Interruptible wait for completion

#

Version

Ubuntu

Ubuntu 22.10

Kernel

6.7.9

  • In this program, you are going to learn

  • How to create completion variable ?

  • How to send completion signal for interruptible waiting threads?

  • How to signal once the task is completed?

#include <linux/kthread.h>

bool kthread_should_stop(void);
  • where

    • kthread_should_stop: this is used to determine whether the thread should return now. Whenever the kthread_stop() is called it will be woken and returns true.

    • return type: returns true when the thread is stopped, false when the thread is still in execution

  • Here is an example of how to use the API,

while (!kthread_should_stop())
{
    //add the instructions to be performed during thread execution.
}
  • Here is the function prototype of the API: kthread_run

#include <linux/kthread.h>

#define kthread_run(threadfn, data, namefmt, ...)
  • where

    • kthread_run : is used to create and wake a kthread

    • return type: struct task_struct* (i.e) address of the kthread

    • threadfn: function to executed by kthread

    • data: data pointer for threadfn which can be used to send any possible arguments required for threadfn.

    • namefmt: printf-style format for the thread name which will be displayed on ps output when the thread is in execution.

  • Here is an example of how to use the API,

kthread_run(mythread,NULL,"sample kthread");
#include <linux/kthread.h>

int kthread_stop(struct task_struct *k);
  • where

    • kthread_stop: stops a kthread.

    • return type: returns the return value of threadfn() which is passed as an argument during kthread creation.

    • k: kthread created by one of the API used to created kthread.

  • Here is the example of how to use the API,

kthread_stop(mythread);
#include <linux/completion.h>

static inline void init_completion(struct completion *x);
  • where

    • init_completion : initialize a dynamically allocated completion

    • x : pointer to completion structure that is to be initialized

  • Here is the example of how to use the API

init_completion(mycompletionvar);
#include <linux/completion.h>

void wait_for_completion_interruptible(struct completion *x);
  • where

    • wait_for_completion_interruptible : This waits for completion of a specific task to be signaled. It is interruptible.

    • x : holds the state of this particular completion

    • return type: returns -ERESTARTSYS if interrupted, 0 if completed.

  • Here is an example of how to use the API,

wait_for_completion_interruptible(mycompletionvar);
#include <linux/completion.h>

extern unsigned long wait_for_completion_interruptible_timeout(struct completion *x, unsigned long timeout);
  • where

    • wait_for_completion_interruptible_timeout : This waits for either a completion of a specific task to be signaled or for a specified timeout to expire. It is interruptible. The timeout is in jiffies.

    • x : holds the state of this particular completion

    • timeout : timeout value in jiffies

    • return type: returns -ERESTARTSYS if interrupted, 0 if timed out, positive (at least 1, or number of jiffies left till timeout) if completed.

  • Here is an example of how to use the API

wait_for_completion_interruptible_timeout(mycompvar,msecs_to_jiffies(10));
  • Here is the prototype of the API: complete

#include <linux/completion.h>

void complete(struct completion *x);
  • where

    • complete : signals a single thread waiting on this completion

    • x: holds the state of this particular completion

  • Here is an example of how to use the API

complete(mycompletevar);
  • Here is the prototype of module paramter APIs

#include <linux/module.h>

#define MODULE_LICENSE(_license) MODULE_FILE MODULE_INFO(license, _license)
#define MODULE_AUTHOR(_author) MODULE_INFO(author, _author)
#define MODULE_DESCRIPTION(_description) MODULE_INFO(description, _description)
  • where

    • MODULE_LICENSE: tells the kernel what license is used by our module.

    • MODULE_AUTHOR: denotes the author of this kernel module.

    • MODULE_DESCRIPTION: gives a basic idea about what the kernel module does.

    • These information can be found when modinfo command is used which lists out all these above mentioned information.

