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With the nightly toolchain (2024-02-18) cargo check will flag up redundant imports either because they are pulled in by the prelude on earlier match. Remove those redundant imports. Signed-off-by: Rob Bradford <rbradford@rivosinc.com>
223 lines
7.2 KiB
Rust
223 lines
7.2 KiB
Rust
// Copyright © 2020, Oracle and/or its affiliates.
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//
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// Copyright 2018 Amazon.com, Inc. or its affiliates. All Rights Reserved.
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// SPDX-License-Identifier: Apache-2.0
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//
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// Portions Copyright 2017 The Chromium OS Authors. All rights reserved.
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// Use of this source code is governed by a BSD-style license that can be
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// found in the LICENSE-BSD-3-Clause file.
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use crate::layout::{
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BOOT_GDT_START, BOOT_IDT_START, BOOT_STACK_POINTER, PVH_INFO_START, ZERO_PAGE_START,
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};
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use crate::{EntryPoint, GuestMemoryMmap};
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use hypervisor::arch::x86::gdt::{gdt_entry, segment_from_gdt};
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use hypervisor::arch::x86::regs::CR0_PE;
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use hypervisor::arch::x86::{FpuState, SpecialRegisters, StandardRegisters};
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use std::sync::Arc;
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use std::{mem, result};
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use vm_memory::{Address, Bytes, GuestMemory, GuestMemoryError};
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#[derive(Debug)]
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pub enum Error {
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/// Failed to get SREGs for this CPU.
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GetStatusRegisters(hypervisor::HypervisorCpuError),
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/// Failed to set base registers for this CPU.
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SetBaseRegisters(hypervisor::HypervisorCpuError),
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/// Failed to configure the FPU.
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SetFpuRegisters(hypervisor::HypervisorCpuError),
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/// Setting up MSRs failed.
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SetModelSpecificRegisters(hypervisor::HypervisorCpuError),
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/// Failed to set SREGs for this CPU.
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SetStatusRegisters(hypervisor::HypervisorCpuError),
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/// Checking the GDT address failed.
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CheckGdtAddr,
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/// Writing the GDT to RAM failed.
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WriteGdt(GuestMemoryError),
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/// Writing the IDT to RAM failed.
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WriteIdt(GuestMemoryError),
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/// Writing PDPTE to RAM failed.
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WritePdpteAddress(GuestMemoryError),
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/// Writing PDE to RAM failed.
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WritePdeAddress(GuestMemoryError),
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/// Writing PML4 to RAM failed.
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WritePml4Address(GuestMemoryError),
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/// Writing PML5 to RAM failed.
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WritePml5Address(GuestMemoryError),
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}
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pub type Result<T> = result::Result<T, Error>;
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/// Configure Floating-Point Unit (FPU) registers for a given CPU.
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///
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/// # Arguments
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///
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/// * `vcpu` - Structure for the VCPU that holds the VCPU's fd.
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pub fn setup_fpu(vcpu: &Arc<dyn hypervisor::Vcpu>) -> Result<()> {
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let fpu: FpuState = FpuState {
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fcw: 0x37f,
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mxcsr: 0x1f80,
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..Default::default()
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};
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vcpu.set_fpu(&fpu).map_err(Error::SetFpuRegisters)
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}
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/// Configure Model Specific Registers (MSRs) for a given CPU.
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///
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/// # Arguments
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///
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/// * `vcpu` - Structure for the VCPU that holds the VCPU's fd.
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pub fn setup_msrs(vcpu: &Arc<dyn hypervisor::Vcpu>) -> Result<()> {
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vcpu.set_msrs(&vcpu.boot_msr_entries())
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.map_err(Error::SetModelSpecificRegisters)?;
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Ok(())
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}
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/// Configure base registers for a given CPU.
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///
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/// # Arguments
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///
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/// * `vcpu` - Structure for the VCPU that holds the VCPU's fd.
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/// * `entry_point` - Description of the boot entry to set up.
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pub fn setup_regs(vcpu: &Arc<dyn hypervisor::Vcpu>, entry_point: EntryPoint) -> Result<()> {
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let regs = match entry_point.setup_header {
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None => StandardRegisters {
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rflags: 0x0000000000000002u64,
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rip: entry_point.entry_addr.raw_value(),
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rbx: PVH_INFO_START.raw_value(),
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..Default::default()
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},
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Some(_) => StandardRegisters {
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rflags: 0x0000000000000002u64,
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rip: entry_point.entry_addr.raw_value(),
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rsp: BOOT_STACK_POINTER.raw_value(),
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rsi: ZERO_PAGE_START.raw_value(),
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..Default::default()
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},
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};
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vcpu.set_regs(®s).map_err(Error::SetBaseRegisters)
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}
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/// Configures the segment registers and system page tables for a given CPU.
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///
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/// # Arguments
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///
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/// * `mem` - The memory that will be passed to the guest.
