一尘不染

linux uinput:简单示例?

linux

我有一些问题让 双方 使用的代码边uinput工作。

基于uinput入门:用户级别输入子系统[死链接;存档 ]我总结了以下 作家 (减去错误处理):

int main(int ac, char **av)
{
    int fd = open("/dev/uinput", O_WRONLY | O_NONBLOCK);
    int ret = ioctl(fd, UI_SET_EVBIT, EV_ABS);
    ret = ioctl(fd, UI_SET_ABSBIT, ABS_X);

    struct uinput_user_dev uidev = {0};
    snprintf(uidev.name, UINPUT_MAX_NAME_SIZE, "uinput-rotary");
    uidev.absmin[ABS_X] = 0;
    uidev.absmax[ABS_X] = 255;
    ret = write(fd, &uidev, sizeof(uidev));
    ret = ioctl(fd, UI_DEV_CREATE);

    struct input_event ev = {0};
    ev.type = EV_ABS;
    ev.code = ABS_X;
    ev.value = 42;

    ret = write(fd, &ev, sizeof(ev));

    getchar();

    ret = ioctl(fd, UI_DEV_DESTROY);
    return EXIT_SUCCESS;
}

这似乎可行,至少input_event似乎已编写了完整的结构。

然后,我写出了我最能想到的事件的天真的 读者

int main(int ac, char **av)
{
    int fd = open(av[1], O_RDONLY);

    char name[256] = "unknown";
    ioctl(fd, EVIOCGNAME(sizeof(name)), name);
    printf("reading from %s\n", name);

    struct input_event ev = {0};
    int ret = read(fd, &ev, sizeof(ev));
    printf("Read an event! %i\n", ret);
    printf("ev.time.tv_sec: %li\n", ev.time.tv_sec);
    printf("ev.time.tv_usec: %li\n", ev.time.tv_usec);
    printf("ev.type: %hi\n", ev.type);
    printf("ev.code: %hi\n", ev.code);
    printf("ev.value: %li\n", ev.value);

    return EXIT_SUCCESS;
}

不幸的是,读者方面根本无法工作。每次只能读取8个字节,这几乎不是完整的input_event结构。

我犯了什么愚蠢的错误?


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2020-06-07

共1个答案

一尘不染

您还应该在实际事件之后编写一个同步事件。在您的编写方代码中:

struct input_event ev = {0};
ev.type = EV_ABS;
ev.code = ABS_X;
ev.value = 42;

usleep(1500);

memset(&ev, 0, sizeof(ev));
ev.type = EV_SYN;
ev.code = 0;
ev.value = 0;

ret = write(fd, &ev, sizeof(ev));

getchar();
2020-06-07