  • Here is the example of how to use the Module parameter APIs,

MODULE_LICENSE("GPL");
MODULE_AUTHOR("Linux Usr");
MODULE_DESCRIPTION("Sample kernel module");
  • Here is the prototype of the API: IS_ERR

#include <linux/err.h>

static inline bool __must_check IS_ERR(__force const void *ptr);
  • where

    • IS_ERR: Detects an error pointer

    • return type: return true if it’s an error pointer else return false.

    • ptr: pointer which needs to detected.

  • Here is an example of how to use the API,

if(IS_ERR(sample_ptr)) {
    //instructions to be executed when error ptr is detected
} else {
    //instructions to be executed when error ptr is not detected
}
  • Here is the prototype of the API: pr_info

#include <linux/printk.h>

#define pr_info(fmt, ...) \
    printk(KERN_INFO pr_fmt(fmt), ##__VA_ARGS__)
  • where

    • pr_info: Prints an info-level messages

    • fmt: format string

  • Here is an example of how to use the API,

pr_info("//sample print statement");
#include <linux/sched.h>

extern int wake_up_process(struct task_struct *tsk);
  • where

    • wake_up_process: wake up a specific process

    • return type: returns 1 if the process is woken up, 0 if the process is in running state.

    • tsk: process to be woken up.

  • Here is the example of how to use the API,

wake_up_process(mythread);
  • Here is the example of the API: msleep

#include <linux/delay.h>

void msleep(unsigned int msecs);
  • where

    • msleep: will put it in sleep for a certain amount of msecs time.

    • msecs: time in milliseconds to sleep for

  • Here is the example of how to use the API,

msleep(1000);
  • Here is the prototype of the Driver entry point API’s

#include <linux/module.h>

#define module_init(x)      __initcall(x);
#define module_exit(x)      __exitcall(x);
  • where

    • module_init: driver initialization entry point which will be called at module insertion time.

    • module_exit: driver exit entry point which will be called during the removal of module.

    • x:
      • function to be run at module insertion for module_init function.

      • function to be run when driver is removed for module_exit function.

  • Here is an example of how to use the driver entry point API’s

module_init(myinitmodule);
module_exit(myexitmodule);
  • In this example let’s see how to wait for completion signal using wait_for_completion_interruptible and use with kthread.

  • Include the follow header files(.h) to refer the API being used for the execution.

#include <linux/kernel.h>
#include <linux/init.h>
#include <linux/module.h>
#include <linux/kthread.h>
#include <linux/completion.h>
#include <linux/delay.h>
  • Add the following module macros to display information about the license, author and description about the module.

MODULE_LICENSE("GPL");
MODULE_AUTHOR("Linux Usr");
MODULE_DESCRIPTION("Example of wait_for_completion_interruptible");
  • Declare the thread and completion variables which we are going to create and use in this example

static struct task_struct *my_thread1;
static struct task_struct *my_thread2;
struct completion thread_done;
  • Add the module init function which will be executed once we load the kernel module using insmod command.

static int __init wait_for_completion_interruptible_init(void)
{
    pr_info("Inside thread init function\n");
    thread_start();
    return 0;
}
  • Add the thread start function which is called from module init function, creates the thread and starts it’s execution.

void thread_start(void)
{
    init_completion(&thread_done);
    my_thread1 = kthread_run(my_thread_fn1,NULL,"wait_for_completion_interruptible thread1 example");
    if (IS_ERR(my_thread1))
        pr_info("error creating in kthread\n");
    else
        pr_info("successfully created kthread\n");
    my_thread2 = kthread_run(my_thread_fn2,NULL,"wait_for_completion_interruptible thread2 example");
    if (IS_ERR(my_thread2))
        pr_info("error creating in kthread\n");
    else
        pr_info("successfully created kthread\n");
}
  • Add the module exit function which will be executed once we unload the kernel module using rmmod command.

static void __exit wait_for_completion_interruptible_exit(void)
{
    pr_info("Inside kthread exit function\n");
    thread_stop();
}
  • Add the thread stop function which is called from module exit function, destroys the thread created and stops it’s execution.

