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  2. Wheat and chessboard problem - Wikipedia

    en.wikipedia.org/wiki/Wheat_and_chessboard_problem

    The exercise of working through this problem may be used to explain and demonstrate exponents and the quick growth of exponential and geometric sequences. It can also be used to illustrate sigma notation. When expressed as exponents, the geometric series is: 2 0 + 2 1 + 2 2 + 2 3 + ... and so forth, up to 2 63. The base of each exponentiation ...

  3. Exponential growth - Wikipedia

    en.wikipedia.org/wiki/Exponential_growth

    Often the independent variable is time. Described as a function, a quantity undergoing exponential growth is an exponential function of time, that is, the variable representing time is the exponent (in contrast to other types of growth, such as quadratic growth). Exponential growth is the inverse of logarithmic growth.

  4. Logistic map - Wikipedia

    en.wikipedia.org/wiki/Logistic_map

    The map was initially utilized by Edward Lorenz in the 1960s to showcase properties of irregular solutions in climate systems. [1] It was popularized in a 1976 paper by the biologist Robert May , [ May, Robert M. (1976) 1 ] in part as a discrete-time demographic model analogous to the logistic equation written down by Pierre François Verhulst ...

  5. Category:Exponentials - Wikipedia

    en.wikipedia.org/wiki/Category:Exponentials

    Print/export Download as PDF; ... Exponential function; Exponential growth; ... Wheat and chessboard problem; Z. Zero to the power of zero

  6. Grigorchuk group - Wikipedia

    en.wikipedia.org/wiki/Grigorchuk_group

    In the mathematical area of group theory, the Grigorchuk group or the first Grigorchuk group is a finitely generated group constructed by Rostislav Grigorchuk that provided the first example of a finitely generated group of intermediate (that is, faster than polynomial but slower than exponential) growth.

  7. Malthusian growth model - Wikipedia

    en.wikipedia.org/wiki/Malthusian_growth_model

    By now, it is a widely accepted view to analogize Malthusian growth in Ecology to Newton's First Law of uniform motion in physics. [8] Malthus wrote that all life forms, including humans, have a propensity to exponential population growth when resources are abundant but that actual growth is limited by available resources:

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