Lindemann–Weierstrass theorem

Template:Short description Template:CS1 config Template:Stack In transcendental number theory, the Lindemann–Weierstrass theorem is a result that is very useful in establishing the transcendence of numbers. It states the following: Template:Math theorem In other words, the extension field <math>\mathbb{Q}(e^{\alpha_1}, \dots, e^{\alpha_n})</math> has transcendence degree Template:Math over <math>\mathbb{Q}</math>.

An equivalent formulation from Template:Harvnb, is the following: Template:Math theorem This equivalence transforms a linear relation over the algebraic numbers into an algebraic relation over <math>\mathbb{Q}</math> by using the fact that a symmetric polynomial whose arguments are all conjugates of one another gives a rational number.

The theorem is named for Ferdinand von Lindemann and Karl Weierstrass. Lindemann proved in 1882 that Template:Math is transcendental for every non-zero algebraic number Template:Math thereby establishing that Template:Pi is transcendental (see below).<ref name="Lindemann1882a" /> Weierstrass proved the above more general statement in 1885.<ref name="Weierstrass1885" />

The theorem, along with the Gelfond–Schneider theorem, is extended by Baker's theorem,<ref>Template:Harvnb</ref> and all of these would be further generalized by Schanuel's conjecture.

Naming conventionEdit

The theorem is also known variously as the Hermite–Lindemann theorem and the Hermite–Lindemann–Weierstrass theorem. Charles Hermite first proved the simpler theorem where the Template:Math exponents are required to be rational integers and linear independence is only assured over the rational integers,<ref>Template:Harvnb.</ref><ref>Template:Harvnb</ref> a result sometimes referred to as Hermite's theorem.<ref>Template:Harvnb.</ref> Although that appears to be a special case of the above theorem, the general result can be reduced to this simpler case. Lindemann was the first to allow algebraic numbers into Hermite's work in 1882.<ref name="Lindemann1882a">Template:Harvnb, Template:Harvnb.</ref> Shortly afterwards Weierstrass obtained the full result,<ref name="Weierstrass1885">Template:Harvnb,</ref> and further simplifications have been made by several mathematicians, most notably by David Hilbert<ref>Template:Harvnb.</ref> and Paul Gordan.<ref>Template:Harvnb.</ref>

Template:Anchor Transcendence of Template:Math and Template:PiEdit

Template:Also

The transcendence of Template:Math and Template:Pi are direct corollaries of this theorem.

Suppose Template:Math is a non-zero algebraic number; then Template:Math is a linearly independent set over the rationals, and therefore by the first formulation of the theorem Template:Math is an algebraically independent set; or in other words Template:Math is transcendental. In particular, Template:Math is transcendental. (A more elementary proof that Template:Math is transcendental is outlined in the article on transcendental numbers.)

Alternatively, by the second formulation of the theorem, if Template:Math is a non-zero algebraic number, then Template:Math is a set of distinct algebraic numbers, and so the set Template:Math is linearly independent over the algebraic numbers and in particular Template:Math cannot be algebraic and so it is transcendental.

To prove that Template:Pi is transcendental, we prove that it is not algebraic. If Template:Pi were algebraic, Template:Pii would be algebraic as well, and then by the Lindemann–Weierstrass theorem Template:Math (see Euler's identity) would be transcendental, a contradiction. Therefore Template:Pi is not algebraic, which means that it is transcendental.

A slight variant on the same proof will show that if Template:Math is a non-zero algebraic number then Template:Math and their hyperbolic counterparts are also transcendental.

Template:Anchor Template:Math-adic conjectureEdit

Template:Math theorem

Modular conjectureEdit

An analogue of the theorem involving the modular function Template:Math was conjectured by Daniel Bertrand in 1997, and remains an open problem.<ref>Template:Harvnb.</ref> Writing Template:Math for the square of the nome and Template:Math the conjecture is as follows. Template:Math theorem

Lindemann–Weierstrass theoremEdit

Template:Math theorem

ProofEdit

The proof relies on two preliminary lemmas. Notice that Lemma B itself is already sufficient to deduce the original statement of Lindemann–Weierstrass theorem.

