binutils-gdb/gdb/tracectf.c
Pedro Alves 5b6d1e4fa4 Multi-target support
This commit adds multi-target support to GDB.  What this means is that
with this commit, GDB can now be connected to different targets at the
same time.  E.g., you can debug a live native process and a core dump
at the same time, connect to multiple gdbservers, etc.

Actually, the word "target" is overloaded in gdb.  We already have a
target stack, with pushes several target_ops instances on top of one
another.  We also have "info target" already, which means something
completely different to what this patch does.

So from here on, I'll be using the "target connections" term, to mean
an open process_stratum target, pushed on a target stack.  This patch
makes gdb have multiple target stacks, and multiple process_stratum
targets open simultaneously.  The user-visible changes / commands will
also use this terminology, but of course it's all open to debate.

User-interface-wise, not that much changes.  The main difference is
that each inferior may have its own target connection.

A target connection (e.g., a target extended-remote connection) may
support debugging multiple processes, just as before.

Say you're debugging against gdbserver in extended-remote mode, and
you do "add-inferior" to prepare to spawn a new process, like:

 (gdb) target extended-remote :9999
 ...
 (gdb) start
 ...
 (gdb) add-inferior
 Added inferior 2
 (gdb) inferior 2
 [Switching to inferior 2 [<null>] (<noexec>)]
 (gdb) file a.out
 ...
 (gdb) start
 ...

At this point, you have two inferiors connected to the same gdbserver.

With this commit, GDB will maintain a target stack per inferior,
instead of a global target stack.

To preserve the behavior above, by default, "add-inferior" makes the
new inferior inherit a copy of the target stack of the current
inferior.  Same across a fork - the child inherits a copy of the
target stack of the parent.  While the target stacks are copied, the
targets themselves are not.  Instead, target_ops is made a
refcounted_object, which means that target_ops instances are
refcounted, which each inferior counting for a reference.

What if you want to create an inferior and connect it to some _other_
target?  For that, this commit introduces a new "add-inferior
-no-connection" option that makes the new inferior not share the
current inferior's target.  So you could do:

 (gdb) target extended-remote :9999
 Remote debugging using :9999
 ...
 (gdb) add-inferior -no-connection
 [New inferior 2]
 Added inferior 2
 (gdb) inferior 2
 [Switching to inferior 2 [<null>] (<noexec>)]
 (gdb) info inferiors
   Num  Description       Executable
   1    process 18401     target:/home/pedro/tmp/main
 * 2    <null>
 (gdb) tar extended-remote :10000
 Remote debugging using :10000
 ...
 (gdb) info inferiors
   Num  Description       Executable
   1    process 18401     target:/home/pedro/tmp/main
 * 2    process 18450     target:/home/pedro/tmp/main
 (gdb)

A following patch will extended "info inferiors" to include a column
indicating which connection an inferior is bound to, along with a
couple other UI tweaks.

Other than that, debugging is the same as before.  Users interact with
inferiors and threads as before.  The only difference is that
inferiors may be bound to processes running in different machines.

That's pretty much all there is to it in terms of noticeable UI
changes.

On to implementation.

Since we can be connected to different systems at the same time, a
ptid_t is no longer a unique identifier.  Instead a thread can be
identified by a pair of ptid_t and 'process_stratum_target *', the
later being the instance of the process_stratum target that owns the
process/thread.  Note that process_stratum_target inherits from
target_ops, and all process_stratum targets inherit from
process_stratum_target.  In earlier patches, many places in gdb were
converted to refer to threads by thread_info pointer instead of
ptid_t, but there are still places in gdb where we start with a
pid/tid and need to find the corresponding inferior or thread_info
objects.  So you'll see in the patch many places adding a
process_stratum_target parameter to functions that used to take only a
ptid_t.

Since each inferior has its own target stack now, we can always find
the process_stratum target for an inferior.  That is done via a
inf->process_target() convenience method.

Since each inferior has its own target stack, we need to handle the
"beneath" calls when servicing target calls.  The solution I settled
with is just to make sure to switch the current inferior to the
inferior you want before making a target call.  Not relying on global
context is just not feasible in current GDB.  Fortunately, there
aren't that many places that need to do that, because generally most
code that calls target methods already has the current context
pointing to the right inferior/thread.  Note, to emphasize -- there's
no method to "switch to this target stack".  Instead, you switch the
current inferior, and that implicitly switches the target stack.

In some spots, we need to iterate over all inferiors so that we reach
all target stacks.

Native targets are still singletons.  There's always only a single
instance of such targets.

Remote targets however, we'll have one instance per remote connection.

The exec target is still a singleton.  There's only one instance.  I
did not see the point of instanciating more than one exec_target
object.

After vfork, we need to make sure to push the exec target on the new
inferior.  See exec_on_vfork.

For type safety, functions that need a {target, ptid} pair to identify
a thread, take a process_stratum_target pointer for target parameter
instead of target_ops *.  Some shared code in gdb/nat/ also need to
gain a target pointer parameter.  This poses an issue, since gdbserver
doesn't have process_stratum_target, only target_ops.  To fix this,
this commit renames gdbserver's target_ops to process_stratum_target.
I think this makes sense.  There's no concept of target stack in
gdbserver, and gdbserver's target_ops really implements a
process_stratum-like target.

The thread and inferior iterator functions also gain
process_stratum_target parameters.  These are used to be able to
iterate over threads and inferiors of a given target.  Following usual
conventions, if the target pointer is null, then we iterate over
threads and inferiors of all targets.

I tried converting "add-inferior" to the gdb::option framework, as a
preparatory patch, but that stumbled on the fact that gdb::option does
not support file options yet, for "add-inferior -exec".  I have a WIP
patchset that adds that, but it's not a trivial patch, mainly due to
need to integrate readline's filename completion, so I deferred that
to some other time.

In infrun.c/infcmd.c, the main change is that we need to poll events
out of all targets.  See do_target_wait.  Right after collecting an
event, we switch the current inferior to an inferior bound to the
target that reported the event, so that target methods can be used
while handling the event.  This makes most of the code transparent to
multi-targets.  See fetch_inferior_event.

infrun.c:stop_all_threads is interesting -- in this function we need
to stop all threads of all targets.  What the function does is send an
asynchronous stop request to all threads, and then synchronously waits
for events, with target_wait, rinse repeat, until all it finds are
stopped threads.  Now that we have multiple targets, it's not
efficient to synchronously block in target_wait waiting for events out
of one target.  Instead, we implement a mini event loop, with
interruptible_select, select'ing on one file descriptor per target.
For this to work, we need to be able to ask the target for a waitable
file descriptor.  Such file descriptors already exist, they are the
descriptors registered in the main event loop with add_file_handler,
inside the target_async implementations.  This commit adds a new
target_async_wait_fd target method that just returns the file
descriptor in question.  See wait_one / stop_all_threads in infrun.c.

The 'threads_executing' global is made a per-target variable.  Since
it is only relevant to process_stratum_target targets, this is where
it is put, instead of in target_ops.

You'll notice that remote.c includes some FIXME notes.  These refer to
the fact that the global arrays that hold data for the remote packets
supported are still globals.  For example, if we connect to two
different servers/stubs, then each might support different remote
protocol features.  They might even be different architectures, like
e.g., one ARM baremetal stub, and a x86 gdbserver, to debug a
host/controller scenario as a single program.  That isn't going to
work correctly today, because of said globals.  I'm leaving fixing
that for another pass, since it does not appear to be trivial, and I'd
rather land the base work first.  It's already useful to be able to
debug multiple instances of the same server (e.g., a distributed
cluster, where you have full control over the servers installed), so I
think as is it's already reasonable incremental progress.

Current limitations:

 - You can only resume more that one target at the same time if all
   targets support asynchronous debugging, and support non-stop mode.
   It should be possible to support mixed all-stop + non-stop
   backends, but that is left for another time.  This means that
   currently in order to do multi-target with gdbserver you need to
   issue "maint set target-non-stop on".  I would like to make that
   mode be the default, but we're not there yet.  Note that I'm
   talking about how the target backend works, only.  User-visible
   all-stop mode works just fine.

 - As explained above, connecting to different remote servers at the
   same time is likely to produce bad results if they don't support the
   exact set of RSP features.

FreeBSD updates courtesy of John Baldwin.

gdb/ChangeLog:
2020-01-10  Pedro Alves  <palves@redhat.com>
	    John Baldwin  <jhb@FreeBSD.org>

