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Adds a 'TRACE_${NAME}_ENABLED' preprocessor define for each tracing event in "trace.h". This lets the user conditionally compile code with a relatively high execution cost that is only necessary when producing the tracing information for an event that is enabled. Note that events using this define will probably have the "disable" property by default, in order to avoid such costs on regular builds. Signed-off-by: Lluís Vilanova <vilanova@ac.upc.edu> Signed-off-by: Stefan Hajnoczi <stefanha@linux.vnet.ibm.com>
271 lines
9.7 KiB
Plaintext
271 lines
9.7 KiB
Plaintext
= Tracing =
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== Introduction ==
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This document describes the tracing infrastructure in QEMU and how to use it
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for debugging, profiling, and observing execution.
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== Quickstart ==
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1. Build with the 'simple' trace backend:
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./configure --trace-backend=simple
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make
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2. Create a file with the events you want to trace:
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echo bdrv_aio_readv > /tmp/events
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echo bdrv_aio_writev >> /tmp/events
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3. Run the virtual machine to produce a trace file:
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qemu -trace events=/tmp/events ... # your normal QEMU invocation
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4. Pretty-print the binary trace file:
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./simpletrace.py trace-events trace-*
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== Trace events ==
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There is a set of static trace events declared in the "trace-events" source
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file. Each trace event declaration names the event, its arguments, and the
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format string which can be used for pretty-printing:
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qemu_vmalloc(size_t size, void *ptr) "size %zu ptr %p"
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qemu_vfree(void *ptr) "ptr %p"
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The "trace-events" file is processed by the "tracetool" script during build to
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generate code for the trace events. Trace events are invoked directly from
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source code like this:
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#include "trace.h" /* needed for trace event prototype */
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void *qemu_vmalloc(size_t size)
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{
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void *ptr;
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size_t align = QEMU_VMALLOC_ALIGN;
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if (size < align) {
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align = getpagesize();
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}
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ptr = qemu_memalign(align, size);
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trace_qemu_vmalloc(size, ptr);
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return ptr;
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}
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=== Declaring trace events ===
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The "tracetool" script produces the trace.h header file which is included by
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every source file that uses trace events. Since many source files include
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trace.h, it uses a minimum of types and other header files included to keep the
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namespace clean and compile times and dependencies down.
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Trace events should use types as follows:
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* Use stdint.h types for fixed-size types. Most offsets and guest memory
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addresses are best represented with uint32_t or uint64_t. Use fixed-size
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types over primitive types whose size may change depending on the host
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(32-bit versus 64-bit) so trace events don't truncate values or break
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the build.
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* Use void * for pointers to structs or for arrays. The trace.h header
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cannot include all user-defined struct declarations and it is therefore
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necessary to use void * for pointers to structs.
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* For everything else, use primitive scalar types (char, int, long) with the
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appropriate signedness.
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Format strings should reflect the types defined in the trace event. Take
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special care to use PRId64 and PRIu64 for int64_t and uint64_t types,
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respectively. This ensures portability between 32- and 64-bit platforms.
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=== Hints for adding new trace events ===
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1. Trace state changes in the code. Interesting points in the code usually
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involve a state change like starting, stopping, allocating, freeing. State
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changes are good trace events because they can be used to understand the
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execution of the system.
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2. Trace guest operations. Guest I/O accesses like reading device registers
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are good trace events because they can be used to understand guest
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interactions.
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3. Use correlator fields so the context of an individual line of trace output
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can be understood. For example, trace the pointer returned by malloc and
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used as an argument to free. This way mallocs and frees can be matched up.
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Trace events with no context are not very useful.
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4. Name trace events after their function. If there are multiple trace events
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in one function, append a unique distinguisher at the end of the name.
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== Generic interface and monitor commands ==
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You can programmatically query and control the dynamic state of trace events
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through a backend-agnostic interface:
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* trace_print_events
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* trace_event_set_state
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Enables or disables trace events at runtime inside QEMU.
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The function returns "true" if the state of the event has been successfully
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changed, or "false" otherwise:
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#include "trace/control.h"
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trace_event_set_state("virtio_irq", true); /* enable */
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[...]
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trace_event_set_state("virtio_irq", false); /* disable */
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Note that some of the backends do not provide an implementation for this
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interface, in which case QEMU will just print a warning.
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This functionality is also provided through monitor commands:
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* info trace-events
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View available trace events and their state. State 1 means enabled, state 0
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means disabled.
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* trace-event NAME on|off
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Enable/disable a given trace event or a group of events having common prefix
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through wildcard.
