ntoseye

Windows kernel debugger for Linux hosts running Windows under KVM/QEMU. Essentially, WinDbg for Linux.
Features
- Command line interface
- WinDbg style commands
- Kernel debugging
- PDB fetching & parsing for offsets
- Breakpointing (kernel, usermode)
- Two debug backends: QEMU's
gdbstub(default) and Windows KD over a serial pipe (KDCOM, see Choosing a backend)
Supported Windows
ntoseye currently only supports Windows 10 and 11 guests.
Disclaimer
ntoseye needs to download symbols and images to initialize required offsets, it will only download symbols from Microsoft's official symbol server. All files which will be read/written to will be located in $XDG_CONFIG_HOME/ntoseye, which includes the following subfolders:
commands/for custom scripted commandsimages/for binaries downloaded from the VMsymbols/for PDBs
Preview

Getting started
Install via cargo
Building
Usage
It is recommended that you run the following command before running ntoseye or a VM:
|
Note that you may need to run ntoseye with sudo aswell (last resort, try command above first).
To view command line arguments, run ntoseye --help. The debugger is self documented, so pressing tab will display completions and descriptions for commands, symbols, and types.
For examples, refer here.
Choosing a backend
ntoseye can talk to the guest two ways. Pick with --backend gdb (default) or --backend kd.
gdb (default) |
kd |
|
|---|---|---|
| Transport | QEMU's gdbstub |
Windows KD over a serial pipe (KDCOM) |
| Requires in-guest configuration | No (guest is unaware it's being debugged) | Yes (bcdedit /debug on; anti-debug code, PatchGuard, and some Windows behaviour change once enabled) |
| Supports usermode breakpoints | No | Yes |
| Native breakpoints | gdb Z0 packets |
DbgKdWriteBreakPointApi |
See VM configuration for the host-side setup of each backend.
VM configuration
It is recommended to disable memory paging and memory compression within the guest operating system to avoid memory-related issues. This only needs to be done once per Windows installation. Run the following commands in PowerShell (Run as Administrator):
Get-CimInstance Win32_ComputerSystem | Set-CimInstance -Property @{ AutomaticManagedPagefile = $false }
Get-CimInstance Win32_PageFileSetting | Remove-CimInstance
Disable-MMAgent -MemoryCompression
Restart-Computer
GDBSTUB
Default backend. Expose QEMU's gdbstub on 127.0.0.1:1234 by passing -s -S.
QEMU
Append -s -S to the qemu command.
virt-manager
Add the following to the XML configuration:
...
KDCOM
Run with --backend kd. In the guest, enable kernel debugging (run as Administrator, then reboot):
bcdedit /debug on
bcdedit /dbgsettings serial debugport:1 baudrate:115200
Use debugport:2 instead of :1 if the KD chardev ends up as COM2 (see the virt-manager subsection below).
QEMU
Add a Unix-socket chardev and route a serial port to it:
-chardev socket,id=kd,path=/tmp/ntoseye-kd.sock,server=on,wait=off -serial chardev:kd
Then connect: ntoseye --backend kd.
virt-manager
[!WARNING] virt-manager auto-adds a
<serial>console device on every VM, which claims COM1. Either replace that device with one pointing at the KD socket (KD becomes COM1, usedebugport:1), or leave it and add the KD chardev viaqemu:commandline(KD becomes COM2, usedebugport:2).
Option A (recommended): replace the auto-added serial. KD is COM1, debugport:1 is correct.
Option B: keep the auto-added serial and append the KD chardev via qemu:commandline. KD is COM2, use debugport:2.
...
Scripting
ntoseye auto-loads any *.lua file in $XDG_CONFIG_HOME/ntoseye/commands/ at REPL startup. Scripts can register new commands that appear in tab completion and dispatch alongside the builtins. Run reload in the REPL to pick up script edits without restarting.
