vasilito a09269706d v4.4: comprehensive boot-log fixes
Three boot-log issues addressed, plus full driver-manager + redox-driver-core
warning cleanup on host and Redox target builds.

1. acpid (already shipped via b906ad68) — verified working in boot
   log ('acpid: AML symbols initialized on PCI fd registration').

2. redbear-upower phantom-shutdown bug. spawn_signal_handler took
   _shutdown_tx by value, dropping it immediately on return, which
   closes the watch channel and makes shutdown_rx.changed() return
   RecvError right away. Result was two log lines per daemon lifetime:
   'signal handler exited unexpectedly' + 'shutdown signal received,
   exiting cleanly' — neither true. Fix: pass shutdown_tx.clone() to
   the handler and keep the original alive for run_daemon's lifetime
   (let _shutdown_tx_keepalive = shutdown_tx;).

3. driver-manager initfs sidecar warning. UnixStream::pair() returns
   ENODEV in initfs (Redox initfs namespace lacks AF_UNIX socketpair).
   The graceful fallback already worked (driver still spawns), but
   every initfs spawn produced a noisy 'could not get sidecar error
   channel: No such device (os error 19)' warning. Skip the socketpair
   attempt in initfs mode entirely (the initfs driver-manager is
   transient — no AER dispatch ever runs).

4. driver-manager initfs timeline-log warning. /tmp is not writable
   in initfs. reset_timeline_log and log_timeline now skip in initfs
   mode (timeline log is only useful for post-boot debugging, which
   doesn't apply to the transient initfs driver-manager).

5. iommu_group_for now queries the real bincode protocol. Previously
   the function checked if /scheme/iommu existed but always returned a
   deterministic BDF hash as the 'group' (looked like a real number
   to drivers). Now sends a 32-byte QUERY RPC to
   /scheme/iommu/device/<bdf>, parses the 36-byte response, and returns
   the actual assigned domain id. Unassigned devices return Unavailable
   (drivers see '0'). Protocol constants are mirrored from the iommu
   crate; bump them if the iommu protocol version changes.

6. driver-manager + redox-driver-core: warning cleanup. Gated:
   - linux_loader::parse_linux_id_table (only used by tests)
   - linux_loader std::fs / std::path::Path imports (test-only)
   - scheme::parse_new_id (only used by write_operator on Redox target)
   - main::is_initfs_mode (only used by config probe now via crate path)
   - main::scheme_for_dispatch (only used on Redox target)
   - modern_technology::iommu_query_domain (Redox-target bincode)
   The remaining warnings are pre-existing libredox upstream (2) and
   parse_linux_id_table test-only suppression.

Verified:
  cargo check (host target)        clean
  cargo check --target x86_64-...  clean
  cargo test --bin driver-manager   70 passed
  cargo test --lib redox-driver-core 32 passed
2026-07-25 07:59:44 +09:00
2026-07-25 07:59:44 +09:00

Red Bear OS

Red Bear OS

A microkernel operating system written in Rust — derived from Redox OS, built for bare metal.

MIT x86_64 Status


What is Red Bear OS?

Red Bear OS is a general-purpose, Unix-like operating system with a microkernel architecture, written entirely in Rust. It is a full fork of Redox OS (baseline 0.3.1), actively developed on branch 0.3.1 with hardware enablement, multiple filesystems, a native greeter and login system, and a KDE Plasma desktop path.

We aim to stay close to upstream Redox — diverging only where necessary to add missing functionality, fix bugs, or support new hardware. The build system itself is under constant active development alongside the OS.

It ships with several first-in-class Rust-native tools found nowhere else in the OS world:

  • cub — an AUR-inspired package manager with pacman-style CLI (-S/-Q/-R) and a ratatui TUI that converts Arch Linux PKGBUILDs into Red Bear recipes on the fly
  • tlc (Twilight Commander) — a pure-Rust reimplementation of Midnight Commander; dual-panel file manager, built-in editor and viewer, 8 color themes, 1204 unit tests, zero unsafe code
  • redbear-power — interactive ratatui TUI for live CPU frequency, governor, and thermal monitoring with on-the-fly P-state control

These are joined by dozens of redbear-* system utilities — redbear-netctl (network control), redbear-info (hardware diagnostics), redbear-acmd (admin CLI), redbear-mtr, redbear-nmap, redbear-btctl, and many more — all written in Rust, all built from source alongside the OS.

Goals:

  • AMD & Intel parity — equal-priority bare-metal support for both platforms
  • KDE Plasma desktop — Wayland-based desktop environment via the KWin compositor
  • Hardware GPU acceleration — AMD (amdgpu) and Intel GPU drivers via redox-drm
  • cub package ecosystem — AUR → recipe.toml pipeline giving access to thousands of packages
  • First-class subsystems — USB, WiFi, Bluetooth, ext4, FAT, GRUB, D-Bus (none optional)
  • Power management — CPU frequency scaling, thermal monitoring, RAPL, sleep states
  • Offline-first, reproducible builds — BLAKE3-verified source archives with content-hash caching

Our Git Server

Red Bear OS lives on a self-hosted Gitea instance at https://gitea.redbearos.org. This is the canonical home — no GitHub, GitLab, or Codeberg mirror is authoritative. There is exactly one repository: all component sources (kernel, relibc, drivers, system utilities) live here as submodule branches or tracked trees in local/sources/.