void thread_stop(void)
{
    kthread_stop(my_thread2);
    kthread_stop(my_thread1);
    pr_info("destroyed thread and completed task\n");
}
  • Add the thread function API which will be called as soon as the kthread is created and is in running state.

static int my_thread_fn1(void *data)
{
    while (!kthread_should_stop()) {
        wait_for_completion_interruptible(&thread_done);
        pr_info("my_thread_fn1 execution\n");
        msleep(1000);
    }
    return 0;
}

static int my_thread_fn2(void *data)
{
    while(!kthread_should_stop()) {
        pr_info("my_thread_fn2 execution\n");
        msleep(1000);
    }
    complete(&thread_done);
    return 0;
}
  • Add the driver entry points which will be executed once the module is inserted or removed from the kernel.

module_init(wait_for_completion_interruptible_init);
module_exit(wait_for_completion_interruptible_exit);
 1#include <linux/kernel.h>
 2#include <linux/init.h>
 3#include <linux/module.h>
 4#include <linux/kthread.h>
 5#include <linux/completion.h>
 6#include <linux/delay.h>
 7
 8MODULE_LICENSE("GPL");
 9MODULE_DESCRIPTION("Example of wait_for_completion_interruptible");
10MODULE_AUTHOR("linux usr");
11
12static struct task_struct *my_thread1;
13static struct task_struct *my_thread2;
14struct completion thread_done;
15
16/* my_thread_fn1 - executes when thread1 creates,
17 * waits for completion signal from thread2,
18 * prints a message and sleeps for 1000ms,
19 * stops when kthread_stop is called */
20
21static int my_thread_fn1(void *data)
22{
23	while (!kthread_should_stop()) {
24		wait_for_completion_interruptible(&thread_done);
25		pr_info("my_thread_fn1 execution\n");
26		msleep(1000);
27	}	
28	return 0;
29}
30
31/* my_thread_fn2 - executes when thread2 creates,
32 * prints a message and sleeps for 1000ms,
33 * sends completion signal to thread1,
34 * stops when kthread_stop is called */
35
36static int my_thread_fn2(void *data)
37{
38	while(!kthread_should_stop()) {
39		pr_info("my_thread_fn2 execution\n");
40		msleep(1000);
41	}
42	complete(&thread_done);
43	return 0;
44}
45
46/* thread_start - creates thread and starts execution */
47
48void thread_start(void)
49{
50    init_completion(&thread_done);
51    my_thread1 = kthread_run(my_thread_fn1,NULL,"wait_for_completion_interruptible thread1 example");
52    if (IS_ERR(my_thread1))
53        pr_info("error creating in kthread\n");
54    else
55        pr_info("successfully created kthread\n");
56    my_thread2 = kthread_run(my_thread_fn2,NULL,"wait_for_completion_interruptible thread2 example");
57    if (IS_ERR(my_thread2))
58        pr_info("error creating in kthread\n");
59    else
60        pr_info("successfully created kthread\n");
61}
62
63/* wait_for_completion_interruptible_init - calls thread_start,
64 * executes when module is loaded */
65
66static int __init wait_for_completion_interruptible_init(void)
67{
68	pr_info("inside thread init function\n");
69	thread_start();
70    return 0;
71}
72
73/* thread_stop - destroys thread and stops execution */
74
75void thread_stop(void)
76{
77    kthread_stop(my_thread2);
78    kthread_stop(my_thread1);
79    pr_info("destroyed thread and completed task\n");
80}
81
82/* wait_for_completion_interruptible_exit - calls thread_stop,
83 * executes when module is unloaded */
84
85static void __exit wait_for_completion_interruptible_exit(void)
86{
87    pr_info("inside thread exit function\n");
88    thread_stop();
89}
90
91module_init(wait_for_completion_interruptible_init);
92module_exit(wait_for_completion_interruptible_exit);
1obj-m += kthread.o
2
3all:
4	make -C /lib/modules/$(shell uname -r)/build M=$(PWD) modules
5
6clean:
7	make -C /lib/modules/$(shell uname -r)/build M=$(PWD) clean
  • Run make to compile the kernel source and generate the .ko image.