Bundled scripts can be installed/updated with:
ntoseye scripts install <source> also accepts:
- a local
.luafile - a local directory of
.luafiles - single HTTPS URL ending in
.lua
Local and remote installs print a trust warning and prompt before copying; use --yes for non-interactive installs and --force to overwrite existing scripts. Remote installs are limited to one .lua file and print the downloaded content's SHA-256.
register_command
-- with per-argument tab-completion hints:
register_command
Completion strategies: "none", "symbol", "type", "process", "thread", "breakpoint", "driver". The strategies table is positional; arg 1 uses the first entry, arg 2 the second, etc. Missing positions fall back to "none". Pass {} for an empty table if you want completion turned off explicitly.
Scripts run with a constrained Lua standard library: base globals plus table, string, math, and utf8. Host filesystem/process/module access through Lua's io, os, and package libraries is not available; debugger interaction should go through ntos.
Host API is exposed under a global ntos table:
| function | returns |
|---|---|
ntos.ps([filter]) |
array of {pid, name, eprocess} |
ntos.process(target) / ntos.try_process(target) |
one {pid, name, eprocess}; strict form raises with a candidate list when ambiguous, try_ form collapses both no-match and ambiguous into nil (call process() if you need to surface the ambiguity to the user); numeric targets require exact PID |
ntos.command_usage() |
nil (prints the current command's registered help) |
ntos.eval(expr) / ntos.try_eval(expr) |
Address / Address or nil |
ntos.read_byte/word/dword/qword(addr) |
integer / integer / integer / Address |
ntos.try_read_byte/word/dword/qword(addr) |
value or nil |
ntos.read_bytes(addr, len) / ntos.try_read_bytes(addr, len) |
Lua string / Lua string or nil |
ntos.read_struct(type, addr) / ntos.try_read_struct(type, addr) |
table / table or nil (raises if type is unknown, that always indicates a script bug, not a runtime condition); only top-level pointer/primitive/bitfield/enum fields decode (nested struct/union/array fields come back as raw byte strings; read those explicitly with try_read_field_* using offset_of) |
ntos.try_read_unicode_string(addr) |
string or nil (addr points to a _UNICODE_STRING) |
ntos.write_byte/word/dword/qword(addr, v) |
nil |
ntos.write_bytes(addr, str) |
nil |
ntos.loaded_module_list() |
Address (value printed in the startup banner) |
ntos.driver_objects() / ntos.try_find_driver_object(name) |
array of driver tables / driver table or nil |
ntos.kernel_modules() / ntos.try_find_kernel_module(name) |
array of {name, short_name, base, size, end} / one module or nil (match is exact on short_name, substring on name, case-insensitive) |
ntos.search(addr, len, pattern) / ntos.search_first(addr, len, pattern) |
array of Addresses / Address or nil (pattern is a raw Lua byte string, e.g. "\x48\x83...") |
ntos.offset_of(type, field) / ntos.try_offset_of(type, field) |
integer / integer or nil |
ntos.type_size(type) / ntos.try_type_size(type) |
integer / integer or nil |
ntos.fields_of(type) / ntos.try_fields_of(type) |
array of field tables / array or nil |
ntos.try_read_field_byte/word/dword/qword(type, field, addr) |
value or nil (raises if type/field is unknown, that always indicates a script bug, not a runtime condition) |
ntos.containing_record(entry, type, field) |
Address |
ntos.can_read(addr, len) |
boolean |
ntos.is_kernel_address(addr) |
boolean (true if addr is in the canonical kernel half) |
ntos.try_closest_symbol(addr) / ntos.try_closest_symbol_any(addr) |
symbol table or nil |
ntos.format_symbol(addr) |
"module!name+0x<offset>" (no offset suffix when zero); falls back to hex if no symbol resolves |
ntos.read_register(name) |
Address (read-only; returned as Address so high-half values render correctly and compose with pointer math, use :to_int() for bit-tests on small values) |
ntos.addr(n) |
Address (constructor for literals) |
Addresses are an opaque userdata supporting + - & | ^ << >> < == and tostring (renders as hex).
Credits
Functionality regarding initialization of guest information was written with the help of the following sources: