Fields of Mathematics
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The major disciplines within mathematics first arose out of the need
to do calculations in commerce, to understand the relationships
between numbers, to measure land, and to predict astronomical
events. These four needs can be roughly related to the broad
subdivision of mathematics into the study of quantity, structure,
space, and change (i.e., arithmetic, algebra, geometry and
analysis). In addition to these main concerns, there are also
subdivisions dedicated to exploring links from the heart of
mathematics to other fields: to logic, to set theory (foundations)
and to the empirical mathematics of the various sciences (applied
mathematics). The study of quantity or magnitude starts with
numbers, first the familiar natural numbers and integers and their
arithmetical operations, which are characterized in arithmetic. The
deeper properties of whole numbers are studied in number theory.
The study of structure began with investigations of Pythagorean
triples. Neolithic monuments on the British Isles are constructed
using Pythagorean triples. Eventually, this led to the invention of
more abstract numbers, such as the square root of two. The deeper
structural properties of numbers are studied in abstract algebra and
the investigation of groups, rings, fields and other abstract number
systems. Included is the important concept of vectors, generalized
to vector spaces and studied in linear algebra. The study of vectors
combines three of the fundamental areas of mathematics, quantity,
structure, and space.
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Geometry
The study of space originates with geometry, beginning with
Euclidean geometry. Trigonometry combines space and number. The
modern study of space generalizes these ideas to include
higher-dimensional geometry, non-Euclidean geometries (which play a
central role in general relativity) and topology. Quantity and space
both play a role in analytic geometry, differential geometry, and
algebraic geometry. Within differential geometry are the concepts of
fiber bundles and calculus on manifolds. Within algebraic geometry
is the description of geometric objects as solution sets of
polynomial equations, combining the concepts of quantity and space,
and also the study of topological groups, which combine structure
and space. Lie groups are used to study space, structure, and
change. Topology in all its many ramifications may be the greatest
growth area in 20th century mathematics.
Understanding and describing change is a common theme in the natural
sciences, and calculus was developed as a most useful tool. The
central concept used to describe a changing quantity is that of a
function. Many problems lead quite naturally to relations between a
quantity and its rate of change, and the methods of differential
equations. The numbers used to represent continuous quantities are
the real numbers, and the detailed study of their properties and the
properties of real-valued functions is known as real analysis. These
have been generalized, with the inclusion of the square root of
negative one, to the complex numbers, which are studied in complex
analysis. Functional analysis focuses attention on (typically
infinite-dimensional) spaces of functions. One of many applications
of functional analysis is quantum mechanics. Many phenomena in
nature can be described by dynamical systems; chaos theory makes
precise the ways in which many of these systems exhibit
unpredictable yet still deterministic behavior.
Beyond quantity, structure, space, and change are areas of pure
mathematics that can be approached only by deductive reasoning. In
order to clarify the foundations of mathematics, the fields of
mathematical logic and set theory were developed. Mathematical
logic, which divides into recursion theory, model theory, and proof
theory, is now closely linked to computer science. When electronic
computers were first conceived, several essential theoretical
concepts in computer science were shaped by mathematicians, leading
to the fields of computability theory, computational complexity
theory, and information theory. Many of those topics are now
investigated in theoretical computer science. Discrete mathematics
is the common name for the fields of mathematics most generally
useful in computer science.
An important field in applied mathematics is statistics, which uses
probability theory as a tool and allows the description, analysis,
and prediction of phenomena where chance plays a role. It is used in
all the sciences. (Many statisticians, however, do not consider
themselves to be mathematicians, but rather part of an allied
group.) Numerical analysis investigates computational methods for
efficiently solving a broad range of mathematical problems that are
typically much too large for a human's capacity; it includes the
study of rounding errors or other sources of error in computation.
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