make -C /lib/modules/6.7.9/build M=$HOME/kthread_examples/
make[1]: Entering directory '/usr/src/linux-headers-6.7.9'
warning: the compiler differs from the one used to build the kernel
The kernel was built by: x86_64-linux-gnu-gcc (Ubuntu 12.2.0-3ubuntu1) 12.2.0
You are using:           gcc (Ubuntu 12.2.0-3ubuntu1) 12.2.0
CC [M]  $HOME/kthread_examples/kthread.o
MODPOST $HOME/kthread_examples/Module.symvers
CC [M]  $HOME/kthread_examples/kthread.mod.o
LD [M]  $HOME/kthread_examples/kthread.ko
BTF [M] $HOME/kthread_examples/kthread.ko
Skipping BTF generation for $HOME/kthread_examples/kthread.ko due to unavailability of vmlinux
make[1]: Leaving directory '/usr/src/linux-headers-6.7.9'
  • Check if the .ko is generated or not using ls command.

test@test-V520-15IKL:~$ ls -l
total 360
-rw-rw-r-- 1 test test    713 Mar 18 16:06 kthread.c
-rw-rw-r-- 1 test test 169784 Mar 18 16:08 kthread.ko
-rw-rw-r-- 1 test test     58 Mar 18 16:08 kthread.mod
-rw-rw-r-- 1 test test   1047 Mar 18 16:08 kthread.mod.c
-rw-rw-r-- 1 test test  96512 Mar 18 16:08 kthread.mod.o
-rw-rw-r-- 1 test test  74696 Mar 18 16:08 kthread.o
-rw-rw-r-- 1 test test    161 Mar 18 16:00 Makefile
-rw-rw-r-- 1 test test     58 Mar 18 16:08 modules.order
-rw-rw-r-- 1 test test      0 Mar 18 16:08 Module.symvers
  • Run modinfo command to get the information about the kernel module.

test@test-V520-15IKL:~/.../tc_1$ modinfo kthread.ko
filename:       $HOME/kthread_examples/kthread.ko
description:    Example of wait_for_completion_interruptible
author:         Linux Usr
license:        GPL
srcversion:     8D2147F67AB01CF0E482DAC
depends:
retpoline:      Y
name:           kthread
vermagic:       6.7.9 SMP preempt mod_unload modversions
  • insert the module using insmod command.

test@test-V520-15IKL:~$ sudo insmod ./kthread.ko
  • check if the module is loaded or not using lsmod command.

test@test-V520-15IKL:~$ sudo lsmod | grep kthread
kthread                16384  0
  • check if the thread is created or not using ps command.

test@test-V520-15IKL:~$ ps -N | grep wait_for_completion_interruptible
19610 ?        00:00:00 wait_for_completion_interruptible thread1 example
19611 ?        00:00:00 wait_for_completion_interruptible thread2 example
  • check for the kernel messages from init function and thread function once the module is loaded and thread is created.

test@test-V520-15IKL:~$ sudo dmesg
[15777.810425] inside thread init function
[15777.810505] successfully created kthread
[15777.810579] successfully created kthread
[15777.810581] my_thread_fn2 execution
[15778.844543] my_thread_fn2 execution
[15779.868563] my_thread_fn2 execution
  • remove the module from kernel using rmmod command.

test@test-V520-15IKL:~$ sudo rmmod kthread
  • check if the module is still loaded after removing the kernel module using lsmod if it is not displayed in lsmod output it is verified that the module is removed successfully.

test@test-V520-15IKL:~$ sudo lsmod | grep kthread
test@test-V520-15IKL:~$
  • check if the thread is destroyed using ps command if it is not displayed in ps output we can confirm that the thread is destroyed successfully.

test@test-V520-15IKL:~$ ps -N | grep wait_for_completion_interruptible
test@test-V520-15IKL:~$
  • Check for kernel messages from exit function using dmesg command.

test@test-V520-15IKL:~$ sudo dmesg
[15799.692583] inside thread exit function
[15800.348940] my_thread_fn1 execution
[15801.373029] destroyed thread and completed task
  • In this example let’s see kthread waiting for completion using wait_for_completion_interruptible_timeout.

