I felt so bad all day yesterday that I decided this morning I couldn’t face ________ day like that.A. other B. another C. the other D. others
I felt so bad all day yesterday that I decided this morning I couldn’t face ________ day like that.
A. other B. another C. the other D. others
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I'd better be off now.- ____________________________ A.You must be tired.B.Couldn't you stay a little longer?C.I'm sorry to have taken up too much time.D.Go slowly.
I_______ have watched that movie —it’ll give me horrible dreams.A. shouldn’tB. needn’tC. couldn’tD. mustn’t
下面程序的输出结果为【】。 include main() { char a[]="morning",t; int i,j=0; for( 下面程序的输出结果为【 】。include<iostream.h>main(){char a[]="morning",t;int i,j=0;for(i=1;i<7;i++)if(a[j]<a[i])j=i;t=a[j];a[j]=a[7];a[7]=a[j];cout<<a;}
下面程序的运行结果是includemain(){char a[]="morning",t; int i,j=0; for(i=1;i 下面程序的运行结果是 #include<stdio.h> main() { char a[]="morning",t; int i,j=0; for(i=1;i<7;i++) if(a[j]<a[i])j=i; t=a[j]; a[j]=a[7]; a[7]=a[j]; puts[a];}A.mrgninrB.moC.moringD.morning
按行优先顺序存储下三角矩阵的非零元素,则计算非零元素aij(1≤j≤i≤n)的地址的公式为( )。 A.LOC(aij)=LOC(a11)+i×(i+1)/2+j B.LOC(aij)=LOC(all)+i×(i+1)/2+(j-1) C.LOC(aij)=LOC(all)+i×(i-1)/2+(j+1) D.LOC(aij)=LOC(all)+i×(i-1)/2+(j-1)
按行优先顺序存储下三角矩阵的非零元素,则计算非零元素a/subij1≤j≤i≤n)的地址的公式为A.LOC(aij)=LOC(all)+i×(i+1)/2+jB.LOC(aij)=LOC(all)+i×(i+1)/2+(j-1)C.LOC(aij)=LOC(all)+i×(i-1)/2+jD.LOC(aij)=LOC(all)+i×(i-1)/2+(j-1)
下面vb6.0中tagname,name,value有什么区别呀? webbrowser1.document.all(i).tagnamewebbrowser1.document.all(i).namewebbrowser1.document.all(i).value