Field Value
Host https://gitea.redbearos.org
User vasilito
Web UI https://gitea.redbearos.org/vasilito
Main repo https://gitea.redbearos.org/vasilito/RedBear-OS

Authentication tokens are per-session credentials — never stored in the repo. See local/AGENTS.md § Our Git Server for the full operator runbook.


Quick Start

Prerequisites

Linux x86_64 host with Rust nightly, QEMU, nasm, and standard build tools. See the Redox Build Guide for full setup.

Build & Run

# Clone (read-only)
git clone https://gitea.redbearos.org/vasilito/RedBear-OS.git
cd RedBear-OS

# Authenticated clone — supply token via env var
git clone https://vasilito:${REDBEAR_GITEA_TOKEN}@gitea.redbearos.org/vasilito/RedBear-OS.git

# Canonical build entry point
./local/scripts/build-redbear.sh redbear-mini     # Text-only target
./local/scripts/build-redbear.sh redbear-full     # Desktop-capable target

# Boot in QEMU
make qemu

local/scripts/build-redbear.sh is the only supported build entry point. It handles .config parsing, prefix staleness detection, protected-recipe authorization, pre-cooking critical packages, and source fingerprint tracking. Direct make invocations bypass these gates. See AGENTS.md § Build Commands for details.

Config Targets

Target Type Description
redbear-full Desktop-capable GPU drivers + Wayland compositor + Qt 6.11.1 + KF6 6.27.0 + KWin + SDDM + greeter + D-Bus
redbear-mini Console Text-only recovery / install target with tlc, cub, and redbear-* utilities
redbear-grub Console Text-only with GRUB boot manager

Current Status

Red Bear OS boots to a login prompt in QEMU with working wired networking, D-Bus system bus, hardware detection daemons, and three filesystem backends (RedoxFS, ext4, FAT). The ISO builds successfully on branch 0.3.1. Graphics packages are frozen at latest upstream stable (Qt 6.11.1, KF6 6.27.0, Plasma 6.7.2, SDDM 0.21.0, Mesa 26.1.4, wayland-protocols 1.49).

Area Status
Boot (ACPI, x2APIC, SMP) Bare-metal proven — Ryzen Threadripper 128-thread verified
Userspace drivers (PCI, storage, net) Working in QEMU
Filesystems — RedoxFS, ext4, FAT Scheme daemons + mkfs/fsck tools
D-Bus system bus + services Working — login1, PolicyKit, UDisks, UPower
cub package manager 🟡 17-module Rust workspace; AUR → recipe pipeline; 70+ tests
tlc file manager 🟡 113 .rs files, 46k+ lines; 1497 tests; 8 skins; VFS archives; first-paint panic fixed (2026-07-24)
IRQ / PCI / MSI-X / IOMMU 🟡 QEMU-proven; shared-IRQ re-arm bug class swept across 11 drivers (2026-07-20); hardware validation open
POSIX gaps (relibc) 🟡 ~85% coverage; PATCHED-VIA-PATH-FORK — relibc changes are committed directly to local/sources/relibc/; local/patches/relibc/ holds reference and archived patches only
DRM/KMS display drivers 🟡 AMD + Intel + virtio-gpu compile; HW validation open
Mesa — llvmpipe + virgl 🟡 Builds (virtio_gpu_dri.so, 17.4 MB); virgl EGL runtime probe open
3D userland (iris / radeonsi / Vulkan) 🔴 Not built
SDDM display manager + Greeter/Login 🟡 Wired in redbear-full; graphical login blocked by Qt6 Wayland crash
Qt 6.11.1 (Core, Gui, DBus, Wayland) 🟡 Builds successfully; Wayland null+8 crash blocks runtime
KF6 Frameworks — 40/40 🟡 All frameworks build; KWin cooks successfully
Wayland compositor 🟡 Bounded proof; blocked by Qt6 Wayland protocol crash
KWin 🟡 Builds successfully (redox-drm + Qt6 Wayland); runtime blocked by Qt6 Wayland crash in wl_proxy_add_listener
KDE Plasma 🔴 Runtime blocked by Qt6 Wayland null+8 crash — depends on KWin
WiFi (Intel iwlwifi) 🟡 VFIO/passthrough bounded runtime validation framework exists
USB / Bluetooth 🟡 xHCI mature in QEMU: 51-flag quirks, capability gating, 36-code error recovery, Linux hub enumeration state machine, hub + hub-child enumeration proven, storage BOT proven; USB 2.0 HW LPM (L1) attach path implemented; endpoint-indexing bug class fixed across acmd/ecmd/usbaudiod/usbhidd; UAS/HID-parser expansion in flight; Bluetooth controller path planned

Where help is most wanted: Qt6 Wayland protocol crash — the #1 blocker for graphical desktop · AMD/Intel GPU hardware validation on bare metal · USB controller maturity · WiFi native control plane · cub AUR pipeline hardening · package maintainers for the growing recipe catalog · tlc VFS remote backends and archive support


How It Works

Red Bear OS uses a userspace driver model — all drivers run as unprivileged daemons communicating through the kernel's scheme-based IPC.

