qom: introduce object_property_get_enum and object_property_get_uint16List
[qemu.git] / include / qom / object.h
blobb882ccc85fad25ea9aa845b221f2499b79ac689e
1 /*
2 * QEMU Object Model
4 * Copyright IBM, Corp. 2011
6 * Authors:
7 * Anthony Liguori <aliguori@us.ibm.com>
9 * This work is licensed under the terms of the GNU GPL, version 2 or later.
10 * See the COPYING file in the top-level directory.
14 #ifndef QEMU_OBJECT_H
15 #define QEMU_OBJECT_H
17 #include <glib.h>
18 #include <stdint.h>
19 #include <stdbool.h>
20 #include "qemu/queue.h"
21 #include "qapi/error.h"
23 struct Visitor;
25 struct TypeImpl;
26 typedef struct TypeImpl *Type;
28 typedef struct ObjectClass ObjectClass;
29 typedef struct Object Object;
31 typedef struct TypeInfo TypeInfo;
33 typedef struct InterfaceClass InterfaceClass;
34 typedef struct InterfaceInfo InterfaceInfo;
36 #define TYPE_OBJECT "object"
38 /**
39 * SECTION:object.h
40 * @title:Base Object Type System
41 * @short_description: interfaces for creating new types and objects
43 * The QEMU Object Model provides a framework for registering user creatable
44 * types and instantiating objects from those types. QOM provides the following
45 * features:
47 * - System for dynamically registering types
48 * - Support for single-inheritance of types
49 * - Multiple inheritance of stateless interfaces
51 * <example>
52 * <title>Creating a minimal type</title>
53 * <programlisting>
54 * #include "qdev.h"
56 * #define TYPE_MY_DEVICE "my-device"
58 * // No new virtual functions: we can reuse the typedef for the
59 * // superclass.
60 * typedef DeviceClass MyDeviceClass;
61 * typedef struct MyDevice
62 * {
63 * DeviceState parent;
65 * int reg0, reg1, reg2;
66 * } MyDevice;
68 * static const TypeInfo my_device_info = {
69 * .name = TYPE_MY_DEVICE,
70 * .parent = TYPE_DEVICE,
71 * .instance_size = sizeof(MyDevice),
72 * };
74 * static void my_device_register_types(void)
75 * {
76 * type_register_static(&my_device_info);
77 * }
79 * type_init(my_device_register_types)
80 * </programlisting>
81 * </example>
83 * In the above example, we create a simple type that is described by #TypeInfo.
84 * #TypeInfo describes information about the type including what it inherits
85 * from, the instance and class size, and constructor/destructor hooks.
87 * Every type has an #ObjectClass associated with it. #ObjectClass derivatives
88 * are instantiated dynamically but there is only ever one instance for any
89 * given type. The #ObjectClass typically holds a table of function pointers
90 * for the virtual methods implemented by this type.
92 * Using object_new(), a new #Object derivative will be instantiated. You can
93 * cast an #Object to a subclass (or base-class) type using
94 * object_dynamic_cast(). You typically want to define macro wrappers around
95 * OBJECT_CHECK() and OBJECT_CLASS_CHECK() to make it easier to convert to a
96 * specific type:
98 * <example>
99 * <title>Typecasting macros</title>
100 * <programlisting>
101 * #define MY_DEVICE_GET_CLASS(obj) \
102 * OBJECT_GET_CLASS(MyDeviceClass, obj, TYPE_MY_DEVICE)
103 * #define MY_DEVICE_CLASS(klass) \
104 * OBJECT_CLASS_CHECK(MyDeviceClass, klass, TYPE_MY_DEVICE)
105 * #define MY_DEVICE(obj) \
106 * OBJECT_CHECK(MyDevice, obj, TYPE_MY_DEVICE)
107 * </programlisting>
108 * </example>
110 * # Class Initialization #
112 * Before an object is initialized, the class for the object must be
113 * initialized. There is only one class object for all instance objects
114 * that is created lazily.
116 * Classes are initialized by first initializing any parent classes (if
117 * necessary). After the parent class object has initialized, it will be
118 * copied into the current class object and any additional storage in the
119 * class object is zero filled.
121 * The effect of this is that classes automatically inherit any virtual
122 * function pointers that the parent class has already initialized. All
123 * other fields will be zero filled.
