Floor and ceiling functions

In mathematics, the floor function is the function that takes as input a real number $x$, and gives as output the greatest integer less than or equal to $x$, denoted $⌊x⌋$ or $floor(x)$. Similarly, the ceiling function maps $x$ to the smallest integer greater than or equal to $x$, denoted $⌈x⌉$ or $ceil(x)$.

For example, for floor: $⌊2.4⌋ = 2$, $⌊&minus;2.4⌋ = &minus;3$, and for ceiling: $⌈2.4⌉ = 3$, and $⌈&minus;2.4⌉ = &minus;2$.

The floor of $x$ is also called the integral part, integer part, greatest integer, or entier of $x$, and was historically denoted $[x]$ (among other notations). However, the same term, integer part, is also used for truncation towards zero, which differs from the floor function for negative numbers.

For $n$ an integer, $⌊n⌋ = ⌈n⌉ = n$.

Although $floor(x+1)$ and $ceil(x)$ produce graphs that appear exactly alike, they are not the same when the value of x is an exact integer. For example, when $x$=2.0001; $⌊2.0001+1⌋ = ⌈2.0001⌉ = 3$. However, if $x$=2, then $⌊2+1⌋ = 3$, while $⌈2⌉ = 2$.

Notation
The integral part or integer part of a number (partie entière in the original) was first defined in 1798 by Adrien-Marie Legendre in his proof of the Legendre's formula.

Carl Friedrich Gauss introduced the square bracket notation $⌊x⌋$ in his third proof of quadratic reciprocity (1808). This remained the standard in mathematics until Kenneth E. Iverson introduced, in his 1962 book A Programming Language, the names "floor" and "ceiling" and the corresponding notations $⌈x⌉$ and ${x}$. (Iverson used square brackets for a different purpose, the Iverson bracket notation.) Both notations are now used in mathematics, although Iverson's notation will be followed in this article.

In some sources, boldface or double brackets $[x]$ are used for floor, and reversed brackets $⌊x⌋$ or $⌈x⌉$ for ceiling.

The fractional part is the sawtooth function, denoted by $⟦x⟧$ for real $x$ and defined by the formula

For all x,

These characters are provided in Unicode:



In the LaTeX typesetting system, these symbols can be specified with the  and   commands in math mode, and extended in size using   and   as needed.

Definition and properties
Given real numbers x and y, integers m and n and the set of integers $$\mathbb{Z}$$, floor and ceiling may be defined by the equations


 * $$ \lfloor x \rfloor=\max \{m\in\mathbb{Z}\mid m\le x\},$$


 * $$ \lceil x \rceil=\min \{n\in\mathbb{Z}\mid n\ge x\}.$$

Since there is exactly one integer in a half-open interval of length one, for any real number x, there are unique integers m and n satisfying the equation
 * $$x-1<m\le x \le n <x+1.$$

where $$\lfloor x \rfloor = m$$ and $$\lceil x \rceil = n$$ may also be taken as the definition of floor and ceiling.

Equivalences
These formulas can be used to simplify expressions involving floors and ceilings.



\begin{alignat}{3} \lfloor x \rfloor &= m \ \ &&\mbox{ if and only if } &m &\le x < m+1,\\ \lceil x \rceil &= n    &&\mbox{ if and only if } &\ \ n -1 &< x \le n,\\

\lfloor x \rfloor &= m  &&\mbox{ if and only if } &x-1 &< m \le x,\\ \lceil x \rceil &= n   &&\mbox{ if and only if }  &x &\le n < x+1. \end{alignat} $$

In the language of order theory, the floor function is a residuated mapping, that is, part of a Galois connection: it is the upper adjoint of the function that embeds the integers into the reals.



\begin{align} x<n &\;\;\mbox{ if and only if } &\lfloor x \rfloor &< n, \\ n<x &\;\;\mbox{ if and only if } &n &< \lceil x \rceil, \\ x\le n &\;\;\mbox{ if and only if } &\lceil x \rceil &\le n, \\ n\le x &\;\;\mbox{ if and only if } &n &\le \lfloor x \rfloor. \end{align} $$

