power.c 9.0 KB

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  1. #include <linux/module.h>
  2. #include <linux/fs.h>
  3. #include <linux/cdev.h>
  4. #include <linux/slab.h>
  5. #include <linux/uaccess.h>
  6. #include <linux/wait.h>
  7. #include <linux/sched.h>
  8. #include <linux/poll.h>
  9. #include <linux/delay.h>
  10. #include <linux/sched.h>
  11. #include <linux/timer.h>
  12. #include <linux/workqueue.h>
  13. #include <linux/io.h>
  14. #include "gpioregs.h"
  15. #define DEVICE_NAME "power"
  16. #define CLASS_NAME "power"
  17. #define BUFFER_SIZE 4096
  18. #define MAJOR_NUM 56
  19. #define MINOR_NUM 70
  20. #define TIMEOUT_LOOPS 100000
  21. static int major_num = MAJOR_NUM;
  22. static int minor_num = MINOR_NUM;
  23. static struct class *device_class = NULL;
  24. static struct device *device = NULL;
  25. extern int sysfs_power_off_flag;
  26. struct chardev_device {
  27. struct cdev cdev;
  28. char *buffer;
  29. size_t data_len;
  30. wait_queue_head_t read_queue;
  31. struct mutex lock;
  32. bool nonblock;
  33. struct delayed_work delay_work1;
  34. char status;
  35. };
  36. static struct chardev_device *chardev_dev;
  37. static int wait_ibf(void)
  38. {
  39. int i = 0;
  40. while (inb(EC_CMD_PORT) & EC_IBF)
  41. {
  42. if (++i > TIMEOUT_LOOPS)
  43. {
  44. return -1;
  45. }
  46. udelay(1);
  47. }
  48. return 0;
  49. }
  50. static int wait_obf(void)
  51. {
  52. int i = 0;
  53. while (!(inb(EC_CMD_PORT) & EC_OBF))
  54. {
  55. if (++i > TIMEOUT_LOOPS)
  56. {
  57. return -1;
  58. }
  59. udelay(1);
  60. }
  61. return 0;
  62. }
  63. static int oem_ec_read_ram(uint8_t page, uint8_t offset, uint8_t *data)
  64. {
  65. unsigned char WEC, REC;
  66. switch(page)
  67. {
  68. case 0:
  69. {
  70. WEC = 0x96;
  71. REC = 0x95;
  72. break;
  73. }
  74. case 1:
  75. {
  76. WEC = 0x98;
  77. REC = 0x97;
  78. break;
  79. }
  80. default:
  81. {
  82. WEC = EC_VERSION_WEC;
  83. REC = EC_VERSION_REC;
  84. break;
  85. }
  86. }
  87. if (wait_ibf() < 0)
  88. return -1;
  89. outb(REC, EC_CMD_PORT);
  90. if (wait_ibf() < 0)
  91. return -1;
  92. outb(offset, EC_DATA_PORT);
  93. if (wait_obf() < 0)
  94. return -1;
  95. *data = inb(EC_DATA_PORT);
  96. return 0;
  97. }
  98. uint8_t ac_present(void) //read GPIO of DC IN
  99. {
  100. uint8_t val = 0x00;
  101. if (oem_ec_read_ram(2, 0x36, &val) < 0)
  102. return 0;
  103. // printk(" AC state is : %d\n", (val & 0x03) ? 1 : 0);
  104. return (val & 0x03) ? 1 : 0;
  105. }
  106. uint8_t soft_rest_btn(void)//read GPIO of btn SW_HRST1
  107. {
  108. uint8_t val = 0x00;
  109. if (oem_ec_read_ram(2, 0x34, &val) < 0)
  110. return 0;
  111. // printk(" btn state is : %d\n", (val & 0x01) ? 1 : 0);
  112. return (val & 0x01) ? 1 : 0;
  113. }
  114. static int chardev_open(struct inode *inode, struct file *filp)
  115. {
  116. struct chardev_device *dev = container_of(inode->i_cdev,
  117. struct chardev_device, cdev);
  118. filp->private_data = dev;
  119. dev_info(device, "Device opened\n");
  120. return 0;
  121. }
