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Added input handler..still verbose.
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284
risc_v/src/input.rs
Executable file
284
risc_v/src/input.rs
Executable file
@ -0,0 +1,284 @@
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// input.rs
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// Input handling.
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// Stephen Marz
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use crate::virtio::{Queue, MmioOffsets, MMIO_VIRTIO_START, StatusField, VIRTIO_RING_SIZE, Descriptor, VIRTIO_DESC_F_WRITE, VIRTIO_F_RING_EVENT_IDX};
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use crate::kmem::kmalloc;
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use crate::page::{PAGE_SIZE, zalloc};
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use core::mem::size_of;
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const EVENT_BUFFER_ELEMENTS: usize = 64;
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#[repr(C)]
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pub struct Event {
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pub event_type: u16,
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pub code: u16,
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pub value: u32,
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}
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#[repr(u8)]
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pub enum ConfigSelect {
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UNSET = 0x00,
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IdName = 0x01,
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IdSerial = 0x02,
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IdDevids = 0x03,
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PropBits = 0x10,
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EvBits = 0x11,
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AbsInfo = 0x12,
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}
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#[repr(C)]
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#[derive(Clone, Copy)]
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pub struct AbsInfo {
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pub min: u32,
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pub max: u32,
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pub fuzz: u32,
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pub flat: u32,
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pub res: u32,
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}
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#[repr(C)]
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#[derive(Clone, Copy)]
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pub struct DevIds {
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pub bustype: u16,
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pub vendor: u16,
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pub product: u16,
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pub version: u16,
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}
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#[repr(C)]
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#[derive(Clone, Copy)]
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pub union ConfigUnion {
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pub string: [u8; 128],
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pub bitmap: [i8; 128],
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pub abs: AbsInfo,
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pub ids: DevIds,
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}
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#[repr(C)]
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#[derive(Clone, Copy)]
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pub struct Config {
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pub select: u8,
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pub subsel: u8,
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pub size: u8,
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reserved: [u8; 5],
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pub config: ConfigUnion,
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}
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#[repr(u8)]
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pub enum EventType {
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Syn = 0x00,
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Key = 0x01,
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Rel = 0x02,
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Abs = 0x03,
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Msc = 0x04,
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Sw = 0x05,
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Led = 0x11,
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Snd = 0x12,
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Rep = 0x14,
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Ff = 0x15,
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Pwr = 0x16,
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FfStatus = 0x17,
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Max = 0x1f,
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}
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const EVENT_SIZE: usize = size_of::<Event>();
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pub struct Device {
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event_queue: *mut Queue,
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status_queue: *mut Queue,
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dev: *mut u32,
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event_idx: u16,
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event_ack_used_idx: u16,
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event_buffer: *mut Event,
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status_idx: u16,
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status_ack_used_idx: u16,
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status_buffer: *mut Event,
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}
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pub static mut INPUT_DEVICES: [Option<Device>; 8] = [
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None,
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None,
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None,
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None,
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None,
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None,
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None,
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None,
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];
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pub fn setup_input_device(ptr: *mut u32) -> bool {
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unsafe {
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// We can get the index of the device based on its address.
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// 0x1000_1000 is index 0
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// 0x1000_2000 is index 1
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// ...
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// 0x1000_8000 is index 7
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// To get the number that changes over, we shift right 12 places (3 hex digits)
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let idx = (ptr as usize - MMIO_VIRTIO_START) >> 12;
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// [Driver] Device Initialization
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// 1. Reset the device (write 0 into status)
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ptr.add(MmioOffsets::Status.scale32()).write_volatile(0);
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let mut status_bits = StatusField::Acknowledge.val32();
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// 2. Set ACKNOWLEDGE status bit
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ptr.add(MmioOffsets::Status.scale32()).write_volatile(status_bits);
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// 3. Set the DRIVER status bit
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status_bits |= StatusField::DriverOk.val32();
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ptr.add(MmioOffsets::Status.scale32()).write_volatile(status_bits);
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// 4. Read device feature bits, write subset of feature
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// bits understood by OS and driver to the device.