  • Include the follow header files(.h) to refer the API being used for the execution.

#include <linux/kernel.h>
#include <linux/init.h>
#include <linux/module.h>
#include <linux/kthread.h>
#include <linux/completion.h>
#include <linux/delay.h>
#include <linux/jiffies.h>
  • Add the following module macros to display information about the license, author and description about the module.

MODULE_LICENSE("GPL");
MODULE_AUTHOR("Linux Usr");
MODULE_DESCRIPTION("example of wait_for_completion_interruptible_timeout");
  • Declare the thread variables which we are going to create and use in this example

static struct task_struct *my_thread1;
static struct task_struct *my_thread2;
struct completion thread_done;
  • Add the module init function which will be executed once we load the kernel module using insmod command.

static int __init wait_for_completion_interruptible_timeout_init(void)
{
    pr_info("Inside kthread init function\n");
    thread_start();
    return 0;
}
  • Add the thread start function called from the module init function which is used to create the thread and execute it.

void thread_start(void)
{
    init_completion(&thread_done);
    my_thread1 = kthread_run(my_thread_fn1,NULL,"wait_for_completion_interruptible_timeout thread1 example");
    if (IS_ERR(my_thread1))
        pr_info("error creating in kthread\n");
    else
        pr_info("successfully created kthread\n");
    my_thread2 = kthread_run(my_thread_fn2,NULL,"wait_for_completion_interruptible_timeout thread2 example");
    if (IS_ERR(my_thread2))
        pr_info("error creating in kthread\n");
    else
        pr_info("successfully created kthread\n");
}
  • Add the module exit function which will be executed once we unload the kernel module using rmmod command.

static void __exit wait_for_completion_interruptible_timeout_exit(void)
{
    pr_info("Inside kthread exit function\n");
    thread_stop();
}
  • Add the thread stop function called from the module exit function which is used to destroy the thread and stop its execution.

void thread_stop(void)
{
    kthread_stop(my_thread2);
    kthread_stop(my_thread1);
    pr_info("destroyed thread and completed task\n");
}
  • Add the thread function API which will be called as soon as the kthread is created and is in running state.

static int my_thread_fn1(void *data)
{
    while (!kthread_should_stop()) {
        wait_for_completion_interruptible_timeout(&thread_done,msecs_to_jiffies(100));
        pr_info("my_thread_fn1 execution\n");
        msleep(1000);
    }
    return 0;
}

static int my_thread_fn2(void *data)
{
    while(!kthread_should_stop()) {
        pr_info("my_thread_fn2 execution\n");
        msleep(1000);
    }
    complete(&thread_done);
    return 0;
}
  • Add the driver entry points which will be executed once the module is inserted or removed from the kernel.

