代码搜索:Sign
找到约 10,000 项符合「Sign」的源代码
代码结果 10,000
www.eeworm.com/read/284222/8953107
m ism.m
% ISM 解释型结构模型 根据邻接矩阵求可达矩阵,进行级划分的算法,2002-9-24,王新宇
% step 1 求可达矩阵
% A 是邻接矩阵,可以由用户输入
A = [1 0 0 0 1 0 0 1 1 0 1 1 1 0 0 0 1 1 1 1 1 0 1 1 1 1
1 1 0 0 1 1 0 1 1 0 1 1 1 0 1 0 1 1 1 1 1 0 1 1 1 1
0
www.eeworm.com/read/283953/8976594
java signfunction.java
public class SignFunction{
public static void main(String args[]) {
int intx;
intx=0;
if(intx>0)
System.out.println("The sign of "+intx+" is + ;");
www.eeworm.com/read/184552/9094706
java signfunction.java
public class SignFunction{
public static void main(String args[]) {
int intx;
intx=0;
if(intx>0)
System.out.println("The sign of "+intx+" is + ;");
www.eeworm.com/read/182707/9194987
m isnumber.m
function sign=isnumber(a)
%Judge if a character is a number
if a>='0' & a
www.eeworm.com/read/182501/9201160
m isnumber.m
function sign=isnumber(a)
%Judge if a character is a number
if a>='0' & a
www.eeworm.com/read/379265/9203365
cpp caculator.cpp
#include
#include"caculator.h"
int n=0;
base::base(){}
jisuanqi::jisuanqi(){}
double jisuanqi::jisuan() //计算
{
int n=0;
for(int i=0;sign[i-1]!='=';i++)
{
www.eeworm.com/read/378452/9230536
txt 3.txt
基本算法:
大整数运算的基本算法比较简单,很多书上都有介绍,本文有一点要说明,本文采用的是万进制来运算。为什么采用万进制?因为万进制一个int字长可容纳4数字,这样就减少存储空间,同时大大提高了运算速度。照此说法还不如采用亿进制,原因在于乘法运算的过程中需要用到两个数相乘,而两个小于一万的数相乘小于一亿,也小于21亿,符合一个int字长,而采用亿进制会造成越界,处理起来麻烦, ...
www.eeworm.com/read/373100/9475237
cpp 并查集.cpp
#define N 10000
int parent[N];
void UFset() //初始化
{
for(int i=0;i=0;i=parent[i]);
while(i!=x)
www.eeworm.com/read/169988/9825977
cpp robustdeterminant.cpp
/**********************************************************************
* $Id: RobustDeterminant.cpp,v 1.6.2.1 2005/05/23 17:10:08 strk Exp $
*
* GEOS - Geometry Engine Open Source
* http://geos.r
www.eeworm.com/read/365357/9866379
m plu.m
function [P,L,U,pivcol,sign] = plu(A)
%PLU Pivoting, rectangular, LU factorization.
% [P,L,U] = PLU(A), for a rectangular matrix A, uses Gaussian elimination
% to compute a permutation matrix P, a