The book was()interestingthat I read it in two hours. A.veryB.soC.suchD.quite
The book was()interestingthat I read it in two hours.
A.very
B.so
C.such
D.quite
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程序 include void main() { char str[][10]={ ”ok!”,“pen”,”book”,”desk”}; int i; for(i=1;i A.ok! penB.pen bookC.ok! pen bookD.ok! pen book desk
( 10 )执行下列程序,显示的结果是 【 10 】 。one= "WORK"two = ""a = LEN ( one )i = aDO WHILE i=1two = two + SUBSTR ( one ,i , 1 )i=i - 1ENDDO? two
下面程序的功能是:对字符串从小到大进行排序并输出,请填空。#include "string.h"#include "stdio.h"sort(char *a[],int n){ int i,j;char *p;for(j=1;j=n-1;j++)for(i=0; 【15】 ;i++)if( 【16】 0){ p=a[i];a[i]=a[i+1];a[i+1]=p;}}main(){ int i;char *book[]={"itisme","itisyou","howareyou","fine","goodnight","goodbye"};sort( 【17】 );for(i=0;i6;i++)printf("%s\n",book[i]);}
现有:1.classBook{2.book);}3.}4.classPageextendsBook{5.publicstaticvoidmain(String[]args){6.//insertcodehere7.}8.privatefinalvoidread(){System.out.print(page);}9.}和如下三个代码片段(x,y,z):x.//justacommenty.newPage().read();z.newBook().read();分别插入到第6行,有几个允许代码通过编译并可以运行且无异常?()
执行下列程序,显示的结果是【 】。ne="WORK"two=""a=LEN(one)i=aDO WHILE i>=ltwo=two+SUBSTR(one,i, 1)i=i-1ENDDO?two
编译和执行以下代码,输出结果是( )。 int i=1; switch (i) { case 0: System.out.print("zero,"); break; case 1: System.out.print("one,"); case 2: System.out.print("two,"); default: System.out.println("default"); }A.one,B.one,two,C.one,two,defaultD.default
阅读以下说明及C++程序代码,将应填入(n)处的语句写在对应栏内。【说明】本程序的功能是实现任意两个大整数的乘法运算,例如:输入整数1:8934793850094505800243958034985058输入整数2:234584950989689084095803583095820923二者之积:209596817742739508050978890737675662366433464256830959194834854876 8534【C++代码】include<iostream.h>const int MAXINPUTBIT=100;const int MAXRESULTBIT=500;class LargeNumber{int i,j;int temp;int one[MAXINPUTBIT+1];int onebit; //one的位数int two[MAXINPUTBIT+1];int twobit; //two的位数int result[MAXRESULTBIT+1];public:LargeNumber();~LargeNumber();int inputone(); //出错返叫0,否则返回1int inputtwo(); //同上void multiplication(); //乘void clearresult(); //清零void showresult(); //显示};LargeNumber∷LargeNumber(){for(i=0;i<=MAXINPUTBIT;i++){one[i]=0;two[i]=0;}nebit=0;twobit=0;inputone();inputtwo();}LargeNumber∷~LargeNumber(){}int LargeNumber∷inputone(){char Number[MAXINPUTBIT+1];cout<<"Please enter one:";cin>>Number;i=0;j=MAXINPUTBIT;while(Number[i]!='\0')i++;nebit=i;for(i--;i>=0;i--,j--){if(int(Number[i])>=48int(Number[i])<=57)(1); //由字符转换为数字elsereturn 0;}return 1;}int LargeNumber∷inputtwo(){char Number[MAXINPUTBIT+1];cout<<"Please enter two:";cin>>Number;i=0;j=MAXINPUTBIT;while(Number[i]!='\0')i++;twobit=i;for(i--;i>=0;i--,j--){if(int(Number[i])>=48int(Number[i])<=57)two[j]=int(Number[i]-48); //由字符转换为数字elsereturn 0;}return 1;}void LargeNumber∷multiplication() //乘法{clearresult();int m;for(i=MAXINPUTBIT;i>=0;i--){temp=two[i];for(j=(2),m=MAXINPUTBIT;m>=0;m--,j--){result[j]+=temp*one[m];if(result[j]>9){result[j-1]+=result[j]/10;(3);}}&n
下列程序使用系统标准输入System.in从键盘获得输入字符串,请选择正确的一项填入下列程序的横线处。 import java.io.*; public class ex26 { public static void main(String args[]) { byte buffer[] = new byte[128]; int n; try { n = for(int i = 0; i < n; i++) System.out .print ( (char)buffer [i] ); catch (IOException e) { System.out.print (e); } } }A.System.in.read(buffer)B.system.in.read(buffer)C.System.in.read0D.System.in(buffer)
29、如下程序的输出结果是 int main() { char books[][20]={"English","Math","Physical"}; int i,j; for(i=0;i<3;i++) { strcat(books[i],"book"); } printf("%s",books[i-1][3]); return 0; }A.PhysicalbookB.sicalC.PhysicalD.sicalbook