These formulas show how adding an integer $n$ to the arguments affects the functions:



\begin{align} \lfloor x+n \rfloor &= \lfloor x \rfloor+n,\\ \lceil x+n \rceil &= \lceil x \rceil+n,\\ \{ x+n \} &= \{ x \}. \end{align} $$

The above are never true if $n$ is not an integer; however, for every $x$ and $y$, the following inequalities hold:


 * $$\begin{align}

\lfloor x \rfloor + \lfloor y \rfloor &\leq \lfloor x + y \rfloor \leq \lfloor x \rfloor + \lfloor y \rfloor + 1,\\[3mu] \lceil x \rceil + \lceil y \rceil -1 &\leq \lceil x + y \rceil \leq \lceil x \rceil + \lceil y \rceil. \end{align}$$

Monotonicity
Both floor and ceiling functions are monotonically non-decreasing functions:



\begin{align} x_{1} \le x_{2} &\Rightarrow \lfloor x_{1} \rfloor \le \lfloor x_{2} \rfloor, \\ x_{1} \le x_{2} &\Rightarrow \lceil x_{1} \rceil  \le \lceil  x_{2} \rceil. \end{align} $$

Relations among the functions
It is clear from the definitions that
 * $$\lfloor x \rfloor \le \lceil x \rceil,$$  with equality if and only if x is an integer, i.e.
 * $$\lceil x \rceil - \lfloor x \rfloor = \begin{cases}

0&\mbox{ if } x\in \mathbb{Z}\\ 1&\mbox{ if } x\not\in \mathbb{Z} \end{cases}$$

In fact, for integers n, both floor and ceiling functions are the identity:
 * $$\lfloor n \rfloor = \lceil n \rceil = n.$$

Negating the argument switches floor and ceiling and changes the sign:
 * $$ \begin{align}

\lfloor x \rfloor +\lceil -x \rceil &= 0 \\ -\lfloor x \rfloor &= \lceil -x \rceil \\ -\lceil x \rceil  &= \lfloor -x \rfloor \end{align} $$

and:
 * $$\lfloor x \rfloor + \lfloor -x \rfloor = \begin{cases}

0&\text{if } x\in \mathbb{Z}\\ -1&\text{if } x\not\in \mathbb{Z}, \end{cases}$$


 * $$\lceil x \rceil + \lceil -x \rceil = \begin{cases}

0&\text{if } x\in \mathbb{Z}\\ 1&\text{if } x\not\in \mathbb{Z}. \end{cases}$$

Negating the argument complements the fractional part:


 * $$\{ x \} + \{ -x \} = \begin{cases}

0&\text{if } x\in \mathbb{Z}\\ 1&\text{if } x\not\in \mathbb{Z}. \end{cases}$$

The floor, ceiling, and fractional part functions are idempotent:



\begin{align} \big\lfloor \lfloor x \rfloor \big\rfloor &= \lfloor x \rfloor, \\ \big\lceil \lceil x \rceil \big\rceil &= \lceil x \rceil, \\ \big\{ \{ x \} \big\} &= \{ x \}. \end{align} $$

The result of nested floor or ceiling functions is the innermost function:

\begin{align} \big\lfloor \lceil x \rceil \big\rfloor &= \lceil x \rceil, \\ \big\lceil \lfloor x \rfloor \big\rceil &= \lfloor x \rfloor \end{align} $$ due to the identity property for integers.

