David Hubbard 53aaa88105 hw/usb/hcd-ohci: Fix ohci_service_td: accept zero-length TDs where CBP=BE+1
This changes the way the ohci emulation handles a Transfer Descriptor
with "Buffer End" set to "Current Buffer Pointer" - 1, specifically
in the case of a zero-length packet.

The OHCI spec 4.3.1.2 Table 4-2 specifies td.cbp to be zero for a
zero-length packet.  Peter Maydell tracked down commit 1328fe0c32
(hw: usb: hcd-ohci: check len and frame_number variables) where qemu
started checking this according to the spec.

What this patch does is loosen the qemu ohci implementation to allow a
zero-length packet if td.be (Buffer End) is set to td.cbp - 1, and with a
non-zero td.cbp value.

The spec is unclear whether this is valid or not -- it is not the
clearly documented way to send a zero length TD (which is CBP=BE=0),
but it isn't specifically forbidden. Actual hw seems to be ok with it.

Does any OS rely on this behavior? There have been no reports to
qemu-devel of this problem.

This is attempting to have qemu behave like actual hardware,
but this is just a minor change.

With a tiny OS[1] that boots and executes a test, the issue can be seen:

* OS that sends USB requests to a USB mass storage device
  but sends td.cbp = td.be + 1
* qemu 4.2
* qemu HEAD (4e66a0854)
* Actual OHCI controller (hardware)

Command line:
qemu-system-x86_64 -m 20 \
 -device pci-ohci,id=ohci \
 -drive if=none,format=raw,id=d,file=testmbr.raw \
 -device usb-storage,bus=ohci.0,drive=d \
 --trace "usb_*" --trace "ohci_*" -D qemu.log

Results are:

 qemu 4.2   | qemu HEAD  | actual HW
 -----------+------------+-----------
 works fine | ohci_die() | works fine

Tip: if the flags "-serial pty -serial stdio" are added to the command line
the test will output USB requests like this:

Testing qemu HEAD:

> Free mem 2M ohci port2 conn FS
> setup { 80 6 0 1 0 0 8 0 }
> ED info=80000 { mps=8 en=0 d=0 } tail=c20920
>   td0 c20880 nxt=c20960 f2000000 setup cbp=c20900 be=c20907
>   td1 c20960 nxt=c20980 f3140000    in cbp=c20908 be=c2090f
>   td2 c20980 nxt=c20920 f3080000   out cbp=c20910 be=c2090f ohci20 host err
> usb stopped

And in qemu.log:

usb_ohci_iso_td_bad_cc_overrun ISO_TD start_offset=0x00c20910 > next_offset=0x00c2090f

Testing qemu 4.2:

> Free mem 2M ohci port2 conn FS
> setup { 80 6 0 1 0 0 8 0 }
> ED info=80000 { mps=8 en=0 d=0 } tail=620920
>   td0 620880 nxt=620960 f2000000 setup cbp=620900 be=620907       cbp=0 be=620907
>   td1 620960 nxt=620980 f3140000    in cbp=620908 be=62090f       cbp=0 be=62090f
>   td2 620980 nxt=620920 f3080000   out cbp=620910 be=62090f       cbp=0 be=62090f
>    rx { 12 1 0 2 0 0 0 8 }
> setup { 0 5 1 0 0 0 0 0 } tx {}
> ED info=80000 { mps=8 en=0 d=0 } tail=620880
>   td0 620920 nxt=620960 f2000000 setup cbp=620900 be=620907       cbp=0 be=620907
>   td1 620960 nxt=620880 f3100000    in cbp=620908 be=620907       cbp=0 be=620907
> setup { 80 6 0 1 0 0 12 0 }
> ED info=80001 { mps=8 en=0 d=1 } tail=620960
>   td0 620880 nxt=6209c0 f2000000 setup cbp=620920 be=620927       cbp=0 be=620927
>   td1 6209c0 nxt=6209e0 f3140000    in cbp=620928 be=620939       cbp=0 be=620939
>   td2 6209e0 nxt=620960 f3080000   out cbp=62093a be=620939       cbp=0 be=620939
>    rx { 12 1 0 2 0 0 0 8 f4 46 1 0 0 0 1 2 3 1 }
> setup { 80 6 0 2 0 0 0 1 }
> ED info=80001 { mps=8 en=0 d=1 } tail=620880
>   td0 620960 nxt=6209a0 f2000000 setup cbp=620a20 be=620a27       cbp=0 be=620a27
>   td1 6209a0 nxt=6209c0 f3140004    in cbp=620a28 be=620b27       cbp=620a48 be=620b27
>   td2 6209c0 nxt=620880 f3080000   out cbp=620b28 be=620b27       cbp=0 be=620b27
>    rx { 9 2 20 0 1 1 4 c0 0 9 4 0 0 2 8 6 50 0 7 5 81 2 40 0 0 7 5 2 2 40 0 0 }
> setup { 0 9 1 0 0 0 0 0 } tx {}
> ED info=80001 { mps=8 en=0 d=1 } tail=620900
>   td0 620880 nxt=620940 f2000000 setup cbp=620a00 be=620a07       cbp=0 be=620a07
>   td1 620940 nxt=620900 f3100000    in cbp=620a08 be=620a07       cbp=0 be=620a07

[1] The OS disk image has been emailed to philmd@linaro.org, mjt@tls.msk.ru,
and kraxel@redhat.com:

* testCbpOffBy1.img.xz
* sha256: f87baddcb86de845de12f002c698670a426affb40946025cc32694f9daa3abed

Signed-off-by: David Hubbard <dmamfmgm@gmail.com>
Reviewed-by: Alex Bennée <alex.bennee@linaro.org>
Reviewed-by: Peter Maydell <peter.maydell@linaro.org>
Signed-off-by: Peter Maydell <peter.maydell@linaro.org>
2024-06-21 16:20:45 +01:00
2024-05-06 14:13:45 +02:00
2024-06-04 15:14:26 +08:00
2023-12-21 22:49:27 +01:00
2024-06-08 10:33:39 +02:00
2023-12-21 22:49:27 +01:00
2024-06-14 14:01:29 -03:00
2024-06-14 14:01:29 -03:00
2023-12-21 22:49:27 +01:00
2023-12-21 22:49:27 +01:00
2024-04-23 17:33:36 -07:00

===========
QEMU README
===========

QEMU is a generic and open source machine & userspace emulator and
virtualizer.