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The "-trace events=<file>" command line argument can be used to enable the
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events listed in <file> from the very beginning of the program. This file must
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contain one event name per line.
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A basic wildcard matching is supported in both the monitor command "trace
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-event" and the events list file. That means you can enable/disable the events
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having a common prefix in a batch. For example, virtio-blk trace events could
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be enabled using:
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trace-event virtio_blk_* on
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== Trace backends ==
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The "tracetool" script automates tedious trace event code generation and also
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keeps the trace event declarations independent of the trace backend. The trace
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events are not tightly coupled to a specific trace backend, such as LTTng or
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SystemTap. Support for trace backends can be added by extending the "tracetool"
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script.
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The trace backend is chosen at configure time and only one trace backend can
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be built into the binary:
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./configure --trace-backend=simple
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For a list of supported trace backends, try ./configure --help or see below.
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The following subsections describe the supported trace backends.
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=== Nop ===
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The "nop" backend generates empty trace event functions so that the compiler
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can optimize out trace events completely. This is the default and imposes no
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performance penalty.
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Note that regardless of the selected trace backend, events with the "disable"
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property will be generated with the "nop" backend.
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=== Stderr ===
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The "stderr" backend sends trace events directly to standard error. This
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effectively turns trace events into debug printfs.
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This is the simplest backend and can be used together with existing code that
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uses DPRINTF().
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=== Simpletrace ===
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The "simple" backend supports common use cases and comes as part of the QEMU
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source tree. It may not be as powerful as platform-specific or third-party
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trace backends but it is portable. This is the recommended trace backend
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unless you have specific needs for more advanced backends.
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The "simple" backend currently does not capture string arguments, it simply
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records the char* pointer value instead of the string that is pointed to.
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==== Monitor commands ====
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* info trace
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Display the contents of trace buffer. This command dumps the trace buffer
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with simple formatting. For full pretty-printing, use the simpletrace.py
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script on a binary trace file.
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The trace buffer is written into until full. The full trace buffer is
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flushed and emptied. This means the 'info trace' will display few or no
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entries if the buffer has just been flushed.
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* trace-file on|off|flush|set <path>
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Enable/disable/flush the trace file or set the trace file name.
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==== Analyzing trace files ====
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The "simple" backend produces binary trace files that can be formatted with the
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simpletrace.py script. The script takes the "trace-events" file and the binary
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trace:
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./simpletrace.py trace-events trace-12345
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You must ensure that the same "trace-events" file was used to build QEMU,
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otherwise trace event declarations may have changed and output will not be
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consistent.
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=== LTTng Userspace Tracer ===
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The "ust" backend uses the LTTng Userspace Tracer library. There are no
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monitor commands built into QEMU, instead UST utilities should be used to list,
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enable/disable, and dump traces.
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=== SystemTap ===
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The "dtrace" backend uses DTrace sdt probes but has only been tested with
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SystemTap. When SystemTap support is detected a .stp file with wrapper probes
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is generated to make use in scripts more convenient. This step can also be
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performed manually after a build in order to change the binary name in the .stp
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probes:
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scripts/tracetool --dtrace --stap \
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--binary path/to/qemu-binary \
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--target-type system \
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--target-arch x86_64 \
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<trace-events >qemu.stp
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== Trace event properties ==
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Each event in the "trace-events" file can be prefixed with a space-separated
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list of zero or more of the following event properties.
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=== "disable" ===
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If a specific trace event is going to be invoked a huge number of times, this
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might have a noticeable performance impact even when the event is
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programmatically disabled.
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In this case you should declare such event with the "disable" property. This
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will effectively disable the event at compile time (by using the "nop" backend),
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thus having no performance impact at all on regular builds (i.e., unless you
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edit the "trace-events" file).
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In addition, there might be cases where relatively complex computations must be
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performed to generate values that are only used as arguments for a trace
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function. In these cases you can use the macro 'TRACE_${EVENT_NAME}_ENABLED' to
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guard such computations and avoid its compilation when the event is disabled:
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#include "trace.h" /* needed for trace event prototype */
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void *qemu_vmalloc(size_t size)
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{
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void *ptr;
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size_t align = QEMU_VMALLOC_ALIGN;
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if (size < align) {
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align = getpagesize();
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}
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ptr = qemu_memalign(align, size);
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if (TRACE_QEMU_VMALLOC_ENABLED) { /* preprocessor macro */
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void *complex;
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/* some complex computations to produce the 'complex' value */
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trace_qemu_vmalloc(size, ptr, complex);
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}
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return ptr;
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}
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