Quotients
If m and n are integers and n ≠ 0,
 * $$0 \le \left\{ \frac{m}{n} \right\} \le 1-\frac{1}{|n|}.$$

If n is a positive integer
 * $$\left\lfloor\frac{x+m}{n}\right\rfloor = \left\lfloor\frac{\lfloor x\rfloor +m}{n}\right\rfloor,

$$


 * $$\left\lceil\frac{x+m}{n}\right\rceil = \left\lceil\frac{\lceil x\rceil +m}{n}\right\rceil.

$$

If m is positive


 * $$n=\left\lceil\frac{n\vphantom1}{m}\right\rceil + \left\lceil\frac{n-1}{m}\right\rceil +\dots+\left\lceil\frac{n-m+1}{m}\right\rceil,

$$


 * $$n=\left\lfloor\frac{n\vphantom1}{m}\right\rfloor + \left\lfloor\frac{n+1}{m}\right\rfloor +\dots+\left\lfloor\frac{n+m-1}{m}\right\rfloor.

$$

For m = 2 these imply


 * $$n= \left\lfloor \frac{n\vphantom1}{2}\right \rfloor + \left\lceil\frac{n\vphantom1}{2}\right \rceil.$$

More generally, for positive m (See Hermite's identity)


 * $$\lceil mx \rceil =\left\lceil x\right\rceil + \left\lceil x-\frac{1}{m}\right\rceil +\dots+\left\lceil x-\frac{m-1}{m}\right\rceil,

$$


 * $$\lfloor mx \rfloor=\left\lfloor x\right\rfloor + \left\lfloor x+\frac{1}{m}\right\rfloor +\dots+\left\lfloor x+\frac{m-1}{m}\right\rfloor.

$$

The following can be used to convert floors to ceilings and vice versa (m positive)


 * $$\left\lceil \frac{n\vphantom1}{m} \right\rceil = \left\lfloor \frac{n+m-1}{m} \right\rfloor = \left\lfloor \frac{n - 1}{m} \right\rfloor + 1, $$


 * $$\left\lfloor \frac{n\vphantom1}{m} \right\rfloor = \left\lceil \frac{n-m+1}{m} \right\rceil = \left\lceil \frac{n + 1}{m} \right\rceil - 1, $$

For all m and n strictly positive integers:


 * $$\sum_{k = 1}^{n - 1} \left\lfloor \frac{k m}{n} \right\rfloor = \frac{(m - 1)(n - 1)+\gcd(m,n)-1}2,$$

which, for positive and coprime m and n, reduces to


 * $$\sum_{k=1}^{n-1} \left\lfloor \frac{km}{n} \right\rfloor = \tfrac{1}{2}(m - 1)(n - 1) ,$$

and similarly for the ceiling and fractional part functions (still for positive and coprime m and n),


 * $$\sum_{k=1}^{n-1} \left\lceil \frac{km}{n} \right\rceil = \tfrac{1}{2}(m + 1)(n - 1),$$


 * $$\sum_{k=1}^{n-1} \left\{ \frac{km}{n} \right\} = \tfrac{1}{2}(n - 1).$$

Since the right-hand side of the general case is symmetrical in m and n, this implies that


 * $$\left\lfloor \frac{m\vphantom1}{n} \right \rfloor + \left\lfloor \frac{2m}{n} \right \rfloor + \dots + \left\lfloor \frac{(n-1)m}{n} \right \rfloor =

\left\lfloor \frac{n\vphantom1}{m} \right \rfloor + \left\lfloor \frac{2n}{m} \right \rfloor + \dots + \left\lfloor \frac{(m-1)n}{m} \right \rfloor. $$

More generally, if m and n are positive,


 * $$\begin{align}

&\left\lfloor \frac{x\vphantom1}{n} \right \rfloor + \left\lfloor \frac{m+x}{n} \right \rfloor + \left\lfloor \frac{2m+x}{n} \right \rfloor + \dots + \left\lfloor \frac{(n-1)m+x}{n} \right \rfloor\\[5mu] = &\left\lfloor \frac{x\vphantom1}{m} \right \rfloor + \left\lfloor \frac{n+x}{m} \right \rfloor + \left\lfloor \frac{2n+x}{m} \right \rfloor + \cdots + \left\lfloor \frac{(m-1)n+x}{m} \right \rfloor. \end{align} $$

This is sometimes called a reciprocity law.

