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I have decades of consulting experience helping companies solve complex problems involving applied math, statistics, and data privacy.
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Simplifying expressions in SymPy

2026-03-11 00:08:15

The previous post looked at why Mathematica does not simplify the expression Sinh[ArcCosh[x]] the way you might think it should. This post will be a sort of Python analog of the previous post.

SymPy is a Python library that among other things will simplify mathematical expressions. As before, we seek to verify the entries in the table below, this time using SymPy.

\renewcommand{\arraystretch}{2.2} \begin{array}{c|c|c|c} & \sinh^{-1} & \cosh^{-1} & \tanh^{-1} \\ \hline \sinh & x & \sqrt{x^{2}-1} & \dfrac{x}{\sqrt{1-x^2}} \\ \hline \cosh & \sqrt{x^{2} + 1} & x & \dfrac{1}{\sqrt{1 - x^2}} \\ \hline \tanh & \dfrac{x}{\sqrt{x^{2}+1}} & \dfrac{\sqrt{x^{2}-1}}{x} & x \\ \end{array}

Here’s the code:

from sympy import *

x = symbols('x')

print( simplify(sinh(asinh(x))) )
print( simplify(sinh(acosh(x))) )
print( simplify(sinh(atanh(x))) )
print( simplify(cosh(asinh(x))) )
print( simplify(cosh(acosh(x))) )
print( simplify(cosh(atanh(x))) )
print( simplify(tanh(asinh(x))) )
print( simplify(tanh(acosh(x))) )
print( simplify(tanh(atanh(x))) )

As before, the results are mostly as we’d expect:

x
sqrt(x - 1)*sqrt(x + 1)
x/sqrt(1 - x**2)
sqrt(x**2 + 1)
x
1/sqrt(1 - x**2)
x/sqrt(x**2 + 1)
sqrt(x - 1)*sqrt(x + 1)/x
x

Also as before, sinh(acosh(x)) and tanh(acosh(x)) return more complicated expressions than in the table above. Why doesn’t

√(x − 1) √(x + 1)

simplify to

√(x² − 1)

as you’d expect? Because the equation

√(x − 1) √(x + 1) = √(x² − 1)

does not hold for all x. See the previous post for the subtleties of defining arccosh and sqrt for complex numbers. The equation above does not hold, for example, when x = −2.

As in Mathematica, you can specify the range of variables in SymPy. If we specify that x ≥ 0 we get the result we expect. The code

x = symbols('x', real=True, nonnegative=True)
print( simplify(sinh(acosh(x))) )

prints 

sqrt(x**2 - 1)

as expected.

The post Simplifying expressions in SymPy first appeared on John D. Cook.

sinh( arccosh(x) )

2026-03-10 23:12:03

I’ve written several posts about applying trig functions to inverse trig functions. I intended to write two posts, one about the three basic trig functions and one about their hyperbolic counterparts. But there’s more to explore here than I thought at first. For example, the mistakes that I made in the first post lead to a couple more posts discussing error detection and proofs.

I was curious about how Mathematica would handle these identities. Sometimes it doesn’t simplify expressions the way you expect, and for interesting reasons. It handled the circular functions as you might expect.

\renewcommand{\arraystretch}{2.2} \begin{array}{c|c|c|c} & \sin^{-1} & \cos^{-1} & \tan^{-1} \\ \hline \sin & x & \sqrt{1-x^{2}} & \dfrac{x}{\sqrt{1+x^2}} \\ \hline \cos & \sqrt{1-x^{2}} & x & \dfrac{1}{\sqrt{1 + x^2}} \\ \hline \tan & \dfrac{x}{\sqrt{1-x^{2}}} & \dfrac{\sqrt{1-x^{2}}}{x} & x \\ \end{array}

So, for example, if you enter Sin[ArcCos[x]] it returns √(x² − 1) as in the table above. Then I added an h on the end of all the function names to see whether it would reproduce the table of hyperbolic compositions.

\renewcommand{\arraystretch}{2.2} \begin{array}{c|c|c|c} & \sinh^{-1} & \cosh^{-1} & \tanh^{-1} \\ \hline \sinh & x & \sqrt{x^{2}-1} & \dfrac{x}{\sqrt{1-x^2}} \\ \hline \cosh & \sqrt{x^{2} + 1} & x & \dfrac{1}{\sqrt{1 - x^2}} \\ \hline \tanh & \dfrac{x}{\sqrt{x^{2}+1}} & \dfrac{\sqrt{x^{2}-1}}{x} & x \\ \end{array}

For the most part it did, but not entirely. The results were as expected except when applying sinh or cosh to arccosh. But Sinh[ArcCosh[x]] returns

\sqrt{\frac{x-1}{x+1}} (x+1)

and Tanh[ArcCosh[x]] returns

\frac{\sqrt{\frac{x-1}{x+1}} (x+1)}{x}

Why doesn’t Mathematica simplify as expected?

