If we start the mental RNG with 99, we next get 63, and then 24. So starting at 99, we end up in a cycle after two steps. The same is true starting at 69 or 89. Otherwise, any starting point between 60 and 98 leads us to a cycle after one step.

Marsaglia’s generator is supposed to be seeded with a two-digit number. What if we seed it with a larger number? For example, what if we start at 1066 and consider the 1os “digit” to be 106?

Each step of the algorithm reduces the state by an order of magnitude, and so if we start with a state greater than 1000, we eventually get to a state less than 1000. Then every state between 100 and 1000 leads to a cycle, usually the permutation of the digits 1 through 58, but the following three-digit states lead to the fixed point of 59.

118, 177, 236, 295, 354, 413, 472, 531, 590

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Area of the unit disk after a Möbius transformation

Posted on by John

Let f(z) = (az + b)/(cz + d) where Δ = adbc ≠ 1.

If f has no singularity inside the unit disk, i.e. if |d/c| > 1, then the image of the unit disk under f is another disk. What is the area of that disk?

The calculation is complicated, but the result turns out to be

Area = π |Δ|² / (|d|² − |c|²)².

Just as a sanity check, set c = 0 and d = 1. Then we multiply the disk by a and shift by b. The shift doesn’t change the area, and multiplying by a multiples the area by |a|², which is consistent with our result.

As another sanity check, note that the area is infinite if cd, which is correct since there would be a singularity at z = −1.

Finally, here’s a third sanity check in the form of Python code.

from numpy import linspace, pi, exp

a, b, c, d = 9, 15j, 20, 25j
theory_r = abs(a*d - b*c)/(abs(d)**2 - abs(c)**2)
print("theory r:", theory_r)

t = linspace(0, 2*pi, 10000)
z = exp(1j*t)
w = (a*z + b)/(c*z + d)
approx_r = (max(w.real) - min(w.real))/2
print("approx r:", approx_r)

More triangle inequalities

Posted on by John

Yesterday I wrote about a triangle inequality discovered by Paul Erdős.

Let P be a point inside a triangle ABC. Let xyz be the distances from P to the vertices and let pqr, be the distances to the sides. Then Erdős’ inequality says

x + y + z ≥ 2(p + q + r).

Using the same notation, here are four more triangle inequalities discovered by Oppenheim [1].

  • px + qy + rz ≥ 2(qr + rp + pq)
  • yz + zx + xy ≥ 4(qr + rp + pq),
  • xyz ≥ 8pqr
  • 1/p+ 1/q + 1/r ≥ 2(1/x + 1/y + 1/z)

[1] A. Oppenheim. The Erdös Inequality and Other Inequalities for a Triangle. The American Mathematical Monthly. Vol. 68, No. 3 (Mar., 1961), pp. 226–230

Area of unit disk under a univalent function

Posted on by John

Let D be the unit disk in the complex plane and let f be a univalent function on D, meaning it is analytic and one-to-one on D.

There is a simple way to compute the area of f(D) from the coefficients in its power series.

If

f(z) = \sum_{n=0}^\infty c_n z^n

then

\text{area}\left(f(D)\right) = \int_D |f^\prime(z)|^2 \, dx \,dy = \pi \sum_{n=1}^\infty n |c_n|^2

The first equality follows from the change of variables theorem for functions of two variables and applying the Cauchy-Riemann equations to simplify the Jacobian. The second equality is a straight-forward calculation that you can work out in polar coordinates.

Application

Let’s apply this to what I called the minimalist Mandelbrot set the other day.

The orange disk has radius 1/4 and so its area is simply π/16.

Finding the area of the blue cardioid takes more work, but the theorem above makes it easy. The cardioid is the image of the set {α : |α| < ½} under the map f(z) = zz². To apply the theorem above we need the domain to be the unit disk, not the unit disk times ½, so we define

f(z) = \frac{1}{2} z - \frac{1}{4} z^2

as a function on the unit disk. Now c1 = ½ and c2 = −¼ and so the area of f(D) = 3π/8.