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let mut host_features = ptr.add(MmioOffsets::HostFeatures.scale32()).read_volatile();
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// Turn off EVENT_IDX
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host_features &= !(1 << VIRTIO_F_RING_EVENT_IDX);
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ptr.add(MmioOffsets::GuestFeatures.scale32()).write_volatile(host_features);
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// 5. Set the FEATURES_OK status bit
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status_bits |= StatusField::FeaturesOk.val32();
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ptr.add(MmioOffsets::Status.scale32()).write_volatile(status_bits);
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// 6. Re-read status to ensure FEATURES_OK is still set.
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// Otherwise, it doesn't support our features.
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let status_ok = ptr.add(MmioOffsets::Status.scale32()).read_volatile();
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// If the status field no longer has features_ok set,
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// that means that the device couldn't accept
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// the features that we request. Therefore, this is
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// considered a "failed" state.
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if false == StatusField::features_ok(status_ok) {
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print!("features fail...");
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ptr.add(MmioOffsets::Status.scale32()).write_volatile(StatusField::Failed.val32());
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return false;
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}
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// 7. Perform device-specific setup.
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// Set the queue num. We have to make sure that the
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// queue size is valid because the device can only take
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// a certain size.
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let qnmax = ptr.add(MmioOffsets::QueueNumMax.scale32()).read_volatile();
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ptr.add(MmioOffsets::QueueNum.scale32()).write_volatile(VIRTIO_RING_SIZE as u32);
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if VIRTIO_RING_SIZE as u32 > qnmax {
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print!("queue size fail...");
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return false;
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}
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// First, if the block device array is empty, create it!
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// We add 4095 to round this up and then do an integer
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// divide to truncate the decimal. We don't add 4096,
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// because if it is exactly 4096 bytes, we would get two
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// pages, not one.
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let num_pages = (size_of::<Queue>() + PAGE_SIZE - 1) / PAGE_SIZE;
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// println!("np = {}", num_pages);
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// We allocate a page for each device. This will the the
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// descriptor where we can communicate with the block
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// device. We will still use an MMIO register (in
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// particular, QueueNotify) to actually tell the device
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// we put something in memory. We also have to be
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// careful with memory ordering. We don't want to
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// issue a notify before all memory writes have
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// finished. We will look at that later, but we need
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// what is called a memory "fence" or barrier.
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ptr.add(MmioOffsets::QueueSel.scale32()).write_volatile(0);
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// Alignment is very important here. This is the memory address
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// alignment between the available and used rings. If this is wrong,
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// then we and the device will refer to different memory addresses
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// and hence get the wrong data in the used ring.
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// ptr.add(MmioOffsets::QueueAlign.scale32()).write_volatile(2);
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let event_queue_ptr = zalloc(num_pages) as *mut Queue;
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let queue_pfn = event_queue_ptr as u32;
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ptr.add(MmioOffsets::GuestPageSize.scale32()).write_volatile(PAGE_SIZE as u32);
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ptr.add(MmioOffsets::QueuePfn.scale32()).write_volatile(queue_pfn / PAGE_SIZE as u32);
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// Status queue
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ptr.add(MmioOffsets::QueueSel.scale32()).write_volatile(1);
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// Alignment is very important here. This is the memory address
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// alignment between the available and used rings. If this is wrong,
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// then we and the device will refer to different memory addresses
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// and hence get the wrong data in the used ring.
