Real numberCategory:Real numbersCategory:Group theory\nIn mathematics, the real numbers are intuitively defined as numbers that are in one-to-one correspondence with the points on an infinite line—the number line. The term "real number" is a retronym coined in response to "imaginary number". Real numbers may be rational or irrational; algebraic or transcendental; and positive, negative, or zero. Real numbers measure continuous quantities. They may in theory be expressed by decimal fractions that have an infinite sequence of digits to the right of the decimal point; these are often (mis-)represented in the same form as 324.823211247... (where the three dots express that there would still be more digits to come, no matter how many more might be added at the end). Measurements in the physical sciences are almost always conceived as approximations to real numbers. Writing them as decimal fractions (which are rational numbers that could be written as ratios, with an explicit denominator) is not only more compact, but to some extent expresses the sense of an underlying real number. It is as if one says "I'm writing down only the part of the number that I know; it's infinitely long, and my stopping after a finite number of digits echoes the fact that I'm stopping short of doing more and more refined experiments forever, and getting further along in the infinite series of digits, which would be the only way to avoid an approximate final result." The real numbers are the central object of study in real analysis. A real number is said to be computable if there exists an algorithm that yields its digits. Because there are only countably many algorithms, but an uncountable number of reals, most real numbers are not computable. Some constructivists accept the existence of only those reals that are computable. The set of definable numbers is broader, but still only countable. Computers can only approximate most real numbers with rational numbers; these approximations are known as floating point numbers or fixed-point numbers; see real data type.\nComputer algebra systems are able to treat some real numbers exactly by storing an algebraic description (such as "sqrt(2)") rather than their decimal approximation. Mathematicians use the symbol R (or alternatively, , the letter "R" in blackboard bold) to represent the set of all real numbers. In mathematics, the term "real XXX" means that the underlying number field is the field of real numbers. For example real matrix, real polynomial and real Lie algebra.
"The complete ordered field"The real numbers are often described as "the complete ordered field", a phrase that can be interpreted in several ways. First, an order can be lattice complete.\nIt's easy to see that no ordered field can be lattice complete, because it can have no largest element (given any element z, z + 1 is larger).\nSo this is not the sense that is meant. Additionally, an order can be Dedekind-complete, as defined in the section Axioms.\nThe uniqueness result at the end of that section justifies using the word "the" in the phrase "complete ordered field" when this is the sense of "complete" that is meant.\nThis sense of completeness is most closely related to the construction of the reals from Dedekind cuts, since that construction starts from an ordered field (the rationals) and then forms the Dedekind-completion of it in a standard way. These two notions of completeness ignore the field structure.\nHowever, an ordered group (and a field is a group under the operations of addition and subtraction) defines a uniform structure, and uniform structures have a notion of completeness (topology); the description in the section Completeness above is a special case.\n(We refer to the notion of completeness in uniform spaces rather than the related and better known notion for metric spaces, since the definition of metric space relies on already having a characterisation of the real numbers.)\nIt is not true that R is the only uniformly complete ordered field, but it is the only uniformly complete Archimedean field, and indeed one often hears the phrase "complete Archimedean field" instead of "complete ordered field".\nSince it can be proved that any uniformly complete Archimedean field must also be Dedekind complete (and vice versa, of course), this justifies using "the" in the phrase "the complete Archimedean field".\nThis sense of completeness is most closely related to the construction of the reals from Cauchy sequences (the construction carried out in full in this article), since it starts with an Archimedean field (the rationals) and forms the uniform completion of it in a standard way. But the original use of the phrase "complete Archimedean field" was by David Hilbert, who meant still something else by it.\nHe meant that the real numbers form the largest Archimedean field in the sense that every other Archimedean field is a subfield of R.\nThus R is "complete" in the sense that nothing further can be added to it without making it no longer an Archimedean field.\nThis sense of completeness is most closely related to the construction of the reals from surreal numbers, since that construction starts with a proper class that contains every ordered field (the surreals) and then selects from it the largest Archimedean subfield.Advanced propertiesThe reals are uncountable, that is, there are strictly more real numbers than natural numbers (even though both sets are infinite).\nThis is proved with Cantor's diagonal argument.\nIn fact, the cardinality of the reals is 2ω (see cardinal numbers), i.e., the cardinality of the set of subsets of the natural numbers.\nSince only a countable set of real numbers can be algebraic, almost all real numbers are transcendental.\nThe nonexistence of a subset of the reals with cardinality strictly in between that of the integers and the reals is known as the continuum hypothesis.\nThis can neither be proved nor be disproved, but is independent from the axioms of set theory. The real numbers form a metric space: the distance between x and y is defined to be the absolute value |x - y|.\nBy virtue of being a totally ordered set, they also carry an order topology; the topology arising from the metric and the one arising from the order are identical.\nThe reals are a contractible (hence connected and simply connected), locally compact separable metric space, of dimension 1, and are everywhere dense.\nThe real numbers are not compact.\nThere are various properties that uniquely specify them; for instance, all unbounded, continuous, and separable order topologies are necessarily homeomorphic to the reals. Every nonnegative real number has a square root in R, and no negative number does.\nThis shows that the order on R is determined by its algebraic structure.\nAlso, every polynomial of odd degree admits at least one root: these two properties make R the premier example of a real closed field.\nProving this is the first half of one proof of the fundamental theorem of algebra. The reals carry a canonical measure, the Lebesgue measure, which is the Haar measure on their structure as a topological group normalised such that the unit interval [0,1] has measure 1. The supremum axiom of the reals refers to subsets of the reals and is therefore a second-order logical statement.\nIt is not possible to characterize the reals with first-order logic alone: the Löwenheim-Skolem theorem implies that there exists a countable dense subset of the real numbers satisfying exactly the same sentences in first order logic as the real numbers themselves.\nThe set of hyperreal numbers is much bigger than R but also satisfies the same first order sentences as R.\nOrdered fields that satisfy the same first-order sentences as R are called nonstandard models of R.\nThis is what makes nonstandard analysis work; by proving a first-order statement in some nonstandard model (which may be easier than proving it in R), we know that the same statement must also be true of R.Generalizations and extensionsThe real numbers can be generalized and extended in several different directions.\nPerhaps the most natural extension are the complex numbers which contain solutions to all polynomial equations.\nHowever, the complex numbers are not an ordered field.\nOrdered fields extending the reals are the hyperreal numbers and the surreal numbers; both of them contain infinitesimal and infinitely large numbers and thus are not Archimedean. Occasionally, formal elements +∞ and -∞ are added to the reals to form the extended real number line, a compact space which is not a field but retains many of the properties of the real numbers.\nSelf-adjoint operatorss on a Hilbert space (for example, self-adjoint square complex matrices) generalize the reals in many respects: they can be ordered (though not totally ordered), they are complete, all their eigenvalues are real and they form a real associative algebra. Positive-definite operators correspond to the positive reals and normal operators correspond to the complex numbers. \n\n\n\n\n\n\n\n\n\n\n\n\n\n |
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"My advice to you is get married: if you find a good wife you'll be happy; if not, you'll become a philosopher." - Socrates (470-399 B.C.) |