Preliminary lemmasEdit

Template:Math theorem \right ) + \cdots + c(r) \left (e^{\gamma(r)_1}+\cdots+ e^{\gamma(r)_{m(r)}} \right) = 0</math>

has only the trivial solution <math>c(i)=0</math> for all <math>i = 1, \dots, r.</math>}}

Proof of Lemma A. To simplify the notation set:

<math>

\begin{align} & n_0 =0, & & \\ & n_i =\sum\nolimits_{k=1}^i m(k), & & i=1,\ldots,r \\ & n=n_r, & & \\ & \alpha_{n_{i-1}+j} =\gamma(i)_j, & & 1\leq i\leq r,\ 1\leq j\leq m(i) \\ & \beta_{n_{i-1}+j} =c(i). \end{align} </math>

Then the statement becomes

<math>\sum_{k=1}^n \beta_k e^{\alpha_k}\neq 0.</math>

Let Template:Mvar be a prime number and define the following polynomials:

<math>f_i(x) = \frac {\ell^{np} (x-\alpha_1)^p \cdots (x-\alpha_n)^p}{(x-\alpha_i)},</math>

where Template:Mvar is a non-zero integer such that <math>\ell\alpha_1,\ldots,\ell\alpha_n</math> are all algebraic integers. Define<ref>Up to a factor, this is the same integral appearing in [[Transcendental number#A proof that e is transcendental|the proof that Template:Mvar is a transcendental number]], where Template:Math The rest of the proof of the Lemma is analog to that proof.</ref>

<math>I_i(s) = \int^s_0 e^{s-x} f_i(x) \, dx.</math>

Using integration by parts we arrive at

<math>I_i(s) = e^s \sum_{j=0}^{np-1} f_i^{(j)}(0) - \sum_{j=0}^{np-1} f_i^{(j)}(s),</math>

where <math>np-1</math> is the degree of <math>f_i</math>, and <math>f_i^{(j)}</math> is the j-th derivative of <math>f_i</math>. This also holds for s complex (in this case the integral has to be intended as a contour integral, for example along the straight segment from 0 to s) because

<math>-e^{s-x} \sum_{j=0}^{np-1} f_i^{(j)}(x)</math>

is a primitive of <math>e^{s-x} f_i(x)</math>.

Consider the following sum:

<math>\begin{align}

J_i &=\sum_{k=1}^n\beta_k I_i(\alpha_k)\\[5pt] &= \sum_{k=1}^n\beta_k \left ( e^{\alpha_k} \sum_{j=0}^{np-1} f_i^{(j)}(0) - \sum_{j=0}^{np-1} f_i^{(j)}(\alpha_k)\right ) \\[5pt] &=\left(\sum_{j=0}^{np-1}f_i^{(j)}(0)\right)\left(\sum_{k=1}^n \beta_k e^{\alpha_k}\right)-\sum_{k=1}^n\sum_{j=0}^{np-1} \beta_kf_i^{(j)}(\alpha_k)\\[5pt] &= -\sum_{k=1}^n \sum_{j=0}^{np-1} \beta_kf_i^{(j)}(\alpha_k) \end{align}</math>

In the last line we assumed that the conclusion of the Lemma is false. In order to complete the proof we need to reach a contradiction. We will do so by estimating <math>|J_1\cdots J_n|</math> in two different ways.

First <math>f_i^{(j)}(\alpha_k)</math> is an algebraic integer which is divisible by p! for <math>j\geq p</math> and vanishes for <math>j<p</math> unless <math>j=p-1</math> and <math>k=i</math>, in which case it equals

<math>\ell^{np}(p-1)!\prod_{k\neq i}(\alpha_i-\alpha_k)^p.</math>

This is not divisible by p when p is large enough because otherwise, putting

<math>\delta_i=\prod_{k\neq i}(\ell\alpha_i-\ell\alpha_k)</math>

(which is a non-zero algebraic integer) and calling <math>d_i\in\mathbb Z</math> the product of its conjugates (which is still non-zero), we would get that p divides <math>\ell^p(p-1)!d_i^p</math>, which is false.