	* aarch64-linux-nat.c
	(aarch64_linux_nat_target::thread_architecture): Adjust.
	* ada-tasks.c (print_ada_task_info): Adjust find_thread_ptid call.
	(task_command_1): Likewise.
	* aix-thread.c (sync_threadlists, aix_thread_target::resume)
	(aix_thread_target::wait, aix_thread_target::fetch_registers)
	(aix_thread_target::store_registers)
	(aix_thread_target::thread_alive): Adjust.
	* amd64-fbsd-tdep.c: Include "inferior.h".
	(amd64fbsd_get_thread_local_address): Pass down target.
	* amd64-linux-nat.c (ps_get_thread_area): Use ps_prochandle
	thread's gdbarch instead of target_gdbarch.
	* break-catch-sig.c (signal_catchpoint_print_it): Adjust call to
	get_last_target_status.
	* break-catch-syscall.c (print_it_catch_syscall): Likewise.
	* breakpoint.c (breakpoints_should_be_inserted_now): Consider all
	inferiors.
	(update_inserted_breakpoint_locations): Skip if inferiors with no
	execution.
	(update_global_location_list): When handling moribund locations,
	find representative inferior for location's pspace, and use thread
	count of its process_stratum target.
	* bsd-kvm.c (bsd_kvm_target_open): Pass target down.
	* bsd-uthread.c (bsd_uthread_target::wait): Use
	as_process_stratum_target and adjust thread_change_ptid and
	add_thread calls.
	(bsd_uthread_target::update_thread_list): Use
	as_process_stratum_target and adjust find_thread_ptid,
	thread_change_ptid and add_thread calls.
	* btrace.c (maint_btrace_packet_history_cmd): Adjust
	find_thread_ptid call.
	* corelow.c (add_to_thread_list): Adjust add_thread call.
	(core_target_open): Adjust add_thread_silent and thread_count
	calls.
	(core_target::pid_to_str): Adjust find_inferior_ptid call.
	* ctf.c (ctf_target_open): Adjust add_thread_silent call.
	* event-top.c (async_disconnect): Pop targets from all inferiors.
	* exec.c (add_target_sections): Push exec target on all inferiors
	sharing the program space.
	(remove_target_sections): Remove the exec target from all
	inferiors sharing the program space.
	(exec_on_vfork): New.
	* exec.h (exec_on_vfork): Declare.
	* fbsd-nat.c (fbsd_add_threads): Add fbsd_nat_target parameter.
	Pass it down.
	(fbsd_nat_target::update_thread_list): Adjust.
	(fbsd_nat_target::resume): Adjust.
	(fbsd_handle_debug_trap): Add fbsd_nat_target parameter.  Pass it
	down.
	(fbsd_nat_target::wait, fbsd_nat_target::post_attach): Adjust.
	* fbsd-tdep.c (fbsd_corefile_thread): Adjust
	get_thread_arch_regcache call.
	* fork-child.c (gdb_startup_inferior): Pass target down to
	startup_inferior and set_executing.
	* gdbthread.h (struct process_stratum_target): Forward declare.
	(add_thread, add_thread_silent, add_thread_with_info)
	(in_thread_list): Add process_stratum_target parameter.
	(find_thread_ptid(inferior*, ptid_t)): New overload.
	(find_thread_ptid, thread_change_ptid): Add process_stratum_target
	parameter.
	(all_threads()): Delete overload.
	(all_threads, all_non_exited_threads): Add process_stratum_target
	parameter.
	(all_threads_safe): Use brace initialization.
	(thread_count): Add process_stratum_target parameter.
	(set_resumed, set_running, set_stop_requested, set_executing)
	(threads_are_executing, finish_thread_state): Add
	process_stratum_target parameter.
	(switch_to_thread): Use is_current_thread.
	* i386-fbsd-tdep.c: Include "inferior.h".
	(i386fbsd_get_thread_local_address): Pass down target.
	* i386-linux-nat.c (i386_linux_nat_target::low_resume): Adjust.
	* inf-child.c (inf_child_target::maybe_unpush_target): Remove
	have_inferiors check.
	* inf-ptrace.c (inf_ptrace_target::create_inferior)
	(inf_ptrace_target::attach): Adjust.
	* infcall.c (run_inferior_call): Adjust.
	* infcmd.c (run_command_1): Pass target to
	scoped_finish_thread_state.
	(proceed_thread_callback): Skip inferiors with no execution.
	(continue_command): Rename 'all_threads' local to avoid hiding
	'all_threads' function.  Adjust get_last_target_status call.
	(prepare_one_step): Adjust set_running call.
	(signal_command): Use user_visible_resume_target.  Compare thread
	pointers instead of inferior_ptid.
	(info_program_command): Adjust to pass down target.
	(attach_command): Mark target's 'thread_executing' flag.
	(stop_current_target_threads_ns): New, factored out from ...
	(interrupt_target_1): ... this.  Switch inferior before making
	target calls.
	* inferior-iter.h
	(struct all_inferiors_iterator, struct all_inferiors_range)
	(struct all_inferiors_safe_range)
	(struct all_non_exited_inferiors_range): Filter on
	process_stratum_target too.  Remove explicit.
	* inferior.c (inferior::inferior): Push dummy target on target
	stack.
	(find_inferior_pid, find_inferior_ptid, number_of_live_inferiors):
	Add process_stratum_target parameter, and pass it down.
	(have_live_inferiors): Adjust.
	(switch_to_inferior_and_push_target): New.
	(add_inferior_command, clone_inferior_command): Handle
	"-no-connection" parameter.  Use
	switch_to_inferior_and_push_target.
	(_initialize_inferior): Mention "-no-connection" option in
	the help of "add-inferior" and "clone-inferior" commands.
	* inferior.h: Include "process-stratum-target.h".
	(interrupt_target_1): Use bool.
	(struct inferior) <push_target, unpush_target, target_is_pushed,
	find_target_beneath, top_target, process_target, target_at,
	m_stack>: New.
	(discard_all_inferiors): Delete.
	(find_inferior_pid, find_inferior_ptid, number_of_live_inferiors)
	(all_inferiors, all_non_exited_inferiors): Add
	process_stratum_target parameter.
	* infrun.c: Include "gdb_select.h" and <unordered_map>.
	(target_last_proc_target): New global.
	(follow_fork_inferior): Push target on new inferior.  Pass target
	to add_thread_silent.  Call exec_on_vfork.  Handle target's
	reference count.
	(follow_fork): Adjust get_last_target_status call.  Also consider
	target.
	(follow_exec): Push target on new inferior.
	(struct execution_control_state) <target>: New field.
	(user_visible_resume_target): New.
	(do_target_resume): Call target_async.
	(resume_1): Set target's threads_executing flag.  Consider resume
	target.
	(commit_resume_all_targets): New.
	(proceed): Also consider resume target.  Skip threads of inferiors
	with no execution.  Commit resumtion in all targets.
	(start_remote): Pass current inferior to wait_for_inferior.
	(infrun_thread_stop_requested): Consider target as well.  Pass
	thread_info pointer to clear_inline_frame_state instead of ptid.
	(infrun_thread_thread_exit): Consider target as well.
	(random_pending_event_thread): New inferior parameter.  Use it.
	(do_target_wait): Rename to ...
	(do_target_wait_1): ... this.  Add inferior parameter, and pass it
	down.
	(threads_are_resumed_pending_p, do_target_wait): New.
	(prepare_for_detach): Adjust calls.
	(wait_for_inferior): New inferior parameter.  Handle it.  Use
	do_target_wait_1 instead of do_target_wait.
	(fetch_inferior_event): Adjust.  Switch to representative
	inferior.  Pass target down.
	(set_last_target_status): Add process_stratum_target parameter.
	Save target in global.
	(get_last_target_status): Add process_stratum_target parameter and
	handle it.
	(nullify_last_target_wait_ptid): Clear 'target_last_proc_target'.
	(context_switch): Check inferior_ptid == null_ptid before calling
	inferior_thread().
	(get_inferior_stop_soon): Pass down target.
	(wait_one): Rename to ...
	(poll_one_curr_target): ... this.
	(struct wait_one_event): New.
	(wait_one): New.
	(stop_all_threads): Adjust.
	(handle_no_resumed, handle_inferior_event): Adjust to consider the
	event's target.
	(switch_back_to_stepped_thread): Also consider target.
	(print_stop_event): Update.
	(normal_stop): Update.  Also consider the resume target.
	* infrun.h (wait_for_inferior): Remove declaration.
	(user_visible_resume_target): New declaration.
	(get_last_target_status, set_last_target_status): New
	process_stratum_target parameter.
	* inline-frame.c (clear_inline_frame_state(ptid_t)): Add
	process_stratum_target parameter, and use it.
	(clear_inline_frame_state (thread_info*)): New.
	* inline-frame.c (clear_inline_frame_state(ptid_t)): Add
	process_stratum_target parameter.
	(clear_inline_frame_state (thread_info*)): Declare.
	* linux-fork.c (delete_checkpoint_command): Pass target down to
	find_thread_ptid.
	(checkpoint_command): Adjust.
	* linux-nat.c (linux_nat_target::follow_fork): Switch to thread
	instead of just tweaking inferior_ptid.
	(linux_nat_switch_fork): Pass target down to thread_change_ptid.
	(exit_lwp): Pass target down to find_thread_ptid.
	(attach_proc_task_lwp_callback): Pass target down to
	add_thread/set_running/set_executing.
	(linux_nat_target::attach): Pass target down to
	thread_change_ptid.
	(get_detach_signal): Pass target down to find_thread_ptid.
	Consider last target status's target.
	(linux_resume_one_lwp_throw, resume_lwp)
	(linux_handle_syscall_trap, linux_handle_extended_wait, wait_lwp)
	(stop_wait_callback, save_stop_reason, linux_nat_filter_event)
	(linux_nat_wait_1, resume_stopped_resumed_lwps): Pass target down.
	(linux_nat_target::async_wait_fd): New.
	(linux_nat_stop_lwp, linux_nat_target::thread_address_space): Pass
	target down.
	* linux-nat.h (linux_nat_target::async_wait_fd): Declare.
	* linux-tdep.c (get_thread_arch_regcache): Pass target down.
	* linux-thread-db.c (struct thread_db_info::process_target): New
	field.
	(add_thread_db_info): Save target.
	(get_thread_db_info): New process_stratum_target parameter.  Also
	match target.
	(delete_thread_db_info): New process_stratum_target parameter.
	Also match target.
	(thread_from_lwp): Adjust to pass down target.
	(thread_db_notice_clone): Pass down target.
	(check_thread_db_callback): Pass down target.
	(try_thread_db_load_1): Always push the thread_db target.
	(try_thread_db_load, record_thread): Pass target down.
	(thread_db_target::detach): Pass target down.  Always unpush the
	thread_db target.
