This lab should be done with your lab partner.
First, both you and your partner should run update31 to grab some starting point code.
$ update31 $ cd cs31/labs/07 $ pwd /home/your_user_name/cs31/labs/07 $
Looking at the tsh.c (tiny shell) file, you will see that it
contains a functional skeleton of a simple Unix shell. To help you get
started, we have already implemented the less interesting functions.
Your assignment is to complete the remaining empty functions listed
below. As a sanity check for you, we've listed the approximate number
of lines of code for each of these functions in our reference solution
(which includes lots of comments).
$ ./tsh tsh> [type commands to your shell here]
A shell is an interactive command-line interpreter that runs programs on behalf of the user. A shell repeatedly prints a prompt, waits for a command line on stdin, and then carries out some action, as directed by the contents of the command line.
The command line is a sequence of ASCII text words delimited by whitespace. The first word in the command line is either the name of a built-in command or the pathname of an executable file. The remaining words are command-line arguments. If the first word is a built-in command, the shell immediately executes the command in the current process. Otherwise, the word is assumed to be the pathname of an executable program. In this case, the shell forks a child process, then loads and runs the program in the context of the child. The child processes created as a result of interpreting a single command line are known collectively as a job. In general, a job can consist of multiple child processes connected by Unix pipes.
If the command line ends with an ampersand &, then the job runs in the background, which means that the shell does not wait for the job to terminate before printing the prompt and awaiting the next command line. Otherwise, the job runs in the foreground, which means that the shell waits for the job to terminate before awaiting the next command line. Thus, at any point in time, at most one job can be running in the foreground. However, an arbitrary number of jobs can run in the background.
For example, typing the command line
tsh> jobscauses the shell to execute the built-in jobs command. Typing the command line
tsh> /bin/ls -l -druns the ls program in the foreground. By convention, the shell ensures that when the program begins executing its main routine
int main(int argc, char *argv[])the argc and argv arguments have the following values:
tsh> /bin/ls -l -d &runs the ls program in the background.
Unix shells support the notion of job control, which allows users to move jobs back and forth between background and foreground, and to change the process state (running, stopped, or terminated) of the processes in a job. Typing ctrl-c causes a SIGINT signal to be delivered to each process in the foreground job. The default action for SIGINT is to terminate the process. Similarly, typing ctrl-z causes a SIGTSTP signal to be delivered to each process in the foreground job. The default action for SIGTSTP is to place a process in the stopped state, where it remains until it is awakened by the receipt of a SIGCONT signal. Unix shells also provide various built-in commands that support job control. For example:
Reference solution. The Linux executable tshref is the reference solution for the shell. Run this program to resolve any questions you have about how your shell should behave. Your shell should emit output that is identical to the reference solution (except for PIDs, of course, which change from run to run).
Shell driver. The sdriver.pl program executes a shell as a child process, sends it commands and signals as directed by a trace file, and captures and displays the output from the shell. Use the -h argument to find out the usage of sdriver.pl:
$ ./sdriver.pl -h Usage: sdriver.pl [-hv] -t <trace> -s <shellprog> -a <args> Options: -h Print this message -v Be more verbose -t <trace> Trace file -s <shell> Shell program to test -a <args> Shell arguments -g Generate output for autograderWe have also provided 16 trace files (trace{01-16}.txt) that you will use in conjunction with the shell driver to test the correctness of your shell. The lower-numbered trace files do very simple tests, and the higher-numbered tests do more complicated tests.
You can run the shell driver on your shell using trace file trace01.txt (for instance) by typing:
$ ./sdriver.pl -t trace01.txt -s ./tsh -a "-p"(the -a "-p" argument tells your shell not to emit a prompt), or
$ make test01Similarly, to compare your result with the reference shell, you can run the trace driver on the reference shell by typing:
$ ./sdriver.pl -t trace01.txt -s ./tshref -a "-p"or
$ make rtest01For your reference, tshref.out gives the output of the reference solution on all races. This might be more convenient for you than manually running the shell driver on all trace files. The neat thing about the trace files is that they generate the same output you would have gotten had you run your shell interactively (except for an initial comment that identifies the trace). For example:
$ make test15 ./sdriver.pl -t trace15.txt -s ./tsh -a "-p" # # trace15.txt - Putting it all together # tsh> ./bogus ./bogus: Command not found. tsh> ./myspin 10 Job (9721) terminated by signal 2 tsh> ./myspin 3 & [1] (9723) ./myspin 3 & tsh> ./myspin 4 & [2] (9725) ./myspin 4 & tsh> jobs [1] (9723) Running ./myspin 3 & [2] (9725) Running ./myspin 4 & tsh> fg %1 Job [1] (9723) stopped by signal 20 tsh> jobs [1] (9723) Stopped ./myspin 3 & [2] (9725) Running ./myspin 4 & tsh> bg %3 %3: No such job tsh> bg %1 [1] (9723) ./myspin 3 & tsh> jobs [1] (9723) Running ./myspin 3 & [2] (9725) Running ./myspin 4 & tsh> fg %1 tsh> quit $
The parent needs to block the SIGCHLD signals in this way in order to avoid the race condition where the child is reaped by sigchld_handler (and thus removed from the job list) before the parent calls addjob.
Here is the workaround: After the fork, but before the execve, the child process should call setpgid(0, 0), which puts the child in a new process group whose group ID is identical to the child's PID. This ensures that there will be only one process, your shell, in the foreground process group. When you type ctrl-c, the shell should catch the resulting SIGINT and then forward it to the appropriate foreground job (or more precisely, the process group that contains the foreground job).
Once you are satisfied with your solution, hand it in by typing handin31 at the unix prompt.
Only one of you or your partner should run handin31 to submit your joint solutions If you accidentally both run it, send me email right away letting me know which of the two solutions I should keep and which I should discard (you don't want the grader to just guess which joint solution to grade).
You may run handin31 as many times as you like, and only the most recent submission will be recorded. This is useful if you realize, after handing in some programs, that you'd like to make a few more changes to them.
Good luck!