At first I felt very ________ and angry about losing my job.A resentfulB cheerfulC distrustfulD stressful

At first I felt very ________ and angry about losing my job.

A resentful

B cheerful

C distrustful

D stressful


相关考题:

Using "I" or "My' instead of "most people" or "our group" ______ message credibility.A decreasesB increasesC has no effect onD distortsE A and B

i’m angry ______________ her for missing our appointment. A. ofB. overC. withD. about

I, my, will, true, come, hope, dream__________________________________________________________________________.

阅读下列程序说明和C代码,将应填入(n)处的字句写在对应栏内。【说明】设某城市有n个车站,并有m条公交线路连接这些车站,设这些公交车都是单向的,这n个车站被顺序编号为0至n-1。输入该城市的公交线路数、车站个数,以及各公交线路上的各站编号,求得从站0出发乘公交车至站n-1的最少换车次数。程序利用输入信息构建一张有向图G(用邻接矩阵g表示),有向图的顶点是车站,若有某条公交线路经i站能到达j站,就在顶点i到顶点j之间设置一条权为1的有向边<i,j>。如是这样,从站点x至站点y的最少上车次数便对应图G中从点x至点y的最短路径长度。而程序要求的换车次数就是上车次数减1。【函数5-9】include <stdio.h>define M 20define N 50int a[N+1]; /*用于存放一条线路上的各站编号*/iht g[N][N]; /*存储对应的邻接矩阵*/int dist[N]; /*存储站0到各站的最短路径*/int m,n;void buildG(){int i,j,k,sc,dd;printf ("输入公交线路数,公交站数\n");scanf("%d%d", m, n);for(i=0; i<n; i++) /*邻接矩阵清0*/for(j = 0; j < n; j++)g[i][j] = 0;for(i=0; i<m; i++){printf("沿第%d条公交车线路前进方向的各站编号(O<=编号<=%d,-1结束):\n",i+1, n-1);sc=0;/* 当前线路站计数器 */while(1){scanf("%d",dd);if(dd==-1)break;if(dd>=0 dd<n) (1);}a[sc]=-1;for(k=1;a[k]>=0; k++) /* 处理第i+1条公交线路 */for(j=0; j<k; j++)g(2)=1;}}int minLen(){int j, k;for(j=0;j<n;j++)dist[j]=g[0][j];dist[0]=1;do{for(k=-1,j=0;j<n;j++) /* 找下一个最少上车次数的站*/if(dist[j]>0(k==-1 || dist[j]<dist[k]))k=j;if (k<0 || k==n-1) break;dist[k]=-dist[k]; /* 设置k站已求得上车次数的标记 */for(j=1;j<n;j++) /* 调整经过k站能到达的其余各站的上车次数 */if ((3) (dist[j]==0 || -dist[k]+1<dist[j]))dist[j]=(4);}while(1);j=dist[n-1];return (5);}void main(){int t;buildG();if((t=minLen()<0)printf("无解!\n");else pdnff("从0号站到%d站需换车%d次\n”,n-1,t);}

The doctor ______my forehead and said, "Your forehead ______hot."A. felt, feelsB. felt, was feltC. feels, feltD. feels, is felt

执行下列程序,显示的结果是______。first="china"second=""a=LEN(first)i=aDO WHILE i>=1second=second+SUBSTR(first,i,1)i=i-1ENDDO?second

阅读下列C程序和程序说明,将应填入(n)处的字句写在对应栏内。【说明】设某城市有n个车站,并有m条公交线路连接这些车站,设这些公交车都是单向的,这n个车站被顺序编号为0至n-1。本程序,输入该城市的公交线路数、车站个数,以及各公交线路上的各站编号,求得从站0出发乘公交车至站n-1的最少换车次数。程序利用输入信息构建一张有向图G(用邻接矩阵g表示),有向图的顶点是车站,若有某条公交线路经i站到达j站,就在顶点i到顶点j之间设置一条权为1的有向边<i,j>。如果这样,从站点x至站点y的最少上车次数便对应图G中从点x到点y的最短路径长度。而程序要求的换车次数就是上车次数减1。include <stdio.h>define M 20define N 50int a[N+1]; /*用于存放一条线路上的各站编号*/int g[N][N]; /*严存储对应的邻接矩阵*/int dist[N]; /*严存储站0到各站的最短路径*/int m, n;void buildG(){ int i, j, k, sc, ddprintf(“输入公交线路数,公交站数\n”);scanf("%d%d",m,&n);for (i=0;i<n;i++) /*邻接矩阵清0*/for(j=0;j<n;j++)g[i][j]=0;for(i=0;i<m;i++){ printf("沿第%d条公交线路的各站编号(0<=编号<=%d,-1结束):\n)",i+1,n-1);sc=0; /* 当前线路站计数器*/while(1){ scanf("%d",dd);if(dd=-1)break;if(dd>=0 dd<n) (1);}a[sc]=-1;for(k=1;a[k]>=0;k++) /*处理第i+1条公交线路*/for(j=0;j<k;j++)g (2)=1;}}int minLen(){ int j,k;for(j=0;j<n;j++)dist[j]=g[0][j];dist[0]=1;do{for(k=-1,j=0;j<n;j++) /*找下一个最少上车次数的站*/if(dist[j]>0 (k==-1||dist[j]<dist[k]))k=j;if(k<0||k==n-1)break;dist[k]=-dist[k]; /*设置k站已求得上车次数的标记*/for (j=1;j<n;j++) /*调整经过k站能到达的其余各站的上车次数*/if((3) (dist[j]=0||-dist[k]+1<dist[j]))dist[j]=(4);}while(1);j=dist[n-1];return (5);}void main(){ int t;buildG();if((t=minLen())<0)printf("无解!\n");elseprintf(“从0号站到%d站需换车%d次\n”,n-1,t);}

4. Lucy was very sorry __________ being late ,but what the teacher said made her better.A.for ,feelB.to ,to feelC.about ,feeling 'D.at ,felt

She is an eternal optimist in any case.A:happy B:cheerfulC:everlasting D:aimless

下列哪个URI写法符合RESTful 设计规范?A.http://api.example.restapi.org/blogs/mark-masse/entries/this_is_my_first_postB.http://api.example.restapi.org/blogs/mark-masse/entries/this_is_my_first_post/C.http://api.example.restapi.org/blogs/mark-masse/entries/this-is-my-first-postD.http://api.example.restapi.org/blogs/mark-masse/entries/this-is-my-first-post/