module_init(wait_for_completion_interruptible_timeout_init);
module_exit(wait_for_completion_interruptible_timeout_exit);
 1#include <linux/kernel.h>
 2#include <linux/init.h>
 3#include <linux/module.h>
 4#include <linux/kthread.h>
 5#include <linux/completion.h>
 6#include <linux/delay.h>
 7#include <linux/jiffies.h>
 8
 9MODULE_LICENSE("GPL");
10MODULE_DESCRIPTION("Example of wait_for_completion_interruptible_timeout");
11MODULE_AUTHOR("linux usr");
12
13static struct task_struct *my_thread1;
14static struct task_struct *my_thread2;
15struct completion thread_done;
16
17/* my_thread_fn1 - executes when thread1 is created,
18 * waits for completion signal from thread2,
19 * prints a message and sleeps for 1000ms,
20 * stops when kthread_stop is called */
21
22static int my_thread_fn1(void *data)
23{
24	while (!kthread_should_stop()) {
25		wait_for_completion_interruptible_timeout(&thread_done,msecs_to_jiffies(1));
26		pr_info("my_thread_fn1 execution\n");
27		msleep(1000);
28	}	
29	return 0;
30}
31
32/* my_thread_fn2 - executes when thread2 is called,
33 * prints a message and sleeps for 1000ms,
34 * sends completion signal to thread1,
35 * stops when kthread_stop is called */
36
37static int my_thread_fn2(void *data)
38{
39	while(!kthread_should_stop()) {
40		pr_info("my_thread_fn2 execution\n");
41		msleep(1000);
42	}
43	complete(&thread_done);
44	return 0;
45}
46
47/* thread_start - creates thread and starts execution */
48
49void thread_start(void)
50{
51    init_completion(&thread_done);
52    my_thread1 = kthread_run(my_thread_fn1,NULL,"wait_for_completion_interruptible_timeout thread1 example");
53    if (IS_ERR(my_thread1))
54        pr_info("error creating in kthread\n");
55    else
56        pr_info("successfully created kthread\n");
57    my_thread2 = kthread_run(my_thread_fn2,NULL,"wait_for_completion_interruptible_timeout thread2 example");
58    if (IS_ERR(my_thread2))
59        pr_info("error creating in kthread\n");
60    else
61        pr_info("successfully created kthread\n");
62}
63
64/* wait_for_completion_interruptible_timeout_init - calls thread_start,
65 * executes when module is loaded */
66
67static int __init wait_for_completion_interruptible_timeout_init(void)
68{
69	pr_info("inside thread init function\n");
70	thread_start();
71    return 0;
72}
73
74/* thread_stop - destroys kthread and stops execution */
75
76void thread_stop(void)
77{
78    kthread_stop(my_thread2);
79    kthread_stop(my_thread1);
80    pr_info("destroyed thread and completed task\n");
81}
82
83/* wait_for_completion_interruptible_timeout_exit - calls thread_stop,
84 * executes when module is unloaded */
85
86static void __exit wait_for_completion_interruptible_timeout_exit(void)
87{
88    pr_info("inside thread exit function\n");
89    thread_stop();
90}
91
92module_init(wait_for_completion_interruptible_timeout_init);
93module_exit(wait_for_completion_interruptible_timeout_exit);
1obj-m += kthread.o
2
3all:
4	make -C /lib/modules/$(shell uname -r)/build M=$(PWD) modules
5
6clean:
7	make -C /lib/modules/$(shell uname -r)/build M=$(PWD) clean
  • Run make to compile the kernel source and generate the .ko image.

make -C /lib/modules/6.7.9/build M=$HOME/kthread_examples/
make[1]: Entering directory '/usr/src/linux-headers-6.7.9'
warning: the compiler differs from the one used to build the kernel
The kernel was built by: x86_64-linux-gnu-gcc (Ubuntu 12.2.0-3ubuntu1) 12.2.0
You are using:           gcc (Ubuntu 12.2.0-3ubuntu1) 12.2.0
CC [M]  $HOME/kthread_examples/kthread.o
MODPOST $HOME/kthread_examples/Module.symvers
CC [M]  $HOME/kthread_examples/kthread.mod.o
LD [M]  $HOME/kthread_examples/kthread.ko
BTF [M] $HOME/kthread_examples/kthread.ko
Skipping BTF generation for $HOME/kthread_examples/kthread.ko due to unavailability of vmlinux
make[1]: Leaving directory '/usr/src/linux-headers-6.7.9'
  • Check if the .ko is generated or not using ls command.

