我有一份大学作业。我的作业是使用 fork 制作项目,并使用流水线方法通过子进程和父进程传递数据。那么我们需要创建两个管道。第一个管道发送一个 txt 文件,您将在其中写入“Ps -A”的结果,第二个管道将返回 pids 及其优先级。教授说我们应该使用动态数组,并且我们应该通过一个结构将 pid 数组和 ppids 数组传回给 child。Child 在屏幕上打印这两个数组。我遇到的问题是 child 在这里填满了数组,但是当我将它们发送给父亲时,父亲并没有简单地从结构中读取数组,也没有在屏幕上打印任何内容:(你能帮我解决这个问题吗?
struct dyna {
int *pids;
int *ppids;
};
int main(int argc, char *argv[]){
int child_id;
int pipe_pc[2],pipe_cp[2];
int result_pc,result_cp;
int lines1,i;
if (argc!=2)//elegxos gia to an ta arguments pou edwse o xristis einai arxeio1 arxeio2 {
fprintf(stderr,"Lathos arithmos orismaton.To swsto einai %s filename.txtn",argv[0]);
exit(1);
} else {
result_pc=pipe(pipe_pc);
if (result_pc==-1) exit(-1);
result_cp=pipe(pipe_cp);
if (result_cp==-1) exit(-1);
struct dyna dyn;
child_id=fork();
if (child_id==-1) exit(-1);
//child
if (child_id==0){
char child_read_msg[buff];
close(pipe_pc[1]);
memset(child_read_msg,0,buff);
read(pipe_pc[0],child_read_msg, buff);
printf("nchild process:child read from father: %sn",child_read_msg);
char child_write_msg[buff]="lol",lines[buff]="lines.txt",* pch,**grammes;
FILE *pFile1,*pFile2;
long lSize1,lSize2;
char *buffer1,*command,*buffer2;
size_t file1str,file2str;
command = (char*)malloc(strlen("wc -l >")+strlen(child_read_msg)+strlen(lines));
sprintf(command,"ps -A> %s",child_read_msg);
system(command);
//vazoume ta periexomena tou processes.txt se enan buffer
pFile1 = fopen ( child_read_msg, "rb" );
fseek (pFile1, 0 , SEEK_END);
lSize1 = ftell (pFile1);
rewind (pFile1);
buffer1 = (char*) malloc (sizeof(char)*lSize1);
if (buffer1 == NULL) {fputs ("Memory error",stderr); }
file1str = fread (buffer1,1,lSize1,pFile1);
if (file1str != lSize1) {fputs ("Reading error",stderr); }
fclose(pFile1);
//vriskoume ton arithmon grammon tou arxeiou
sprintf(command,"wc -l %s>%s",child_read_msg,lines);
system(command);
pFile2 = fopen ( lines, "rb" );
fseek (pFile2, 0 , SEEK_END);
lSize2 = ftell (pFile2);
rewind (pFile2);
buffer2 = (char*) malloc (sizeof(char)*lSize1);
if (buffer2 == NULL) {fputs ("Memory error",stderr); }
file2str = fread (buffer2,1,lSize2,pFile2);
if (file2str != lSize2) {fputs ("Reading error",stderr); }
fclose(pFile2);
sscanf(buffer2,"%d",&lines1); //lines1= arithmos grammon tou processes.txt
sprintf(command,"rm -r %s",lines);
system(command);
free(buffer2);
i=0;
dyn.pids=(int *)calloc(sizeof(int),lines1); //desmeuei mnimi dinamika gia ton proto pinaka tis struct pou periexei ta pid
pch = strtok (buffer1,"n");
while (pch != NULL){
sscanf(pch,"%d",&dyn.pids[i]);
pch = strtok (NULL, "n");
i++;
}
dyn.ppids=(int *)calloc(sizeof(int),lines1);
for (i=1;i<lines1;i++) /*Gemizei ton pinaka kai vazei tis proteraiotites tis kathe diergasias */ {
dyn.ppids[i]=getpriority(PRIO_PROCESS,dyn.pids[i]);
}
//for (i=1;i<lines1;i++){
//printf("%dn",dyn.ppids[i]);
//}
close(pipe_cp[0]);
write(pipe_cp[1], &dyn,sizeof(dyn));
}
//parent
else {
close(pipe_pc[0]);
write(pipe_pc[1], argv[1],strlen(argv[1]));
printf("nparent process: father wrote to child: %sn",argv[1]);
wait(NULL);
close(pipe_cp[1]);//kleinoume to write-end, o pateras mono diabazei apo to pipe_cp
read(pipe_cp[0],&dyn,sizeof(dyn));//parent diabazei ayto poy exei grapsei to paidi
//prints the array with the priorities of the processes
for (i=1;i<lines1;i++){
printf("%dn",dyn.ppids[i]);
}
}
return 0;
}
}
最佳答案
write(pipe_cp[1], &dyn,sizeof(dyn)) 只是传输结构中的两个指针,而不是它们引用的实际数据。这些指针持有的地址在父进程中是没有意义的,因为它有一个单独的地址空间。在那里取消引用它们会导致未定义的行为,很可能是段错误。
如果您希望您的代码以这种方式工作,您需要将结构的成员声明为固定大小的数组,而不是指针。通过这样做,结构本质上变成了一个容器,它本身包含两个数组。
关于c - 通过管道和 fork 传递具有 2 个动态数组的结构,我们在Stack Overflow上找到一个类似的问题: https://stackoverflow.com/questions/5663086/