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/// * `vcpu` - Structure for the VCPU that holds the VCPU's fd.
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pub fn setup_sregs(mem: &GuestMemoryMmap, vcpu: &Arc<dyn hypervisor::Vcpu>) -> Result<()> {
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let mut sregs: SpecialRegisters = vcpu.get_sregs().map_err(Error::GetStatusRegisters)?;
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configure_segments_and_sregs(mem, &mut sregs)?;
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vcpu.set_sregs(&sregs).map_err(Error::SetStatusRegisters)
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}
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const BOOT_GDT_MAX: usize = 4;
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fn write_gdt_table(table: &[u64], guest_mem: &GuestMemoryMmap) -> Result<()> {
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let boot_gdt_addr = BOOT_GDT_START;
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for (index, entry) in table.iter().enumerate() {
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let addr = guest_mem
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.checked_offset(boot_gdt_addr, index * mem::size_of::<u64>())
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.ok_or(Error::CheckGdtAddr)?;
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guest_mem.write_obj(*entry, addr).map_err(Error::WriteGdt)?;
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}
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Ok(())
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}
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fn write_idt_value(val: u64, guest_mem: &GuestMemoryMmap) -> Result<()> {
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let boot_idt_addr = BOOT_IDT_START;
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guest_mem
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.write_obj(val, boot_idt_addr)
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.map_err(Error::WriteIdt)
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}
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pub fn configure_segments_and_sregs(
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mem: &GuestMemoryMmap,
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sregs: &mut SpecialRegisters,
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) -> Result<()> {
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let gdt_table: [u64; BOOT_GDT_MAX] = {
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// Configure GDT entries as specified by PVH boot protocol
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[
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gdt_entry(0, 0, 0), // NULL
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gdt_entry(0xc09b, 0, 0xffffffff), // CODE
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gdt_entry(0xc093, 0, 0xffffffff), // DATA
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gdt_entry(0x008b, 0, 0x67), // TSS
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]
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};
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let code_seg = segment_from_gdt(gdt_table[1], 1);
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let data_seg = segment_from_gdt(gdt_table[2], 2);
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let tss_seg = segment_from_gdt(gdt_table[3], 3);
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// Write segments
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write_gdt_table(&gdt_table[..], mem)?;
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sregs.gdt.base = BOOT_GDT_START.raw_value();
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sregs.gdt.limit = mem::size_of_val(&gdt_table) as u16 - 1;
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write_idt_value(0, mem)?;
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sregs.idt.base = BOOT_IDT_START.raw_value();
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sregs.idt.limit = mem::size_of::<u64>() as u16 - 1;
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sregs.cs = code_seg;
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sregs.ds = data_seg;
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sregs.es = data_seg;
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sregs.fs = data_seg;
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sregs.gs = data_seg;
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sregs.ss = data_seg;
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sregs.tr = tss_seg;
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sregs.cr0 = CR0_PE;
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sregs.cr4 = 0;
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Ok(())
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}
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#[cfg(test)]
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mod tests {
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use super::*;
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use vm_memory::GuestAddress;
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fn create_guest_mem() -> GuestMemoryMmap {
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GuestMemoryMmap::from_ranges(&[(GuestAddress(0), 0x10000)]).unwrap()
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}
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fn read_u64(gm: &GuestMemoryMmap, offset: GuestAddress) -> u64 {
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gm.read_obj(offset).unwrap()
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}
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#[test]
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fn segments_and_sregs() {
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let mut sregs: SpecialRegisters = Default::default();
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let gm = create_guest_mem();
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configure_segments_and_sregs(&gm, &mut sregs).unwrap();
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assert_eq!(0x0, read_u64(&gm, BOOT_GDT_START));
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assert_eq!(
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0xcf9b000000ffff,
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read_u64(&gm, BOOT_GDT_START.unchecked_add(8))
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);
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assert_eq!(
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0xcf93000000ffff,
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read_u64(&gm, BOOT_GDT_START.unchecked_add(16))
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);
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assert_eq!(
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0x8b0000000067,
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read_u64(&gm, BOOT_GDT_START.unchecked_add(24))
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);
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assert_eq!(0x0, read_u64(&gm, BOOT_IDT_START));
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assert_eq!(0, sregs.cs.base);
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assert_eq!(0xffffffff, sregs.ds.limit);
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assert_eq!(0x10, sregs.es.selector);
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assert_eq!(1, sregs.fs.present);
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assert_eq!(1, sregs.gs.g);
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assert_eq!(0, sregs.ss.avl);
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assert_eq!(0, sregs.tr.base);
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assert_eq!(0, sregs.tr.g);
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assert_eq!(0x67, sregs.tr.limit);
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assert_eq!(0xb, sregs.tr.type_);
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assert_eq!(0, sregs.tr.avl);
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assert_eq!(CR0_PE, sregs.cr0);
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assert_eq!(0, sregs.cr4);
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}
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}
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