So <math>J_i</math> is a non-zero algebraic integer divisible by (p − 1)!. Now

<math>J_i=-\sum_{j=0}^{np-1}\sum_{t=1}^r c(t)\left(f_i^{(j)}(\alpha_{n_{t-1}+1}) + \cdots + f_i^{(j)}(\alpha_{n_t})\right).</math>

Since each <math>f_i(x)</math> is obtained by dividing a fixed polynomial with integer coefficients by <math>(x-\alpha_i)</math>, it is of the form

<math>f_i(x)=\sum_{m=0}^{np-1}g_m(\alpha_i)x^m, </math>

where <math>g_m</math> is a polynomial (with integer coefficients) independent of i. The same holds for the derivatives <math>f_i^{(j)}(x)</math>.

Hence, by the fundamental theorem of symmetric polynomials,

<math>f_i^{(j)}(\alpha_{n_{t-1}+1})+\cdots+f_i^{(j)}(\alpha_{n_t})</math>

is a fixed polynomial with rational coefficients evaluated in <math>\alpha_i</math> (this is seen by grouping the same powers of <math>\alpha_{n_{t-1}+1},\dots,\alpha_{n_t}</math> appearing in the expansion and using the fact that these algebraic numbers are a complete set of conjugates). So the same is true of <math>J_i</math>, i.e. it equals <math>G(\alpha_i)</math>, where G is a polynomial with rational coefficients independent of i.

Finally <math>J_1\cdots J_n=G(\alpha_1)\cdots G(\alpha_n)</math> is rational (again by the fundamental theorem of symmetric polynomials) and is a non-zero algebraic integer divisible by <math>(p-1)!^n</math> (since the <math>J_i</math>'s are algebraic integers divisible by <math>(p-1)!</math>). Therefore

<math>|J_1\cdots J_n|\geq (p-1)!^n.</math>

However one clearly has:

<math>|I_i(\alpha_k)| \leq {|\alpha_k|} e^{|\alpha_k|} F_i({|\alpha_k|}),</math>

where Template:Mvar is the polynomial whose coefficients are the absolute values of those of f_i (this follows directly from the definition of <math>I_i(s)</math>). Thus

<math>|J_i|\leq \sum_{k=1}^n \left |\beta_k\alpha_k \right |e^{|\alpha_k|}F_i \left ( \left |\alpha_k \right| \right )</math>

and so by the construction of the <math>f_i</math>'s we have <math>|J_1\cdots J_n|\le C^p</math> for a sufficiently large C independent of p, which contradicts the previous inequality. This proves Lemma A. ∎

Template:Math theorem

Proof of Lemma B: Assuming

<math>b(1)e^{\gamma(1)}+\cdots+ b(n)e^{\gamma(n)}= 0,</math>

we will derive a contradiction, thus proving Lemma B.

Let us choose a polynomial with integer coefficients which vanishes on all the <math>\gamma(k)</math>'s and let <math>\gamma(1),\ldots,\gamma(n),\gamma(n+1),\ldots,\gamma(N)</math> be all its distinct roots. Let b(n + 1) = ... = b(N) = 0.

The polynomial

<math>P(x_1,\dots,x_N)=\prod_{\sigma\in S_N}(b(1) x_{\sigma(1)}+\cdots+b(N) x_{\sigma(N)})</math>

vanishes at <math>(e^{\gamma(1)},\dots,e^{\gamma(N)})</math> by assumption. Since the product is symmetric, for any <math>\tau\in S_N</math> the monomials <math>x_{\tau(1)}^{h_1}\cdots x_{\tau(N)}^{h_N}</math> and <math>x_1^{h_1}\cdots x_N^{h_N}</math> have the same coefficient in the expansion of P.

Thus, expanding <math>P(e^{\gamma(1)},\dots,e^{\gamma(N)})</math> accordingly and grouping the terms with the same exponent, we see that the resulting exponents <math>h_1\gamma(1)+\dots+h_N\gamma(N)</math> form a complete set of conjugates and, if two terms have conjugate exponents, they are multiplied by the same coefficient.