125 * Once all of the parent classes have been initialized, #TypeInfo::class_init
126 * is called to let the class being instantiated provide default initialize for
127 * its virtual functions. Here is how the above example might be modified
128 * to introduce an overridden virtual function:
130 * <example>
131 * <title>Overriding a virtual function</title>
132 * <programlisting>
133 * #include "qdev.h"
135 * void my_device_class_init(ObjectClass *klass, void *class_data)
137 * DeviceClass *dc = DEVICE_CLASS(klass);
138 * dc->reset = my_device_reset;
141 * static const TypeInfo my_device_info = {
142 * .name = TYPE_MY_DEVICE,
143 * .parent = TYPE_DEVICE,
144 * .instance_size = sizeof(MyDevice),
145 * .class_init = my_device_class_init,
146 * };
147 * </programlisting>
148 * </example>
150 * Introducing new virtual methods requires a class to define its own
151 * struct and to add a .class_size member to the #TypeInfo. Each method
152 * will also have a wrapper function to call it easily:
154 * <example>
155 * <title>Defining an abstract class</title>
156 * <programlisting>
157 * #include "qdev.h"
159 * typedef struct MyDeviceClass
161 * DeviceClass parent;
163 * void (*frobnicate) (MyDevice *obj);
164 * } MyDeviceClass;
166 * static const TypeInfo my_device_info = {
167 * .name = TYPE_MY_DEVICE,
168 * .parent = TYPE_DEVICE,
169 * .instance_size = sizeof(MyDevice),
170 * .abstract = true, // or set a default in my_device_class_init
171 * .class_size = sizeof(MyDeviceClass),
172 * };
174 * void my_device_frobnicate(MyDevice *obj)
176 * MyDeviceClass *klass = MY_DEVICE_GET_CLASS(obj);
178 * klass->frobnicate(obj);
180 * </programlisting>
181 * </example>
183 * # Interfaces #
185 * Interfaces allow a limited form of multiple inheritance. Instances are
186 * similar to normal types except for the fact that are only defined by
187 * their classes and never carry any state. You can dynamically cast an object
188 * to one of its #Interface types and vice versa.
190 * # Methods #
192 * A <emphasis>method</emphasis> is a function within the namespace scope of
193 * a class. It usually operates on the object instance by passing it as a
194 * strongly-typed first argument.
195 * If it does not operate on an object instance, it is dubbed
196 * <emphasis>class method</emphasis>.
198 * Methods cannot be overloaded. That is, the #ObjectClass and method name
199 * uniquely identity the function to be called; the signature does not vary
200 * except for trailing varargs.
202 * Methods are always <emphasis>virtual</emphasis>. Overriding a method in
203 * #TypeInfo.class_init of a subclass leads to any user of the class obtained
204 * via OBJECT_GET_CLASS() accessing the overridden function.
205 * The original function is not automatically invoked. It is the responsibility
206 * of the overriding class to determine whether and when to invoke the method
207 * being overridden.
209 * To invoke the method being overridden, the preferred solution is to store
210 * the original value in the overriding class before overriding the method.
211 * This corresponds to |[ {super,base}.method(...) ]| in Java and C#
212 * respectively; this frees the overriding class from hardcoding its parent
213 * class, which someone might choose to change at some point.