	(thread_db_target::wait, thread_db_target::mourn_inferior): Pass
	target down.  Always unpush the thread_db target.
	(find_new_threads_callback, thread_db_find_new_threads_2)
	(thread_db_target::update_thread_list): Pass target down.
	(thread_db_target::pid_to_str): Pass current inferior down.
	(thread_db_target::get_thread_local_address): Pass target down.
	(thread_db_target::resume, maintenance_check_libthread_db): Pass
	target down.
	* nto-procfs.c (nto_procfs_target::update_thread_list): Adjust.
	* procfs.c (procfs_target::procfs_init_inferior): Declare.
	(proc_set_current_signal, do_attach, procfs_target::wait): Adjust.
	(procfs_init_inferior): Rename to ...
	(procfs_target::procfs_init_inferior): ... this and adjust.
	(procfs_target::create_inferior, procfs_notice_thread)
	(procfs_do_thread_registers): Adjust.
	* ppc-fbsd-tdep.c: Include "inferior.h".
	(ppcfbsd_get_thread_local_address): Pass down target.
	* proc-service.c (ps_xfer_memory): Switch current inferior and
	program space as well.
	(get_ps_regcache): Pass target down.
	* process-stratum-target.c
	(process_stratum_target::thread_address_space)
	(process_stratum_target::thread_architecture): Pass target down.
	* process-stratum-target.h
	(process_stratum_target::threads_executing): New field.
	(as_process_stratum_target): New.
	* ravenscar-thread.c
	(ravenscar_thread_target::update_inferior_ptid): Pass target down.
	(ravenscar_thread_target::wait, ravenscar_add_thread): Pass target
	down.
	* record-btrace.c (record_btrace_target::info_record): Adjust.
	(record_btrace_target::record_method)
	(record_btrace_target::record_is_replaying)
	(record_btrace_target::fetch_registers)
	(get_thread_current_frame_id, record_btrace_target::resume)
	(record_btrace_target::wait, record_btrace_target::stop): Pass
	target down.
	* record-full.c (record_full_wait_1): Switch to event thread.
	Pass target down.
	* regcache.c (regcache::regcache)
	(get_thread_arch_aspace_regcache, get_thread_arch_regcache): Add
	process_stratum_target parameter and handle it.
	(current_thread_target): New global.
	(get_thread_regcache): Add process_stratum_target parameter and
	handle it.  Switch inferior before calling target method.
	(get_thread_regcache): Pass target down.
	(get_thread_regcache_for_ptid): Pass target down.
	(registers_changed_ptid): Add process_stratum_target parameter and
	handle it.
	(registers_changed_thread, registers_changed): Pass target down.
	(test_get_thread_arch_aspace_regcache): New.
	(current_regcache_test): Define a couple local test_target_ops
	instances and use them for testing.
	(readwrite_regcache): Pass process_stratum_target parameter.
	(cooked_read_test, cooked_write_test): Pass mock_target down.
	* regcache.h (get_thread_regcache, get_thread_arch_regcache)
	(get_thread_arch_aspace_regcache): Add process_stratum_target
	parameter.
	(regcache::target): New method.
	(regcache::regcache, regcache::get_thread_arch_aspace_regcache)
	(regcache::registers_changed_ptid): Add process_stratum_target
	parameter.
	(regcache::m_target): New field.
	(registers_changed_ptid): Add process_stratum_target parameter.
	* remote.c (remote_state::supports_vCont_probed): New field.
	(remote_target::async_wait_fd): New method.
	(remote_unpush_and_throw): Add remote_target parameter.
	(get_current_remote_target): Adjust.
	(remote_target::remote_add_inferior): Push target.
	(remote_target::remote_add_thread)
	(remote_target::remote_notice_new_inferior)
	(get_remote_thread_info): Pass target down.
	(remote_target::update_thread_list): Skip threads of inferiors
	bound to other targets.  (remote_target::close): Don't discard
	inferiors.  (remote_target::add_current_inferior_and_thread)
	(remote_target::process_initial_stop_replies)
	(remote_target::start_remote)
	(remote_target::remote_serial_quit_handler): Pass down target.
	(remote_target::remote_unpush_target): New remote_target
	parameter.  Unpush the target from all inferiors.
	(remote_target::remote_unpush_and_throw): New remote_target
	parameter.  Pass it down.
	(remote_target::open_1): Check whether the current inferior has
	execution instead of checking whether any inferior is live.  Pass
	target down.
	(remote_target::remote_detach_1): Pass down target.  Use
	remote_unpush_target.
	(extended_remote_target::attach): Pass down target.
	(remote_target::remote_vcont_probe): Set supports_vCont_probed.
	(remote_target::append_resumption): Pass down target.
	(remote_target::append_pending_thread_resumptions)
	(remote_target::remote_resume_with_hc, remote_target::resume)
	(remote_target::commit_resume): Pass down target.
	(remote_target::remote_stop_ns): Check supports_vCont_probed.
	(remote_target::interrupt_query)
	(remote_target::remove_new_fork_children)
	(remote_target::check_pending_events_prevent_wildcard_vcont)
	(remote_target::remote_parse_stop_reply)
	(remote_target::process_stop_reply): Pass down target.
	(first_remote_resumed_thread): New remote_target parameter.  Pass
	it down.
	(remote_target::wait_as): Pass down target.
	(unpush_and_perror): New remote_target parameter.  Pass it down.
	(remote_target::readchar, remote_target::remote_serial_write)
	(remote_target::getpkt_or_notif_sane_1)
	(remote_target::kill_new_fork_children, remote_target::kill): Pass
	down target.
	(remote_target::mourn_inferior): Pass down target.  Use
	remote_unpush_target.
	(remote_target::core_of_thread)
	(remote_target::remote_btrace_maybe_reopen): Pass down target.
	(remote_target::pid_to_exec_file)
	(remote_target::thread_handle_to_thread_info): Pass down target.
	(remote_target::async_wait_fd): New.
	* riscv-fbsd-tdep.c: Include "inferior.h".
	(riscv_fbsd_get_thread_local_address): Pass down target.
	* sol2-tdep.c (sol2_core_pid_to_str): Pass down target.
	* sol-thread.c (sol_thread_target::wait, ps_lgetregs, ps_lsetregs)
	(ps_lgetfpregs, ps_lsetfpregs, sol_update_thread_list_callback):
	Adjust.
	* solib-spu.c (spu_skip_standalone_loader): Pass down target.
	* solib-svr4.c (enable_break): Pass down target.
	* spu-multiarch.c (parse_spufs_run): Pass down target.
	* spu-tdep.c (spu2ppu_sniffer): Pass down target.
	* target-delegates.c: Regenerate.
	* target.c (g_target_stack): Delete.
	(current_top_target): Return the current inferior's top target.
	(target_has_execution_1): Refer to the passed-in inferior's top
	target.
	(target_supports_terminal_ours): Check whether the initial
	inferior was already created.
	(decref_target): New.
	(target_stack::push): Incref/decref the target.
	(push_target, push_target, unpush_target): Adjust.
	(target_stack::unpush): Defref target.
	(target_is_pushed): Return bool.  Adjust to refer to the current
	inferior's target stack.
	(dispose_inferior): Delete, and inline parts ...
	(target_preopen): ... here.  Only dispose of the current inferior.
	(target_detach): Hold strong target reference while detaching.
	Pass target down.
	(target_thread_name): Add assertion.
	(target_resume): Pass down target.
	(target_ops::beneath, find_target_at): Adjust to refer to the
	current inferior's target stack.
	(get_dummy_target): New.
	(target_pass_ctrlc): Pass the Ctrl-C to the first inferior that
	has a thread running.
	(initialize_targets): Rename to ...
	(_initialize_target): ... this.
	* target.h: Include "gdbsupport/refcounted-object.h".
	(struct target_ops): Inherit refcounted_object.
	(target_ops::shortname, target_ops::longname): Make const.
	(target_ops::async_wait_fd): New method.
	(decref_target): Declare.
	(struct target_ops_ref_policy): New.
	(target_ops_ref): New typedef.
	(get_dummy_target): Declare function.
	(target_is_pushed): Return bool.
	* thread-iter.c (all_matching_threads_iterator::m_inf_matches)
	(all_matching_threads_iterator::all_matching_threads_iterator):
	Handle filter target.
	* thread-iter.h (struct all_matching_threads_iterator, struct
	all_matching_threads_range, class all_non_exited_threads_range):
	Filter by target too.  Remove explicit.
	* thread.c (threads_executing): Delete.
	(inferior_thread): Pass down current inferior.
	(clear_thread_inferior_resources): Pass down thread pointer
	instead of ptid_t.
	(add_thread_silent, add_thread_with_info, add_thread): Add
	process_stratum_target parameter.  Use it for thread and inferior
	searches.
	(is_current_thread): New.
	(thread_info::deletable): Use it.
	(find_thread_ptid, thread_count, in_thread_list)
	(thread_change_ptid, set_resumed, set_running): New
	process_stratum_target parameter.  Pass it down.
	(set_executing): New process_stratum_target parameter.  Pass it
	down.  Adjust reference to 'threads_executing'.
	(threads_are_executing): New process_stratum_target parameter.
	Adjust reference to 'threads_executing'.
	(set_stop_requested, finish_thread_state): New
	process_stratum_target parameter.  Pass it down.
	(switch_to_thread): Also match inferior.
	(switch_to_thread): New process_stratum_target parameter.  Pass it
	down.
	(update_threads_executing): Reimplement.
	* top.c (quit_force): Pop targets from all inferior.
	(gdb_init): Don't call initialize_targets.
	* windows-nat.c (windows_nat_target) <get_windows_debug_event>:
	Declare.
	(windows_add_thread, windows_delete_thread): Adjust.
	(get_windows_debug_event): Rename to ...
	(windows_nat_target::get_windows_debug_event): ... this.  Adjust.
	* tracefile-tfile.c (tfile_target_open): Pass down target.
	* gdbsupport/common-gdbthread.h (struct process_stratum_target):
	Forward declare.
	(switch_to_thread): Add process_stratum_target parameter.
	* mi/mi-interp.c (mi_on_resume_1): Add process_stratum_target
	parameter.  Use it.
	(mi_on_resume): Pass target down.
	* nat/fork-inferior.c (startup_inferior): Add
	process_stratum_target parameter.  Pass it down.
	* nat/fork-inferior.h (startup_inferior): Add
	process_stratum_target parameter.
	* python/py-threadevent.c (py_get_event_thread): Pass target down.