So we are in the situation of Lemma A. To reach a contradiction it suffices to see that at least one of the coefficients is non-zero. This is seen by equipping Template:Math with the lexicographic order and by choosing for each factor in the product the term with non-zero coefficient which has maximum exponent according to this ordering: the product of these terms has non-zero coefficient in the expansion and does not get simplified by any other term. This proves Lemma B. ∎

Final stepEdit

We turn now to prove the theorem: Let a(1), ..., a(n) be non-zero algebraic numbers, and α(1), ..., α(n) distinct algebraic numbers. Then let us assume that:

<math>a(1)e^{\alpha(1)}+\cdots + a(n)e^{\alpha(n)} = 0.</math>

We will show that this leads to contradiction and thus prove the theorem. The proof is very similar to that of Lemma B, except that this time the choices are made over the a(i)'s:

For every i ∈ {1, ..., n}, a(i) is algebraic, so it is a root of an irreducible polynomial with integer coefficients of degree d(i). Let us denote the distinct roots of this polynomial a(i)₁, ..., a(i)_d(i), with a(i)₁ = a(i).

Let S be the functions σ which choose one element from each of the sequences (1, ..., d(1)), (1, ..., d(2)), ..., (1, ..., d(n)), so that for every 1 ≤ i ≤ n, σ(i) is an integer between 1 and d(i). We form the polynomial in the variables <math>x_{11},\dots,x_{1d(1)},\dots,x_{n1},\dots,x_{nd(n)},y_1,\dots,y_n</math>

<math>Q(x_{11},\dots,x_{nd(n)},y_1,\dots,y_n)=\prod\nolimits_{\sigma\in S}\left(x_{1\sigma(1)}y_1+\dots+x_{n\sigma(n)}y_n\right).</math>

Since the product is over all the possible choice functions σ, Q is symmetric in <math>x_{i1},\dots,x_{id(i)}</math> for every i. Therefore Q is a polynomial with integer coefficients in elementary symmetric polynomials of the above variables, for every i, and in the variables y_i. Each of the latter symmetric polynomials is a rational number when evaluated in <math>a(i)_1,\dots,a(i)_{d(i)}</math>.

The evaluated polynomial <math>Q(a(1)_1,\dots,a(n)_{d(n)},e^{\alpha(1)},\dots,e^{\alpha(n)})</math> vanishes because one of the choices is just σ(i) = 1 for all i, for which the corresponding factor vanishes according to our assumption above. Thus, the evaluated polynomial is a sum of the form

<math>b(1)e^{\beta(1)}+ b(2)e^{\beta(2)}+ \cdots + b(N)e^{\beta(N)}= 0,</math>

where we already grouped the terms with the same exponent. So in the left-hand side we have distinct values β(1), ..., β(N), each of which is still algebraic (being a sum of algebraic numbers) and coefficients <math>b(1),\dots,b(N)\in\mathbb Q</math>. The sum is nontrivial: if <math>\alpha(i)</math> is maximal in the lexicographic order, the coefficient of <math>e^{|S|\alpha(i)}</math> is just a product of a(i)_j's (with possible repetitions), which is non-zero.

By multiplying the equation with an appropriate integer factor, we get an identical equation except that now b(1), ..., b(N) are all integers. Therefore, according to Lemma B, the equality cannot hold, and we are led to a contradiction which completes the proof. ∎

Note that Lemma A is sufficient to prove that e is irrational, since otherwise we may write e = p / q, where both p and q are non-zero integers, but by Lemma A we would have qe − p ≠ 0, which is a contradiction. Lemma A also suffices to prove that Template:Pi is irrational, since otherwise we may write Template:Pi = k / n, where both k and n are integers) and then ±iTemplate:Pi are the roots of n²x² + k² = 0; thus 2 − 1 − 1 = 2e⁰ + e^iTemplate:Pi + e^{−iTemplate:Pi} ≠ 0; but this is false.

Similarly, Lemma B is sufficient to prove that e is transcendental, since Lemma B says that if a₀, ..., a_n are integers not all of which are zero, then

<math>a_ne^n+\cdots+a_0e^0\ne 0.</math>

Lemma B also suffices to prove that Template:Pi is transcendental, since otherwise we would have 1 + e^iTemplate:Pi ≠ 0.