Division by positive integers gives rise to an interesting and sometimes useful property. Assuming $$m,n >0$$,


 * $$ m \leq \left\lfloor \frac{x}{n} \right \rfloor \iff n \leq \left\lfloor \frac{x}{m} \right \rfloor \iff n \leq  \frac{ \lfloor x \rfloor }{m}. $$

Similarly,


 * $$ m \geq \left\lceil \frac{x}{n} \right \rceil \iff n \geq \left\lceil \frac{x}{m} \right \rceil \iff n \geq  \frac{ \lceil x \rceil }{m}. $$

Indeed,


 * $$ m \leq \left\lfloor \frac{x}{n} \right \rfloor \implies m \leq \frac{x}{n} \implies n \leq \frac{x}{m}

\implies n \leq \left \lfloor \frac{x}{m}\right \rfloor \implies \ldots \implies m \leq \left\lfloor \frac{x}{n} \right \rfloor,$$ keeping in mind that $ \lfloor x/n \rfloor = \bigl\lfloor \lfloor x \rfloor / n \bigr\rfloor.$ The second equivalence involving the ceiling function can be proved similarly.

Nested divisions
For positive integer n, and arbitrary real numbers m,x:


 * $$ \left\lfloor \frac{\lfloor x/m\rfloor}{n} \right\rfloor = \left\lfloor \frac{x}{mn} \right\rfloor $$


 * $$ \left\lceil \frac{\lceil x/m\rceil}{n} \right\rceil = \left\lceil \frac{x}{mn} \right\rceil. $$

Continuity and series expansions
None of the functions discussed in this article are continuous, but all are piecewise linear: the functions $$\lfloor x \rfloor$$, $$\lceil x \rceil$$, and $$\{ x\}$$ have discontinuities at the integers.

$$\lfloor x \rfloor$$ is upper semi-continuous and  $$\lceil x \rceil$$  and $$\{ x\}$$  are lower semi-continuous.

Since none of the functions discussed in this article are continuous, none of them have a power series expansion. Since floor and ceiling are not periodic, they do not have uniformly convergent Fourier series expansions. The fractional part function has Fourier series expansion $$ \{x\}= \frac{1}{2} - \frac{1}{\pi} \sum_{k=1}^\infty \frac{\sin(2 \pi k x)} {k} $$ for $x$ not an integer.

At points of discontinuity, a Fourier series converges to a value that is the average of its limits on the left and the right, unlike the floor, ceiling and fractional part functions: for y fixed and x a multiple of y the Fourier series given converges to y/2, rather than to x mod y = 0. At points of continuity the series converges to the true value.

Using the formula $$\lfloor x\rfloor = x - \{x\}$$ gives $$ \lfloor x\rfloor = x - \frac{1}{2} + \frac{1}{\pi} \sum_{k=1}^\infty \frac{\sin(2 \pi k x)}{k} $$ for $x$ not an integer.

Mod operator
For an integer x and a positive integer y, the modulo operation, denoted by x mod y, gives the value of the remainder when x is divided by y. This definition can be extended to real x and y, y ≠ 0, by the formula


 * $$x \bmod y = x-y\left\lfloor \frac{x}{y}\right\rfloor.$$

Then it follows from the definition of floor function that this extended operation satisfies many natural properties. Notably, x mod y is always between 0 and y, i.e.,

if y is positive,
 * $$0 \le x \bmod y y.$$

Quadratic reciprocity
Gauss's third proof of quadratic reciprocity, as modified by Eisenstein, has two basic steps.