Why didn’t Sinh[ ArcCosh[x] ] just return √(x² − 1)? The expression it returned is equivalent to this: just square the (x + 1) term, bring it inside the radical, and simplify. That line of reasoning is correct for some values of x but not for others. For example, Sinh[ArcCosh[2]] returns −√3 but √(3² − 1) = √3. The expression Mathematica returns for Sinh[ArcCosh[x]] correctly evaluates to −√3.

Defining ArcCosh

To understand what’s going on, we have to look closer at what arccosh(x) means. You might say it is a function that returns the number whose hyperbolic cosine equals x. But cosh is an even function: cosh(−x) = cosh(x), so we can’t say the value. OK, so we define arccosh(x) to be the positive number whose hyperbolic cosine equals x. That works for real values of x that are at least 1. But what do we mean by, for example, arccosh(1/2)? There is no real number y such that cosh(y) = 1/2.

To rigorously define inverse hyperbolic cosine, we need to make a branch cut. We cannot define arccosh as an analytic function over the entire complex plane. But if we remove (−∞, 1], we can. We define arccosh(x) for real x > 1 to be the positive real number y such that cosh(y) = x, and define it for the rest of the complex plane (with our branch cut (−∞, 1] removed) by analytic continuation.

If we look up ArcCosh in Mathematica’s documentation, it says “ArcCosh[z] has a branch cut discontinuity in the complex z plane running from −∞ to +1.” But what about values of x that lie on the branch cut? For example, we looked at ArcCosh[-2] above. We can extend arccosh to the entire complex plane, but we cannot extend it as an analytic function.

So how do we define arccosh(x) for x in (−∞, 1]? We could define it to be the limit of arccosh(z) as z approaches x for values of z not on the branch cut. But we have to make a choice: do we approach x from above or from below? That is, we can define arccosh(x) for real x ≤ 1 by

\text{arccosh}(x) = \lim_{\varepsilon \to 0^+} \text{arccosh}(x + \varepsilon i)

or by

\text{arccosh}(x) = \lim_{\varepsilon \to 0^-} \text{arccosh}(x + \varepsilon i)

but we have to make a choice because the two limits are not the same. For example, Sin[ArcCosh[-2 + 0.001 I]] returns 11.214 + 2.89845 I but Sin[ArcCosh[-2 + 0.001 I]] returns 11.214 - 2.89845 I. By convention, we choose the limit from above.

Defining square root

Where did we go wrong when we assumed Mathematica’s expression for sinh(arccosh(x))

\sqrt{\frac{x-1}{x+1}} (x+1)

could be simplified to √(x² − 1)? We implicitly assumed √(x + 1)² = (x + 1). And that’s true, if x ≥ − 1, but not for smaller x. Just as we have be careful about how we define arccosh, we have to be careful about how we define square root.

The process of defining the square root function for all complex numbers is analogous to the process of defining arccosh. First, we define square root to be what we expect for positive real numbers. Then we make a branch cut, in this case (−∞, 0]. Then we define it by analytic continuation for all values not on the cut. Then finally, we define it along the cut by continuity, taking the limit from above.

Once we’ve defined arccosh and square root carefully, we can see that the expressions Mathematica returns for sinh(arccosh(x)) and tanh(arccosh(x)) are correct for all complex inputs, while the simpler expressions in the table above implicitly assume we’re working with values of x for which arccosh(x) is real.

Making assumptions explicit

If we are only concerned with values of x ≥ − 1 we can tell Mathematica this, and it will simplify expressions accordingly. If we ask it for

    Simplify[Sinh[ArcCosh[x]], Assumptions -> {x >= -1}]

it will return √(x² − 1).

Related posts

The post sinh( arccosh(x) ) first appeared on John D. Cook.

Trig composition table

2026-03-10 06:16:09

I’ve written a couple posts that reference the table below.

\renewcommand{\arraystretch}{2.2} \begin{array}{c|c|c|c} & \sin^{-1} & \cos^{-1} & \tan^{-1} \\ \hline \sin & x & \sqrt{1-x^{2}} & \dfrac{x}{\sqrt{1+x^2}} \\ \hline \cos & \sqrt{1-x^{2}} & x & \dfrac{1}{\sqrt{1 + x^2}} \\ \hline \tan & \dfrac{x}{\sqrt{1-x^{2}}} & \dfrac{\sqrt{1-x^{2}}}{x} & x \\ \end{array}

You could make a larger table, 6 × 6, by including sec, csc, cot, and their inverses, as Baker did in his article [1].

