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Euclidium
- 歐基理德輾轉相除法(之一) 以歐基理德輾轉相除法求出m,n這2個整數的最大公因數 -Reed Euclid division algorithm (one) to Euclid division algorithm Reed obtained m, n this two integers gcd
fasterEuclidium
- 歐基理德輾轉相除法(之二) m與n相差太大時,可用(m%n)來取代(m-n),這樣的處理效率較高。以下便以此方法求出最大公因數。 -Reed Euclid division algorithm (II) m and n be too significant, the available (m% n) to replace the (mn), this kind of treatment more efficient. The following will be obtained in t
gcd
- to get GCD(A,B),and no recursion -to get GCD(A,B),and no recursion
gcd
- greatest common divisor c-greatest common divisor c++
Desktop
- 求两个数的最大公约数gcd()和仿射加密解密的c++算法- Asks two numbers the greatest common divisor gcd() c++ algorithm
1
- 分别编写求两个数值(可以是浮点数,整数或字符)最大值,最小值和平均值的函数maximum, minimum, meanValue。另外,编写一个函数gcd求两个整数的最大公约数。-Respectively write to demand the two values (which can be floating-point, integer or character) maximum, minimum and average function of the maxim
GCD
- 這是一個用來計算GCD的C++程式,輸入兩個INT就能幫你找出最大公倍數-i don t know what to upload but i want to download
gcd
- 实现求两个正整数的最大公约数和最小公倍数,代码简洁算法简单,适合初学者VC6.0平台-Seek the greatest common divisor and least common multiple of two positive integers, the code simple algorithm is simple, suitable for beginners VC6.0 platform
Greatest-common-divisor-(GCD)
- 用递归调用和辗转相除法求两个整数的最大公约数(输入多组数据,每个数在1到1000之间;输出为一行一个公约数)。-Calculate and output the greatest common divisor (GCD) of a pair of integers.The classic algorithm for computing the GCD, known as Euclid’s algorithm, goes as follows: Let m and n be variables c
GCD
- fluent 冷凝UDF 自己改的不是网上照搬的-useful for the fluent condensation model
lcm-and-gcd
- 输入任意倆数,以极其简单的方式求出他们的最大公约数和最小公倍数,测试任意次数-output the lcm and gcd
tow-class-A-and-B
- 编写两个类:A和B,A常见的对象可以计算两个正整数的最大公约数,B常见的对象可以计算两个数的最小公倍数。要求:B类中有一个成员变量时用A类声明对象.-Write two classes: A and B, A common object can be of two positive integers GCD computation, LCM B common object can be used to calculate the number of two. Requirements: have
UVa-11424
- UVa 11424 - GCD - Extreme 解答 -UVa 11424- GCD- Extreme Solution
Ch_Rem_Poly
- (程序Poly_GCD.m和Poly_GCD_Main.m) 多项式的中国剩余定理定义在在文学更数学符号如下(对于如在书中理查德Blahut/ P77):对于任何一组两两互素多项式[M1(X),2(X),... MK(X)],一组同余:C(X)= eqvt模(CK(x)中,MK(X))中,k=1,2,...,K具有一定程度的小于度的独特的解决方案。-The Chinese Remainder Theorem for Polynomials is defined in still mor
Poly
- 1、可通过 Poly P 声明一个多项式 P; 2、可通过 P.read(string P_str) 直接从 手写习惯的多项式字符串 读入多项式; 3、可通过 P.newTerm(double Coef, int Exp) 增添多项式的项,如果含有同类项,则合并; 4、可直接通过 P Q 给多项式 P 赋值; 5、可直接通过 cout << P 以手写习惯输出多项式; 6、可通过 P.clear() 清除一个多项式; 7、可直接通过 +、-、*、/、 进行多项
EuclidGCD
- vhdl file to find Euclids GCD
VHDL
- GCD and Booth Multiplier VHDL code
多项式GCD
- 1。实现,用C/C++和MATLAB,欧几里德算法计算最大公司(GCD)的两个任意多项式在GF(2)。模拟和分析两给定阶数不小(1.Realize, by using c/c++ or Matlab, the Euclidean algorithm to calculate the greatest common division (GCD) for arbitrary two polynomials over GF(2). Simulate and analyze the calculatio
C++练习题
- 打印日历 推箱子游戏 最大公约数与最小公倍数 最简分数的化简 腾讯面试题(Print calendar Box game GCD and LCM Simplification of the simplest fraction Tencent interview questions)
gcd
- gcd on c++ especially for acmers(gcdgcd on c++ especially for acmers)