215 * <example>
216 * <title>Overriding a virtual method</title>
217 * <programlisting>
218 * typedef struct MyState MyState;
220 * typedef void (*MyDoSomething)(MyState *obj);
222 * typedef struct MyClass {
223 * ObjectClass parent_class;
225 * MyDoSomething do_something;
226 * } MyClass;
228 * static void my_do_something(MyState *obj)
230 * // do something
233 * static void my_class_init(ObjectClass *oc, void *data)
235 * MyClass *mc = MY_CLASS(oc);
237 * mc->do_something = my_do_something;
240 * static const TypeInfo my_type_info = {
241 * .name = TYPE_MY,
242 * .parent = TYPE_OBJECT,
243 * .instance_size = sizeof(MyState),
244 * .class_size = sizeof(MyClass),
245 * .class_init = my_class_init,
246 * };
248 * typedef struct DerivedClass {
249 * MyClass parent_class;
251 * MyDoSomething parent_do_something;
252 * } DerivedClass;
254 * static void derived_do_something(MyState *obj)
256 * DerivedClass *dc = DERIVED_GET_CLASS(obj);
258 * // do something here
259 * dc->parent_do_something(obj);
260 * // do something else here
263 * static void derived_class_init(ObjectClass *oc, void *data)
265 * MyClass *mc = MY_CLASS(oc);
266 * DerivedClass *dc = DERIVED_CLASS(oc);
268 * dc->parent_do_something = mc->do_something;
269 * mc->do_something = derived_do_something;
272 * static const TypeInfo derived_type_info = {
273 * .name = TYPE_DERIVED,
274 * .parent = TYPE_MY,
275 * .class_size = sizeof(DerivedClass),
276 * .class_init = my_class_init,
277 * };
278 * </programlisting>
279 * </example>
281 * Alternatively, object_class_by_name() can be used to obtain the class and
282 * its non-overridden methods for a specific type. This would correspond to
283 * |[ MyClass::method(...) ]| in C++.
285 * The first example of such a QOM method was #CPUClass.reset,
286 * another example is #DeviceClass.realize.
291 * ObjectPropertyAccessor:
292 * @obj: the object that owns the property
293 * @v: the visitor that contains the property data
294 * @opaque: the object property opaque
295 * @name: the name of the property
296 * @errp: a pointer to an Error that is filled if getting/setting fails.
298 * Called when trying to get/set a property.
300 typedef void (ObjectPropertyAccessor)(Object *obj,
301 struct Visitor *v,
302 void *opaque,
303 const char *name,
304 Error **errp);
307 * ObjectPropertyRelease:
308 * @obj: the object that owns the property
309 * @name: the name of the property
310 * @opaque: the opaque registered with the property
312 * Called when a property is removed from a object.
314 typedef void (ObjectPropertyRelease)(Object *obj,
315 const char *name,
316 void *opaque);
318 typedef struct ObjectProperty
320 gchar *name;
321 gchar *type;
322 ObjectPropertyAccessor *get;
323 ObjectPropertyAccessor *set;
324 ObjectPropertyRelease *release;
325 void *opaque;
327 QTAILQ_ENTRY(ObjectProperty) node;
328 } ObjectProperty;
331 * ObjectUnparent:
332 * @obj: the object that is being removed from the composition tree
334 * Called when an object is being removed from the QOM composition tree.
335 * The function should remove any backlinks from children objects to @obj.
337 typedef void (ObjectUnparent)(Object *obj);
340 * ObjectFree:
341 * @obj: the object being freed
343 * Called when an object's last reference is removed.
345 typedef void (ObjectFree)(void *obj);
347 #define OBJECT_CLASS_CAST_CACHE 4
350 * ObjectClass:
352 * The base for all classes. The only thing that #ObjectClass contains is an
353 * integer type handle.
355 struct ObjectClass
357 /*< private >*/
358 Type type;
359 GSList *interfaces;
361 const char *object_cast_cache[OBJECT_CLASS_CAST_CACHE];
362 const char *class_cast_cache[OBJECT_CLASS_CAST_CACHE];
364 ObjectUnparent *unparent;
368 * Object:
370 * The base for all objects. The first member of this object is a pointer to
371 * a #ObjectClass. Since C guarantees that the first member of a structure
372 * always begins at byte 0 of that structure, as long as any sub-object places
373 * its parent as the first member, we can cast directly to a #Object.
375 * As a result, #Object contains a reference to the objects type as its
376 * first member. This allows identification of the real type of the object at
377 * run time.
379 * #Object also contains a list of #Interfaces that this object
380 * implements.
382 struct Object
384 /*< private >*/
385 ObjectClass *class;
386 ObjectFree *free;
387 QTAILQ_HEAD(, ObjectProperty) properties;
388 uint32_t ref;
389 Object *parent;
393 * TypeInfo:
394 * @name: The name of the type.
395 * @parent: The name of the parent type.
396 * @instance_size: The size of the object (derivative of #Object). If
397 * @instance_size is 0, then the size of the object will be the size of the
398 * parent object.
399 * @instance_init: This function is called to initialize an object. The parent
400 * class will have already been initialized so the type is only responsible
401 * for initializing its own members.