Let p and q be distinct positive odd prime numbers, and let $$m = \tfrac12(p - 1),$$ $$n = \tfrac12(q - 1).$$

First, Gauss's lemma is used to show that the Legendre symbols are given by


 * $$\begin{align}

\left(\frac{q}{p}\right) &= (-1)^{\left\lfloor\frac{q}{p}\right\rfloor + \left\lfloor\frac{2q}{p}\right\rfloor + \dots + \left\lfloor\frac{mq}{p}\right\rfloor }, \\[5mu] \left(\frac{p}{q}\right) &= (-1)^{\left\lfloor\frac{p}{q}\right\rfloor + \left\lfloor\frac{2p}{q}\right\rfloor + \dots + \left\lfloor\frac{np}{q}\right\rfloor }. \end{align}$$

The second step is to use a geometric argument to show that


 * $$\left\lfloor\frac{q}{p}\right\rfloor +\left\lfloor\frac{2q}{p}\right\rfloor +\dots +\left\lfloor\frac{mq}{p}\right\rfloor

+\left\lfloor\frac{p}{q}\right\rfloor +\left\lfloor\frac{2p}{q}\right\rfloor +\dots +\left\lfloor\frac{np}{q}\right\rfloor

= mn. $$

Combining these formulas gives quadratic reciprocity in the form


 * $$\left(\frac{p}{q}\right) \left(\frac{q}{p}\right) = (-1)^{mn}=(-1)^{\frac{p-1}{2}\frac{q-1}{2}}.$$

There are formulas that use floor to express the quadratic character of small numbers mod odd primes p:
 * $$\begin{align}

\left(\frac{2}{p}\right) &= (-1)^{\left\lfloor\frac{p+1}{4}\right\rfloor}, \\[5mu] \left(\frac{3}{p}\right) &= (-1)^{\left\lfloor\frac{p+1}{6}\right\rfloor}. \end{align}$$

Rounding
For an arbitrary real number $$x$$, rounding $$x$$ to the nearest integer with tie breaking towards positive infinity is given by $$\text{rpi}(x)=\left\lfloor x+\tfrac{1}{2}\right\rfloor = \left\lceil \tfrac12\lfloor 2x \rfloor \right\rceil$$; rounding towards negative infinity is given as $$\text{rni}(x)=\left\lceil x-\tfrac{1}{2}\right\rceil = \left\lfloor \tfrac12 \lceil 2x \rceil \right\rfloor$$.

If tie-breaking is away from 0, then the rounding function is $$\text{ri}(x) = \sgn(x)\left\lfloor|x|+\tfrac{1}{2}\right\rfloor$$ (see sign function), and rounding towards even can be expressed with the more cumbersome $$\lfloor x\rceil=\left\lfloor x+\tfrac{1}{2}\right\rfloor+\bigl\lceil\tfrac14(2x-1)\bigr\rceil-\bigl\lfloor\tfrac14(2x-1)\bigr\rfloor-1$$, which is the above expression for rounding towards positive infinity $$\text{rpi}(x)$$ minus an integrality indicator for $$\tfrac14(2x-1)$$.

Rounding a real number $$x$$ to the nearest integer value forms a very basic type of quantizer – a uniform one. A typical (mid-tread) uniform quantizer with a quantization step size equal to some value $$\Delta$$ can be expressed as


 * $$Q(x) = \Delta \cdot \left\lfloor \frac{x}{\Delta} + \frac{1}{2} \right\rfloor$$,

Number of digits
The number of digits in base b of a positive integer k is
 * $$\lfloor \log_{b}{k} \rfloor + 1 = \lceil \log_{b}{(k+1)} \rceil .$$

Number of strings without repeated characters
The number of possible strings of arbitrary length that doesn't use any character twice is given by


 * $$(n)_0 + \cdots + (n)_n = \lfloor e n! \rfloor$$

where:


 * $⟧x⟦$ > 0 is the number of letters in the alphabet (e.g., 26 in English)
 * the falling factorial $$(n)_k = n(n-1)\cdots(n-k+1)$$ denotes the number of strings of length $]x[$ that don't use any character twice.
 * ${x}$! denotes the factorial of ${x} = x − ⌊x⌋$
 * $0 ≤ {x} < 1$ = 2.718... is Euler's number

For $n$ = 26, this comes out to 1096259850353149530222034277.

