QM-AM-GM-HM inequalities

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In mathematics, the QM-AM-GM-HM inequalities, also known as the mean inequality chain, state the relationship between the harmonic mean, geometric mean, arithmetic mean, and quadratic mean (also known as root mean square). Suppose that x1,x2,,xn are positive real numbers. Then

0<n1x1+1x2++1xnx1x2xnnx1+x2++xnnx12+x22++xn2n.[1]

These inequalities often appear in mathematical competitions and have applications in many fields of science.

Proof

There are three inequalities between means to prove. There are various methods to prove the inequalities, including mathematical induction, the Cauchy–Schwarz inequality, Lagrange multipliers, and Jensen's inequality. For several proofs that GM ≤ AM, see Inequality of arithmetic and geometric means.

AM-QM inequality

From the Cauchy–Schwarz inequality on real numbers, setting one vector to (1, 1, ...):

(i=1nxi1)2(i=1nxi2)(i=1n12)=ni=1nxi2, hence (i=1nxin)2i=1nxi2n. For positive xi the square root of this gives the inequality.

HM-GM inequality

The reciprocal of the harmonic mean is the arithmetic mean of the reciprocals 1/x1,,1/xn, and it exceeds 1/x1xnn by the AM-GM inequality. xi>0 implies the inequality:

n1x1++1xnx1xnn.[2]

The n = 2 case

File:HM-GM-AM-QM inequality n=2 case visualization .jpg
The semi-circle used to visualize the inequalities

When n = 2, the inequalities become

2x1x2x1+x2x1x2x1+x22x12+x222 for all x1,x2>0, [3]

which can be visualized in a semi-circle whose diameter is [AB] and center D. Suppose AC = x1 and BC = x2. Construct perpendiculars to [AB] at D and C respectively. Join [CE] and [DF] and further construct a perpendicular [CG] to [DF] at G. Then the length of GF can be calculated to be the harmonic mean, CF to be the geometric mean, DE to be the arithmetic mean, and CE to be the quadratic mean. The inequalities then follow easily by the Pythagorean theorem.

File:Comparison mean values.svg
Comparison of harmonic, geometric, arithmetic, quadratic and other mean values of two positive real numbers x1 and x2

Tests

To infer the correct order, the four expressions can be evaluated with two positive numbers. For x1=10 and x2=40 in particular, this results in 16<20<25<534.

See also

References

  1. Djukić, Dušan (2011). The IMO compendium: a collection of problems suggested for the International Mathematical Olympiads, 1959-2009. Problem books in mathematics. International mathematical olympiad. New York: Springer. p. 7. ISBN 978-1-4419-9854-5.
  2. Sedrakyan, Hayk; Sedrakyan, Nairi (2018), Sedrakyan, Hayk; Sedrakyan, Nairi (eds.), "The HM-GM-AM-QM Inequalities", Algebraic Inequalities, Problem Books in Mathematics, Cham: Springer International Publishing, p. 23, doi:10.1007/978-3-319-77836-5_3, ISBN 978-3-319-77836-5, retrieved 2023-11-26
  3. Sedrakyan, Hayk; Sedrakyan, Nairi (2018), Sedrakyan, Hayk; Sedrakyan, Nairi (eds.), "The HM-GM-AM-QM Inequalities", Algebraic Inequalities, Problem Books in Mathematics, Cham: Springer International Publishing, p. 21, doi:10.1007/978-3-319-77836-5_3, ISBN 978-3-319-77836-5, retrieved 2023-11-26

External links