可以将文章内容翻译成中文,广告屏蔽插件可能会导致该功能失效(如失效,请关闭广告屏蔽插件后再试):
问题:
I've created a question about this a few days. My solution is something in the lines of what was suggested in the accepted answer. However, a friend of mine came up with the following solution:
Please note that the code has been updated a few times (check the edit revisions) to reflect the suggestions in the answers below. If you intend to give a new answer, please do so with this new code in mind and not the old one which had lots of problems.
#include <stdio.h>
#include <stdlib.h>
#include <fcntl.h>
#include <unistd.h>
int main(int argc, char *argv[]){
int fd[2], i, aux, std0, std1;
do {
std0 = dup(0); // backup stdin
std1 = dup(1); // backup stdout
// let's pretend I'm reading commands here in a shell prompt
READ_COMMAND_FROM_PROMPT();
for(i=1; i<argc; i++) {
// do we have a previous command?
if(i > 1) {
dup2(aux, 0);
close(aux);
}
// do we have a next command?
if(i < argc-1) {
pipe(fd);
aux = fd[0];
dup2(fd[1], 1);
close(fd[1]);
}
// last command? restore stdout...
if(i == argc-1) {
dup2(std1, 1);
close(std1);
}
if(!fork()) {
// if not last command, close all pipe ends
// (the child doesn't use them)
if(i < argc-1) {
close(std0);
close(std1);
close(fd[0]);
}
execlp(argv[i], argv[i], NULL);
exit(0);
}
}
// restore stdin to be able to keep using the shell
dup2(std0, 0);
close(std0);
}
return 0;
}
This simulates a series of commands through pipes like in bash, for instance: cmd1 | cmd2 | ... | cmd_n. I say "simulate", because, as you can see, the commands are actually read from the arguments. Just to spare time coding a simple shell prompt...
Of course there are some issues to fix and to add like error handling but that's not the point here. I think I kinda get the code but it still makes me a lot of confusing how this whole thing works.
Am I missing something or this really works and it's a nice and clean solution to solve the problem? If not, can anyone point me the crucial problems this code has?
回答1:
Looks reasonable, though it really needs to fix leaking std
and aux
to the children and after the loop, and the parent's original stdin
is lost forever.
This would probably be better with color...
./a.out foo bar baz <stdin >stdout
std = dup(stdout) || |+==========================std
|| || ||
pipe(fd) || || pipe1[0] -- pipe0[1] ||
|| || || || ||
aux = fd[0] || || aux || ||
|| XX || || ||
|| /-------++----------+| ||
dup2(fd[1], 1) || // || || ||
|| || || || ||
close(fd[1]) || || || XX ||
|| || || ||
fork+exec(foo) || || || ||
XX || || ||
/-----++-------+| ||
dup2(aux, 0) // || || ||
|| || || ||
close(aux) || || XX ||
|| || ||
pipe(fd) || || pipe2[0] -- pipe2[1] ||
|| || || || ||
aux = fd[0] || || aux || ||
|| XX || || ||
|| /-------++----------+| ||
dup2(fd[1], 1) || // || || ||
|| || || || ||
close(fd[1]) || || || XX ||
|| || || ||
fork+exec(bar) || || || ||
XX || || ||
/-----++-------+| ||
dup2(aux, 0) // || || ||
|| || || ||
close(aux) || || XX ||
|| || ||
pipe(fd) || || pipe3[0] -- pipe3[1] ||
|| || || || ||
aux = fd[0] || || aux || ||
|| XX || || ||
|| /-------++----------+| ||
dup2(fd[1], 1) || // || || ||
|| || || || ||
close(fd[1]) || || || XX ||
|| XX || ||
|| /-------++-----------------+|
dup2(std, 1) || // || ||
|| || || ||
fork+exec(baz) || || || ||
foo
gets stdin=stdin
, stdout=pipe1[1]
bar
gets stdin=pipe1[0]
, stdout=pipe2[1]
baz
gets stdin=pipe2[0]
, stdout=stdout
My suggestion is different in that it avoids mangling the parent's stdin
and stdout
, only manipulating them within the child, and never leaks any FDs. It's a bit harder to diagram, though.