  122. static int chardev_release(struct inode *inode, struct file *filp)
  123. {
  124. dev_info(device, "Device released\n");
  125. return 0;
  126. }
  127. static ssize_t chardev_read(struct file *filp, char __user *buf,
  128. size_t count, loff_t *f_pos)
  129. {
  130. struct chardev_device *dev = filp->private_data;
  131. ssize_t ret = 0;
  132. size_t available;
  133. mutex_lock(&dev->lock);
  134. while (dev->data_len == 0) {
  135. if (filp->f_flags & O_NONBLOCK) {
  136. mutex_unlock(&dev->lock);
  137. return -EAGAIN;
  138. }
  139. mutex_unlock(&dev->lock);
  140. if (wait_event_interruptible(dev->read_queue, dev->data_len > 0)) {
  141. return -ERESTARTSYS;
  142. }
  143. mutex_lock(&dev->lock);
  144. }
  145. available = min(count, dev->data_len);
  146. if (copy_to_user(buf, &chardev_dev->status, available)) {
  147. mutex_unlock(&dev->lock);
  148. return -EFAULT;
  149. }
  150. if (available == dev->data_len) {
  151. dev->data_len = 0;
  152. } else {
  153. memmove(dev->buffer, dev->buffer + available, dev->data_len - available);
  154. dev->data_len -= available;
  155. }
  156. ret = available;
  157. mutex_unlock(&dev->lock);
  158. dev_dbg(device, "Read %zd bytes\n", ret);
  159. return ret;
  160. }
  161. static __poll_t chardev_poll(struct file *filp, struct poll_table_struct *wait)
  162. {
  163. struct chardev_device *dev = filp->private_data;
  164. __poll_t mask = 0;
  165. poll_wait(filp, &dev->read_queue, wait);
  166. mutex_lock(&dev->lock);
  167. if (dev->data_len > 0) {
  168. mask |= EPOLLIN | EPOLLRDNORM;
  169. }
  170. mutex_unlock(&dev->lock);
  171. return mask;
  172. }
  173. static ssize_t chardev_write(struct file *filp, const char __user *buf,
  174. size_t count, loff_t *f_pos)
  175. {
  176. struct chardev_device *dev = filp->private_data;
  177. ssize_t ret;
  178. size_t to_write;
  179. mutex_lock(&dev->lock);
  180. to_write = min(count, BUFFER_SIZE - dev->data_len);
  181. if (to_write == 0) {
  182. mutex_unlock(&dev->lock);
  183. return -ENOSPC;
  184. }
  185. if (copy_from_user(dev->buffer + dev->data_len, buf, to_write)) {
  186. mutex_unlock(&dev->lock);
  187. return -EFAULT;
  188. }
  189. dev->data_len += to_write;
  190. ret = to_write;
  191. wake_up_interruptible(&dev->read_queue);
  192. mutex_unlock(&dev->lock);
  193. dev_dbg(device, "Written %zd bytes\n", ret);
  194. return ret;
  195. }
  196. static struct file_operations chardev_fops = {
  197. .owner = THIS_MODULE,
  198. .open = chardev_open,
  199. .release = chardev_release,
  200. .read = chardev_read,
  201. .write = chardev_write,
  202. .poll = chardev_poll,
  203. };
  204. static void delay_work_func(struct work_struct *work)
  205. {
  206. static int ac_flag = 0;
  207. static int rst_flag = 0;
  208. uint8_t ret = 0;
  209. ret = ac_present();
  210. if(ret == 0)
  211. {
  212. ac_flag++;
  213. }
  214. else
  215. {
  216. ac_flag = 0;
  217. }
  218. ret = soft_rest_btn();
  219. if(ret == 0)
  220. {
  221. rst_flag++;
  222. }
  223. else
  224. {
  225. rst_flag = 0;
  226. }
  227. if(ac_flag >= 16 || sysfs_power_off_flag == 1)