402 * @instance_post_init: This function is called to finish initialization of
403 * an object, after all @instance_init functions were called.
404 * @instance_finalize: This function is called during object destruction. This
405 * is called before the parent @instance_finalize function has been called.
406 * An object should only free the members that are unique to its type in this
407 * function.
408 * @abstract: If this field is true, then the class is considered abstract and
409 * cannot be directly instantiated.
410 * @class_size: The size of the class object (derivative of #ObjectClass)
411 * for this object. If @class_size is 0, then the size of the class will be
412 * assumed to be the size of the parent class. This allows a type to avoid
413 * implementing an explicit class type if they are not adding additional
414 * virtual functions.
415 * @class_init: This function is called after all parent class initialization
416 * has occurred to allow a class to set its default virtual method pointers.
417 * This is also the function to use to override virtual methods from a parent
418 * class.
419 * @class_base_init: This function is called for all base classes after all
420 * parent class initialization has occurred, but before the class itself
421 * is initialized. This is the function to use to undo the effects of
422 * memcpy from the parent class to the descendents.
423 * @class_finalize: This function is called during class destruction and is
424 * meant to release and dynamic parameters allocated by @class_init.
425 * @class_data: Data to pass to the @class_init, @class_base_init and
426 * @class_finalize functions. This can be useful when building dynamic
427 * classes.
428 * @interfaces: The list of interfaces associated with this type. This
429 * should point to a static array that's terminated with a zero filled
430 * element.
432 struct TypeInfo
434 const char *name;
435 const char *parent;
437 size_t instance_size;
438 void (*instance_init)(Object *obj);
439 void (*instance_post_init)(Object *obj);
440 void (*instance_finalize)(Object *obj);
442 bool abstract;
443 size_t class_size;
445 void (*class_init)(ObjectClass *klass, void *data);
446 void (*class_base_init)(ObjectClass *klass, void *data);
447 void (*class_finalize)(ObjectClass *klass, void *data);
448 void *class_data;
450 InterfaceInfo *interfaces;
454 * OBJECT:
455 * @obj: A derivative of #Object
457 * Converts an object to a #Object. Since all objects are #Objects,
458 * this function will always succeed.
460 #define OBJECT(obj) \
461 ((Object *)(obj))
464 * OBJECT_CLASS:
465 * @class: A derivative of #ObjectClass.
467 * Converts a class to an #ObjectClass. Since all objects are #Objects,
468 * this function will always succeed.
470 #define OBJECT_CLASS(class) \
471 ((ObjectClass *)(class))
474 * OBJECT_CHECK:
475 * @type: The C type to use for the return value.
476 * @obj: A derivative of @type to cast.
477 * @name: The QOM typename of @type
479 * A type safe version of @object_dynamic_cast_assert. Typically each class
480 * will define a macro based on this type to perform type safe dynamic_casts to
481 * this object type.
483 * If an invalid object is passed to this function, a run time assert will be
484 * generated.
486 #define OBJECT_CHECK(type, obj, name) \
487 ((type *)object_dynamic_cast_assert(OBJECT(obj), (name), \
488 __FILE__, __LINE__, __func__))
491 * OBJECT_CLASS_CHECK:
492 * @class: The C type to use for the return value.
493 * @obj: A derivative of @type to cast.
494 * @name: the QOM typename of @class.
496 * A type safe version of @object_class_dynamic_cast_assert. This macro is
497 * typically wrapped by each type to perform type safe casts of a class to a
498 * specific class type.
500 #define OBJECT_CLASS_CHECK(class, obj, name) \
501 ((class *)object_class_dynamic_cast_assert(OBJECT_CLASS(obj), (name), \
502 __FILE__, __LINE__, __func__))
505 * OBJECT_GET_CLASS:
506 * @class: The C type to use for the return value.
507 * @obj: The object to obtain the class for.
508 * @name: The QOM typename of @obj.
510 * This function will return a specific class for a given object. Its generally
511 * used by each type to provide a type safe macro to get a specific class type
512 * from an object.
514 #define OBJECT_GET_CLASS(class, obj, name) \
515 OBJECT_CLASS_CHECK(class, object_get_class(OBJECT(obj)), name)
518 * InterfaceInfo:
519 * @type: The name of the interface.
521 * The information associated with an interface.