Equivalence of the two statementsEdit

Baker's formulation of the theorem clearly implies the first formulation. Indeed, if <math>\alpha(1),\ldots,\alpha(n)</math> are algebraic numbers that are linearly independent over <math>\Q</math>, and

<math>P(x_1, \ldots, x_n)= \sum b_{i_1,\ldots, i_n} x_1^{i_1}\cdots x_n^{i_n}</math>

is a polynomial with rational coefficients, then we have

<math>P\left(e^{\alpha(1)},\dots,e^{\alpha(n)}\right)= \sum b_{i_1,\dots,i_n} e^{i_1 \alpha(1) + \cdots + i_n \alpha(n)},</math>

and since <math>\alpha(1),\ldots,\alpha(n)</math> are algebraic numbers which are linearly independent over the rationals, the numbers <math>i_1 \alpha(1) + \cdots + i_n \alpha(n)</math> are algebraic and they are distinct for distinct n-tuples <math>(i_1,\dots,i_n)</math>. So from Baker's formulation of the theorem we get <math> b_{i_1,\ldots,i_n}=0</math> for all n-tuples <math>(i_1,\dots,i_n)</math>.

Now assume that the first formulation of the theorem holds. For <math>n=1</math> Baker's formulation is trivial, so let us assume that <math>n>1</math>, and let <math>a(1),\ldots,a(n)</math> be non-zero algebraic numbers, and <math>\alpha(1),\ldots,\alpha(n)</math> distinct algebraic numbers such that:

<math>a(1)e^{\alpha(1)} + \cdots + a(n)e^{\alpha(n)} = 0.</math>

As seen in the previous section, and with the same notation used there, the value of the polynomial

<math>Q(x_{11},\ldots,x_{nd(n)},y_1,\dots,y_n)=\prod\nolimits_{\sigma\in S}\left(x_{1\sigma(1)}y_1+\dots+x_{n\sigma(n)}y_n\right),</math>

at

<math>\left (a(1)_1,\ldots,a(n)_{d(n)},e^{\alpha(1)},\ldots,e^{\alpha(n)} \right)</math>

has an expression of the form

<math>b(1)e^{\beta(1)}+ b(2)e^{\beta(2)}+ \cdots + b(M)e^{\beta(M)}= 0,</math>

where we have grouped the exponentials having the same exponent. Here, as proved above, <math>b(1),\ldots, b(M)</math> are rational numbers, not all equal to zero, and each exponent <math>\beta(m)</math> is a linear combination of <math>\alpha(i)</math> with integer coefficients. Then, since <math>n>1</math> and <math>\alpha(1),\ldots,\alpha(n)</math> are pairwise distinct, the <math>\Q</math>-vector subspace <math>V</math> of <math>\C</math> generated by <math>\alpha(1),\ldots,\alpha(n)</math> is not trivial and we can pick <math>\alpha(i_1),\ldots,\alpha(i_k)</math> to form a basis for <math>V.</math> For each <math>m=1,\dots,M</math>, we have

<math>\begin{align}

\beta(m) = q_{m,1} \alpha(i_1) + \cdots + q_{m,k} \alpha(i_k), && q_{m,j} = \frac{c_{m,j}}{d_{m,j}}; \qquad c_{m,j}, d_{m,j} \in \Z. \end{align}</math>

For each <math>j=1,\ldots, k,</math> let <math>d_j</math> be the least common multiple of all the <math>d_{m,j}</math> for <math>m=1,\ldots, M</math>, and put <math>v_j = \tfrac{1}{d_j} \alpha(i_j)</math>. Then <math>v_1,\ldots,v_k </math> are algebraic numbers, they form a basis of <math>V</math>, and each <math>\beta(m)</math> is a linear combination of the <math>v_j</math> with integer coefficients. By multiplying the relation

<math>b(1)e^{\beta(1)}+ b(2)e^{\beta(2)}+ \cdots + b(M)e^{\beta(M)}= 0,</math>

by <math>e^{N(v_1+ \cdots + v_k)}</math>, where <math>N</math> is a large enough positive integer, we get a non-trivial algebraic relation with rational coefficients connecting <math>e^{v_1},\cdots,e^{v_k}</math>, against the first formulation of the theorem.

See alsoEdit

• Gelfond–Schneider theorem
• Baker's theorem; an extension of Gelfond–Schneider theorem
• Schanuel's conjecture; if proven, it would imply both the Gelfond–Schneider theorem and the Lindemann–Weierstrass theorem

NotesEdit

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ReferencesEdit

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Further readingEdit

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External linksEdit

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