Difference between revisions of "Chebyshev theta function"

Latest revision as of 13:28, 1 April 2014

Chebyshev's theta function, denoted $\vartheta$ or sometimes $\theta$ , is a function of use in analytic number theory. It is defined thus, for real $x$ : $\vartheta(x) = \sum_{p \le x} \log p ,$ where the sum ranges over all primes less than $x$ .

Estimates of the function

The function $\vartheta(x)$ is asymptotically equivalent to $\pi(x)\ln x$ ( $\pi(x)$ is the prime counting function) and $x$ . This result is the Prime Number Theorem, and all known proofs are rather involved.

However, we can obtain a simpler bound on $\vartheta(x)$ .

Theorem (Chebyshev). If $x \ge 0$ , then $\vartheta(x) \le 2x \log 2$ .

Proof. We induct on $\lfloor x \rfloor$ . For our base cases, we note that for $0 \le x < 2$ , we have $\vartheta(x) = 0 \le 2x \log 2$ .

Now suppose that $x \ge 2$ . Let $n = \lfloor x \rfloor$ . Then $2^x \ge 2^n \ge \binom{n}{\lfloor n/2 \rfloor} \ge \prod_{\lfloor n/2 \rfloor < p \le n} p ,$ so $x \log 2 \ge \sum_{\lfloor n/2 \rfloor < p \le n} \log p = \vartheta(x) - \vartheta(\lfloor n/2 \rfloor) \ge \vartheta(x) - 2\lfloor n/2 \rfloor \log 2 \ge \vartheta(x) - x \log 2 ,$ by the inductive hypothesis. Therefore $2x \log 2 \ge \vartheta(x),$ as desired. $\blacksquare$

@@ Line 1: / Line 1: @@
 '''Chebyshev's theta function''', denoted <math>\vartheta</math> or sometimes
 <math>\theta</math>, is a function of use in [[analytic number theory]].
-It is defined, thus, for real <math>x</math>:
+It is defined thus, for real <math>x</math>:
-<cmath> \vartheta(x) = \sum_{p \le x} \log x , </cmath>
+<cmath> \vartheta(x) = \sum_{p \le x} \log p , </cmath>
 where the sum ranges over all [[prime number | primes]] less than
 <math>x</math>.
@@ Line 9: / Line 9: @@
 The function <math>\vartheta(x)</math> is [[asymptotically equivalent]] to
-<math>\pi(x)</math> (the [[prime counting function]]) and <math>x</math>.  This result
+<math>\pi(x)\ln x</math> (<math>\pi(x)</math> is the [[prime counting function]]) and <math>x</math>.  This result
 is the [[Prime Number Theorem]], and all known proofs are rather
 involved.
@@ Line 16: / Line 16: @@
 '''Theorem (Chebyshev).''' If <math>x \ge 0</math>, then <math>\vartheta(x) \le
-x</math>.
+x \log 2</math>.
 ''Proof.''  We induct on <math>\lfloor x \rfloor</math>.  For our base
 cases, we note that for <math>0 \le x < 2</math>, we have <math>\vartheta(x) =
-\le x</math>.
+\le 2x \log 2</math>.
 Now suppose that <math>x \ge 2</math>.  Let <math>n = \lfloor x \rfloor</math>.  Then
@@ Line 26: / Line 26: @@
 \prod_{\lfloor n/2 \rfloor < p \le n} p , </cmath>
 so
-<cmath> x \ge x \log 2 \ge \sum_{\lfloor n/2 \rfloor < p \le n} \log p
+<cmath> x \log 2 \ge \sum_{\lfloor n/2 \rfloor < p \le n} \log p
-= \vartheta{x} - \vartheta{\lfloor n/2 \rfloor}
+= \vartheta(x) - \vartheta(\lfloor n/2 \rfloor)
-\ge \vartheta{x} - 2\lfloor n/2 \rfloor \ge \vartheta{x} - x , </cmath>
+\ge \vartheta(x) - 2\lfloor n/2 \rfloor \log 2 \ge \vartheta(x) - x \log 2 , </cmath>
-by inductive hypothesis.  Therefore
+by the inductive hypothesis.  Therefore
-<cmath> 2x \ge \vartheta(x), </cmath>
+<cmath> 2x \log 2 \ge \vartheta(x), </cmath>
 as desired.  <math>\blacksquare</math>

Page

Toolbox

Search

Difference between revisions of "Chebyshev theta function"

Latest revision as of 13:28, 1 April 2014

Estimates of the function

See also