Factors of factorials
Let n be a positive integer and p a positive prime number. The exponent of the highest power of p that divides n! is given by a version of Legendre's formula


 * $$\left\lfloor\frac{n}{p}\right\rfloor + \left\lfloor\frac{n}{p^2}\right\rfloor + \left\lfloor\frac{n}{p^3}\right\rfloor + \dots = \frac{n-\sum_{k}a_k}{p-1}$$

where $n = \sum_{k}a_kp^k$ is the way of writing n in base p. This is a finite sum, since the floors are zero when pk > n.

Beatty sequence
The Beatty sequence shows how every positive irrational number gives rise to a partition of the natural numbers into two sequences via the floor function.

Euler's constant (γ)
There are formulas for Euler's constant γ = 0.57721 56649 ... that involve the floor and ceiling, e.g.


 * $$\gamma =\int_1^\infty\left({1\over\lfloor x\rfloor}-{1\over x}\right)\,dx,$$


 * $$\gamma = \lim_{n \to \infty} \frac{1}{n} \sum_{k=1}^n \left( \left \lceil \frac{n}{k} \right \rceil - \frac{n}{k} \right),$$

and



\gamma = \sum_{k=2}^\infty (-1)^k \frac{ \left \lfloor \log_2 k \right \rfloor}{k} = \tfrac12-\tfrac13 + 2\left(\tfrac14 - \tfrac15 + \tfrac16 - \tfrac17\right) + 3\left(\tfrac18 - \cdots - \tfrac1{15}\right) + \cdots $$

Riemann zeta function (ζ)
The fractional part function also shows up in integral representations of the Riemann zeta function. It is straightforward to prove (using integration by parts) that if $$\varphi(x)$$ is any function with a continuous derivative in the closed interval [a, b],


 * $$\sum_{a<n\le b}\varphi(n) =

\int_a^b\varphi(x) \, dx + \int_a^b\left(\{x\}-\tfrac12\right)\varphi'(x) \, dx + \left(\{a\}-\tfrac12\right)\varphi(a) - \left(\{b\}-\tfrac12\right)\varphi(b). $$

Letting $$\varphi(n) = n^{-s}$$ for real part of s greater than 1 and letting a and b be integers, and letting b approach infinity gives


 * $$\zeta(s) = s\int_1^\infty\frac{\frac12-\{x\}}{x^{s+1}}\,dx + \frac{1}{s-1} + \frac 1 2.$$

This formula is valid for all s with real part greater than &minus;1, (except s = 1, where there is a pole) and combined with the Fourier expansion for {x} can be used to extend the zeta function to the entire complex plane and to prove its functional equation.

For s = σ + it in the critical strip 0 < σ < 1,


 * $$\zeta(s)=s\int_{-\infty}^\infty e^{-\sigma\omega}(\lfloor e^\omega\rfloor - e^\omega)e^{-it\omega}\,d\omega.$$

In 1947 van der Pol used this representation to construct an analogue computer for finding roots of the zeta function.

Formulas for prime numbers
The floor function appears in several formulas characterizing prime numbers. For example, since $\bigl\lfloor\frac{n}{m} \bigr\rfloor -\bigl\lfloor\frac{n-1}{m}\bigr\rfloor$ is equal to 1 if m divides n, and to 0 otherwise, it follows that a positive integer n is a prime if and only if


 * $$\sum_{m=1}^\infty \left(\biggl\lfloor\frac{n}{m}\biggr\rfloor-\biggl\lfloor\frac{n-1}{m}\biggr\rfloor\right) = 2.$$

One may also give formulas for producing the prime numbers. For example, let pn be the n-th prime, and for any integer r > 1, define the real number α by the sum


 * $$\alpha = \sum_{m=1}^\infty p_m r^{-m^2}.$$

Then


 * $$p_n = \left\lfloor r^{n^2}\alpha \right\rfloor - r^{2n-1}\left\lfloor r^{(n-1)^2}\alpha\right\rfloor.$$

A similar result is that there is a number θ = 1.3064... (Mills' constant) with the property that


 * $$\left\lfloor \theta^3 \right\rfloor, \left\lfloor \theta^9 \right\rfloor, \left\lfloor \theta^{27} \right\rfloor, \dots$$

are all prime.