for cmd in cmds
if there is a next cmd
pipe(new_fds)
fork
if child
if there is a previous cmd
dup2(old_fds[0], 0)
close(old_fds[0])
close(old_fds[1])
if there is a next cmd
close(new_fds[0])
dup2(new_fds[1], 1)
close(new_fds[1])
exec cmd || die
else
if there is a previous cmd
close(old_fds[0])
close(old_fds[1])
if there is a next cmd
old_fds = new_fds
parent
cmds = [foo, bar, baz]
fds = {0: stdin, 1: stdout}
cmd = cmds[0] {
there is a next cmd {
pipe(new_fds)
new_fds = {3, 4}
fds = {0: stdin, 1: stdout, 3: pipe1[0], 4: pipe1[1]}
}
fork => child
there is a next cmd {
close(new_fds[0])
fds = {0: stdin, 1: stdout, 4: pipe1[1]}
dup2(new_fds[1], 1)
fds = {0: stdin, 1: pipe1[1], 4: pipe1[1]}
close(new_fds[1])
fds = {0: stdin, 1: pipe1[1]}
}
exec(cmd)
there is a next cmd {
old_fds = new_fds
old_fds = {3, 4}
}
}
cmd = cmds[1] {
there is a next cmd {
pipe(new_fds)
new_fds = {5, 6}
fds = {0: stdin, 1: stdout, 3: pipe1[0], 4: pipe1[1],
5: pipe2[0], 6: pipe2[1]}
}
fork => child
there is a previous cmd {
dup2(old_fds[0], 0)
fds = {0: pipe1[0], 1: stdout,
3: pipe1[0], 4: pipe1[1],
5: pipe2[0], 6: pipe2[1]}
close(old_fds[0])
fds = {0: pipe1[0], 1: stdout,
4: pipe1[1],
5: pipe2[0] 6: pipe2[1]}
close(old_fds[1])
fds = {0: pipe1[0], 1: stdout,
5: pipe2[0], 6: pipe2[1]}
}
there is a next cmd {
close(new_fds[0])
fds = {0: pipe1[0], 1: stdout, 6: pipe2[1]}
dup2(new_fds[1], 1)
fds = {0: pipe1[0], 1: pipe2[1], 6: pipe2[1]}
close(new_fds[1])
fds = {0: pipe1[0], 1: pipe1[1]}
}
exec(cmd)
there is a previous cmd {
close(old_fds[0])
fds = {0: stdin, 1: stdout, 4: pipe1[1],
5: pipe2[0], 6: pipe2[1]}
close(old_fds[1])
fds = {0: stdin, 1: stdout, 5: pipe2[0], 6: pipe2[1]}
}
there is a next cmd {
old_fds = new_fds
old_fds = {3, 4}
}
}
cmd = cmds[2] {
fork => child
there is a previous cmd {
dup2(old_fds[0], 0)
fds = {0: pipe2[0], 1: stdout,
5: pipe2[0], 6: pipe2[1]}
close(old_fds[0])
fds = {0: pipe2[0], 1: stdout,
6: pipe2[1]}
close(old_fds[1])
fds = {0: pipe2[0], 1: stdout}
}
exec(cmd)
there is a previous cmd {
close(old_fds[0])
fds = {0: stdin, 1: stdout, 6: pipe2[1]}
close(old_fds[1])
fds = {0: stdin, 1: stdout}
}
}
Edit
Your updated code does fix the previous FD leaks… but adds one: you're now leaking std0
to the children. As Jon says, this is probably not dangerous to most programs... but you still should write a better behaved shell than this.
Even if it's temporary, I would strongly recommend against mangling your own shell's standard in/out/err (0/1/2), only doing so within the child right before exec. Why? Suppose you add some printf
debugging in the middle, or you need to bail out due to an error condition. You'll be in trouble if you don't clean up your messed-up standard file descriptors first. Please, for the sake of having things operate as expected even in unexpected scenarios, don't muck with them until you need to.
