divisor

Hdu 5207 Greatest Greatest Common Divisor(数论)

题目链接GreatestGreatestCommonDivisorTimeLimit:4000/2000MS(Java/Others)    MemoryLimit:65536/65536K(Java/Others)TotalSubmission(s):567    AcceptedSubmission(s):257ProblemDescriptionPicktwonumbersai,aj(i≠j
madaidao·2015-04-20 17:00

HDOJ 5207 Greatest Greatest Common Divisor 暴力枚举

暴力枚举公约数,有两个数是这个公约数倍数的就可以GreatestGreatestCommonDivisorTimeLimit:4000/2000MS(Java/Others)    MemoryLimit:65536/65536K(Java/Others)TotalSubmission(s):395    AcceptedSubmission(s):171ProblemDescriptionPic
u012797220·2015-04-19 08:00

BestCoder Round 38-1002 Greatest Greatest Common Divisor

题目链接:http://bestcoder.hdu.edu.cn/contests/contest_showproblem.php?cid=577&pid=1002题面:GreatestGreatestCommonDivisor  Accepts:271  Submissions:1138 TimeLimit:4000/2000MS(Java/Others)  MemoryLimit:65536/
David_Jett·2015-04-18 22:00

leetcode:Divide Two Integers

classSolution{ public: intdivide(intdividend,intdivisor){ longlongdiv=dividend,dis=divisor; div=abs(div
majing19921103·2015-04-03 23:00

更相减损术

#include voidswap(int*p,int*q) { intm=*p; *p=*q; *q=m; } intmax_divisor(inta,intb) { ints=a-b;//109s
zr1076311296·2015-03-11 10:00

FloatPointArithmeticUtils

pubilc BigDecimal divide(BigDecimal divisor, int scale, int roundingMode) ①:roundingMode是什么(环境模式)?
weigang.gao·2015-03-08 17:00

LeetCode 29 - Divide Two Integers

  Solution: public int divide(int dividend, int divisor) { if(divisor == 0
yuanhsh·2015-03-05 03:00

LeetCode 29 - Divide Two Integers

  Solution: public int divide(int dividend, int divisor) { if(divisor == 0
yuanhsh·2015-03-05 03:00

Codeforces 337E Divisor Tree 暴搜

题目大意:就是现在给出最多8个数(2 #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include usingnamespacestd;
u013738743·2015-03-03 21:00

leetcode_29_Divide Two Integers

例如:(dividend,divisor)=(2147483647,1)方法一:利用二分法。假设:要求的解在[a,b]
keyyuanxin·2015-02-07 14:00

leetcode 实现两个int整数相除(不用乘除,取余)

1.dividend=divisor*(a0*2^0+a1*2^1+...
SHForWork·2015-01-20 10:46

[LeetCode]Divide Two Integers

Dividetwointegerswithoutusingmultiplication,divisionandmodoperator.Ifitisoverflow,returnMAX_INT.时间复杂度 log(n)有个conercase dividend= -2147483648divisor
u014691362·2015-01-09 21:00

求最小公倍数最大公约数

 辗转相除法求int divisor (int a,int b) {  int  temp; if(aintGCD(inta,intb){returnb?
a7055117a·2014-12-16 10:00

判断一个数是否为素数

booleanprime(intnum){ intdivisor=3; inttestLimit=num; if(num%2==0&&num>2) returnfalse; while(testLimit>divisor
brian512·2014-12-10 12:00

[BZOJ 2082]POI 2010 Divine divisor

数论小集合。题目里第一问本质上要求的其实是数a1*a2*a3*....*am(m #include #include #include usingnamespacestd; #definesqr(x)((int)(x)*(x)) typedeflonglongLL; constintMaxn=1000007; LLx,xx,MD6,MD12,INF; intn,tot,maxx,cnt,i,j,
Zeyu_King·2014-12-07 14:00

[LeetCode] Divide Two Integers

这里可以把除数表示为:dividend=2^i*divisor+2^(i-1)*divisor+...+2^0*divisor。这样一来,我
bhwolf1987·2014-11-11 01:00

LeetCode 124 Divide Two Integers

publicclassSolution{ publicintdivide(intdividend,intdivisor){ if(dividend==0||divisor
ustc_summer·2014-10-31 19:00

[LeetCode] Divide Two Integers

Dividetwointegerswithoutusingmultiplication,divisionandmodoperator.classSolution{ public: intdivide(intdividend,intdivisor){ if(divisor
hale1007·2014-10-16 22:00