I said in the earlier post that the minimalist Mandelbrot set makes up most of the Mandelbrot set. Now we can quantify that. The area of the minimalist Mandelbrot set is 7π/16 = 1.3744. The area of the Mandelbrot set is 1.5065, so the minimalist set shown above makes up over 91% of the total area.

Related posts

Random samples from a polygon

Posted on by John

Ted Dunning left a comment on my post on random sampling from a triangle saying you could extend this to sampling from a polygon by dividing the polygon into triangles, and selecting a triangle each time with probability proportional to the triangle’s area.

To illustrate this, let’s start with a irregular pentagon.

To pick a point inside, I used the centroid, the average of the vertices. Connecting the centroid to each of the vertices splits the pentagon into triangles. (Here I implicitly used the fact that this pentagon is convex. The centroid of a non-convex polygon could be outside the polygon.)

We can find the area of the triangles using Heron’s rule.

Here’s what we get for random samples.

A triangle inequality by Erdős

Posted on by John

Plane geometry has been studied since ancient times, and yet new results keep being discovered millennia later, including elegant results. It’s easy to come up with a new result by proving a complicated theorem that Euclid would not have cared about. It’s more impressive to come up with a new theorem that Euclid would have understood and found interesting.

Paul Erdős conjectured another triangle inequality in 1935 which was proved by Mordell and Barrow in 1937 [1].

Let P be a point inside a triangle ABC. Let x, y, z be the distances from P to the vertices and let p, q, r, be the distances to the sides. Then

xyz ≥ 2(pqr)

with equality only if P is the center of an equilateral triangle [2]. In the figure above, the theorem says the dashed blue lines together are more than twice as long as the solid red lines.

How far apart are the left and right sides of the inequality? This was the motivation for the previous post on selecting random points from a triangle. I wanted to generate random points and compare the two sides of the Erdős-Mordell-Barrow inequality.

We can visualize the inequality by generating random points inside the triangle and plotting the points with a color that indicates the inequality gap, darker blue corresponding to a larger gap.

This shows the inequality is sharper in the middle of the triangle than near the vertices.

[1] Problem 3740, American Mathematical Monthly, 44 (1937) 252-254.

[2] You could interpret this as a theorem comparing barycentric and trilinear coordinates.

Randomly selecting points inside a triangle

Posted on by John

If you have a triangle with vertices AB, and C, how would you generate random points inside the triangle ABC?

Barycentric coordinates

One idea would be to use barycentric coordinates.

  1. Generate random numbers α, β, and γ from the interval [0, 1].
  2. Normalize the points to have sum 1 by dividing each by their sum.
  3. Return αA + βB + γC.

This generates points inside the triangle, but not uniformly.

Accept-reject

Another idea is to use an accept-reject method. Draw a rectangle around the triangle, generate points in the square, and throw them away if they land outside the triangle.

An advantage to this method is that it obviously works because it doesn’t rely on anything subtle. Three cheers for brute force!

The method is fairly efficient; on average only half the points will be rejected.

A disadvantage to all accept-reject methods is that they have variable runtime, though this only matters in some applications.

Accept-flip

There is a clever variation on the accept-reject method. Create a parallelogram by attaching a flipped copy of the triangle. Now randomly sample from the parallelogram. Every sample point will either land inside the original triangle or in its flipped twin. If it landed in the original triangle, keep it. If it landed in the twin, flip it back over and use that point.

This is like an accept-reject method, except there’s no waste. Every point is kept, possibly after flipping.

You can find code for implementing this method on Stack Overflow.

Barycentric coordinates fixed

Felix left a note in the comments that the barycentric approach would work if you draw the random weights from an exponential distribution rather than a uniform distribution. That goes against my intuition. I thought about using a different distribution on the weights, but I didn’t work out what it would need to be, but I did not expect it to be exponential. Apparently it works. Here’s a proof by plot:

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