  228. {
  229. chardev_dev->status = 'P';
  230. chardev_dev->data_len = 1;
  231. wake_up_interruptible(&chardev_dev->read_queue);
  232. }
  233. if(rst_flag >= 3)
  234. {
  235. chardev_dev->status = 'R';
  236. chardev_dev->data_len = 1;
  237. wake_up_interruptible(&chardev_dev->read_queue);
  238. }
  239. // printk("ac_flag = %d, rst_flag = %d\n", ac_flag, rst_flag);
  240. schedule_delayed_work(&chardev_dev->delay_work1, msecs_to_jiffies(500));
  241. }
  242. int power_interface_init(void)
  243. {
  244. int ret;
  245. dev_t dev_num;
  246. dev_num = MKDEV(MAJOR_NUM, MINOR_NUM);
  247. ret = register_chrdev_region(dev_num, 1, DEVICE_NAME);
  248. if (ret < 0) {
  249. pr_err("Failed to register device number %d:%d\n", MAJOR_NUM, MINOR_NUM);
  250. return ret;
  251. }
  252. major_num = MAJOR_NUM;
  253. minor_num = MINOR_NUM;
  254. pr_info("Registered device number %d:%d\n", major_num, minor_num);
  255. chardev_dev = kzalloc(sizeof(struct chardev_device), GFP_KERNEL);
  256. if (!chardev_dev) {
  257. ret = -ENOMEM;
  258. goto err_alloc_dev;
  259. }
  260. INIT_DELAYED_WORK(&chardev_dev->delay_work1, delay_work_func);
  261. schedule_delayed_work(&chardev_dev->delay_work1, msecs_to_jiffies(500));
  262. chardev_dev->buffer = kzalloc(BUFFER_SIZE, GFP_KERNEL);
  263. if (!chardev_dev->buffer) {
  264. ret = -ENOMEM;
  265. goto err_alloc_buffer;
  266. }
  267. mutex_init(&chardev_dev->lock);
  268. init_waitqueue_head(&chardev_dev->read_queue);
  269. chardev_dev->data_len = 0;
  270. cdev_init(&chardev_dev->cdev, &chardev_fops);
  271. chardev_dev->cdev.owner = THIS_MODULE;
  272. ret = cdev_add(&chardev_dev->cdev, dev_num, 1);
  273. if (ret < 0) {
  274. pr_err("Failed to add cdev\n");
  275. goto err_cdev_add;
  276. }
  277. device_class = class_create(THIS_MODULE, CLASS_NAME);
  278. if (IS_ERR(device_class)) {
  279. ret = PTR_ERR(device_class);
  280. pr_err("Failed to create class\n");
  281. goto err_class_create;
  282. }
  283. device = device_create(device_class, NULL, dev_num, NULL, DEVICE_NAME);
  284. if (IS_ERR(device)) {
  285. ret = PTR_ERR(device);
  286. pr_err("Failed to create device\n");
  287. goto err_device_create;
  288. }
  289. pr_info("Char device demo loaded: major=%d, minor=%d\n", major_num, minor_num);
  290. return 0;
  291. err_device_create:
  292. class_destroy(device_class);
  293. err_class_create:
  294. cdev_del(&chardev_dev->cdev);
  295. err_cdev_add:
  296. kfree(chardev_dev->buffer);
  297. err_alloc_buffer:
  298. kfree(chardev_dev);
  299. err_alloc_dev:
  300. unregister_chrdev_region(dev_num, 1);
  301. return ret;
  302. }
  303. void power_interface_exit(void)
  304. {
  305. dev_t dev_num = MKDEV(major_num, minor_num);
  306. cancel_delayed_work_sync(&chardev_dev->delay_work1);
  307. device_destroy(device_class, dev_num);
  308. class_destroy(device_class);
  309. cdev_del(&chardev_dev->cdev);
  310. kfree(chardev_dev->buffer);
  311. kfree(chardev_dev);
  312. unregister_chrdev_region(dev_num, 1);
  313. pr_info("Char device demo unloaded\n");
  314. }