Daniell Integral
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mathematics Mathematics is an area of knowledge that includes the topics of numbers, formulas and related structures, shapes and the spaces in which they are contained, and quantities and their changes. These topics are represented in modern mathematics ...
, the Daniell integral is a type of integration that generalizes the concept of more elementary versions such as the
Riemann integral In the branch of mathematics known as real analysis, the Riemann integral, created by Bernhard Riemann, was the first rigorous definition of the integral of a function on an interval. It was presented to the faculty at the University of Göt ...
to which students are typically first introduced. One of the main difficulties with the traditional formulation of the
Lebesgue integral In mathematics, the integral of a non-negative function of a single variable can be regarded, in the simplest case, as the area between the graph of that function and the -axis. The Lebesgue integral, named after French mathematician Henri Lebe ...
is that it requires the initial development of a workable measure theory before any useful results for the integral can be obtained. However, an alternative approach is available, developed by that does not suffer from this deficiency, and has a few significant advantages over the traditional formulation, especially as the integral is generalized into higher-dimensional spaces and further generalizations such as the
Stieltjes integral Thomas Joannes Stieltjes (, 29 December 1856 – 31 December 1894) was a Dutch mathematician. He was a pioneer in the field of moment problems and contributed to the study of continued fractions. The Thomas Stieltjes Institute for Mathematics at ...
. The basic idea involves the axiomatization of the integral.


Axioms

We start by choosing a family H of bounded real functions (called ''elementary functions'') defined over some set X, that satisfies these two axioms: * H is a linear space with the usual operations of addition and scalar multiplication. * If a function h is in H, so is its
absolute value In mathematics, the absolute value or modulus of a real number x, is the non-negative value without regard to its sign. Namely, , x, =x if is a positive number, and , x, =-x if x is negative (in which case negating x makes -x positive), an ...
, h, : x \mapsto , h(x), . In addition, every function ''h'' in ''H'' is assigned a real number Ih, which is called the ''elementary integral'' of ''h'', satisfying these three axioms: ; Linearity : If ''h'' and ''k'' are both in ''H'', and \alpha and \beta are any two real numbers, then I(\alpha h + \beta k) = \alpha Ih + \beta Ik. ; Nonnegativity : If h(x) \ge 0 for all x, then Ih \ge 0. ; Continuity : If h_n is a nonincreasing sequence (i.e. h_1 \ge \cdots \ge h_k \ge \cdots) of functions in H that converges to 0 for all x in X, then Ih_n \to 0.or (more commonly)If h_n is an increasing sequence (i.e. h_1 \le \cdots \le h_k \le \cdots) of functions in H that converges to h for all x in X, then Ih_n \to Ih. That is, we define a continuous non-negative
linear functional In mathematics, a linear form (also known as a linear functional, a one-form, or a covector) is a linear map from a vector space to its field of scalars (often, the real numbers or the complex numbers). If is a vector space over a field , the ...
I over the space of elementary functions. These elementary functions and their elementary integrals may be any set of functions and definitions of integrals over these functions which satisfy these axioms. The family of all
step function In mathematics, a function on the real numbers is called a step function if it can be written as a finite linear combination of indicator functions of intervals. Informally speaking, a step function is a piecewise constant function having only ...
s evidently satisfies the above axioms for elementary functions. Defining the elementary integral of the family of step functions as the (signed) area underneath a step function evidently satisfies the given axioms for an elementary integral. Applying the construction of the Daniell integral described further below using step functions as elementary functions produces a definition of an integral equivalent to the Lebesgue integral. Using the family of all
continuous function In mathematics, a continuous function is a function such that a continuous variation (that is a change without jump) of the argument induces a continuous variation of the value of the function. This means that there are no abrupt changes in value ...
s as the elementary functions and the traditional
Riemann integral In the branch of mathematics known as real analysis, the Riemann integral, created by Bernhard Riemann, was the first rigorous definition of the integral of a function on an interval. It was presented to the faculty at the University of Göt ...
as the elementary integral is also possible, however, this will yield an integral that is also equivalent to Lebesgue's definition. Doing the same, but using the
Riemann–Stieltjes integral In mathematics, the Riemann–Stieltjes integral is a generalization of the Riemann integral, named after Bernhard Riemann and Thomas Joannes Stieltjes. The definition of this integral was first published in 1894 by Stieltjes. It serves as an inst ...
, along with an appropriate function of
bounded variation In mathematical analysis, a function of bounded variation, also known as ' function, is a real-valued function whose total variation is bounded (finite): the graph of a function having this property is well behaved in a precise sense. For a conti ...
, gives a definition of integral equivalent to the Lebesgue–Stieltjes integral. Sets of
measure zero In mathematical analysis, a null set N \subset \mathbb is a measurable set that has measure zero. This can be characterized as a set that can be covered by a countable union of intervals of arbitrarily small total length. The notion of null s ...
may be defined in terms of elementary functions as follows. A set Z which is a subset of X is a set of measure zero if for any \epsilon > 0, there exists a nondecreasing sequence of nonnegative elementary functions h_p(x) in ''H'' such that Ih_p < \varepsilon and \sup_p h_p(x) \ge 1 on Z. A set is called a set of full measure if its complement, relative to X, is a set of measure zero. We say that if some property holds at every point of a set of full measure (or equivalently everywhere except on a set of measure zero), it holds
almost everywhere In measure theory (a branch of mathematical analysis), a property holds almost everywhere if, in a technical sense, the set for which the property holds takes up nearly all possibilities. The notion of "almost everywhere" is a companion notion to ...
.


