设m,n(m>n)根据公约数的定义:当m%t==0&&n%t==0时,t为m,n的公约数则最大公约数在1~n之间t=min(m,n)m%t!=0||n%t!=0t=t-101#includevoidmain(){intm,n,t;scanf("%d%d",&m,&n);if(m=1;t=t-1)if(m%t==0&&n%t==0)break;输出t1.输入两个正整数m和n,求最大公约数和最小公倍数最小公倍数=m*n/最大公约数直接求最小公倍数设m,n(m>n)根据公倍数的定义:当t%m==0&&t%n==0时,t为m,n的公倍数则最小公倍数>=mt=max(m,n)t%m!=0||t%n!=0t++01if(m>n)t=m;elset=n;while(t%m!=0||t%n!=0)t++;输出tsn=a+aa+aaa+…+aa…….an个a通项tn=tn*10+atn初值=0求和sn=sn+tnsn初值=02.输入正整数a和n,计算例a=2i=1tn=0*2+2=2i=2tn=2*10+2=22……#includevoidmain(){intri,repeat;inti,n;longinta,sn,tn;scanf("%d",&repeat);for(ri=1;ri<=repeat;ri++){scanf("%ld%d",&a,&n);sn=0;tn=0;for(i=1;i<=n;i++){tn=tn*10+a;sn+=tn;}/*---------*/printf("%ld\n",sn);}}3.球从100米高落下,每次落地后反弹原高度的一半,求10次落地时,共经过多少米和反弹高度每次落下h反弹h/2s=s+hh=h/2s=s+h#include#includevoidmain(){doubles,l,h;inti;s=0;h=100;for(i=1;i<=10;i++){s=s+h;h=h/2;s=s+h;}s=s-h;/*减去最后反弹高度*/printf("%lf,%lf\n",s,h);}4输入整数,逐位输出各位逆序输出#includevoidmain(){longtemp,n,t;scanf("%ld",&n);while(n>0){printf("%d,",n%10);n=n/10;}}输入12345输出5,4,3,2,1,12345/10000112345%10000=23452345/100022345%1000=345……5/155%1=0设n=12345t=10000while(t!=0){printf("%d,",n/t);n=n%t;t=t/10;}求t=?t=1;while(n>=10){t=t*10;n=n/10;}程序为#includevoidmain(){longtemp,n,t;scanf("%ld",&n);temp=n;t=1;while(n>=10){t=t*10;n=n/10;}n=temp;while(t!=0){printf("%d,",n/t);n=n%t;t=t/10;}}5.将一笔零钱(大于8分,小于1元,精确到分)换成5分、2分和1分的硬币。输入金额,问有几种换法?针对每一种换法,输出各种面额硬币的数量和硬币的总数量,要求每种硬币至少有一枚。先输出硬币总数量少的换法。#include"stdio.h"intmain(void){intcount,fen1,fen2,fen5,money;intrepeat,ri;scanf("%d",&repeat);for(ri=1;ri<=repeat;ri++){scanf("%d",&money);count=0;for(fen5=money;fen5>0;fen5--)for(fen2=money;fen2>0;fen2--)for(fen1=money;fen1>0;fen1--)if(fen1+2*fen2+5*fen5==money){printf("fen5:%d,fen2:%d,fen1:%d,total:%d\n",fen5,fen2,fen1,fen5+fen2+fen1);count=count+1;}printf("count=%d\n",count);}}