Edit
As I mentioned in other comments, splitting it up into smaller parts makes it much easier to understand. This small helper should be easily understandable and bug-free:
/* cmd, argv: passed to exec
* fd_in, fd_out: when not -1, replaces stdin and stdout
* return: pid of fork+exec child
*/
int fork_and_exec_with_fds(char *cmd, char **argv, int fd_in, int fd_out) {
pid_t child = fork();
if (fork)
return child;
if (fd_in != -1 && fd_in != 0) {
dup2(fd_in, 0);
close(fd_in);
}
if (fd_out != -1 && fd_in != 1) {
dup2(fd_out, 1);
close(fd_out);
}
execvp(cmd, argv);
exit(-1);
}
As should this:
void run_pipeline(int num, char *cmds[], char **argvs[], int pids[]) {
/* initially, don't change stdin */
int fd_in = -1, fd_out;
int i;
for (i = 0; i < num; i++) {
int fd_pipe[2];
/* if there is a next command, set up a pipe for stdout */
if (i + 1 < num) {
pipe(fd_pipe);
fd_out = fd_pipe[1];
}
/* otherwise, don't change stdout */
else
fd_out = -1;
/* run child with given stdin/stdout */
pids[i] = fork_and_exec_with_fds(cmds[i], argvs[i], fd_in, fd_out);
/* nobody else needs to use these fds anymore
* safe because close(-1) does nothing */
close(fd_in);
close(fd_out);
/* set up stdin for next command */
fd_in = fd_pipe[0];
}
}
You can see Bash's execute_cmd.c#execute_disk_command
being called from execute_cmd.c#execute_pipeline
, xsh's process.c#process_run
being called from jobs.c#job_run
, and even every single one of BusyBox's various small and minimal shells splits them up.
回答2:
The key problem is that you create a bunch of pipes and don't make sure that all the ends are closed properly. If you create a pipe, you get two file descriptors; if you fork, then you have four file descriptors. If you dup()
or dup2()
one end of the pipe to a standard descriptor, you need to close both ends of the pipe - at least one of the closes must be after the dup() or dup2() operation.
Consider the file descriptors available to the first command (assuming there are at least two - something that should be handled in general (no pipe()
or I/O redirection needed with just one command), but I recognize that the error handling is eliminated to keep the code suitable for SO):
std=dup(1); // Likely: std = 3
pipe(fd); // Likely: fd[0] = 4, fd[1] = 5
aux = fd[0];
dup2(fd[1], 1);
close(fd[1]); // Closes 5
if (fork() == 0) {
// Need to close: fd[0] aka aux = 4
// Need to close: std = 3
close(fd[0]);
close(std);
execlp(argv[i], argv[i], NULL);
exit(1);
}
Note that because fd[0]
is not closed in the child, the child will never get EOF on its standard input; this is usually problematic. The non-closure of std
is less critical.
Revisiting amended code (as of 2009-06-03T20:52-07:00)...
Assume that process starts with file descriptors 0, 1, 2 (standard input, output, error) open only. Also assume we have exactly 3 commands to process. As before, this code writes out the loop with annotations.
std0 = dup(0); // backup stdin - 3
std1 = dup(1); // backup stdout - 4
// Iteration 1 (i == 1)
// We have another command
pipe(fd); // fd[0] = 5; fd[1] = 6
aux = fd[0]; // aux = 5
dup2(fd[1], 1);
close(fd[1]); // 6 closed
// Not last command
if (fork() == 0) {
// Not last command
close(std1); // 4 closed
close(fd[0]); // 5 closed
// Minor problemette: 3 still open
execlp(argv[i], argv[i], NULL);
}
// Parent has open 3, 4, 5 - no problem
// Iteration 2 (i == 2)
// There was a previous command
dup2(aux, 0); // stdin now on read end of pipe
close(aux); // 5 closed
// We have another command
pipe(fd); // fd[0] = 5; fd[1] = 6
aux = fd[0];
dup2(fd[1], 1);
close(fd[1]); // 6 closed
// Not last command
if (fork() == 0) {
// Not last command
close(std1); // 4 closed
close(fd[0]); // 5 closed
// As before, 3 is still open - not a major problem
execlp(argv[i], argv[i], NULL);
}
// Parent has open 3, 4, 5 - no problem
// Iteration 3 (i == 3)
// We have a previous command
dup2(aux, 0); // stdin is now read end of pipe
close(aux); // 5 closed
// No more commands
// Last command - restore stdout...
dup2(std1, 1); // stdin is back where it started
close(std1); // 4 closed
if (fork() == 0) {
// Last command
// 3 still open
execlp(argv[i], argv[i], NULL);
}
// Parent has closed 4 when it should not have done so!!!
