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In arithmetic and algebra, the cube of a number n is its third power, that is, the result of multiplying three instances of n together. The cube of a number n is denoted n 3, using a superscript 3, [a] for example 2 3 = 8. The cube operation can also be defined for any other mathematical expression, for example (x + 1) 3.
2 50 = 1 125 899 906 842 624 The binary approximation of the peta-, or 1 000 000 000 000 000 multiplier. 1 125 899 906 842 624 bytes = 1 petabyte [5] or pebibyte. 2 53 = 9 007 199 254 740 992 The number until which all integer values can exactly be represented in IEEE double precision floating-point format. Also the first power of 2 to start ...
Graphs of y = b x for various bases b: base 10, base e, base 2, base 1 / 2 . Each curve passes through the point (0, 1) because any nonzero number raised to the power of 0 is 1. At x = 1, the value of y equals the base because any number raised to the power of 1 is the number itself.
Let the right triangle have sides (u, v, w), where the area equals uv / 2 and, by the Pythagorean theorem, u 2 + v 2 = w 2. If the area were equal to the square of an integer s uv / 2 = s 2. then by algebraic manipulations it would also be the case that 2uv = 4s 2 and −2uv = −4s 2. Adding u 2 + v 2 = w 2 to these equations gives
In mathematics, a cube root of a number x is a number y that has the given number as its third power; that is =. The number of cube roots of a number depends on the number system that is considered. Every nonzero real number x has exactly one real cube root that is denoted x 3 {\textstyle {\sqrt[{3}]{x}}} and called the real cube root of x or ...
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In the third expression, n is the height, but each of the bases is different. Care must be taken when referring to iterated exponentials, as it is common to call expressions of this form iterated exponentiation, which is ambiguous, as this can either mean iterated powers or iterated exponentials .
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