gdb/gdbserver/ChangeLog:
2020-01-10  Pedro Alves  <palves@redhat.com>

	* fork-child.c (post_fork_inferior): Pass target down to
	startup_inferior.
	* inferiors.c (switch_to_thread): Add process_stratum_target
	parameter.
	* lynx-low.c (lynx_target_ops): Now a process_stratum_target.
	* nto-low.c (nto_target_ops): Now a process_stratum_target.
	* linux-low.c (linux_target_ops): Now a process_stratum_target.
	* remote-utils.c (prepare_resume_reply): Pass the target to
	switch_to_thread.
	* target.c (the_target): Now a process_stratum_target.
	(done_accessing_memory): Pass the target to switch_to_thread.
	(set_target_ops): Ajust to use process_stratum_target.
	* target.h (struct target_ops): Rename to ...
	(struct process_stratum_target): ... this.
	(the_target, set_target_ops): Adjust.
	(prepare_to_access_memory): Adjust comment.
	* win32-low.c (child_xfer_memory): Adjust to use
	process_stratum_target.
	(win32_target_ops): Now a process_stratum_target.
2020-01-10 20:06:08 +00:00

1731 lines
47 KiB
C

/* CTF format support.
Copyright (C) 2012-2020 Free Software Foundation, Inc.
Contributed by Hui Zhu <hui_zhu@mentor.com>
Contributed by Yao Qi <yao@codesourcery.com>
This file is part of GDB.
This program is free software; you can redistribute it and/or modify
it under the terms of the GNU General Public License as published by
the Free Software Foundation; either version 3 of the License, or
(at your option) any later version.
This program is distributed in the hope that it will be useful,
but WITHOUT ANY WARRANTY; without even the implied warranty of
MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
GNU General Public License for more details.
You should have received a copy of the GNU General Public License
along with this program. If not, see <http://www.gnu.org/licenses/>. */
#include "defs.h"
#include "tracectf.h"
#include "tracepoint.h"
#include "regcache.h"
#include <sys/stat.h>
#include "exec.h"
#include "completer.h"
#include "inferior.h"
#include "gdbthread.h"
#include "tracefile.h"
#include <ctype.h>
#include <algorithm>
#include "gdbsupport/filestuff.h"
#include "gdbarch.h"
/* The CTF target. */
static const target_info ctf_target_info = {
"ctf",
N_("CTF file"),
N_("(Use a CTF directory as a target.\n\
Specify the filename of the CTF directory.")
};
class ctf_target final : public tracefile_target
{
public:
const target_info &info () const override
{ return ctf_target_info; }
void close () override;
void fetch_registers (struct regcache *, int) override;
enum target_xfer_status xfer_partial (enum target_object object,
const char *annex,
gdb_byte *readbuf,
const gdb_byte *writebuf,
ULONGEST offset, ULONGEST len,
ULONGEST *xfered_len) override;
void files_info () override;
int trace_find (enum trace_find_type type, int num,
CORE_ADDR addr1, CORE_ADDR addr2, int *tpp) override;
bool get_trace_state_variable_value (int tsv, LONGEST *val) override;
traceframe_info_up traceframe_info () override;
};
/* GDB saves trace buffers and other information (such as trace
status) got from the remote target into Common Trace Format (CTF).
The following types of information are expected to save in CTF:
1. The length (in bytes) of register cache. Event "register" will
be defined in metadata, which includes the length.
2. Trace status. Event "status" is defined in metadata, which
includes all aspects of trace status.
3. Uploaded trace variables. Event "tsv_def" is defined in
metadata, which is about all aspects of a uploaded trace variable.
Uploaded tracepoints. Event "tp_def" is defined in meta, which
is about all aspects of an uploaded tracepoint. Note that the
"sequence" (a CTF type, which is a dynamically-sized array.) is
used for "actions" "step_actions" and "cmd_strings".
4. Trace frames. Each trace frame is composed by several blocks
of different types ('R', 'M', 'V'). One trace frame is saved in
one CTF packet and the blocks of this frame are saved as events.
4.1: The trace frame related information (such as the number of
tracepoint associated with this frame) is saved in the packet
context.
4.2: The block 'M', 'R' and 'V' are saved in event "memory",
"register" and "tsv" respectively.
4.3: When iterating over events, babeltrace can't tell iterator
goes to a new packet, so we need a marker or anchor to tell GDB
that iterator goes into a new packet or frame. We define event
"frame". */
#define CTF_MAGIC 0xC1FC1FC1
#define CTF_SAVE_MAJOR 1
#define CTF_SAVE_MINOR 8
#define CTF_METADATA_NAME "metadata"
#define CTF_DATASTREAM_NAME "datastream"
/* Reserved event id. */
#define CTF_EVENT_ID_REGISTER 0
#define CTF_EVENT_ID_TSV 1
#define CTF_EVENT_ID_MEMORY 2
#define CTF_EVENT_ID_FRAME 3
#define CTF_EVENT_ID_STATUS 4
#define CTF_EVENT_ID_TSV_DEF 5
#define CTF_EVENT_ID_TP_DEF 6
#define CTF_PID (2)
/* The state kept while writing the CTF datastream file. */
struct trace_write_handler
{
/* File descriptor of metadata. */
FILE *metadata_fd;
/* File descriptor of traceframes. */
FILE *datastream_fd;
/* This is the content size of the current packet. */
size_t content_size;
/* This is the start offset of current packet. */
long packet_start;
};
/* Write metadata in FORMAT. */
static void
ctf_save_write_metadata (struct trace_write_handler *handler,
const char *format, ...)
ATTRIBUTE_PRINTF (2, 3);
static void
ctf_save_write_metadata (struct trace_write_handler *handler,
const char *format, ...)
{
va_list args;
va_start (args, format);
if (vfprintf (handler->metadata_fd, format, args) < 0)
error (_("Unable to write metadata file (%s)"),
safe_strerror (errno));
va_end (args);
}
/* Write BUF of length SIZE to datastream file represented by
HANDLER. */
static int
ctf_save_write (struct trace_write_handler *handler,
const gdb_byte *buf, size_t size)
{
if (fwrite (buf, size, 1, handler->datastream_fd) != 1)
error (_("Unable to write file for saving trace data (%s)"),
safe_strerror (errno));
handler->content_size += size;
return 0;
}
/* Write a unsigned 32-bit integer to datastream file represented by
HANDLER. */
#define ctf_save_write_uint32(HANDLER, U32) \
ctf_save_write (HANDLER, (gdb_byte *) &U32, 4)
/* Write a signed 32-bit integer to datastream file represented by
HANDLER. */
#define ctf_save_write_int32(HANDLER, INT32) \
ctf_save_write ((HANDLER), (gdb_byte *) &(INT32), 4)
/* Set datastream file position. Update HANDLER->content_size
if WHENCE is SEEK_CUR. */
static int
ctf_save_fseek (struct trace_write_handler *handler, long offset,
int whence)
{
gdb_assert (whence != SEEK_END);
gdb_assert (whence != SEEK_SET
|| offset <= handler->content_size + handler->packet_start);
if (fseek (handler->datastream_fd, offset, whence))
error (_("Unable to seek file for saving trace data (%s)"),
safe_strerror (errno));
if (whence == SEEK_CUR)
handler->content_size += offset;
return 0;
}
/* Change the datastream file position to align on ALIGN_SIZE,
and write BUF to datastream file. The size of BUF is SIZE. */
static int
ctf_save_align_write (struct trace_write_handler *handler,
const gdb_byte *buf,
size_t size, size_t align_size)
{
long offset
= (align_up (handler->content_size, align_size)
- handler->content_size);
if (ctf_save_fseek (handler, offset, SEEK_CUR))
return -1;
if (ctf_save_write (handler, buf, size))
return -1;
return 0;
}
/* Write events to next new packet. */
static void
ctf_save_next_packet (struct trace_write_handler *handler)
{
handler->packet_start += (handler->content_size + 4);
ctf_save_fseek (handler, handler->packet_start, SEEK_SET);
handler->content_size = 0;
}
/* Write the CTF metadata header. */
static void
ctf_save_metadata_header (struct trace_write_handler *handler)
{
ctf_save_write_metadata (handler, "/* CTF %d.%d */\n",
CTF_SAVE_MAJOR, CTF_SAVE_MINOR);
ctf_save_write_metadata (handler,
"typealias integer { size = 8; align = 8; "
"signed = false; encoding = ascii;}"
" := ascii;\n");
ctf_save_write_metadata (handler,
"typealias integer { size = 8; align = 8; "
"signed = false; }"
" := uint8_t;\n");
ctf_save_write_metadata (handler,
"typealias integer { size = 16; align = 16;"
"signed = false; } := uint16_t;\n");
ctf_save_write_metadata (handler,
"typealias integer { size = 32; align = 32;"
"signed = false; } := uint32_t;\n");
ctf_save_write_metadata (handler,
"typealias integer { size = 64; align = 64;"
"signed = false; base = hex;}"
" := uint64_t;\n");
ctf_save_write_metadata (handler,
"typealias integer { size = 32; align = 32;"
"signed = true; } := int32_t;\n");
ctf_save_write_metadata (handler,
"typealias integer { size = 64; align = 64;"
"signed = true; } := int64_t;\n");
ctf_save_write_metadata (handler,
"typealias string { encoding = ascii;"
" } := chars;\n");
ctf_save_write_metadata (handler, "\n");
/* Get the byte order of the host and write CTF data in this byte
order. */
#if WORDS_BIGENDIAN
#define HOST_ENDIANNESS "be"
#else
#define HOST_ENDIANNESS "le"
#endif
ctf_save_write_metadata (handler,
"\ntrace {\n"
" major = %u;\n"