// End of loop
// restore stdin to be able to keep using the shell
dup2(std0, 0);
// 3 still open - as desired
So, all the children have the original standard input connected as file descriptor 3. This is not ideal, though it is not dreadfully traumatic; I'm hard pressed to find a circumstance where this would matter.
Closing file descriptor 4 in the parent is a mistake - the next iteration of 'read a command and process it won't work because std1
is not initialized inside the loop.
Generally, this is close to correct - but not quite correct.
回答3:
It will give results, some that are not expected. It is far from a nice solution: It messes with the parent process' standard descriptors, does not recover the standard input, descriptors leak to children, etc.
If you think recursively, it may be easier to understand. Below is a correct solution, without error checking. Consider a linked-list type command
, with it's next
pointer and a argv
array.
void run_pipeline(command *cmd, int input) {
int pfds[2] = { -1, -1 };
if (cmd->next != NULL) {
pipe(pfds);
}
if (fork() == 0) { /* child */
if (input != -1) {
dup2(input, STDIN_FILENO);
close(input);
}
if (pfds[1] != -1) {
dup2(pfds[1], STDOUT_FILENO);
close(pfds[1]);
}
if (pfds[0] != -1) {
close(pfds[0]);
}
execvp(cmd->argv[0], cmd->argv);
exit(1);
}
else { /* parent */
if (input != -1) {
close(input);
}
if (pfds[1] != -1) {
close(pfds[1]);
}
if (cmd->next != NULL) {
run_pipeline(cmd->next, pfds[0]);
}
}
}
Call it with the first command in the linked-list, and input
= -1. It does the rest.
回答4:
Both in this question and in another (as linked in the first post), ephemient suggested me a solution to the problem without messing with the parents file descriptors as demonstrated by a possible solution in this question.
I didn't get his solution, I tried and tried to understand but I can't seem to get it. I also tried to code it without understanding but it didn't work. Probably because I've failed to understand it correctly and wasn't able to code it the it should have been coded.
Anyway, I tried to come up with my own solution using some of the things I understood from the pseudo code and came up with this:
#include <stdio.h>
#include <stdlib.h>
#include <unistd.h>
#include <wait.h>
#include <string.h>
#include <readline/readline.h>
#include <readline/history.h>
#define NUMPIPES 5
#define NUMARGS 10
int main(int argc, char *argv[]) {
char *bBuffer, *sPtr, *aPtr = NULL, *pipeComms[NUMPIPES], *cmdArgs[NUMARGS];
int aPipe[2], bPipe[2], pCount, aCount, i, status;
pid_t pid;
using_history();
while(1) {
bBuffer = readline("\e[1;31mShell \e[1;32m# \e[0m");
if(!strcasecmp(bBuffer, "exit")) {
return 0;
}
if(strlen(bBuffer) > 0) {
add_history(bBuffer);
}
sPtr = bBuffer;
pCount =0;
do {
aPtr = strsep(&sPtr, "|");
if(aPtr != NULL) {
if(strlen(aPtr) > 0) {
pipeComms[pCount++] = aPtr;
}
}
} while(aPtr);
cmdArgs[pCount] = NULL;
for(i = 0; i < pCount; i++) {
aCount = 0;
do {
aPtr = strsep(&pipeComms[i], " ");
if(aPtr != NULL) {
if(strlen(aPtr) > 0) {
cmdArgs[aCount++] = aPtr;
}
}
} while(aPtr);
cmdArgs[aCount] = NULL;
// Do we have a next command?
if(i < pCount-1) {
// Is this the first, third, fifth, etc... command?
if(i%2 == 0) {
pipe(aPipe);
}
// Is this the second, fourth, sixth, etc... command?
