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  2. List of logarithmic identities - Wikipedia

    en.wikipedia.org/wiki/List_of_logarithmic_identities

    The identities of logarithms can be used to approximate large numbers. Note that log b (a) + log b (c) = log b (ac), where a, b, and c are arbitrary constants. Suppose that one wants to approximate the 44th Mersenne prime, 2 32,582,657 −1. To get the base-10 logarithm, we would multiply 32,582,657 by log 10 (2), getting 9,808,357.09543 ...

  3. Logarithm - Wikipedia

    en.wikipedia.org/wiki/Logarithm

    As a consequence, log b (x) diverges to infinity (gets bigger than any given number) if x grows to infinity, provided that b is greater than one. In that case, log b (x) is an increasing function. For b < 1, log b (x) tends to minus infinity instead. When x approaches zero, log b x goes to minus infinity for b > 1 (plus infinity for b < 1 ...

  4. Natural logarithm - Wikipedia

    en.wikipedia.org/wiki/Natural_logarithm

    [nb 1] In some other contexts such as chemistry, however, log x can be used to denote the common (base 10) logarithm. It may also refer to the binary (base 2) logarithm in the context of computer science, particularly in the context of time complexity. Generally, the notation for the logarithm to base b of a number x is shown as log b x.

  5. Common logarithm - Wikipedia

    en.wikipedia.org/wiki/Common_logarithm

    The mathematical notation for using the common logarithm is log(x), [4] log 10 (x), [5] or sometimes Log(x) with a capital L; [a] on calculators, it is printed as "log", but mathematicians usually mean natural logarithm (logarithm with base e ≈ 2.71828) rather than common logarithm when writing "log".

  6. Gamma function - Wikipedia

    en.wikipedia.org/wiki/Gamma_function

    The simple formula for the factorial, x! = 1 × 2 × ⋯ × x is only valid when x is a positive integer, and no elementary function has this property, but a good solution is the gamma function () = (+).

  7. Euler's constant - Wikipedia

    en.wikipedia.org/wiki/Euler's_constant

    3.2 Continued fraction. ... (rather than 0.5) as n tends to infinity. ... where log 2 is the logarithm to base 2 and ...

  8. Iterated logarithm - Wikipedia

    en.wikipedia.org/wiki/Iterated_logarithm

    In this case, b = e. The zig-zagging entails starting from the point (n, 0) and iteratively moving to (n, log b (n) ), to (0, log b (n) ), to (log b (n), 0 ). In computer science, the iterated logarithm of , written log * (usually read "log star"), is the number of times the logarithm function must be iteratively applied before the result is ...

  9. Discrete logarithm - Wikipedia

    en.wikipedia.org/wiki/Discrete_logarithm

    Similarly, let b −k denote the product of b1 with itself k times. For k = 0, the kth power is the identity: b 0 = 1. Let a also be an element of G. An integer k that solves the equation b k = a is termed a discrete logarithm (or simply logarithm, in this context) of a to the base b. One writes k = log b a.