" minor = %u;\n"
" byte_order = %s;\n"
" packet.header := struct {\n"
" uint32_t magic;\n"
" };\n"
"};\n"
"\n"
"stream {\n"
" packet.context := struct {\n"
" uint32_t content_size;\n"
" uint32_t packet_size;\n"
" uint16_t tpnum;\n"
" };\n"
" event.header := struct {\n"
" uint32_t id;\n"
" };\n"
"};\n",
CTF_SAVE_MAJOR, CTF_SAVE_MINOR,
HOST_ENDIANNESS);
ctf_save_write_metadata (handler, "\n");
}
/* CTF trace writer. */
struct ctf_trace_file_writer
{
struct trace_file_writer base;
/* States related to writing CTF trace file. */
struct trace_write_handler tcs;
};
/* This is the implementation of trace_file_write_ops method
dtor. */
static void
ctf_dtor (struct trace_file_writer *self)
{
struct ctf_trace_file_writer *writer
= (struct ctf_trace_file_writer *) self;
if (writer->tcs.metadata_fd != NULL)
fclose (writer->tcs.metadata_fd);
if (writer->tcs.datastream_fd != NULL)
fclose (writer->tcs.datastream_fd);
}
/* This is the implementation of trace_file_write_ops method
target_save. */
static int
ctf_target_save (struct trace_file_writer *self,
const char *dirname)
{
/* Don't support save trace file to CTF format in the target. */
return 0;
}
/* This is the implementation of trace_file_write_ops method
start. It creates the directory DIRNAME, metadata and datastream
in the directory. */
static void
ctf_start (struct trace_file_writer *self, const char *dirname)
{
struct ctf_trace_file_writer *writer
= (struct ctf_trace_file_writer *) self;
mode_t hmode = S_IRUSR | S_IWUSR | S_IXUSR | S_IRGRP | S_IXGRP | S_IROTH;
/* Create DIRNAME. */
if (mkdir (dirname, hmode) && errno != EEXIST)
error (_("Unable to open directory '%s' for saving trace data (%s)"),
dirname, safe_strerror (errno));
memset (&writer->tcs, '\0', sizeof (writer->tcs));
std::string file_name = string_printf ("%s/%s", dirname, CTF_METADATA_NAME);
writer->tcs.metadata_fd
= gdb_fopen_cloexec (file_name.c_str (), "w").release ();
if (writer->tcs.metadata_fd == NULL)
error (_("Unable to open file '%s' for saving trace data (%s)"),
file_name.c_str (), safe_strerror (errno));
ctf_save_metadata_header (&writer->tcs);
file_name = string_printf ("%s/%s", dirname, CTF_DATASTREAM_NAME);
writer->tcs.datastream_fd
= gdb_fopen_cloexec (file_name.c_str (), "w").release ();
if (writer->tcs.datastream_fd == NULL)
error (_("Unable to open file '%s' for saving trace data (%s)"),
file_name.c_str (), safe_strerror (errno));
}
/* This is the implementation of trace_file_write_ops method
write_header. Write the types of events on trace variable and
frame. */
static void
ctf_write_header (struct trace_file_writer *self)
{
struct ctf_trace_file_writer *writer
= (struct ctf_trace_file_writer *) self;
ctf_save_write_metadata (&writer->tcs, "\n");
ctf_save_write_metadata (&writer->tcs,
"event {\n\tname = \"memory\";\n\tid = %u;\n"
"\tfields := struct { \n"
"\t\tuint64_t address;\n"
"\t\tuint16_t length;\n"
"\t\tuint8_t contents[length];\n"
"\t};\n"
"};\n", CTF_EVENT_ID_MEMORY);
ctf_save_write_metadata (&writer->tcs, "\n");
ctf_save_write_metadata (&writer->tcs,
"event {\n\tname = \"tsv\";\n\tid = %u;\n"
"\tfields := struct { \n"
"\t\tuint64_t val;\n"
"\t\tuint32_t num;\n"
"\t};\n"
"};\n", CTF_EVENT_ID_TSV);
ctf_save_write_metadata (&writer->tcs, "\n");
ctf_save_write_metadata (&writer->tcs,
"event {\n\tname = \"frame\";\n\tid = %u;\n"
"\tfields := struct { \n"
"\t};\n"
"};\n", CTF_EVENT_ID_FRAME);
ctf_save_write_metadata (&writer->tcs, "\n");
ctf_save_write_metadata (&writer->tcs,
"event {\n\tname = \"tsv_def\";\n"
"\tid = %u;\n\tfields := struct { \n"
"\t\tint64_t initial_value;\n"
"\t\tint32_t number;\n"
"\t\tint32_t builtin;\n"
"\t\tchars name;\n"
"\t};\n"
"};\n", CTF_EVENT_ID_TSV_DEF);
ctf_save_write_metadata (&writer->tcs, "\n");
ctf_save_write_metadata (&writer->tcs,
"event {\n\tname = \"tp_def\";\n"
"\tid = %u;\n\tfields := struct { \n"
"\t\tuint64_t addr;\n"
"\t\tuint64_t traceframe_usage;\n"
"\t\tint32_t number;\n"
"\t\tint32_t enabled;\n"
"\t\tint32_t step;\n"
"\t\tint32_t pass;\n"
"\t\tint32_t hit_count;\n"
"\t\tint32_t type;\n"
"\t\tchars cond;\n"
"\t\tuint32_t action_num;\n"
"\t\tchars actions[action_num];\n"
"\t\tuint32_t step_action_num;\n"
"\t\tchars step_actions[step_action_num];\n"
"\t\tchars at_string;\n"
"\t\tchars cond_string;\n"
"\t\tuint32_t cmd_num;\n"
"\t\tchars cmd_strings[cmd_num];\n"
"\t};\n"
"};\n", CTF_EVENT_ID_TP_DEF);
gdb_assert (writer->tcs.content_size == 0);
gdb_assert (writer->tcs.packet_start == 0);
/* Create a new packet to contain this event. */
self->ops->frame_ops->start (self, 0);
}
/* This is the implementation of trace_file_write_ops method
write_regblock_type. Write the type of register event in
metadata. */
static void
ctf_write_regblock_type (struct trace_file_writer *self, int size)
{
struct ctf_trace_file_writer *writer
= (struct ctf_trace_file_writer *) self;
ctf_save_write_metadata (&writer->tcs, "\n");
ctf_save_write_metadata (&writer->tcs,
"event {\n\tname = \"register\";\n\tid = %u;\n"
"\tfields := struct { \n"
"\t\tascii contents[%d];\n"
"\t};\n"
"};\n",
CTF_EVENT_ID_REGISTER, size);
}
/* This is the implementation of trace_file_write_ops method
write_status. */
static void
ctf_write_status (struct trace_file_writer *self,
struct trace_status *ts)
{
struct ctf_trace_file_writer *writer
= (struct ctf_trace_file_writer *) self;
uint32_t id;
ctf_save_write_metadata (&writer->tcs, "\n");
ctf_save_write_metadata (&writer->tcs,
"event {\n\tname = \"status\";\n\tid = %u;\n"
"\tfields := struct { \n"
"\t\tint32_t stop_reason;\n"
"\t\tint32_t stopping_tracepoint;\n"
"\t\tint32_t traceframe_count;\n"
"\t\tint32_t traceframes_created;\n"
"\t\tint32_t buffer_free;\n"
"\t\tint32_t buffer_size;\n"
"\t\tint32_t disconnected_tracing;\n"
"\t\tint32_t circular_buffer;\n"
"\t};\n"
"};\n",
CTF_EVENT_ID_STATUS);
id = CTF_EVENT_ID_STATUS;
/* Event Id. */
ctf_save_align_write (&writer->tcs, (gdb_byte *) &id, 4, 4);
ctf_save_write_int32 (&writer->tcs, ts->stop_reason);
ctf_save_write_int32 (&writer->tcs, ts->stopping_tracepoint);
ctf_save_write_int32 (&writer->tcs, ts->traceframe_count);
ctf_save_write_int32 (&writer->tcs, ts->traceframes_created);
ctf_save_write_int32 (&writer->tcs, ts->buffer_free);
ctf_save_write_int32 (&writer->tcs, ts->buffer_size);
ctf_save_write_int32 (&writer->tcs, ts->disconnected_tracing);
ctf_save_write_int32 (&writer->tcs, ts->circular_buffer);
}
/* This is the implementation of trace_file_write_ops method
write_uploaded_tsv. */
static void
ctf_write_uploaded_tsv (struct trace_file_writer *self,
struct uploaded_tsv *tsv)
{
struct ctf_trace_file_writer *writer
= (struct ctf_trace_file_writer *) self;
int32_t int32;
int64_t int64;
const gdb_byte zero = 0;
/* Event Id. */
int32 = CTF_EVENT_ID_TSV_DEF;
ctf_save_align_write (&writer->tcs, (gdb_byte *) &int32, 4, 4);
/* initial_value */
int64 = tsv->initial_value;
ctf_save_align_write (&writer->tcs, (gdb_byte *) &int64, 8, 8);
/* number */
ctf_save_write_int32 (&writer->tcs, tsv->number);
/* builtin */
ctf_save_write_int32 (&writer->tcs, tsv->builtin);
/* name */
if (tsv->name != NULL)
ctf_save_write (&writer->tcs, (gdb_byte *) tsv->name,
strlen (tsv->name));
ctf_save_write (&writer->tcs, &zero, 1);
}
/* This is the implementation of trace_file_write_ops method
write_uploaded_tp. */
static void
ctf_write_uploaded_tp (struct trace_file_writer *self,
struct uploaded_tp *tp)
{
struct ctf_trace_file_writer *writer
= (struct ctf_trace_file_writer *) self;
int32_t int32;
int64_t int64;
uint32_t u32;
const gdb_byte zero = 0;
/* Event Id. */
int32 = CTF_EVENT_ID_TP_DEF;
ctf_save_align_write (&writer->tcs, (gdb_byte *) &int32, 4, 4);
/* address */
int64 = tp->addr;
ctf_save_align_write (&writer->tcs, (gdb_byte *) &int64, 8, 8);
/* traceframe_usage */
int64 = tp->traceframe_usage;
ctf_save_align_write (&writer->tcs, (gdb_byte *) &int64, 8, 8);
/* number */
ctf_save_write_int32 (&writer->tcs, tp->number);
/* enabled */
ctf_save_write_int32 (&writer->tcs, tp->enabled);
/* step */
ctf_save_write_int32 (&writer->tcs, tp->step);
/* pass */
ctf_save_write_int32 (&writer->tcs, tp->pass);
/* hit_count */
ctf_save_write_int32 (&writer->tcs, tp->hit_count);
/* type */
ctf_save_write_int32 (&writer->tcs, tp->type);
/* condition */
if (tp->cond != NULL)
ctf_save_write (&writer->tcs, (gdb_byte *) tp->cond.get (),
strlen (tp->cond.get ()));
ctf_save_write (&writer->tcs, &zero, 1);
/* actions */
u32 = tp->actions.size ();
ctf_save_align_write (&writer->tcs, (gdb_byte *) &u32, 4, 4);
for (const auto &act : tp->actions)
ctf_save_write (&writer->tcs, (gdb_byte *) act.get (),
strlen (act.get ()) + 1);
/* step_actions */
u32 = tp->step_actions.size ();
ctf_save_align_write (&writer->tcs, (gdb_byte *) &u32, 4, 4);
for (const auto &act : tp->step_actions)
ctf_save_write (&writer->tcs, (gdb_byte *) act.get (),
strlen (act.get ()) + 1);
/* at_string */
if (tp->at_string != NULL)
ctf_save_write (&writer->tcs, (gdb_byte *) tp->at_string.get (),