编程之美---最大公约数问题

任意给定两个数字,得到其最大公约数 GCD(greatest common divisor),如果两个数字都很大怎么解决。
·2014-09-03 11:00

选择合适的整数运算方法

【整数除&求余】整数除法和求模往往成对的出现,如:quotient = dividend  / divisor remainder = dividend  % divisor 因为除法操
u012449147·2014-08-21 22:00

Divide Two Integers

divisionandmodoperator.解答:publicintdivide(intdividend,intdivisor){ booleannegative=(dividend0)|| (dividend>0&&divisor
china_wanglong·2014-08-20 19:00

SICP 1.21 1.22 1.23 1.24

解:相关代码如下,时间测不出来#lang racket (define (square x)   (* x x)) (define (smallest-divisor n)   (define (divides
代码强国·2014-08-17 16:00

[leetcode] Palindrome Number

不断选取第一位和最后一位进行比较,相等则取第二位和倒数第二位,直到比较完成或者中途找到了不一致的位classSolution{ public: boolisPalindrome(intx){ if(x=10){//找到最大的除数 divisor
lydyangliu·2014-08-13 15:00

[Verilog]任意整数(奇数,偶数)分频器设计, 50%占空比

modulediv_clk(clk_in,divisor,clk_out);inputclk_in;inputdivisor;outputclk_out;regclk_out=0;wireclk_in;
yrj·2014-07-31 09:00

Greatest Greatest Common Divisor(技巧枚举)

499.GreatestGreatestCommonDivisorTimelimitpertest:0.5second(s)Memorylimit:262144kilobytesinput:standardoutput:standardAndrewhasjustmadeabreakthroughinsociology:herealizedhowtopredictwhethertwopersonsw
Simone_chou·2014-07-16 10:00

LeetCode 28. Divide Two Integers

每次除数增加一倍,当被除数=b) { longlongsum=b; intcnt=1; while(sum+sum0)||(dividend>0&&divisor=b) { longlongsum=b;
u014674776·2014-06-20 03:00

JUnit4学习笔记(二):参数化测试与假定(Assumption)

编写一个只有一种运算的计算器:   public class Calculator { public static double divide(int dividend, int divisor
haibin369·2014-06-14 12:00

project euler Problem 3

 #include  using namespace std; int main() { __int64 number = 600851475143;    int divisor = 2;    while
卓尔·2014-06-13 12:00

LeetCode: Divide Two Integers

就是将除数每次扩大2倍,直到大于被除数,此时是一部分倍数,将被除数减去最近一次的新除数(0)||(dividend>0&&divisor0){ mulriple=1; longlongtempDivisor
AIvin24·2014-04-22 16:00

java的一些小方法

一、取余数 // java api计算余数 public static int remainder(int dividend, int divisor) { return dividend
suko·2014-02-28 11:00

SICP 习题 (1.24) 解题总结

说到费马检测,首先是要去看看最朴素的素数检测方法,就是使用我们之前的smallest-divisor找最小因数的过程,
keyboardota·2014-02-13 23:35

LeetCode OJ:Divide Two Integers

divisionandmodoperator.算法思想:二分classSolution{ public: intdivide(intdividend,intdivisor){ if(dividend==0||divisor
starcuan·2014-01-30 13:00

Leetcode: Divide Two Integers

classSolution{ public: intdivide(intdividend,intdivisor){ if(divisor==0){ if(dividend::min(); } else{
u013166464·2013-12-30 21:00

BigDecimal类的加减乘除

BigDecimal multiply(BigDecimal multiplicand) 普通 乘法 7 public BigDecimal divide(BigDecimal divisor
songzhan·2013-12-30 21:00

SICP 习题 (1.21) 解题总结

SICP习题1.21要求用书中的smallest-divisor过程找出199,1999,19999的最小因子。这道题是个纯复习题,没有新知识,也没有什么难度。
keyboardOTA·2013-12-25 23:00

Algorithms - 最大公约数(greatest common divisor)-欧几里得(Euclid) 算法 及 代码

最大公约数(greatestcommondivisor)-欧几里得(Euclid)算法本文地址: http://blog.csdn.net/caroline_wendy/article/details/17012455最大公约数(欧几里得算法(Euclid'sAlgorithm))是比较经典的算法; 主要方法:递归相除,求余数,直至余数为0,返回最后一个除数,即可;这样,最早的两个数,就都包含此除
morndragon·2013-11-28 21:00