Definition

Although the end result is the same, different authors construct the integral differently. A common approach is to start with defining a larger class of functions, based on our chosen elementary functions, the class L^+, which is the family of all functions that are the limit of a nondecreasing sequence h_n of elementary functions, such that the set of integrals Ih_n is bounded. The integral of a function f in L^+ is defined as: :If = \lim_ Ih_n It can be shown that this definition of the integral is well-defined, i.e. it does not depend on the choice of sequence h_n. However, the class L^+ is in general not closed under subtraction and scalar multiplication by negative numbers; one needs to further extend it by defining a wider class of functions L with these properties. Daniell's (1918) method, described in the book by Royden, amounts to defining the upper integral of a general function \phi by :I^+\phi = \inf_f If where the infimum is taken over all f in L^+ with f \ge \phi. The lower integral is defined in a similar fashion or shortly as I^-\phi = -I^+(-\phi). Finally L consists of those functions whose upper and lower integrals are finite and coincide, and :\int_X \phi(x) dx = I^+\phi = I^-\phi. An alternative route, based on a discovery by Frederic Riesz, is taken in the book by Shilov and Gurevich and in the article in Encyclopedia of Mathematics. Here L consists of those functions \phi(x) that can be represented on a set of full measure (defined in the previous section) as the difference \phi = f - g, for some functions f and g in the class L^+. Then the integral of a function \phi(x) can be defined as: :\int_X \phi(x) dx = If - Ig\, Again, it may be shown that this integral is well-defined, i.e. it does not depend on the decomposition of \phi into f and g. This turns out to be equivalent to the original Daniell integral.


Properties

Nearly all of the important theorems in the traditional theory of the Lebesgue integral, such as Lebesgue's dominated convergence theorem, the
Riesz–Fischer theorem In mathematics, the Riesz–Fischer theorem in real analysis is any of a number of closely related results concerning the properties of the space ''L''2 of square integrable functions. The theorem was proven independently in 1907 by Frigyes Rie ...
,
Fatou's lemma In mathematics, Fatou's lemma establishes an inequality relating the Lebesgue integral of the limit inferior of a sequence of functions to the limit inferior of integrals of these functions. The lemma is named after Pierre Fatou. Fatou's lemm ...
, and
Fubini's theorem In mathematical analysis Fubini's theorem is a result that gives conditions under which it is possible to compute a double integral by using an iterated integral, introduced by Guido Fubini in 1907. One may switch the order of integration if th ...
may also readily be proved using this construction. Its properties are identical to the traditional Lebesgue integral.


