1060 Are They Equal(25 分)
If a machine can save only 3 significant digits, the float numbers 12300 and 12358.9 are considered equal since they are both saved as 0.123×105 with simple chopping. Now given the number of significant digits on a machine and two float numbers, you are supposed to tell if they are treated equal in that machine.
Input Specification:
Each input file contains one test case which gives three numbers N, A and B, where N (<100) is the number of significant digits, and A and B are the two float numbers to be compared. Each float number is non-negative, no greater than 10100, and that its total digit number is less than 100.
Output Specification:
For each test case, print in a line YES if the two numbers are treated equal, and then the number in the standard form 0.d[1]...d[N]*10^k (d[1]>0 unless the number is 0); or NO if they are not treated equal, and then the two numbers in their standard form. All the terms must be separated by a space, with no extra space at the end of a line.
Note: Simple chopping is assumed without rounding.
Sample Input 1:
3 12300 12358.9
Sample Output 1:
YES 0.123*10^5
Sample Input 2:
3 120 128
Sample Output 2:
NO 0.120*10^3 0.128*10^3题目大意:机器只能存储N位数,给出一个最多100位的浮点数,判断它们在机器中是否是相同的存储。
//一开始想用字符数组,但是在字符数组中查找小数点的位置还要遍历,不如使用string直接find方便。
#include <iostream> #include<stdio.h> #include<cmath> #include<vector> using namespace std; int main() { int n; string s1,s2; cin>>n; cin>>s1>>s2; int len1,len2; int pos=s1.find("."); pos==string::npos?len1=s1.size():len1=pos; pos=s2.find("."); pos==string::npos?len2=s2.size():len2=pos; string temp1=s1.substr(0,n); string temp2=s2.substr(0,n); if(len1!=len2){ cout<<"NO "; cout<<"0."<<temp1<<"*10^"<<len1<<" "; cout<<"0."<<temp2<<"*10^"<<len2; }else{ if(temp1==temp2){ cout<<"YES "; cout<<"0."<<temp1<<"*10^"<<len1; } else{ cout<<"NO "; cout<<"0."<<temp1<<"*10^"<<len1<<" "; cout<<"0."<<temp2<<"*10^"<<len2; } } return 0; }
//提交一次之后,没有通过,牛客网上报错:
测试用例:
99 0 0.000
对应输出应该为:
YES 0.000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000*10^0
你的输出为:
NO 0.0*10^1 0.0.000*10^1
//但是我发现我不知道怎么处理,我写的这个bug存在问题,
//看了大佬的代码之后发现,我对科学计数法并不太明白。
代码来自:https://www.liuchuo.net/archives/2293
#include <iostream> #include <cstring> #include<stdio.h> using namespace std; int main() { int n, p = 0, q = 0; char a[10000], b[10000], A[10000], B[10000]; scanf("%d%s%s", &n, a, b); int cnta = strlen(a), cntb = strlen(b); for(int i = 0; i < strlen(a); i++) {//居然真的是遍历,我还以为需要字符串那样呢。 if(a[i] == '.') { cnta = i; break; } } for(int i = 0; i < strlen(b); i++) { if(b[i] == '.') { cntb = i; break; } } while(a[p] == '0' || a[p] == '.') p++;//找到不为0的位置。 while(b[q] == '0' || b[q] == '.') q++; if(cnta >= p)//这个小数点出现在非0位之后,如123.45,指数就为cnta-p=3 cnta = cnta - p; else//小数点后仍有0位,如0.0002,那么指数就是负值, cnta = cnta - p + 1; if(cntb >= q) cntb = cntb - q; else cntb = cntb - q + 1;// if(p == strlen(a))//如果是0.000这样的形式,将其赋值为0. cnta = 0;//不置为0,有可能两个0判断不相等。 if(q == strlen(b)) cntb = 0; int indexa = 0, indexb = 0; while(indexa < n) { if(a[p] != '.' && p < strlen(a))//除了小数点以外都赋值, A[indexa++] = a[p]; else if(p >= strlen(a))//当遍历完后,n较大时,仍然不够n位,那么后n位补0 A[indexa++] = '0'; p++; } while(indexb < n) { if(b[q] != '.' && q < strlen(b)) B[indexb++] = b[q]; else if(q >= strlen(b)) B[indexb++] = '0'; q++; } if(strcmp(A, B) == 0 && cnta == cntb) printf("YES 0.%s*10^%d", A, cnta);//读入和输出字符数组都可以用%s. else printf("NO 0.%s*10^%d 0.%s*10^%d" , A, cnta, B, cntb); return 0; }
//深刻地学习了科学记数法
1.科学记数法有两个重要的因素,就是小数点的位置,和首位非0位的位置,通过这两个可以确定指数,
2.小数点的位置,怎么办呢?先初始化位字符串长度,对应整数,没有小数位。
3.首位非0的元素也初始化为字符串的长度。
4.需要注意的是如果首位非零元长度=字符串长度,那么这个字符串表示的数就是0.需要特殊处理,就是为0.0..0*10^0。否则计算指数。
5.科学记数法如果不是0,那么处理后的结果,小数点后边一定要是非0元!。
学习了!