Note that rows 4, 5, and 6 are the reciprocals of rows 1, 2, and 3.

Returning to the theme of the previous post, how could we verify that the expressions in the table are correct? Each expression is one of 14 forms for reasons we’ll explain shortly. To prove that the expression in each cell is the correct one, it is sufficient to check equality at just one random point.

Every identity can be proved by referring to a right triangle with one side of length x, one side of length 1, and the remaining side of whatever length Pythagoras dictates, just as in the first post [2]. Define the sets AB, and C by

A = {1}
B = {x}
C = {√(1 − x²), √(x² − 1), √(1 + x²)}

Every expression is the ratio of an element from one of these sets and an element of another of these sets. You can check that this can be done 14 ways.

Some of the 14 functions are defined for |x| ≤ 1, some for |x| ≥, and some for all x. This is because sin and cos has range [−1, 1], sec and csc have range (−∞, 1] ∪ [1, ∞) and tan and cot have range (−∞, ∞). No two of the 14 functions are defined and have the same value at more than a point or two.

The follow code verifies the identities at a random point. Note that we had to define a few functions that are not built into Python’s math module.

    from math import *

    def compare(x, y):
        print(abs(x - y) < 1e-12)

    sec  = lambda x: 1/cos(x)    
    csc  = lambda x: 1/sin(x)
    cot  = lambda x: 1/tan(x)
    asec = lambda x: atan(sqrt(x**2 - 1))
    acsc = lambda x: atan(1/sqrt(x**2 - 1))
    acot = lambda x: pi/2 - atan(x)

    x = np.random.random()
    compare(sin(acos(x)), sqrt(1 - x**2))
    compare(sin(atan(x)), x/sqrt(1 + x**2))
    compare(sin(acot(x)), 1/sqrt(x**2 + 1))
    compare(cos(asin(x)), sqrt(1 - x**2))
    compare(cos(atan(x)), 1/sqrt(1 + x**2))
    compare(cos(acot(x)), x/sqrt(1 + x**2))
    compare(tan(asin(x)), x/sqrt(1 - x**2))
    compare(tan(acos(x)), sqrt(1 - x**2)/x)
    compare(tan(acot(x)), 1/x)
    
    x = 1/np.random.random()
    compare(sin(asec(x)), sqrt(x**2 - 1)/x)
    compare(cos(acsc(x)), sqrt(x**2 - 1)/x)    
    compare(sin(acsc(x)), 1/x)
    compare(cos(asec(x)), 1/x)
    compare(tan(acsc(x)), 1/sqrt(x**2 - 1))
    compare(tan(asec(x)), sqrt(x**2 - 1))

This verifies the first three rows; the last three rows are reciprocals of the first three rows.

Related posts

[1] G. A. Baker. Multiplication Tables for Trigonometric Operators. The American Mathematical Monthly, Vol. 64, No. 7 (Aug. – Sep., 1957), pp. 502–503.

[2] These geometric proofs only prove identities for real-valued inputs and outputs and only over limited ranges, and yet they can be bootstrapped to prove much more. If two holomorphic functions are equal on a set of points with a limit point, such as a interval of the real line, then they are equal over their entire domains. So the geometrically proven identities extend to the complex plane.

The post Trig composition table first appeared on John D. Cook.

How much certainty is worthwhile?

2026-03-09 02:09:48

A couple weeks ago I wrote a post on a composition table, analogous to a multiplication table, for trig functions and inverse trig functions.

\renewcommand{\arraystretch}{2.2} \begin{array}{c|c|c|c} & \sin^{-1} & \cos^{-1} & \tan^{-1} \\ \hline \sin & x & \sqrt{1-x^{2}} & \dfrac{x}{\sqrt{1+x^2}} \\ \hline \cos & \sqrt{1-x^{2}} & x & \dfrac{1}{\sqrt{1 + x^2}} \\ \hline \tan & \dfrac{x}{\sqrt{1-x^{2}}} & \dfrac{\sqrt{1-x^{2}}}{x} & x \\ \end{array}

Making mistakes and doing better

My initial version of the table above had some errors that have been corrected. When I wrote a followup post on the hyperbolic counterparts of these functions I was more careful. I wrote a little Python code to verify the identities at a few points.

