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Inequality (mathematics)
In mathematics, an inequality is a relation which makes a non-equal comparison between two numbers or other mathematical expressions. It is used most often to compare two numbers on the number line by their size.
Inequality (mathematics)
In mathematics, an inequality is a relation which makes a non-equal comparison between two numbers or other mathematical expressions. It is used most often to compare two numbers on the number line by their size. The main types of inequality are less than and greater than (denoted by < and >, respectively the less-than and greater-than signs).
Notation
There are several different notations used to represent different kinds of inequalities:
- The notation a < b means that a is less than b.
- The notation a > b means that a is greater than b.
In either case, a is not equal to b. These relations are known as strict inequalities, meaning that a is strictly less than or strictly greater than b. Equality is excluded.
In contrast to strict inequalities, there are two types of inequality relations that are not strict:
- The notation a ≤ b or a ⩽ b or a ≦ b means that a is less than or equal to b (or, equivalently, at most b).
- The notation a ≥ b or a ⩾ b or a ≧ b means that a is greater than or equal to b (or, equivalently, at least b).
In the 17th and 18th centuries, personal notations or typewriting signs were used to signal inequalities. For example, In 1670, John Wallis used a single horizontal bar above rather than below the < and >. Later in 1734, ≦ and ≧, known as "less than (greater-than) over equal to" or "less than (greater than) or equal to with double horizontal bars", first appeared in Pierre Bouguer's work . After that, mathematicians simplified Bouguer's symbol to "less than (greater than) or equal to with one horizontal bar" (≤), or "less than (greater than) or slanted equal to" (⩽).
The relation not greater than can also be represented by \(a \ngtr b,\) the symbol for "greater than" bisected by a slash, "not". The same is true for not less than, \(a \nless b.\)
The notation a ≠ b means that a is not equal to b; this inequation sometimes is considered a form of strict inequality. It does not say that one is greater than the other; it does not even require a and b to be a member of an ordered set.
In engineering sciences, less formal use of the notation is to state that one quantity is "much greater" than another, normally by several orders of magnitude.
- The notation a ≪ b means that a is much less than b.
- The notation a ≫ b means that a is much greater than b.
Condensed: the full section is in Wikipedia.
Properties on the number line
Inequalities are governed by the following properties. All of these properties also hold if all of the non-strict inequalities (≤ and ≥) are replaced by their corresponding strict inequalities (< and >) and, in the case of applying a function, monotonic functions are limited to strictly monotonic functions.
Transitivity
The transitive property of inequality states that for any real numbers a, b, c:
If a ≤ b and b ≤ c, then a ≤ c.If either of the premises is a strict inequality, then the conclusion is a strict inequality:
If a ≤ b and b < c, then a < c.If a < b and b ≤ c, then a < c.Addition and subtraction
A common constant c may be added to or subtracted from both sides of an inequality. So, for any real numbers a, b, c:
If a ≤ b, then a + c ≤ b + c and a − c ≤ b − c.In other words, the inequality relation is preserved under addition (or subtraction) and the real numbers are an ordered group under addition.
Multiplication and division
The properties that deal with multiplication and division state that for any real numbers, a, b and non-zero c:
If a ≤ b and c > 0, then ac ≤ bc and a/c ≤ b/c.If a ≤ b and c < 0, then ac ≥ bc and a/c ≥ b/c.In other words, the inequality relation is preserved under multiplication and division with positive constant, but is reversed when a negative constant is involved. More generally, this applies for an ordered field. For more information, see § Ordered fields.
Multiplicative inverse
If both numbers are positive, then the inequality relation between the multiplicative inverses is opposite of that between the original numbers. More specifically, for any non-zero real numbers a and b that are both positive (or both negative):
If a ≤ b, then 1/a ≥ 1/b.All of the cases for the signs of a and b can also be written in chained notation, as follows:
If 0 < a ≤ b, then 1/a ≥ 1/b > 0.If a ≤ b < 0, then 0 > 1/a ≥ 1/b.If a < 0 < b, then 1/a < 0 < 1/b.Applying a function to both sides
Any monotonically increasing function, by its definition, may be applied to both sides of an inequality without breaking the inequality relation (provided that both expressions are in the domain of that function). However, applying a monotonically decreasing function to both sides of an inequality means the inequality relation would be reversed. The rules for the additive inverse, and the multiplicative inverse for positive numbers, are both examples of applying a monotonically decreasing function.
If the inequality is strict (a < b, a > b) and the function is strictly monotonic, then the inequality remains strict. If only one of these conditions is strict, then the resultant inequality is non-strict. In fact, the rules for additive and multiplicative inverses are both examples of applying a strictly monotonically decreasing function.
A few examples of this rule are:
- Raising both sides of an inequality to a power n > 0 (equiv., −n < 0), when a and b are positive real numbers: 0 ≤ a ≤ b ⇔ 0 ≤ a ≤ b. 0 ≤ a ≤ b ⇔ a ≥ b ≥ 0.
- Taking the natural logarithm on both sides of an inequality, when a and b are positive real numbers: 0 < a ≤ b ⇔ ln(a) ≤ ln(b). 0 < a < b ⇔ ln(a) < ln(b). (this is true because the natural logarithm is a strictly increasing function.)
Formal definitions and generalizations
A (non-strict) partial order is a binary relation ≤ over a set P which is reflexive, antisymmetric, and transitive. That is, for all a, b, and c in P, it must satisfy the three following clauses:
- a ≤ a (reflexivity)
- if a ≤ b and b ≤ a, then a = b (antisymmetry)
- if a ≤ b and b ≤ c, then a ≤ c (transitivity)
A set with a partial order is called a partially ordered set. Those are the very basic axioms that every kind of order has to satisfy.