Measurement

Because of the natural correspondence between sets and functions, it is also possible to use the Daniell integral to construct a
measure theory In mathematics, the concept of a measure is a generalization and formalization of geometrical measures ( length, area, volume) and other common notions, such as mass and probability of events. These seemingly distinct concepts have many simil ...
. If we take the
characteristic function In mathematics, the term "characteristic function" can refer to any of several distinct concepts: * The indicator function of a subset, that is the function ::\mathbf_A\colon X \to \, :which for a given subset ''A'' of ''X'', has value 1 at points ...
\chi(x) of some set, then its integral may be taken as the measure of the set. This definition of measure based on the Daniell integral can be shown to be equivalent to the traditional Lebesgue measure.


Advantages over the traditional formulation

This method of constructing the general integral has a few advantages over the traditional method of Lebesgue, particularly in the field of
functional analysis Functional analysis is a branch of mathematical analysis, the core of which is formed by the study of vector spaces endowed with some kind of limit-related structure (e.g. Inner product space#Definition, inner product, Norm (mathematics)#Defini ...
. The Lebesgue and Daniell constructions are equivalent, as pointed out above, if ordinary finite-valued step functions are chosen as elementary functions. However, as one tries to extend the definition of the integral into more complex domains (e.g. attempting to define the integral of a
linear functional In mathematics, a linear form (also known as a linear functional, a one-form, or a covector) is a linear map from a vector space to its field of scalars (often, the real numbers or the complex numbers). If is a vector space over a field , the ...
), one runs into practical difficulties using Lebesgue's construction that are alleviated with the Daniell approach. The Polish mathematician
Jan Mikusinski Jan, JaN or JAN may refer to: Acronyms * Jackson, Mississippi (Amtrak station), US, Amtrak station code JAN * Jackson-Evers International Airport, Mississippi, US, IATA code * Jabhat al-Nusra (JaN), a Syrian militant group * Japanese Article Numb ...
has made an alternative and more natural formulation of Daniell integration by using the notion of absolutely convergent series. His formulation works for the
Bochner integral In mathematics, the Bochner integral, named for Salomon Bochner, extends the definition of Lebesgue integral to functions that take values in a Banach space, as the limit of integrals of simple functions. Definition Let (X, \Sigma, \mu) be a meas ...
(the Lebesgue integral for mappings taking values in
Banach space In mathematics, more specifically in functional analysis, a Banach space (pronounced ) is a complete normed vector space. Thus, a Banach space is a vector space with a metric that allows the computation of vector length and distance between vector ...
s). Mikusinski's lemma allows one to define the integral without mentioning null sets. He also proved the change of variables theorem for multiple Bochner integrals and Fubini's theorem for Bochner integrals using Daniell integration. The book by Asplund and Bungart carries a lucid treatment of this approach for real valued functions. It also offers a proof of an abstract
Radon–Nikodym theorem In mathematics, the Radon–Nikodym theorem is a result in measure theory that expresses the relationship between two measures defined on the same measurable space. A ''measure'' is a set function that assigns a consistent magnitude to the measurab ...
using the Daniell–Mikusinski approach.


See also

*
Lebesgue integral In mathematics, the integral of a non-negative function of a single variable can be regarded, in the simplest case, as the area between the graph of that function and the -axis. The Lebesgue integral, named after French mathematician Henri Lebe ...
*
Riemann integral In the branch of mathematics known as real analysis, the Riemann integral, created by Bernhard Riemann, was the first rigorous definition of the integral of a function on an interval. It was presented to the faculty at the University of Göt ...
*
Lebesgue–Stieltjes integration In measure theory, measure-theoretic Mathematical analysis, analysis and related branches of mathematics, Lebesgue–Stieltjes integration generalizes both Riemann–Stieltjes integral, Riemann–Stieltjes and Lebesgue integration, preserving the m ...


References

* * * * * * * * * {{integral Definitions of mathematical integration