There is also a number ω = 1.9287800... with the property that


 * $$\left\lfloor 2^\omega\right\rfloor, \left\lfloor 2^{2^\omega} \right\rfloor, \left\lfloor 2^{2^{2^\omega}} \right\rfloor, \dots$$

are all prime.

Let $\pi$(x) be the number of primes less than or equal to x. It is a straightforward deduction from Wilson's theorem that


 * $$\pi(n) = \sum_{j=2}^n\Biggl\lfloor\frac{(j-1)!+1}{j} - \left\lfloor\frac{(j-1)!}{j}\right\rfloor\Biggr\rfloor.$$

Also, if n ≥ 2,


 * $$\pi(n) = \sum_{j=2}^n \Biggl\lfloor 1\, \bigg/\ {\sum_{k=2}^j\left\lfloor\left\lfloor\frac{j}{k}\right\rfloor\frac{k}{j} \right\rfloor} \Biggr\rfloor.$$

None of the formulas in this section are of any practical use.

Solved problems
Ramanujan submitted these problems to the Journal of the Indian Mathematical Society.

If n is a positive integer, prove that  $$\left\lfloor\tfrac{n}{3}\right\rfloor + \left\lfloor\tfrac{n+2}{6}\right\rfloor + \left\lfloor\tfrac{n+4}{6}\right\rfloor = \left\lfloor\tfrac{n}{2}\right\rfloor + \left\lfloor\tfrac{n+3}{6}\right\rfloor,$$

 $$\left\lfloor\tfrac12 + \sqrt{n+\tfrac12}\right\rfloor = \left\lfloor\tfrac12 + \sqrt{n+\tfrac14}\right\rfloor,$$

 $$\left\lfloor\sqrt{n}+ \sqrt{n+1}\right\rfloor = \left\lfloor \sqrt{4n+2}\right\rfloor.$$ Some generalizations to the above floor function identities have been proven.

Unsolved problem
The study of Waring's problem has led to an unsolved problem:

Are there any positive integers k ≥ 6 such that


 * $$3^k-2^k\Bigl\lfloor \bigl(\tfrac 3 2\bigr)^k \Bigr\rfloor > 2^k-\Bigl\lfloor \bigl(\tfrac 3 2\bigr)^k \Bigr\rfloor -2 \ ?$$

Mahler has proved there can only be a finite number of such k; none are known.

Computer implementations
In most programming languages, the simplest method to convert a floating point number to an integer does not do floor or ceiling, but truncation. The reason for this is historical, as the first machines used ones' complement and truncation was simpler to implement (floor is simpler in two's complement). FORTRAN was defined to require this behavior and thus almost all processors implement conversion this way. Some consider this to be an unfortunate historical design decision that has led to bugs handling negative offsets and graphics on the negative side of the origin.

An arithmetic right-shift of a signed integer $$x$$ by $$n$$ is the same as $$\left\lfloor x / 2^n \right\rfloor$$. Division by a power of 2 is often written as a right-shift, not for optimization as might be assumed, but because the floor of negative results is required. Assuming such shifts are "premature optimization" and replacing them with division can break software.

Many programming languages (including C, C++, C#,   Java,  PHP,  R, and Python ) provide standard functions for floor and ceiling, usually called   and , or less commonly. The language APL uses  for floor. The J Programming Language, a follow-on to APL that is designed to use standard keyboard symbols, uses  for floor and   for ceiling. ALGOL uses for floor.

In Microsoft Excel the funtion  rounds down rather than toward zero, while   rounds toward zero, the opposite of what "int" and "floor" do in other languages. Since 2010  has been changed to error if the number is negative. The OpenDocument file format, as used by OpenOffice.org, Libreoffice and others, and   both do floor, and   has a third argument to reproduce Excel's earlier behavior.