test@test-V520-15IKL:~$ ls -l
total 360
-rw-rw-r-- 1 test test    713 Mar 18 16:06 kthread.c
-rw-rw-r-- 1 test test 169784 Mar 18 16:08 kthread.ko
-rw-rw-r-- 1 test test     58 Mar 18 16:08 kthread.mod
-rw-rw-r-- 1 test test   1047 Mar 18 16:08 kthread.mod.c
-rw-rw-r-- 1 test test  96512 Mar 18 16:08 kthread.mod.o
-rw-rw-r-- 1 test test  74696 Mar 18 16:08 kthread.o
-rw-rw-r-- 1 test test    161 Mar 18 16:00 Makefile
-rw-rw-r-- 1 test test     58 Mar 18 16:08 modules.order
-rw-rw-r-- 1 test test      0 Mar 18 16:08 Module.symvers
  • Run modinfo command to get the information about the kernel module.

test@test-V520-15IKL:~/.../tc_1$ modinfo kthread.ko
filename:       $HOME/kthread_examples/kthread.ko
description:    Example of wait_for_completion_interruptible_timeout
author:         Linux Usr
license:        GPL
srcversion:     8D2147F67AB01CF0E482DAC
depends:
retpoline:      Y
name:           kthread
vermagic:       6.7.9 SMP preempt mod_unload modversions
  • insert the module using insmod command.

test@test-V520-15IKL:~$ sudo insmod ./kthread.ko
  • check if the module is loaded or not using lsmod command.

test@test-V520-15IKL:~$ sudo lsmod | grep kthread
kthread                16384  0
  • check if the thread is created or not using ps command.

test@test-V520-15IKL:~$ ps -N | grep wait_for_completion_interruptible_timeout
21153 ?        00:00:00 wait_for_completion_interruptible_timeout thread1 example
21154 ?        00:00:00 wait_for_completion_interruptible_timeout thread2 example
  • check for the kernel messages from init function and thread function once the module is loaded and thread is created.

test@test-V520-15IKL:~$ sudo dmesg
[16641.518707] inside thread init function
[16641.518787] successfully created kthread
[16641.518855] successfully created kthread
[16641.518857] my_thread_fn2 execution
[16641.526057] my_thread_fn1 execution
[16642.538213] my_thread_fn2 execution
[16642.546217] my_thread_fn1 execution
  • remove the module from kernel using rmmod command.

test@test-V520-15IKL:~$ sudo rmmod kthread
  • check if the module is still loaded after removing the kernel module using lsmod if it is not displayed in lsmod output it is verified that the module is removed successfully.

test@test-V520-15IKL:~$ sudo lsmod | grep kthread
test@test-V520-15IKL:~$
  • check if the thread is destroyed using ps command if it is not displayed in ps output we can confirm that the thread is destroyed successfully.

test@test-V520-15IKL:~$ ps -N | grep wait_for_completion_interruptible_timeout
test@test-V520-15IKL:~$
  • Check for kernel messages from exit function using dmesg command.

test@test-V520-15IKL:~$ sudo dmesg
[16654.727237] inside thread exit function
[16654.818532] destroyed thread and completed task

kthread API

Learning

kthread_run

Create and wake a thread

kthread_should_stop

To determine when thread should exit

kthread_stop

Stop a thread created by kthread_create

Completion API

Learning

init_completion

Initialize completion variable

complete

signals a signal thread waiting on this completion

wait_for_completion_interruptible

waits for completion of task

wait_for_completion_interruptible_timeout

waits for completion of task or waits until the timer expires

API

Learning

MODULE_LICENSE

Used to denote the license used in the kernel module

MODULE_AUTHOR

Used to mention the author of the kernel module

MODULE_DESCRIPTION

Used to describe what the module does

IS_ERR

Detects an error pointer

wake_up_process

wake up a specific process

msleep

will put in sleep for a certain amount of msecs time.

module_init

Driver initialization entry point

module_exit

Driver exit entry point

pr_info

Print an info-level message