strlen (tp->at_string.get ()));
ctf_save_write (&writer->tcs, &zero, 1);
/* cond_string */
if (tp->cond_string != NULL)
ctf_save_write (&writer->tcs, (gdb_byte *) tp->cond_string.get (),
strlen (tp->cond_string.get ()));
ctf_save_write (&writer->tcs, &zero, 1);
/* cmd_strings */
u32 = tp->cmd_strings.size ();
ctf_save_align_write (&writer->tcs, (gdb_byte *) &u32, 4, 4);
for (const auto &act : tp->cmd_strings)
ctf_save_write (&writer->tcs, (gdb_byte *) act.get (),
strlen (act.get ()) + 1);
}
/* This is the implementation of trace_file_write_ops method
write_tdesc. */
static void
ctf_write_tdesc (struct trace_file_writer *self)
{
/* Nothing so far. */
}
/* This is the implementation of trace_file_write_ops method
write_definition_end. */
static void
ctf_write_definition_end (struct trace_file_writer *self)
{
self->ops->frame_ops->end (self);
}
/* This is the implementation of trace_file_write_ops method
end. */
static void
ctf_end (struct trace_file_writer *self)
{
struct ctf_trace_file_writer *writer = (struct ctf_trace_file_writer *) self;
gdb_assert (writer->tcs.content_size == 0);
}
/* This is the implementation of trace_frame_write_ops method
start. */
static void
ctf_write_frame_start (struct trace_file_writer *self, uint16_t tpnum)
{
struct ctf_trace_file_writer *writer
= (struct ctf_trace_file_writer *) self;
uint32_t id = CTF_EVENT_ID_FRAME;
uint32_t u32;
/* Step 1: Write packet context. */
/* magic. */
u32 = CTF_MAGIC;
ctf_save_write_uint32 (&writer->tcs, u32);
/* content_size and packet_size.. We still don't know the value,
write it later. */
ctf_save_fseek (&writer->tcs, 4, SEEK_CUR);
ctf_save_fseek (&writer->tcs, 4, SEEK_CUR);
/* Tracepoint number. */
ctf_save_write (&writer->tcs, (gdb_byte *) &tpnum, 2);
/* Step 2: Write event "frame". */
/* Event Id. */
ctf_save_align_write (&writer->tcs, (gdb_byte *) &id, 4, 4);
}
/* This is the implementation of trace_frame_write_ops method
write_r_block. */
static void
ctf_write_frame_r_block (struct trace_file_writer *self,
gdb_byte *buf, int32_t size)
{
struct ctf_trace_file_writer *writer
= (struct ctf_trace_file_writer *) self;
uint32_t id = CTF_EVENT_ID_REGISTER;
/* Event Id. */
ctf_save_align_write (&writer->tcs, (gdb_byte *) &id, 4, 4);
/* array contents. */
ctf_save_align_write (&writer->tcs, buf, size, 1);
}
/* This is the implementation of trace_frame_write_ops method
write_m_block_header. */
static void
ctf_write_frame_m_block_header (struct trace_file_writer *self,
uint64_t addr, uint16_t length)
{
struct ctf_trace_file_writer *writer
= (struct ctf_trace_file_writer *) self;
uint32_t event_id = CTF_EVENT_ID_MEMORY;
/* Event Id. */
ctf_save_align_write (&writer->tcs, (gdb_byte *) &event_id, 4, 4);
/* Address. */
ctf_save_align_write (&writer->tcs, (gdb_byte *) &addr, 8, 8);
/* Length. */
ctf_save_align_write (&writer->tcs, (gdb_byte *) &length, 2, 2);
}
/* This is the implementation of trace_frame_write_ops method
write_m_block_memory. */
static void
ctf_write_frame_m_block_memory (struct trace_file_writer *self,
gdb_byte *buf, uint16_t length)
{
struct ctf_trace_file_writer *writer
= (struct ctf_trace_file_writer *) self;
/* Contents. */
ctf_save_align_write (&writer->tcs, (gdb_byte *) buf, length, 1);
}
/* This is the implementation of trace_frame_write_ops method
write_v_block. */
static void
ctf_write_frame_v_block (struct trace_file_writer *self,
int32_t num, uint64_t val)
{
struct ctf_trace_file_writer *writer
= (struct ctf_trace_file_writer *) self;
uint32_t id = CTF_EVENT_ID_TSV;
/* Event Id. */
ctf_save_align_write (&writer->tcs, (gdb_byte *) &id, 4, 4);
/* val. */
ctf_save_align_write (&writer->tcs, (gdb_byte *) &val, 8, 8);
/* num. */
ctf_save_align_write (&writer->tcs, (gdb_byte *) &num, 4, 4);
}
/* This is the implementation of trace_frame_write_ops method
end. */
static void
ctf_write_frame_end (struct trace_file_writer *self)
{
struct ctf_trace_file_writer *writer
= (struct ctf_trace_file_writer *) self;
uint32_t u32;
uint32_t t;
/* Write the content size to packet header. */
ctf_save_fseek (&writer->tcs, writer->tcs.packet_start + 4,
SEEK_SET);
u32 = writer->tcs.content_size * TARGET_CHAR_BIT;
t = writer->tcs.content_size;
ctf_save_write_uint32 (&writer->tcs, u32);
/* Write the packet size. */
u32 += 4 * TARGET_CHAR_BIT;
ctf_save_write_uint32 (&writer->tcs, u32);
writer->tcs.content_size = t;
/* Write zero at the end of the packet. */
ctf_save_fseek (&writer->tcs, writer->tcs.packet_start + t,
SEEK_SET);
u32 = 0;
ctf_save_write_uint32 (&writer->tcs, u32);
writer->tcs.content_size = t;
ctf_save_next_packet (&writer->tcs);
}
/* Operations to write various types of trace frames into CTF
format. */
static const struct trace_frame_write_ops ctf_write_frame_ops =
{
ctf_write_frame_start,
ctf_write_frame_r_block,
ctf_write_frame_m_block_header,
ctf_write_frame_m_block_memory,
ctf_write_frame_v_block,
ctf_write_frame_end,
};
/* Operations to write trace buffers into CTF format. */
static const struct trace_file_write_ops ctf_write_ops =
{
ctf_dtor,
ctf_target_save,
ctf_start,
ctf_write_header,
ctf_write_regblock_type,
ctf_write_status,
ctf_write_uploaded_tsv,
ctf_write_uploaded_tp,
ctf_write_tdesc,
ctf_write_definition_end,
NULL,
&ctf_write_frame_ops,
ctf_end,
};
/* Return a trace writer for CTF format. */
struct trace_file_writer *
ctf_trace_file_writer_new (void)
{
struct ctf_trace_file_writer *writer = XNEW (struct ctf_trace_file_writer);
writer->base.ops = &ctf_write_ops;
return (struct trace_file_writer *) writer;
}
#if HAVE_LIBBABELTRACE
/* Use libbabeltrace to read CTF data. The libbabeltrace provides
iterator to iterate over each event in CTF data and APIs to get
details of event and packet, so it is very convenient to use
libbabeltrace to access events in CTF. */
#include <babeltrace/babeltrace.h>
#include <babeltrace/ctf/events.h>
#include <babeltrace/ctf/iterator.h>
/* The struct pointer for current CTF directory. */
static int handle_id = -1;
static struct bt_context *ctx = NULL;
static struct bt_ctf_iter *ctf_iter = NULL;
/* The position of the first packet containing trace frame. */
static struct bt_iter_pos *start_pos;
/* The name of CTF directory. */
static char *trace_dirname;
static ctf_target ctf_ops;
/* Destroy ctf iterator and context. */
static void
ctf_destroy (void)
{
if (ctf_iter != NULL)
{
bt_ctf_iter_destroy (ctf_iter);
ctf_iter = NULL;
}
if (ctx != NULL)
{
bt_context_put (ctx);
ctx = NULL;
}
}
/* Open CTF trace data in DIRNAME. */
static void
ctf_open_dir (const char *dirname)
{
struct bt_iter_pos begin_pos;
unsigned int count, i;
struct bt_ctf_event_decl * const *list;
ctx = bt_context_create ();
if (ctx == NULL)
error (_("Unable to create bt_context"));
handle_id = bt_context_add_trace (ctx, dirname, "ctf", NULL, NULL, NULL);
if (handle_id < 0)
{
ctf_destroy ();
error (_("Unable to use libbabeltrace on directory \"%s\""),
dirname);
}
begin_pos.type = BT_SEEK_BEGIN;
ctf_iter = bt_ctf_iter_create (ctx, &begin_pos, NULL);
if (ctf_iter == NULL)
{
ctf_destroy ();
error (_("Unable to create bt_iterator"));
}
/* Look for the declaration of register block. Get the length of
array "contents" to set trace_regblock_size. */
bt_ctf_get_event_decl_list (handle_id, ctx, &list, &count);
for (i = 0; i < count; i++)
if (strcmp ("register", bt_ctf_get_decl_event_name (list[i])) == 0)
{
const struct bt_ctf_field_decl * const *field_list;
const struct bt_declaration *decl;
bt_ctf_get_decl_fields (list[i], BT_EVENT_FIELDS, &field_list,
&count);
gdb_assert (count == 1);
gdb_assert (0 == strcmp ("contents",
bt_ctf_get_decl_field_name (field_list[0])));
decl = bt_ctf_get_decl_from_field_decl (field_list[0]);
trace_regblock_size = bt_ctf_get_array_len (decl);
break;
}
}
#define SET_INT32_FIELD(EVENT, SCOPE, VAR, FIELD) \
(VAR)->FIELD = (int) bt_ctf_get_int64 (bt_ctf_get_field ((EVENT), \
(SCOPE), \
#FIELD))
#define SET_ENUM_FIELD(EVENT, SCOPE, VAR, TYPE, FIELD) \
(VAR)->FIELD = (TYPE) bt_ctf_get_int64 (bt_ctf_get_field ((EVENT), \
(SCOPE), \
#FIELD))
/* EVENT is the "status" event and TS is filled in. */
static void
ctf_read_status (struct bt_ctf_event *event, struct trace_status *ts)
{
const struct bt_definition *scope
= bt_ctf_get_top_level_scope (event, BT_EVENT_FIELDS);
SET_ENUM_FIELD (event, scope, ts, enum trace_stop_reason, stop_reason);
SET_INT32_FIELD (event, scope, ts, stopping_tracepoint);
SET_INT32_FIELD (event, scope, ts, traceframe_count);
SET_INT32_FIELD (event, scope, ts, traceframes_created);
SET_INT32_FIELD (event, scope, ts, buffer_free);
SET_INT32_FIELD (event, scope, ts, buffer_size);
SET_INT32_FIELD (event, scope, ts, disconnected_tracing);
SET_INT32_FIELD (event, scope, ts, circular_buffer);
bt_iter_next (bt_ctf_get_iter (ctf_iter));
}
/* Read the events "tsv_def" one by one, extract its contents and fill
in the list UPLOADED_TSVS. */
static void
ctf_read_tsv (struct uploaded_tsv **uploaded_tsvs)
{
gdb_assert (ctf_iter != NULL);