A strict partial order is a relation < that satisfies
- a ≮ a (irreflexivity),
- if a < b, then b ≮ a (asymmetry),
- if a < b and b < c, then a < c (transitivity),
where ≮ means that < does not hold.
Some types of partial orders are specified by adding further axioms, such as:
- Total order: For every a and b in P, a ≤ b or b ≤ a .
- Dense order: For all a and b in P for which a < b, there is a c in P such that a < c < b.
- Least-upper-bound property: Every non-empty subset of P with an upper bound has a least upper bound (supremum) in P.
Ordered fields
If (F, +, ×) is a field and ≤ is a total order on F, then (F, +, ×, ≤) is called an ordered field if and only if:
- a ≤ b implies a + c ≤ b + c;
- 0 ≤ a and 0 ≤ b implies 0 ≤ a × b.
Both \((\mathbb Q, +, \times, \leq)\) and \((\mathbb R, +, \times, \leq)\) are ordered fields, but ≤ cannot be defined in order to make \((\mathbb C, +, \times, \leq)\) an ordered field, because −1 is the square of i and would therefore be positive.
Besides being an ordered field, R also has the Least-upper-bound property. In fact, R can be defined as the only ordered field with that quality.
Chained notation
The notation a < b < c stands for "a < b and b < c", from which, by the transitivity property above, it also follows that a < c. By the above laws, one can add or subtract the same number to all three terms, or multiply or divide all three terms by same nonzero number and reverse all inequalities if that number is negative. Hence, for example, a < b + e < c is equivalent to a − e < b < c − e.
This notation can be generalized to any number of terms: for instance, a1 ≤ a2 ≤ ... ≤ an means that ai ≤ ai+1 for i = 1, 2, ..., n − 1. By transitivity, this condition is equivalent to ai ≤ aj for any 1 ≤ i ≤ j ≤ n.
When solving inequalities using chained notation, it is possible and sometimes necessary to evaluate the terms independently. For instance, to solve the inequality 4x < 2x + 1 ≤ 3x + 2, it is not possible to isolate x in any one part of the inequality through addition or subtraction. Instead, the inequalities must be solved independently, yielding x < 1/2 and x ≥ −1 respectively, which can be combined into the final solution −1 ≤ x < 1/2.
Occasionally, chained notation is used with inequalities in different directions, in which case the meaning is the logical conjunction of the inequalities between adjacent terms. For example, the defining condition of a zigzag poset is written as a1 < a2 > a3 < a4 > a5 < a6 > ... . Mixed chained notation is used more often with compatible relations, like <, =, ≤. For instance, a < b = c ≤ d means that a < b, b = c, and c ≤ d. This notation exists in a few programming languages such as Python. In contrast, in programming languages that provide an ordering on the type of comparison results, such as C, even homogeneous chains may have a completely different meaning.
Sharp inequalities
An inequality is said to be sharp if it cannot be relaxed and still be valid in general. Formally, a universally quantified inequality φ is called sharp if, for every valid universally quantified inequality ψ, if ψ ⇒ φ holds, then ψ ⇔ φ also holds. For instance, the inequality ∀a ∈ R. a ≥ 0 is sharp, whereas the inequality ∀a ∈ R. a ≥ −1 is not sharp.
Inequalities between means
There are many inequalities between means. For example, for any positive numbers a1, a2, ..., an we have
\(H\le G\le A\le Q,\)
where they represent the following means of the sequence:
- Harmonic mean : \(H = \frac{n}{\frac{1}{a_1} + \frac{1}{a_2} + \cdots + \frac{1}{a_n}}\)
- Geometric mean : \(G = \sqrt[n]{a_1 \cdot a_2 \cdots a_n}\)
- Arithmetic mean : \(A = \frac{a_1 + a_2 + \cdots + a_n}{n}\)
- Quadratic mean : \(Q = \sqrt{\frac{a_1^2 + a_2^2 + \cdots + a_n^2}{n}}\)
Cauchy–Schwarz inequality
The Cauchy-Schwarz inequality states that for all vectors u and v of an inner product space it is true that \[|\langle \mathbf{u},\mathbf{v}\rangle| ^2 \leq \langle \mathbf{u},\mathbf{u}\rangle \cdot \langle \mathbf{v},\mathbf{v}\rangle,\] where \(\langle\cdot,\cdot\rangle\) is the inner product. Examples of inner products include the real and complex dot product; In Euclidean space R with the standard inner product, the Cauchy-Schwarz inequality is \[\biggl(\sum_{i=1}^n u_i v_i\biggr)^2\leq \biggl(\sum_{i=1}^n u_i^2\biggr) \biggl(\sum_{i=1}^n v_i^2\biggr).\]
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What does it mean to solve an equation?
To find every value of the unknown that makes both sides equal. Each step is an operation applied to both sides that keeps the solution set the same, until the unknown stands alone.
Why do I sometimes get two answers?
A quadratic can cross the axis twice, so it can have two solutions. A degree-n polynomial has up to n. The graph shows where each one comes from.
How do I know whether to factor or use the quadratic formula?
Try factoring for a few seconds: look for two numbers that multiply to a·c and add to b. If nothing obvious appears, the discriminant b² − 4ac tells you how many real roots there are, and the formula finds them without guessing.
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