Algorithms - 最大公约数(greatest common divisor)-欧几里得(Euclid) 算法 及 代码

最大公约数(greatestcommondivisor)-欧几里得(Euclid)算法本文地址: http://blog.csdn.net/caroline_wendy/article/details/17012455最大公约数(欧几里得算法(Euclid'sAlgorithm))是比较经典的算法; 主要方法:递归相除,求余数,直至余数为0,返回最后一个除数,即可;这样,最早的两个数,就都包含此除
u012515223·2013-11-28 21:00

php session mysql存储

session.gc_divisor100session.gc_maxlifetime1440session.gc_probability1以上三值很重要,session.gc_divisor决定了回收频率
witer666·2013-11-01 11:25

Leetcode: Divide Two Integers

TimeLimitExceededintdivide(intdividend,intdivisor){ //Note:TheSolutionobjectisinstantiatedonlyonce. intres=0; if(divisor
doc_sgl·2013-10-17 19:00

Divisor Tree(爆搜,3级)

C.DivisorTreetimelimitpertest1secondmemorylimitpertest256megabytesinputstandardinputoutputstandardoutputA divisortree isarootedtreethatmeetsthefollowingconditions:Eachvertexofthetreecontainsapositivei
nealgavin·2013-09-17 20:00

[math]Greatest common divisor

GreatestcommondivisorEuclid'salgorithm:gcdgcd(a,0)=agcd(a,b)=gcd(b,amodb) unsignedintgcd(unsignedintM,unsignedintN) { unsignedintRem; while(N>0){ Rem=M%N; M=N; N=Rem; } returnRem; }
kiddie·2013-08-27 16:00

Divisor Tree

题目链接:http://codeforces.com/problemset/problem/337/E题目大意:给n个数(n #include #include #include #include #include #include #include #include #include #include #include #include #defineeps1e-6 #defineINF0x1f
cc_again·2013-08-26 08:00

codeforce 337E-divisor tree

v是u的儿子当且仅当u整除v并且加上v之后,所以v的乘积能被u整除注意ai恰好是质数的情况开始企图O(n^n),TLE了,O(n!)枚举,姿势对了#include #include #include #include #include usingnamespacestd; #definelllonglong #defineN1000055 lla[100],th[11]; intn; intpri
Jackyguo1992·2013-08-18 23:00

CF 337E(Divisor Tree-枚举树节点的父亲)

E.DivisorTreetimelimitpertest1secondmemorylimitpertest256megabytesinputstandardinputoutputstandardoutputA divisortree isarootedtreethatmeetsthefollowingconditions:Eachvertexofthetreecontainsapositivei
nike0good·2013-08-18 19:00

求N个数据的最大公约数和最小公倍数

gcd: greatest common divisor  最大公约数 lcm: least common multiplier  最小公倍数 如果是N=2的话, 求gcd
lg_asus·2013-08-15 10:00

用位运算实现两个整数的加减乘除运算

1.整数加法intAdd(inta,intb) { for(inti=1;i;i0||dividend>0&&divisor=0;j--) { if(x>=(y<<j)) { x
love254443233·2013-07-06 13:00

Java中怎样保留小数的有效位数,即从第一个不是0的数开始算起

0.000012.而不是保留两位小数double a = 0.00001234;  BigDecimal b = new BigDecimal(String.valueOf(a));  BigDecimal divisor
huangmeimao·2013-07-03 17:00

PHP SESSION 机制解惑 (二)

当一个有效请求发生时,PHP会根据全局变量session.gc_probability/session.gc_divisor(同样可以通过php.ini或者ini_set()函数来修改)的值,来决定是否启动一个
碧水千顷·2013-07-01 17:00

common divisor---求最大公约数

GreatestCommonDivisor.Thegreatestcommondivisoristhelargestnumberwhichwillevenlydividetwoothernumbers.Examples:GCD(5,10)=5,thelargestnumberthatevenlydivides5and10.GCD(21,28)=7,thelargestnumberthatdivid
julius_lee·2013-06-08 09:00

Divide Two Integers

Dividetwointegerswithoutusingmultiplication,divisionandmodoperator.dividend=divisor*2^0+divisor*2^1+.
violet_program·2013-05-21 23:00
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