\renewcommand{\arraystretch}{2.2} \begin{array}{c|c|c|c} & \sinh^{-1} & \cosh^{-1} & \tanh^{-1} \\ \hline \sinh & x & \sqrt{x^{2}-1} & \dfrac{x}{\sqrt{1-x^2}} \\ \hline \cosh & \sqrt{x^{2} + 1} & x & \dfrac{1}{\sqrt{1 - x^2}} \\ \hline \tanh & \dfrac{x}{\sqrt{x^{2}+1}} & \dfrac{\sqrt{x^{2}-1}}{x} & x \\ \end{array}

Checking a few points

Of course checking an identity at a few points is not a proof. On the other hand, if you know the general form of the answer is right, then checking a few points is remarkably powerful. All the expressions above are simple combinations of a handful of functions: squaring, taking square roots, adding or subtracting 1, and taking ratios. What are the chances that a couple such combinations agree at a few points but are not identical? Very small; zero if you formalize the problem correctly. More on that in the next post.

In the case of polynomials, checking a few points may be sufficient. If two polynomials in one variable agree at enough points, they agree everywhere. This can be applied when it’s not immediately obvious that identity involves polynomials, such as proving theorems about binomial coefficients.

The Schwartz-Zippel lemma is a more sophisticated version of this idea that is used in zero knowledge proofs (ZKP). Statements to be proved are formulated as multivariate polynomials over finite fields. The Schwartz-Zippel lemma quantifies the probability that the polynomials could be equal at a few random points but not be equal everywhere. You can prove that a statement is correct with high probability by only checking a small number of points.

Achilles heel

The first post mentioned above included geometric proofs of the identities, but also had typos in the table. This is an important point: formally verified systems can and do contain bugs because there is inevitably some gap between what it formally verified and what is not. I could have formally verified the identities represented in the table, say using Lean, but introduced errors when I manually transcribe the results into LaTeX to make the diagram.

It’s naive to say “Well then don’t leave anything out. Formally verify everything.” It’s not possible to verify “everything.” And things that could in principle be verified may require too much effort to do so.

There are always parts of a system that are not formally verified, and these parts are where you need to look first for errors. If I had formally verified my identities in Lean, it would be more likely that I made a transcription error in typing LaTeX than that the Lean software had a bug that allowed a false statement to slip through.

Economics

The appropriate degree of testing or formal verification depends on the context. In the case of the two blog posts above, I didn’t do enough testing for the first but did do enough for the second: checking identities at a few random points was the right level of effort. Software that controls a pacemaker or a nuclear power plant requires a higher degree of confidence than a blog post.

Rigorously proving identities

Suppose you want to rigorously prove the identities in the tables above. You first have to specify your domains. Are the values of x real numbers or complex numbers? Extending to the complex numbers doesn’t make things harder; it might make them easier by making some problems more explicit.

The circular and hyperbolic functions are easy to define for all complex numbers, but the inverse functions, including the square root function, require more care. It’s more work than you might expect, but you can find an outline of a full development here. Once you have all the functions carefully defined, the identities can be verified by hand or by a CAS such as Mathematica. Or even better, by both.

Related posts

The post How much certainty is worthwhile? first appeared on John D. Cook.

From logistic regression to AI

2026-03-04 22:15:02

It is sometimes said that neural networks are “just” logistic regression. (Remember neural networks? LLMs are neural networks, but nobody talks about neural networks anymore.) In some sense a neural network is logistic regression with more parameters, a lot more parameters, but more is different. New phenomena emerge at scale that could not have been anticipated at a smaller scale.

Logistic regression can work surprisingly well on small data sets. One of my clients filed a patent on a simple logistic regression model I created for them. You can’t patent logistic regression—the idea goes back to the 1840s—but you can patent its application to a particular problem. Or at least you can try; I don’t know whether the patent was ever granted.

Some of the clinical trial models that we developed at MD Anderson Cancer Center were built on Bayesian logistic regression. These methods were used to run early phase clinical trials, with dozens of patients. Far from “big data.” Because we had modest amounts of data, our models could not be very complicated, though we tried. The idea was that informative priors would let you fit more parameters than would otherwise be possible. That idea was partially correct, though it leads to a sensitive dependence on priors.

When you don’t have enough data, additional parameters do more harm than good, at least in the classical setting. Over-parameterization is bad in classical models, though over-parameterization can be good for neural networks. So for a small data set you commonly have only two parameters. With a larger data set you might have three or four.

