运行下列语句后,输出的结果是( )。 Option Base 1 Dim a i=1 a=Array(1,-2,9,0,-1,9) Do k=a(i) For m=10 To k Srep -2 n=k+m Next m Print n+m i=i+1 Loop While Abs(m+n)<>27A.3 27-8B.3-8 27C.-8 27 3D.-8 3 27
运行下列语句后,输出的结果是( )。 Option Base 1 Dim a i=1 a=Array(1,-2,9,0,-1,9) Do k=a(i) For m=10 To k Srep -2 n=k+m Next m Print n+m i=i+1 Loop While Abs(m+n)<>27
A.3 27-8
B.3-8 27
C.-8 27 3
D.-8 3 27
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(20)运行下列语句后,输出的结果是 Option Base 1 Dim a i=1 A=Array(1,-2,9,0,-1,9) Do K=a(i) For m=10 To k Step -2 Next m Print n+m i=i+1 Loop While Abs(m+n)27A.3 27 -8 B.3 -8 27 C.-8 27 3 D.-8 3 27
以下程序运行后的输出结果是【】。includemain(){int k=1,s=0; do{ if((k%2)!=0)continue; 以下程序运行后的输出结果是【 】。include<stdio.h>main(){ int k=1,s=0;do{if((k%2)!=0) continue;s+=k; k++;}while(k>10);printf("s+%d\n",s);}
运行下列语句后,输出的结果是( )。Option Base 1Dim ai=1a=Array(1,-2,9,0,-1,9)Dok=a(i)For m=10 To k Step-2n=k+mNext mPrint n+mi=i+1Loop While Abs(m+n)<>27A.3 27-8B.3-8 27C.-8 27 3D.-8 3 27
下列程序的输出结果是【 】。includeiostreamusing namespace std;class Base{public:int m,n;Base(int i,int j):m(i),n(j){}};class Derived:public Base{public:int m,k,;Derived(int i,int j):Base(i,j),m(i+1),k(j+1){}};int main(){Derived d(1,5);coutd.md.kd.n;return 0;}
运行下列语句后,输出的结果是( )。 Option Base 1 Dim a i=1 a=Array(l, -2, 9, 0, -1, 9) Do k=a(i) For m = 10 To k Step -2 n=k+m Next m Print n+m i=i+1 Loop While Abs(m+n) <> 27A.3 27-8B.3-8 27C.-8 27 3D.-8 3 27
运行下述语句后,输出的结果是( )。 Option Base 1 Dim a i=1 a = Array(1,-2,9,0,-1,9) Do k = a(i) For m = 10 To k Step -2 n=k+m Next m Print n + m i=i+1 Loop While Abs(m + n)<>27A.3 27-8B.3-8 27C.-8 27 3D.-8 3 27
阅读下列FORTRAN程序:DIMENSION M(6)READ(*,*)MDO 10 J=l,6 DO 10 K=J,6 IF(M(K)LTM(J))THEN N=M(K)M(K)=M(J)M(J)=N END IF 10 CONTINUEWRITE(*,100)(M(I),I=1,6)100 FORMAT(2X,614)END键盘输入10,7,9,2,1,3;程序运行后的输出结果是:A. 1 2 3 7 9 10B. 10 9 7 3 2 1C. 7 9 2 1 3 10D. 3 1 2 9 7 10
阅读下列FORTRAN 程序: DIMENSION M(6) READ(*,*)M DO 10 J=1,6 DO 10 K=J,6 IF(M(K).LT.M(J))THEN N=M(K) M(K)=M(J) M(J)=N END IF10 CONTINUE WRITE(*,100)(M(I),I=1,6) 100 FORMAT(2X,614) END键盘输入10,7,9,2,1,3;程序运行后的输出结果是:(A)1 2 3 7 9 10 (B)10 9 7 3 2 1(C)7 9 2 1 3 10 (D)3 1 2 9 7 10
阅读FORTRAN 程序 DIMENSION M(4,3) DATE M/-10,12,24,11,20,-15,61,78,93,30,44,-45/ N(M(1,1) DO 10I=1,4 DO 10J=1,3 IF (M(I,J).LT.N) THEN N=M(I,J) K1=I K2=J ENDIF10 CONTINUE WRITE(*,’(2x,314)’) N,K1,K2 END程序运行后的输出结果是:(A)93,3,1 (B)-10,1,1(C)-45,4,3 (D)78,3,2