while (1)
{
struct bt_ctf_event *event;
const struct bt_definition *scope;
const struct bt_definition *def;
uint32_t event_id;
struct uploaded_tsv *utsv = NULL;
event = bt_ctf_iter_read_event (ctf_iter);
scope = bt_ctf_get_top_level_scope (event,
BT_STREAM_EVENT_HEADER);
event_id = bt_ctf_get_uint64 (bt_ctf_get_field (event, scope,
"id"));
if (event_id != CTF_EVENT_ID_TSV_DEF)
break;
scope = bt_ctf_get_top_level_scope (event,
BT_EVENT_FIELDS);
def = bt_ctf_get_field (event, scope, "number");
utsv = get_uploaded_tsv ((int32_t) bt_ctf_get_int64 (def),
uploaded_tsvs);
def = bt_ctf_get_field (event, scope, "builtin");
utsv->builtin = (int32_t) bt_ctf_get_int64 (def);
def = bt_ctf_get_field (event, scope, "initial_value");
utsv->initial_value = bt_ctf_get_int64 (def);
def = bt_ctf_get_field (event, scope, "name");
utsv->name = xstrdup (bt_ctf_get_string (def));
if (bt_iter_next (bt_ctf_get_iter (ctf_iter)) < 0)
break;
}
}
/* Read the value of element whose index is NUM from CTF and write it
to the corresponding VAR->ARRAY. */
#define SET_ARRAY_FIELD(EVENT, SCOPE, VAR, NUM, ARRAY) \
do \
{ \
uint32_t lu32, i; \
const struct bt_definition *def; \
\
lu32 = (uint32_t) bt_ctf_get_uint64 (bt_ctf_get_field ((EVENT), \
(SCOPE), \
#NUM)); \
def = bt_ctf_get_field ((EVENT), (SCOPE), #ARRAY); \
for (i = 0; i < lu32; i++) \
{ \
const struct bt_definition *element \
= bt_ctf_get_index ((EVENT), def, i); \
\
(VAR)->ARRAY.emplace_back \
(xstrdup (bt_ctf_get_string (element))); \
} \
} \
while (0)
/* Read a string from CTF and set VAR->FIELD. If the length of string
is zero, set VAR->FIELD to NULL. */
#define SET_STRING_FIELD(EVENT, SCOPE, VAR, FIELD) \
do \
{ \
const char *p = bt_ctf_get_string (bt_ctf_get_field ((EVENT), \
(SCOPE), \
#FIELD)); \
\
if (strlen (p) > 0) \
(VAR)->FIELD.reset (xstrdup (p)); \
else \
(VAR)->FIELD = NULL; \
} \
while (0)
/* Read the events "tp_def" one by one, extract its contents and fill
in the list UPLOADED_TPS. */
static void
ctf_read_tp (struct uploaded_tp **uploaded_tps)
{
gdb_assert (ctf_iter != NULL);
while (1)
{
struct bt_ctf_event *event;
const struct bt_definition *scope;
uint32_t u32;
int32_t int32;
uint64_t u64;
struct uploaded_tp *utp = NULL;
event = bt_ctf_iter_read_event (ctf_iter);
scope = bt_ctf_get_top_level_scope (event,
BT_STREAM_EVENT_HEADER);
u32 = bt_ctf_get_uint64 (bt_ctf_get_field (event, scope,
"id"));
if (u32 != CTF_EVENT_ID_TP_DEF)
break;
scope = bt_ctf_get_top_level_scope (event,
BT_EVENT_FIELDS);
int32 = (int32_t) bt_ctf_get_int64 (bt_ctf_get_field (event,
scope,
"number"));
u64 = bt_ctf_get_uint64 (bt_ctf_get_field (event, scope,
"addr"));
utp = get_uploaded_tp (int32, u64, uploaded_tps);
SET_INT32_FIELD (event, scope, utp, enabled);
SET_INT32_FIELD (event, scope, utp, step);
SET_INT32_FIELD (event, scope, utp, pass);
SET_INT32_FIELD (event, scope, utp, hit_count);
SET_ENUM_FIELD (event, scope, utp, enum bptype, type);
/* Read 'cmd_strings'. */
SET_ARRAY_FIELD (event, scope, utp, cmd_num, cmd_strings);
/* Read 'actions'. */
SET_ARRAY_FIELD (event, scope, utp, action_num, actions);
/* Read 'step_actions'. */
SET_ARRAY_FIELD (event, scope, utp, step_action_num,
step_actions);
SET_STRING_FIELD(event, scope, utp, at_string);
SET_STRING_FIELD(event, scope, utp, cond_string);
if (bt_iter_next (bt_ctf_get_iter (ctf_iter)) < 0)
break;
}
}
/* This is the implementation of target_ops method to_open. Open CTF
trace data, read trace status, trace state variables and tracepoint
definitions from the first packet. Set the start position at the
second packet which contains events on trace blocks. */
static void
ctf_target_open (const char *dirname, int from_tty)
{
struct bt_ctf_event *event;
uint32_t event_id;
const struct bt_definition *scope;
struct uploaded_tsv *uploaded_tsvs = NULL;
struct uploaded_tp *uploaded_tps = NULL;
if (!dirname)
error (_("No CTF directory specified."));
ctf_open_dir (dirname);
target_preopen (from_tty);
/* Skip the first packet which about the trace status. The first
event is "frame". */
event = bt_ctf_iter_read_event (ctf_iter);
scope = bt_ctf_get_top_level_scope (event, BT_STREAM_EVENT_HEADER);
event_id = bt_ctf_get_uint64 (bt_ctf_get_field (event, scope, "id"));
if (event_id != CTF_EVENT_ID_FRAME)
error (_("Wrong event id of the first event"));
/* The second event is "status". */
bt_iter_next (bt_ctf_get_iter (ctf_iter));
event = bt_ctf_iter_read_event (ctf_iter);
scope = bt_ctf_get_top_level_scope (event, BT_STREAM_EVENT_HEADER);
event_id = bt_ctf_get_uint64 (bt_ctf_get_field (event, scope, "id"));
if (event_id != CTF_EVENT_ID_STATUS)
error (_("Wrong event id of the second event"));
ctf_read_status (event, current_trace_status ());
ctf_read_tsv (&uploaded_tsvs);
ctf_read_tp (&uploaded_tps);
event = bt_ctf_iter_read_event (ctf_iter);
/* EVENT can be NULL if we've already gone to the end of stream of
events. */
if (event != NULL)
{
scope = bt_ctf_get_top_level_scope (event,
BT_STREAM_EVENT_HEADER);
event_id = bt_ctf_get_uint64 (bt_ctf_get_field (event,
scope, "id"));
if (event_id != CTF_EVENT_ID_FRAME)
error (_("Wrong event id of the first event of the second packet"));
}
start_pos = bt_iter_get_pos (bt_ctf_get_iter (ctf_iter));
gdb_assert (start_pos->type == BT_SEEK_RESTORE);
trace_dirname = xstrdup (dirname);
push_target (&ctf_ops);
inferior_appeared (current_inferior (), CTF_PID);
inferior_ptid = ptid_t (CTF_PID);
add_thread_silent (&ctf_ops, inferior_ptid);
merge_uploaded_trace_state_variables (&uploaded_tsvs);
merge_uploaded_tracepoints (&uploaded_tps);
post_create_inferior (&ctf_ops, from_tty);
}
/* This is the implementation of target_ops method to_close. Destroy
CTF iterator and context. */
void
ctf_target::close ()
{
ctf_destroy ();
xfree (trace_dirname);
trace_dirname = NULL;
inferior_ptid = null_ptid; /* Avoid confusion from thread stuff. */
exit_inferior_silent (current_inferior ());
trace_reset_local_state ();
}
/* This is the implementation of target_ops method to_files_info.
Print the directory name of CTF trace data. */
void
ctf_target::files_info ()
{
printf_filtered ("\t`%s'\n", trace_dirname);
}
/* This is the implementation of target_ops method to_fetch_registers.
Iterate over events whose name is "register" in current frame,
extract contents from events, and set REGCACHE with the contents.
If no matched events are found, mark registers unavailable. */
void
ctf_target::fetch_registers (struct regcache *regcache, int regno)
{
struct gdbarch *gdbarch = regcache->arch ();
struct bt_ctf_event *event = NULL;
struct bt_iter_pos *pos;
/* An uninitialized reg size says we're not going to be
successful at getting register blocks. */
if (trace_regblock_size == 0)
return;
gdb_assert (ctf_iter != NULL);
/* Save the current position. */
pos = bt_iter_get_pos (bt_ctf_get_iter (ctf_iter));
gdb_assert (pos->type == BT_SEEK_RESTORE);
while (1)
{
const char *name;
struct bt_ctf_event *event1;
event1 = bt_ctf_iter_read_event (ctf_iter);
name = bt_ctf_event_name (event1);
if (name == NULL || strcmp (name, "frame") == 0)
break;
else if (strcmp (name, "register") == 0)
{
event = event1;
break;
}
if (bt_iter_next (bt_ctf_get_iter (ctf_iter)) < 0)
break;
}
/* Restore the position. */
bt_iter_set_pos (bt_ctf_get_iter (ctf_iter), pos);
if (event != NULL)
{
int offset, regsize, regn;
const struct bt_definition *scope
= bt_ctf_get_top_level_scope (event,
BT_EVENT_FIELDS);
const struct bt_definition *array
= bt_ctf_get_field (event, scope, "contents");
gdb_byte *regs = (gdb_byte *) bt_ctf_get_char_array (array);
/* Assume the block is laid out in GDB register number order,
each register with the size that it has in GDB. */
offset = 0;
for (regn = 0; regn < gdbarch_num_regs (gdbarch); regn++)
{
regsize = register_size (gdbarch, regn);
/* Make sure we stay within block bounds. */
if (offset + regsize >= trace_regblock_size)
break;
if (regcache->get_register_status (regn) == REG_UNKNOWN)
{
if (regno == regn)
{
regcache->raw_supply (regno, regs + offset);
break;
}
else if (regno == -1)
{
regcache->raw_supply (regn, regs + offset);
}
}
offset += regsize;
}
}
else
tracefile_fetch_registers (regcache, regno);
}
/* This is the implementation of target_ops method to_xfer_partial.
Iterate over events whose name is "memory" in
current frame, extract the address and length from events. If
OFFSET is within the range, read the contents from events to
READBUF. */
enum target_xfer_status
ctf_target::xfer_partial (enum target_object object,
const char *annex, gdb_byte *readbuf,
const gdb_byte *writebuf, ULONGEST offset,
ULONGEST len, ULONGEST *xfered_len)
{
/* We're only doing regular memory for now. */
if (object != TARGET_OBJECT_MEMORY)
return TARGET_XFER_E_IO;
if (readbuf == NULL)
error (_("ctf_xfer_partial: trace file is read-only"));
if (get_traceframe_number () != -1)
{
struct bt_iter_pos *pos;
enum target_xfer_status res;
/* Records the lowest available address of all blocks that