if(i%2 == 1) {
pipe(bPipe);
}
}
pid = fork();
if(pid == 0) {
// Is this the first, third, fifth, etc... command?
if(i%2 == 0) {
// Do we have a previous command?
if(i > 0) {
close(bPipe[1]);
dup2(bPipe[0], STDIN_FILENO);
close(bPipe[0]);
}
// Do we have a next command?
if(i < pCount-1) {
close(aPipe[0]);
dup2(aPipe[1], STDOUT_FILENO);
close(aPipe[1]);
}
}
// Is this the second, fourth, sixth, etc... command?
if(i%2 == 1) {
// Do we have a previous command?
if(i > 0) {
close(aPipe[1]);
dup2(aPipe[0], STDIN_FILENO);
close(aPipe[0]);
}
// Do we have a next command?
if(i < pCount-1) {
close(bPipe[0]);
dup2(bPipe[1], STDOUT_FILENO);
close(bPipe[1]);
}
}
execvp(cmdArgs[0], cmdArgs);
exit(1);
} else {
// Do we have a previous command?
if(i > 0) {
// Is this the first, third, fifth, etc... command?
if(i%2 == 0) {
close(bPipe[0]);
close(bPipe[1]);
}
// Is this the second, fourth, sixth, etc... command?
if(i%2 == 1) {
close(aPipe[0]);
close(aPipe[1]);
}
}
// wait for the last command? all others will run in the background
if(i == pCount-1) {
waitpid(pid, &status, 0);
}
// I know they will be left as zombies in the table
// Not relevant for this...
}
}
}
return 0;
}
This may not be the best and cleanest solution but it was something I could come up with and, most importantly, something I can understand. What good is to have something working that I don't understand and then I'm evaluated by my teacher and I can't explain to him what the code is doing?
Anyway, what do you think about this one?
回答5:
This is my "final" code with ephemient suggestions:
#include <stdio.h>
#include <stdlib.h>
#include <unistd.h>
#include <wait.h>
#include <string.h>
#include <readline/readline.h>
#include <readline/history.h>
#define NUMPIPES 5
#define NUMARGS 10
int main(int argc, char *argv[]) {
char *bBuffer, *sPtr, *aPtr = NULL, *pipeComms[NUMPIPES], *cmdArgs[NUMARGS];
int newPipe[2], oldPipe[2], pCount, aCount, i, status;
pid_t pid;
using_history();
while(1) {
bBuffer = readline("\e[1;31mShell \e[1;32m# \e[0m");
if(!strcasecmp(bBuffer, "exit")) {
return 0;
}
if(strlen(bBuffer) > 0) {
add_history(bBuffer);
}
sPtr = bBuffer;
pCount = -1;
do {
aPtr = strsep(&sPtr, "|");
if(aPtr != NULL) {
if(strlen(aPtr) > 0) {
pipeComms[++pCount] = aPtr;
}
}
} while(aPtr);
cmdArgs[++pCount] = NULL;
for(i = 0; i < pCount; i++) {
aCount = -1;
do {
aPtr = strsep(&pipeComms[i], " ");
if(aPtr != NULL) {
if(strlen(aPtr) > 0) {
cmdArgs[++aCount] = aPtr;
}
}
} while(aPtr);
cmdArgs[++aCount] = NULL;
// do we have a next command?
if(i < pCount-1) {
pipe(newPipe);
}
pid = fork();
if(pid == 0) {
// do we have a previous command?
if(i > 0) {
close(oldPipe[1]);
dup2(oldPipe[0], 0);
close(oldPipe[0]);
}
// do we have a next command?
if(i < pCount-1) {
close(newPipe[0]);
dup2(newPipe[1], 1);
close(newPipe[1]);
}
// execute command...
execvp(cmdArgs[0], cmdArgs);
exit(1);
} else {
// do we have a previous command?
if(i > 0) {
close(oldPipe[0]);
close(oldPipe[1]);
}
// do we have a next command?
if(i < pCount-1) {
oldPipe[0] = newPipe[0];
oldPipe[1] = newPipe[1];
}
// wait for last command process?
if(i == pCount-1) {
waitpid(pid, &status, 0);
}
}
}
}
return 0;
}
Is it ok now?