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  2. Summation by parts - Wikipedia

    en.wikipedia.org/wiki/Summation_by_parts

    The formula for an integration by parts is () ′ = [() ()] ′ (). Beside the boundary conditions , we notice that the first integral contains two multiplied functions, one which is integrated in the final integral ( g ′ {\displaystyle g'} becomes g {\displaystyle g} ) and one which is differentiated ( f {\displaystyle f} becomes f ...

  3. Wallace tree - Wikipedia

    en.wikipedia.org/wiki/Wallace_tree

    The final product is calculated by the weighted sum of all these partial products. The first step, as said above, is to multiply each bit of one number by each bit of the other, which is accomplished as a simple AND gate, resulting in n 2 {\displaystyle n^{2}} bits; the partial product of bits a m {\displaystyle a_{m}} by b n {\displaystyle b ...

  4. Booth's multiplication algorithm - Wikipedia

    en.wikipedia.org/wiki/Booth's_multiplication...

    Where these two bits are equal, the product accumulator P is left unchanged. Where y i = 0 and y i−1 = 1, the multiplicand times 2 i is added to P; and where y i = 1 and y i−1 = 0, the multiplicand times 2 i is subtracted from P. The final value of P is the signed product.

  5. Infinite product - Wikipedia

    en.wikipedia.org/wiki/Infinite_product

    Download as PDF; Printable version ... complex numbers a 1, a 2, a 3, ... the infinite product ... , then the sequence of partial products of the a n converges to ...

  6. Product order - Wikipedia

    en.wikipedia.org/wiki/Product_order

    The lexicographic combination of two total orders is a linear extension of their product order, and thus the product order is a subrelation of the lexicographic order. [3] The Cartesian product with the product order is the categorical product in the category of partially ordered sets with monotone functions. [7]

  7. Triple product rule - Wikipedia

    en.wikipedia.org/wiki/Triple_product_rule

    Define p 2 as the point at time t whose x-coordinate matches that of p̄ 1, and define p̄ 2 to be the corresponding point of p 2 as shown in the figure on the right. The distance Δx between p 1 and p̄ 1 is the same as the distance between p 2 and p̄ 2 (green lines), and dividing this distance by Δt yields the speed of the wave.