QEMU is capable of emulating a complete machine in software without any
need for hardware virtualization support. By using dynamic translation,
it achieves very good performance. QEMU can also integrate with the Xen
and KVM hypervisors to provide emulated hardware while allowing the
hypervisor to manage the CPU. With hypervisor support, QEMU can achieve
near native performance for CPUs. When QEMU emulates CPUs directly it is
capable of running operating systems made for one machine (e.g. an ARMv7
board) on a different machine (e.g. an x86_64 PC board).

QEMU is also capable of providing userspace API virtualization for Linux
and BSD kernel interfaces. This allows binaries compiled against one
architecture ABI (e.g. the Linux PPC64 ABI) to be run on a host using a
different architecture ABI (e.g. the Linux x86_64 ABI). This does not
involve any hardware emulation, simply CPU and syscall emulation.

QEMU aims to fit into a variety of use cases. It can be invoked directly
by users wishing to have full control over its behaviour and settings.
It also aims to facilitate integration into higher level management
layers, by providing a stable command line interface and monitor API.
It is commonly invoked indirectly via the libvirt library when using
open source applications such as oVirt, OpenStack and virt-manager.

QEMU as a whole is released under the GNU General Public License,
version 2. For full licensing details, consult the LICENSE file.


Documentation
=============

Documentation can be found hosted online at
`<https://www.qemu.org/documentation/>`_. The documentation for the
current development version that is available at
`<https://www.qemu.org/docs/master/>`_ is generated from the ``docs/``
folder in the source tree, and is built by `Sphinx
<https://www.sphinx-doc.org/en/master/>`_.


Building
========

QEMU is multi-platform software intended to be buildable on all modern
Linux platforms, OS-X, Win32 (via the Mingw64 toolchain) and a variety
of other UNIX targets. The simple steps to build QEMU are:


.. code-block:: shell

  mkdir build
  cd build
  ../configure
  make

Additional information can also be found online via the QEMU website:

* `<https://wiki.qemu.org/Hosts/Linux>`_
* `<https://wiki.qemu.org/Hosts/Mac>`_
* `<https://wiki.qemu.org/Hosts/W32>`_


Submitting patches
==================

The QEMU source code is maintained under the GIT version control system.

.. code-block:: shell

   git clone https://gitlab.com/qemu-project/qemu.git

When submitting patches, one common approach is to use 'git
format-patch' and/or 'git send-email' to format & send the mail to the
qemu-devel@nongnu.org mailing list. All patches submitted must contain
a 'Signed-off-by' line from the author. Patches should follow the
guidelines set out in the `style section
<https://www.qemu.org/docs/master/devel/style.html>`_ of
the Developers Guide.

Additional information on submitting patches can be found online via
the QEMU website

* `<https://wiki.qemu.org/Contribute/SubmitAPatch>`_
* `<https://wiki.qemu.org/Contribute/TrivialPatches>`_

The QEMU website is also maintained under source control.

.. code-block:: shell

  git clone https://gitlab.com/qemu-project/qemu-web.git

* `<https://www.qemu.org/2017/02/04/the-new-qemu-website-is-up/>`_

A 'git-publish' utility was created to make above process less
cumbersome, and is highly recommended for making regular contributions,
or even just for sending consecutive patch series revisions. It also
requires a working 'git send-email' setup, and by default doesn't
automate everything, so you may want to go through the above steps
manually for once.

For installation instructions, please go to

*  `<https://github.com/stefanha/git-publish>`_

The workflow with 'git-publish' is:

.. code-block:: shell

  $ git checkout master -b my-feature
  $ # work on new commits, add your 'Signed-off-by' lines to each
  $ git publish

Your patch series will be sent and tagged as my-feature-v1 if you need to refer
back to it in the future.

Sending v2:

.. code-block:: shell

  $ git checkout my-feature # same topic branch
  $ # making changes to the commits (using 'git rebase', for example)
  $ git publish

Your patch series will be sent with 'v2' tag in the subject and the git tip
will be tagged as my-feature-v2.

Bug reporting
=============

The QEMU project uses GitLab issues to track bugs. Bugs
found when running code built from QEMU git or upstream released sources
should be reported via:

* `<https://gitlab.com/qemu-project/qemu/-/issues>`_

If using QEMU via an operating system vendor pre-built binary package, it
is preferable to report bugs to the vendor's own bug tracker first. If
the bug is also known to affect latest upstream code, it can also be
reported via GitLab.

For additional information on bug reporting consult:

* `<https://wiki.qemu.org/Contribute/ReportABug>`_


ChangeLog
=========

For version history and release notes, please visit
`<https://wiki.qemu.org/ChangeLog/>`_ or look at the git history for
more detailed information.


Contact
=======

The QEMU community can be contacted in a number of ways, with the two
main methods being email and IRC

* `<mailto:qemu-devel@nongnu.org>`_
* `<https://lists.nongnu.org/mailman/listinfo/qemu-devel>`_
* #qemu on irc.oftc.net

Information on additional methods of contacting the community can be
found online via the QEMU website:

* `<https://wiki.qemu.org/Contribute/StartHere>`_
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