用java输出输出1000以内的数中能被3整除,且至少有一位数字是5的所有整数.
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count==3时会打印两遍可以改成:if ( count == 3 ) { System.o
publicclassTest{publicvoiddisplay(){intsum=0;for(inti=0;i
publicclassPrintUpperChar{publicstaticvoidmain(String[]args){for(charM='Z';M>='A';M--){System.out.pr
PrivateSubCommand1_Click()DimiAsLongDimsAsStringFori=1To1000DoEventsIf(iMod37)=0Thens=s&CStr(i)&""Ne
?1!这有什么值?没明白.longsum=0;for(inti=1;i
publicclassCat{publicstaticvoidmain(String[]args){intnum=2;drawDiamond(num);}privatestaticvoiddrawDi
publicclassTest{publicstaticvoidmain(String[]args){intsum=0;inti=2;while(i
按照你的要求写的如下代码,精短而高效,可以直接运行publicclassLuck{\x09publicstaticvoidmain(String[]args){\x09\x09intcount=123
publicclassFibonacci{publicstaticvoidmain(Stringargs[]){inti=1,j=1;for(intn=1;n
publicclassTest{publicstaticvoidmain(String[]args){inta=1203;intsum=0;while(a/10!=0){sum
staticvoidBubbleSort(inta[]){inttemp=0;for(inti=0;ifor(intj=0;jif(a[j]>a[j+1]){//把这里改成大于,就是升序了temp=a
最简单的:publicclassHelloJava{publicstaticvoidmain(String[]args){System.out.println("*******************
PrivateSubCommand1_Click()Fori=1To100Forj=1ToiFork=1TojIfi^2=j^2+k^2ThenPrinti;j;kNextkNextjNextiEnd
import java.awt.*;import java.awt.event.ActionEvent;import java.awt.event.ActionListe
importjava.util.Scanner;publicclassTest{publicstaticvoidmain(String[]args){Scannerinput=newScanner(S
inth=5;//行数intx=65;//开始字符for(inti=1;i
#include "stdio.h"int isPrime(int n){ int i; &nb
packagelogicjava;importjava.util.Scanner;publicclassNumberJudge{publicstaticvoidmain(String[]args){
publicclassTest{publicstaticvoidmain(String[]args){for(inti=1;i
for(inti=10;i再问:if里面应该有三个公式吧再答:呵呵,那不是挪上面去了吗,相当于是for(inti=(2*5);i