There is a rule of thumb that you need at least 10 events per parameter (EVP) [1]. For example, if you’re looking at an outcome that happens say 20% of the time, you need about 50 data points per parameter. If you’re analyzing a clinical trial with 200 patients, you could fit a four-parameter model. But those four parameters better pull their weight, and so you typically compute some sort of information criteria metric—AIC, BIC, DIC, etc.—to judge whether the data justify a particular set of parameters. Statisticians agonize over each parameter because it really matters.

Imaging working in the world of modest-sized data sets, carefully considering one parameter at a time for inclusion in a model, and hearing about people fitting models with millions, and later billions, of parameters. It just sounds insane. And sometimes it is insane [2]. And yet it can work. Not automatically; developing large models is still a bit of a black art. But large models can do amazing things.

How do LLMs compare to logistic regression as far as the ratio of data points to parameters? Various scaling laws have been suggested. These laws have some basis in theory, but they’re largely empirical, not derived from first principles. “Open” AI no longer shares stats on the size of their training data or the number of parameters they use, but other models do, and as a very rough rule of thumb, models are trained using around 100 tokens per parameter, which is not very different from the EVP rule of thumb for logistic regression.

Simply counting tokens and parameters doesn’t tell the full story. In a logistic regression model, data are typically binary variables, or maybe categorical variables coming from a small number of possibilities. Parameters are floating point values, typically 64 bits, but maybe the parameter values are important to three decimal places or 10 bits. In the example above, 200 samples of 4 binary variables determine 4 ten-bit parameters, so 20 bits of data for every bit of parameter. If the inputs were 10-bit numbers, there would be 200 bits of data per parameter.

When training an LLM, a token is typically a 32-bit number, not a binary variable. And a parameter might be a 32-bit number, but quantized to 8 bits for inference [3]. If a model uses 100 tokens per parameter, that corresponds to 400 bits of training data per inference parameter bit.

In short, the ratio of data bits to parameter bits is roughly similar between logistic regression and LLMs. I find that surprising, especially because there’s a sort of no man’s land between [2] a handful of parameters and billions of parameters.

Related posts

[1] P Peduzzi 1, J Concato, E Kemper, T R Holford, A R Feinstein. A simulation study of the number of events per variable in logistic regression analysis. Journal of Clinical Epidemiology 1996 Dec; 49(12):1373-9. doi: 10.1016/s0895-4356(96)00236-3.

[2] A lot of times neural networks don’t scale down to the small data regime well at all. It took a lot of audacity to believe that models would perform disproportionately better with more training data. Classical statistics gives you good reason to expect diminishing returns, not increasing returns.

[3] There has been a lot of work lately to find low precision parameters directly. So you might find 16-bit parameters rather than finding 32 bit parameters then quantizing to 16 bits.

The post From logistic regression to AI first appeared on John D. Cook.

An AI Odyssey, Part 2: Prompting Peril

2026-03-04 22:04:30

I was working with a colleague recently on a project involving the use of the OpenAI API.

I brought up the idea that, perhaps it is possible to improve the accuracy of API response by modifying the API call to increase the amount of reasoning performed.

My colleague quickly asked ChatGPT if this was possible, and the answer came back “No, it’s not possible to do that.” then I asked essentially the same question to my own instance of ChatGPT, and the answer was, “Yes, you can do it, but you need to use the OpenAI Responses API.”

How did we get such different answers? Was it the wording of the prompt? Was it the custom instructions given in the account personalization, where you describe who you are and how you want ChatGPT to respond? Is it possibly different conversation history? Many factors could have contributed to the different response. Unfortunately, many of these factors are either not easily controllable at the user level or not convenient to change to alternatives in a protracted trial and error search.

I’ve had other times when I will first get a highly standardized, generic answer from ChatGPT, even in Thinking mode, that I know is not quite right or just seems off. Then when I push back, I may get a profoundly different answer.

It’s simply a fact that large language models are conditional probabilistic systems that do not guarantee reproducibility in practice, even given the same inputs, even at temperature=0 [1]. Their outputs depend sensitively on prompt wording, context window contents, system instructions, and model configuration. Small differences in these inputs can yield substantially different outputs.

How well an AI chatbot responds can obviously have a massive impact on how effective the tool will be for your use case. Differences in responses could materially affect the outcome of your project. I take this as a wake-up call to be persistent, vigilant and flexible in attempts to obtain reliable answers from these new AI tools.

Notes

[1] (some) sources of nondeterminism: floating point / GPU nondeterminism, differing order of operations from distributed collectives, ties or near-ties in token probabilities, backend/infrastructure changes, model routing, hidden system prompt differences or tool availability.

The post An AI Odyssey, Part 2: Prompting Peril first appeared on John D. Cook.