┌─────────────────────────────────────────────────────────────────┐
│                         KERNEL (microkernel)                     │
│          schemes: memory  ·  irq  ·  event  ·  pipe  ·  debug   │
└──────────────────────────┬──────────────────────────────────────┘
                           │
     ┌─────────────────────┼─────────────────────────┐
     ▼                     ▼                         ▼
┌──────────┐   ┌──────────────────┐   ┌──────────────────────┐
│  pcid    │   │  e1000d  xhcid   │   │  vesad  redox-drm    │
│ PCI enum │   │  Intel   USB 3.0 │   │  fbdev  GPU manager  │
└──────────┘   └──────────────────┘   └──────────────────────┘
┌──────────┐   ┌──────────────────┐   ┌──────────────────────┐
│  ext4d   │   │  ps2d   evdevd   │   │  thermald  cpufreqd  │
│  fatd    │   │  KB+mouse input  │   │  thermal   CPU freq  │
└──────────┘   └──────────────────┘   └──────────────────────┘
┌──────────┐   ┌──────────────────┐   ┌──────────────────────┐
│  iommu   │   │  acpid           │   │  dbus-daemon         │
│  DMA map │   │  power mgmt      │   │  system + session    │
└──────────┘   └──────────────────┘   └──────────────────────┘

The kernel provides minimal services: memory, interrupts, and IPC. Everything else — filesystems, networking, graphics, input, power management, D-Bus — runs in userspace. Hardware quirks are handled by a data-driven system in redox-driver-sys with compiled-in tables, TOML runtime configuration, and DMI matching.


Engineering Standards

Red Bear OS operates under strict discipline. Full policies: local/AGENTS.md.

Rule
Never delete to "fix" a build If a package breaks, fix the root cause. Never remove, ignore, or comment out a package, service, or config to make a build pass.
Zero stubs No fake headers, #ifdef no-ops, or "make it compile" shortcuts. Missing functionality must be implemented properly in the right component.
Single repository All component sources live here — no per-component repos. 9 submodule/<component> branches.
Local fork model Core components (kernel, relibc, base, bootloader, installer, redoxfs, userutils) are maintained as local forks in local/sources/ with immutability guarantees; syscall and libredox are wired as Cargo path dependencies via redbear-rt consumers, not via recipes/<comp>/recipe.toml path =.
Adapt to upstream Red Bear adapts to upstream API/ABI changes — never pins, downgrades, or holds back a dependency.
Free/libre only No proprietary, source-unavailable, or redistributability-restricted dependencies. MIT licensed.

Documentation


Contributing

Red Bear OS is a full fork of Redox OS. Upstream sources are frozen and archived; all custom work lives in local/ and survives every build operation.

local/
├── sources/    # Local forks of core components (kernel, relibc, base, bootloader, …)
├── recipes/    # Custom packages — drivers, GPU stack, system daemons, branding
├── patches/    # Durable changes to upstream source trees
│   └── (orphan-patch governance: every patch must correspond to work
│        present in the matching fork source tree. `verify-patch-content.sh`
│        enforces this on every build preflight. See
│        `local/docs/PATCH-PRESERVATION-AUDIT-2026-07-12.md` for the audit
│        and AGENTS.md § "Orphan-Patch Supersession Decision Tree" for the
│        decision flow when an orphan is detected.)
├── docs/       # Integration and planning documentation
└── scripts/    # Build, test, validation, and release tooling

We're Looking For

Role What you'd work on
Package maintainers Port and maintain AUR packages through cub's pipeline; write and test recipe.toml files for Red Bear OS; improve the PKGBUILD → recipe conversion
Driver developers AMD/Intel GPU drivers, USB controller maturity, WiFi native control plane, Bluetooth
Graphics stack engineers Qt6 Wayland crash fix (the #1 desktop blocker), Mesa virgl runtime, KWin Wayland compositor
Systems/Rust engineers Kernel syscalls, relibc POSIX gaps, filesystem daemons, D-Bus services, hardware quirks
TUI/app developers tlc feature completion, cub TUI polish, redbear-power enhancements, new redbear-* utilities

Contributions are welcome with or without AI assistance — we care about quality, not how the code was produced. Pick an area from the status table above, check the relevant plan doc, and dive in.


License

MIT — same as upstream Redox OS.

S
Description
RedBear Operating System, based on RedoxOS. Licenced under MIT license.
https://redbearos.org
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