intersects the requested range. */
ULONGEST low_addr_available = 0;
gdb_assert (ctf_iter != NULL);
/* Save the current position. */
pos = bt_iter_get_pos (bt_ctf_get_iter (ctf_iter));
gdb_assert (pos->type == BT_SEEK_RESTORE);
/* Iterate through the traceframe's blocks, looking for
memory. */
while (1)
{
ULONGEST amt;
uint64_t maddr;
uint16_t mlen;
const struct bt_definition *scope;
const struct bt_definition *def;
struct bt_ctf_event *event
= bt_ctf_iter_read_event (ctf_iter);
const char *name = bt_ctf_event_name (event);
if (name == NULL || strcmp (name, "frame") == 0)
break;
else if (strcmp (name, "memory") != 0)
{
if (bt_iter_next (bt_ctf_get_iter (ctf_iter)) < 0)
break;
continue;
}
scope = bt_ctf_get_top_level_scope (event,
BT_EVENT_FIELDS);
def = bt_ctf_get_field (event, scope, "address");
maddr = bt_ctf_get_uint64 (def);
def = bt_ctf_get_field (event, scope, "length");
mlen = (uint16_t) bt_ctf_get_uint64 (def);
/* If the block includes the first part of the desired
range, return as much it has; GDB will re-request the
remainder, which might be in a different block of this
trace frame. */
if (maddr <= offset && offset < (maddr + mlen))
{
const struct bt_definition *array
= bt_ctf_get_field (event, scope, "contents");
gdb_byte *contents;
int k;
contents = (gdb_byte *) xmalloc (mlen);
for (k = 0; k < mlen; k++)
{
const struct bt_definition *element
= bt_ctf_get_index (event, array, k);
contents[k] = (gdb_byte) bt_ctf_get_uint64 (element);
}
amt = (maddr + mlen) - offset;
if (amt > len)
amt = len;
memcpy (readbuf, &contents[offset - maddr], amt);
xfree (contents);
/* Restore the position. */
bt_iter_set_pos (bt_ctf_get_iter (ctf_iter), pos);
if (amt == 0)
return TARGET_XFER_EOF;
else
{
*xfered_len = amt;
return TARGET_XFER_OK;
}
}
if (offset < maddr && maddr < (offset + len))
if (low_addr_available == 0 || low_addr_available > maddr)
low_addr_available = maddr;
if (bt_iter_next (bt_ctf_get_iter (ctf_iter)) < 0)
break;
}
/* Restore the position. */
bt_iter_set_pos (bt_ctf_get_iter (ctf_iter), pos);
/* Requested memory is unavailable in the context of traceframes,
and this address falls within a read-only section, fallback
to reading from executable, up to LOW_ADDR_AVAILABLE */
if (offset < low_addr_available)
len = std::min (len, low_addr_available - offset);
res = exec_read_partial_read_only (readbuf, offset, len, xfered_len);
if (res == TARGET_XFER_OK)
return TARGET_XFER_OK;
else
{
/* No use trying further, we know some memory starting
at MEMADDR isn't available. */
*xfered_len = len;
return TARGET_XFER_UNAVAILABLE;
}
}
else
{
/* Fallback to reading from read-only sections. */
return section_table_read_available_memory (readbuf, offset, len, xfered_len);
}
}
/* This is the implementation of target_ops method
to_get_trace_state_variable_value.
Iterate over events whose name is "tsv" in current frame. When the
trace variable is found, set the value of it to *VAL and return
true, otherwise return false. */
bool
ctf_target::get_trace_state_variable_value (int tsvnum, LONGEST *val)
{
struct bt_iter_pos *pos;
bool found = false;
gdb_assert (ctf_iter != NULL);
/* Save the current position. */
pos = bt_iter_get_pos (bt_ctf_get_iter (ctf_iter));
gdb_assert (pos->type == BT_SEEK_RESTORE);
/* Iterate through the traceframe's blocks, looking for 'V'
block. */
while (1)
{
struct bt_ctf_event *event
= bt_ctf_iter_read_event (ctf_iter);
const char *name = bt_ctf_event_name (event);
if (name == NULL || strcmp (name, "frame") == 0)
break;
else if (strcmp (name, "tsv") == 0)
{
const struct bt_definition *scope;
const struct bt_definition *def;
scope = bt_ctf_get_top_level_scope (event,
BT_EVENT_FIELDS);
def = bt_ctf_get_field (event, scope, "num");
if (tsvnum == (int32_t) bt_ctf_get_uint64 (def))
{
def = bt_ctf_get_field (event, scope, "val");
*val = bt_ctf_get_uint64 (def);
found = true;
}
}
if (bt_iter_next (bt_ctf_get_iter (ctf_iter)) < 0)
break;
}
/* Restore the position. */
bt_iter_set_pos (bt_ctf_get_iter (ctf_iter), pos);
return found;
}
/* Return the tracepoint number in "frame" event. */
static int
ctf_get_tpnum_from_frame_event (struct bt_ctf_event *event)
{
/* The packet context of events has a field "tpnum". */
const struct bt_definition *scope
= bt_ctf_get_top_level_scope (event, BT_STREAM_PACKET_CONTEXT);
uint64_t tpnum
= bt_ctf_get_uint64 (bt_ctf_get_field (event, scope, "tpnum"));
return (int) tpnum;
}
/* Return the address at which the current frame was collected. */
static CORE_ADDR
ctf_get_traceframe_address (void)
{
struct bt_ctf_event *event = NULL;
struct bt_iter_pos *pos;
CORE_ADDR addr = 0;
gdb_assert (ctf_iter != NULL);
pos = bt_iter_get_pos (bt_ctf_get_iter (ctf_iter));
gdb_assert (pos->type == BT_SEEK_RESTORE);
while (1)
{
const char *name;
struct bt_ctf_event *event1;
event1 = bt_ctf_iter_read_event (ctf_iter);
name = bt_ctf_event_name (event1);
if (name == NULL)
break;
else if (strcmp (name, "frame") == 0)
{
event = event1;
break;
}
if (bt_iter_next (bt_ctf_get_iter (ctf_iter)) < 0)
break;
}
if (event != NULL)
{
int tpnum = ctf_get_tpnum_from_frame_event (event);
struct tracepoint *tp
= get_tracepoint_by_number_on_target (tpnum);
if (tp && tp->loc)
addr = tp->loc->address;
}
/* Restore the position. */
bt_iter_set_pos (bt_ctf_get_iter (ctf_iter), pos);
return addr;
}
/* This is the implementation of target_ops method to_trace_find.
Iterate the events whose name is "frame", extract the tracepoint
number in it. Return traceframe number when matched. */
int
ctf_target::trace_find (enum trace_find_type type, int num,
CORE_ADDR addr1, CORE_ADDR addr2, int *tpp)
{
int tfnum = 0;
int found = 0;
if (num == -1)
{
if (tpp != NULL)
*tpp = -1;
return -1;
}
gdb_assert (ctf_iter != NULL);
/* Set iterator back to the start. */
bt_iter_set_pos (bt_ctf_get_iter (ctf_iter), start_pos);
while (1)
{
struct bt_ctf_event *event;
const char *name;
event = bt_ctf_iter_read_event (ctf_iter);
name = bt_ctf_event_name (event);
if (event == NULL || name == NULL)
break;
if (strcmp (name, "frame") == 0)
{
CORE_ADDR tfaddr;
if (type == tfind_number)
{
/* Looking for a specific trace frame. */
if (tfnum == num)
found = 1;
}
else
{
/* Start from the _next_ trace frame. */
if (tfnum > get_traceframe_number ())
{
switch (type)
{
case tfind_tp:
{
struct tracepoint *tp = get_tracepoint (num);
if (tp != NULL
&& (tp->number_on_target
== ctf_get_tpnum_from_frame_event (event)))
found = 1;
break;
}
case tfind_pc:
tfaddr = ctf_get_traceframe_address ();
if (tfaddr == addr1)
found = 1;
break;
case tfind_range:
tfaddr = ctf_get_traceframe_address ();
if (addr1 <= tfaddr && tfaddr <= addr2)
found = 1;
break;
case tfind_outside:
tfaddr = ctf_get_traceframe_address ();
if (!(addr1 <= tfaddr && tfaddr <= addr2))
found = 1;
break;
default:
internal_error (__FILE__, __LINE__, _("unknown tfind type"));
}
}
}
if (found)
{
if (tpp != NULL)
*tpp = ctf_get_tpnum_from_frame_event (event);
/* Skip the event "frame". */
bt_iter_next (bt_ctf_get_iter (ctf_iter));
return tfnum;
}
tfnum++;
}
if (bt_iter_next (bt_ctf_get_iter (ctf_iter)) < 0)
break;
}
return -1;
}
/* This is the implementation of target_ops method to_traceframe_info.
Iterate the events whose name is "memory", in current
frame, extract memory range information, and return them in
traceframe_info. */
traceframe_info_up
ctf_target::traceframe_info ()
{
traceframe_info_up info (new struct traceframe_info);
const char *name;
struct bt_iter_pos *pos;
gdb_assert (ctf_iter != NULL);
/* Save the current position. */
pos = bt_iter_get_pos (bt_ctf_get_iter (ctf_iter));
gdb_assert (pos->type == BT_SEEK_RESTORE);
do
{
struct bt_ctf_event *event
= bt_ctf_iter_read_event (ctf_iter);
name = bt_ctf_event_name (event);
if (name == NULL || strcmp (name, "register") == 0
|| strcmp (name, "frame") == 0)
;
else if (strcmp (name, "memory") == 0)
{
const struct bt_definition *scope
= bt_ctf_get_top_level_scope (event,
BT_EVENT_FIELDS);
const struct bt_definition *def;
def = bt_ctf_get_field (event, scope, "address");
CORE_ADDR start = bt_ctf_get_uint64 (def);
def = bt_ctf_get_field (event, scope, "length");
int length = (uint16_t) bt_ctf_get_uint64 (def);
info->memory.emplace_back (start, length);
}
else if (strcmp (name, "tsv") == 0)
{
int vnum;
const struct bt_definition *scope
= bt_ctf_get_top_level_scope (event,
BT_EVENT_FIELDS);
const struct bt_definition *def;
def = bt_ctf_get_field (event, scope, "num");
vnum = (int) bt_ctf_get_uint64 (def);
info->tvars.push_back (vnum);
}
else
{
warning (_("Unhandled trace block type (%s) "
"while building trace frame info."),
name);
}
if (bt_iter_next (bt_ctf_get_iter (ctf_iter)) < 0)
break;
}
while (name != NULL && strcmp (name, "frame") != 0);
/* Restore the position. */
bt_iter_set_pos (bt_ctf_get_iter (ctf_iter), pos);
return info;
}
#endif
/* module initialization */
void
_initialize_ctf (void)
{
#if HAVE_LIBBABELTRACE
add_target (ctf_target_info, ctf_target_open, filename_completer);
#endif
}