Abstract
The method of brackets is a symbolic approach to the computation of integrals over
1 Introduction
The problem of evaluating the definite integral
consists of expressing the value of
Example 1.1
For
is elementary. The only special function required is the primitive of
The aforementioned example is the most elementary case of the Fundamental theorem of Calculus.
Theorem 1.2
Assume g is a differentiable function on the interval
This result transforms the problem of evaluating the integral
Example 1.3
In order to evaluate the integral,
observe that
A simple generalization of this example shows that every polynomial
One of the main difficulties in the evaluation of definite integrals is the existence of elementary functions, such as those encountered in elementary courses, that do not have elementary primitives. In general, this is hard to establish. The notion of elementary function is left, for the purposes of this article, undefined. The reader will find in Ritt [1] more information about this topic.
Example 1.4
The symbolic language Mathematica gives the elementary evaluation
as well as the nonelementary one
where SinIntegral is the Mathematica notation for the sine integral function defined by:
Therefore, (1.7) simply comes from the introduction of a new function. The question of whether
2 The method of brackets
In the study of interaction of elementary particles, R. Feynman introduced his now famous diagrams, from which the physical properties of the reaction can be read. Some parametrizations of these diagrams led to families of quite complicated definite integrals.
A Feynman diagram is a graphical method of representing the interactions of elementary particles (see [2,3] for an introduction). For the present exposition, such a diagram is simply a graph

The massless sunset diagram.
Example
The massless sunset diagram is presented in Figure 1. The diagram is parametrized by the integral (in momentum space)
where
with
Several methods have been developed in order to deal with integrals of this form. The method of brackets used here is an effective variation of the method of negative dimension, one of the most used by the physics community, and consists of a small number of heuristic rules, some of which are in the process of being rigorously established. A complete description of the rules and a comparison with the current methods used to evaluate Feynman diagrams appear in [6].
This method of brackets computes the integral
from an expansion of the form
and introduces the bracket of
Formal replacement of series (2.4) in (2.3) expresses the integral as a bracket series:
In order to evaluate the integral, the method proposes a rule to assign a value to a bracket series.
Rule 1. For
A fundamental (open) question is to give a rigorous definition of this bracket, consistent with the operational rules in the following.
Rule 2. The expansion of an arbitrary function. The method of brackets requires the expansion of the integrand in the form:
where
For functions of several variables, say two, use the expansion
with the notation
Rule 3. Sum expansion. The expression
This has been established in [7], and it is a direct consequence of the multinomial theorem.
Up to now, the integral is converted into a bracket series. The evaluation of these series is described next.
Rule 4. Evaluation of bracket series. Let
where
Remark 2.1
Observe that this evaluation requires the evaluation of the coefficients
stated by S. Ramanujan’s in his Quarterly Reports [8, p. 298]. It was widely used by him as a tool in computing definite integrals and infinite series. In fact, as Hardy puts it in [9], he “was particularly fond of them, and used them as one of his commonest tools.”
Theorem 2.2
(Ramanujan’s Master Theorem). Let
An elementary argument adapts this statement to prove (2.11). See [10] for details.
Note
In the multidimensional evaluation of a bracket series, in the special case when the number of sums and brackets is the same, write
The multiple sum is declared to be
where
An inductive proof follows directly from the one-dimensional case.
3 Consistency with the fundamental theorem of calculus
This section shows that in the case, the integrand in (1.1) is a perfect derivative; then, the method of brackets is consistent with the fundamental theorem of calculus.
Theorem 3.1
The value of
Proof
Assume
and the last expression can be written as:
The change of variables
The system
coming from the vanishing of the brackets gives
Simplifying the previous summand gives
The proof is complete. The solutions corresponding to other combination of free variables yield the same result.□
4 The Laplace transform
A common variety of definite integrals appear as the Laplace transform of a function. This is defined by:
If the function
then
The next statement shows that (4.3) can be obtained directly by the method of brackets.
Theorem 4.1
The evaluation of the Laplace transform (4.1) by the method of brackets also produces (4.3).
Proof
The method of brackets gives
The vanishing of the bracket gives
confirming (4.3).□
5 Radially symmetric multidimensional integrals
This section confirms that an integral of the form
is evaluated correctly by the method of brackets.
The classical evaluation is performed using the
with
This gives
The last integral is
to produce
and using
The change of variables
The computation of
Then,
The associated linear system coming from the vanishing of the brackets is
The solution is
Using the method of brackets in the opposite order as usual yields
Then, (5.10) yields
as in (5.7).
6 Cauchy-Schlömilch transformation
In this section, we show that the method of brackets is consistent with the Cauchy-Schlömilch transformation.
Theorem 6.1
The method of brackets is consistent with the Cauchy-Schlömilch transformation. That is, using the method of brackets to evaluate the integrals, we have
Proof
Let
Similarly,
Thus, we have reduced (6.1) to the identity
Put another way, it suffices to consider even functions, for the odd part vanishes. Without loss of generality, let us assume that
and
Define
so that we have
Now applying the method of brackets, we find
The vanishing of the brackets produces three series, one for each choice of free index. These are
Since
Applying the method of brackets to this form of
The vanishing of the brackets produces three series, one for each choice of free index. These are
But these series exactly cancel the series arising from the first form of
Remark 6.2
An alternative form of the Schlömilch transformation on the half-line is usually written as:
Starting with the expansion
the usual procedure of the method of brackets evaluated the right-hand side as
and this is equivalent to
In order to evaluate the left-hand side of (6.23), start with
Rule 3 (sum expansion) of the method of brackets is now used to produce two expressions for the term
and
Replacing in (6.27) and using the standard rule for the method of brackets lead to three expressions for the integral
Index
This is discarded since every term vanishes.
Index
Index
The value of the desired integral is
7 Borwein integrals and an extension to Bessel functions
7.1 Borwein integrals
A Borwein integral is a definite integral of the form:
The integrals were introduced by David and Borwein in [12] and are somewhat famous for exhibiting consistency patterns that eventually break down. As an example, the following evaluations hold:
However, the pattern fails at the next step. Indeed, we have
The correct evaluation of the integral is off from
Now, applying the Legendre duplication formula, this becomes
Now, the vanishing of the bracket yields
where
Replacing in (7.13)
where
7.2 Extension to Bessel functions
The result on Borwein integrals can be extended to the integral of a product of Bessel functions. Indeed, recall the Bessel function of the first kind is given by:
Let us now compute
We have
Now, there are
where
Acknowledgements
Some of the results presented here are part of the doctoral dissertation of the first author. The last author wishes to thank the hospitality of the Mathematics Department of Tulane University while this work was being conducted.
-
Conflict of interest: The authors state no conflict of interest.
References
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© 2023 the author(s), published by De Gruyter
This work is licensed under the Creative Commons Attribution 4.0 International License.
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- Regular Articles
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