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DanOS Filesystem Hierarchy Standard (DFHS)
Most modern Unix and Unix-like operating systems follow the FHS. DanOS has its own FHS structure which extends the unix FHS. This is provided by virtual file system driver (VFS).
Directory structure
| Path | Description |
|---|---|
| / | Primary hierarchy root and root directory of the entire file system hierarchy. |
| /bin | Essential command binaries that need to be available in single-user mode, including to bring up the system or repair it, for all users (e.g., cat, ls, cp). |
| /boot | Boot loader files (e.g., EFI, initial-ramdisk.img ). |
| /dev | POSIX Device files (e.g., /dev/null, /dev/disk0, /dev/tty, /dev/random). |
| /etc | Host-specific system-wide configuration files. |
| /home | Users' home directories, containing saved files, personal settings, etc. |
| /lib | Libraries essential for the binaries in /bin and /sbin. eg realtime, system, ipc etc. |
| /sbin | Essential system binaries (e.g init) |
| /srv | Site-specific data served by this system, such as data and scripts for web servers, data offered by FTP servers, and repositories for version control systems |
| /system | DanOS operating system files (similar idea to C:\Windows). A true representation of danos — its layout mirrors the source tree, so /system is what danos is. |
| /system/devices | danos virtual device tree e.g. similar to /sys on linux but with danos device tree conventions (the structures in the devices module) |
| /system/drivers | driver binaries, one sub-project each (e.g. /system/drivers/pci-bus, /system/drivers/ps2-bus) |
| /system/services | system-service binaries — the VFS server, init, and other user-mode servers (e.g. /system/services/vfs, /system/services/init) |
| /system/kernel | the kernel image |
| /tmp | Directory for temporary files (see also /var/tmp). Often not preserved between system reboots and may be severely size-restricted. |
| /usr | Secondary hierarchy for read-only user data; contains the majority of (multi-)user utilities and applications. Should be shareable and read-only. |
| /var | Variable files: files whose content is expected to continually change during normal operation of the system, such as logs, spool files, and temporary e-mail files. |
File types
POSIX specifies the long format of the ls command to represent the Unix file type as the first letter for an entry.
| type | symbol | Description |
|---|---|---|
| regular | - | An ordinary file holding an uninterpreted byte stream. Reads and writes are positional, and the file grows on demand (e.g., a binary in /bin, a config file in /etc). |
| directory | d | A container mapping names to other files. It may only be modified through directory operations, never written to directly. |
| symbolic link | l | A file whose contents are a path that is resolved in its place. The target need not exist, and may cross mount points. |
| FIFO special | p | A named pipe: an in-order byte stream between processes, where writers block until a reader opens the other end. |
| block special | b | A device node addressed in fixed-size blocks with the kernel free to buffer and reorder access (e.g., /dev/disk0). |
| character special | c | A device node addressed as an unbuffered byte stream, delivered to the driver in order (e.g., /dev/tty, /dev/null). |
| socket | s | A named endpoint for bidirectional message-passing between processes, bound to a path rather than an address. |
/dev
/dev holds the names through which processes reach devices. It is deliberately not
the device tree: the tree — every node discovered by ACPI or PCI enumeration, with its
resources and its parent — lives under /system/devices and is
addressed by device id. /dev is the much smaller set of devices that have a driver
willing to serve them, addressed by name.
A device node is not a file the VFS can read. The bytes live in a driver process
(drivers.md), so opening a /dev name has to resolve to that driver's
IPC endpoint, and subsequent reads and writes are calls against it. This is what
system/services/vfs/vfs.zig reserves for M10 and what the Stat.kind field is for; none of it is
implemented today. The current VFS is a flat, in-memory ramfs of eight nodes, with no
directories at all and kind hardcoded to zero. The three sections below describe the
intended shape, and are honest about which parts the kernel can already support.
Character devices
A character device is a byte stream with no addressable position: bytes are delivered
to the driver in the order written, and a read consumes what is there. Terminals,
serial lines, keyboards and mice are all of this shape. These are the natural first
device nodes in danos, because a character driver needs nothing the kernel doesn't
already provide — it claims its device, maps its registers with mmio_map, and blocks
on replyWait for either an interrupt or a client request. system/drivers/ps2-bus/ps2-bus.zig
is already that program, minus the file-node client half.
The obstacle was never the file type; it is which hardware a ring-3 driver can reach.
Direct in/out from user space is still a #GP (no TSS I/O bitmap, IOPL never raised),
but a driver no longer needs it: io_read/io_write grant port access the same way
mmio_map grants memory — gated by device_claim and the device's discovered io_port
resource. So the 16550 UART at 0x3F8 and the PS/2 controller at 0x60/0x64 (and thus
/dev/ttyS0 and a keyboard node) are now writable as ordinary ring-3 drivers; the
low-rate legacy hardware that needs port I/O is fine with a syscall per access. A
memory-mapped device such as the framebuffer, needing no port I/O at all, remains the
easiest first entry.
Block devices
A block device is addressed in fixed-size blocks and, unlike a character device, the layer above is free to buffer, reorder, coalesce and retry requests against it. Disks and other persistent storage are the whole population of this class.
A block driver is now writable, but not yet memory-safe. Every storage controller
worth naming is a bus master: it is programmed by handing it the physical address of a
descriptor ring and left to read and write memory on its own. That ring is exactly what
dma_alloc now provides — physically contiguous, pinned, uncacheable, with its
physical address disclosed — and /lib/mmio's barriers order the descriptor writes
against the doorbell, and msi_bind delivers completions. So an AHCI or NVMe driver
can be written today (the M14/M15 work in driver-model.md; the earlier
"cannot host a block driver at all" is no longer true).
What is not yet true is that it is safe. A device programmed with an arbitrary physical
address writes to arbitrary physical memory, and page tables do not sit between a device
and RAM — an IOMMU does. The IOMMU is now detected (M16), but no translation domains
are programmed, so granting a DMA-capable device to a driver process is still equivalent
to granting ring 0. Until per-device domains confine a driver's DMA to the buffers it
dma_alloc'd, a block driver works but forfeits the isolation that motivates user-space
drivers — enforcement is the next step, and lands with that first driver. A ramdisk over
the initial ramdisk remains the one block-shaped thing that needs no driver process at all.
Pseudo-devices
A pseudo-device has the interface of a device and no hardware behind it: /dev/null
discarding writes and reading as end-of-file, /dev/zero reading as an endless run of
zero bytes, /dev/full failing writes with ENOSPC, /dev/random and /dev/urandom
yielding unpredictable bytes.
These are the only /dev entries danos can implement immediately, and they are the
sensible place to start, because they are exactly the entries that need no driver
process, no device_claim, no MMIO grant and no interrupt. The VFS server answers them
out of its own address space — null and zero are a few lines each in
system/services/vfs/vfs.zig's read and write handlers. Doing so forces the two pieces of
structure that every later device node depends on and that the flat ramfs currently
lacks: a directory, so that /dev/null is a path rather than a name; and a populated
Stat.kind, so that a caller can tell a character device from a regular file.
/dev/random is the one that is not free. It needs an entropy source, and the honest
options on this kernel are RDRAND/RDSEED where CPUID advertises them, and the HPET
counter's low bits as a poor fallback. Neither is a seeded CSPRNG, and a /dev/random
that is merely unpredictable-looking is worse than none — nothing should be keyed from
it until it is a real one.