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// ptr.add(MmioOffsets::QueueAlign.scale32()).write_volatile(2);
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let status_queue_ptr = zalloc(num_pages) as *mut Queue;
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let queue_pfn = status_queue_ptr as u32;
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ptr.add(MmioOffsets::GuestPageSize.scale32()).write_volatile(PAGE_SIZE as u32);
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ptr.add(MmioOffsets::QueuePfn.scale32()).write_volatile(queue_pfn / PAGE_SIZE as u32);
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// 8. Set the DRIVER_OK status bit. Device is now "live"
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status_bits |= StatusField::DriverOk.val32();
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ptr.add(MmioOffsets::Status.scale32()).write_volatile(status_bits);
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let config_ptr = ptr.add(MmioOffsets::Config.scale32()) as *mut Config;
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let mut config = config_ptr.read_volatile();
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config.select = ConfigSelect::IdDevids as u8;
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config.subsel = 0;
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config_ptr.write_volatile(config);
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let id = config_ptr.read_volatile().config.ids;
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let mut dev = Device {
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event_queue: event_queue_ptr,
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status_queue: status_queue_ptr,
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dev: ptr,
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status_idx: 0,
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status_ack_used_idx: 0,
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status_buffer: kmalloc(EVENT_SIZE * EVENT_BUFFER_ELEMENTS) as *mut Event,
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event_idx: 0,
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event_ack_used_idx: 0,
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event_buffer: kmalloc(EVENT_SIZE * EVENT_BUFFER_ELEMENTS) as *mut Event,
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};
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for i in 0..EVENT_BUFFER_ELEMENTS {
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repopulate_event(&mut dev, i);
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}
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INPUT_DEVICES[idx] = Some(dev);
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true
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}
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}
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unsafe fn repopulate_event(dev: &mut Device, buffer: usize) {
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// Populate eventq with buffers, these must be at least the size of struct virtio_input_event.
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let desc = Descriptor {
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addr: dev.event_buffer.add(buffer) as u64,
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len: EVENT_SIZE as u32,
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flags: VIRTIO_DESC_F_WRITE,
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next: 0
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};
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let head = dev.event_idx as u16;
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(*dev.event_queue).desc[dev.event_idx as usize] = desc;
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dev.event_idx = (dev.event_idx + 1) % VIRTIO_RING_SIZE as u16;
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(*dev.event_queue).avail.ring[(*dev.event_queue).avail.idx as usize % VIRTIO_RING_SIZE] = head;
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(*dev.event_queue).avail.idx = (*dev.event_queue).avail.idx.wrapping_add(1);
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}
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fn pending(dev: &mut Device) {
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// Here we need to check the used ring and then free the resources
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// given by the descriptor id.
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unsafe {
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// Check the event queue first
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let ref queue = *dev.event_queue;
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while dev.event_ack_used_idx != queue.used.idx {
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let ref elem = queue.used.ring[dev.event_ack_used_idx as usize % VIRTIO_RING_SIZE];
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let ref desc = queue.desc[elem.id as usize];
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let event = (desc.addr as *const Event).as_ref().unwrap();
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print!("EAck {}, elem {}, len {}, addr 0x{:08x}: ", dev.event_ack_used_idx, elem.id, elem.len, desc.addr as usize);
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println!("Type = {:x}, Code = {:x}, Value = {:x}", event.event_type, event.code, event.value);
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repopulate_event(dev, elem.id as usize);
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dev.event_ack_used_idx = dev.event_ack_used_idx.wrapping_add(1);
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}
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// Next, the status queue
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let ref queue = *dev.status_queue;
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while dev.status_ack_used_idx != queue.used.idx {
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let ref elem = queue.used.ring[dev.status_ack_used_idx as usize % VIRTIO_RING_SIZE];
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print!("SAck {}, elem {}, len {}: ", dev.status_ack_used_idx, elem.id, elem.len);
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let ref desc = queue.desc[elem.id as usize];
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let event = (desc.addr as *const Event).as_ref().unwrap();
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println!("Type = {:x}, Code = {:x}, Value = {:x}", event.event_type, event.code, event.value);
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dev.status_ack_used_idx = dev.status_ack_used_idx.wrapping_add(1);
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}
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}
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}
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pub fn handle_interrupt(idx: usize) {
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unsafe {
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if let Some(bdev) = INPUT_DEVICES[idx].as_mut() {
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pending(bdev);
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}
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else {
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println!(
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"Invalid input device for interrupt {}",
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idx + 1
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);
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}
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}
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}
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@ -136,6 +136,7 @@ pub mod cpu;
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pub mod elf;
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pub mod fs;
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pub mod gpu;
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pub mod input;
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pub mod kmem;
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pub mod lock;
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pub mod page;
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