523 struct InterfaceInfo {
524 const char *type;
528 * InterfaceClass:
529 * @parent_class: the base class
531 * The class for all interfaces. Subclasses of this class should only add
532 * virtual methods.
534 struct InterfaceClass
536 ObjectClass parent_class;
537 /*< private >*/
538 ObjectClass *concrete_class;
539 Type interface_type;
542 #define TYPE_INTERFACE "interface"
545 * INTERFACE_CLASS:
546 * @klass: class to cast from
547 * Returns: An #InterfaceClass or raise an error if cast is invalid
549 #define INTERFACE_CLASS(klass) \
550 OBJECT_CLASS_CHECK(InterfaceClass, klass, TYPE_INTERFACE)
553 * INTERFACE_CHECK:
554 * @interface: the type to return
555 * @obj: the object to convert to an interface
556 * @name: the interface type name
558 * Returns: @obj casted to @interface if cast is valid, otherwise raise error.
560 #define INTERFACE_CHECK(interface, obj, name) \
561 ((interface *)object_dynamic_cast_assert(OBJECT((obj)), (name), \
562 __FILE__, __LINE__, __func__))
565 * object_new:
566 * @typename: The name of the type of the object to instantiate.
568 * This function will initialize a new object using heap allocated memory.
569 * The returned object has a reference count of 1, and will be freed when
570 * the last reference is dropped.
572 * Returns: The newly allocated and instantiated object.
574 Object *object_new(const char *typename);
577 * object_new_with_type:
578 * @type: The type of the object to instantiate.
580 * This function will initialize a new object using heap allocated memory.
581 * The returned object has a reference count of 1, and will be freed when
582 * the last reference is dropped.
584 * Returns: The newly allocated and instantiated object.
586 Object *object_new_with_type(Type type);
589 * object_initialize_with_type:
590 * @data: A pointer to the memory to be used for the object.
591 * @size: The maximum size available at @data for the object.
592 * @type: The type of the object to instantiate.
594 * This function will initialize an object. The memory for the object should
595 * have already been allocated. The returned object has a reference count of 1,
596 * and will be finalized when the last reference is dropped.
598 void object_initialize_with_type(void *data, size_t size, Type type);
601 * object_initialize:
602 * @obj: A pointer to the memory to be used for the object.
603 * @size: The maximum size available at @obj for the object.
604 * @typename: The name of the type of the object to instantiate.
606 * This function will initialize an object. The memory for the object should
607 * have already been allocated. The returned object has a reference count of 1,
608 * and will be finalized when the last reference is dropped.
610 void object_initialize(void *obj, size_t size, const char *typename);
613 * object_dynamic_cast:
614 * @obj: The object to cast.
615 * @typename: The @typename to cast to.
617 * This function will determine if @obj is-a @typename. @obj can refer to an
618 * object or an interface associated with an object.
620 * Returns: This function returns @obj on success or #NULL on failure.
622 Object *object_dynamic_cast(Object *obj, const char *typename);
625 * object_dynamic_cast_assert:
627 * See object_dynamic_cast() for a description of the parameters of this
628 * function. The only difference in behavior is that this function asserts
629 * instead of returning #NULL on failure if QOM cast debugging is enabled.
630 * This function is not meant to be called directly, but only through
631 * the wrapper macro OBJECT_CHECK.
633 Object *object_dynamic_cast_assert(Object *obj, const char *typename,
634 const char *file, int line, const char *func);
637 * object_get_class:
638 * @obj: A derivative of #Object
640 * Returns: The #ObjectClass of the type associated with @obj.
642 ObjectClass *object_get_class(Object *obj);
645 * object_get_typename:
646 * @obj: A derivative of #Object.
648 * Returns: The QOM typename of @obj.
650 const char *object_get_typename(Object *obj);
653 * type_register_static:
654 * @info: The #TypeInfo of the new type.
656 * @info and all of the strings it points to should exist for the life time
657 * that the type is registered.
659 * Returns: 0 on failure, the new #Type on success.
661 Type type_register_static(const TypeInfo *info);
664 * type_register:
665 * @info: The #TypeInfo of the new type
667 * Unlike type_register_static(), this call does not require @info or its
668 * string members to continue to exist after the call returns.
670 * Returns: 0 on failure, the new #Type on success.
672 Type type_register(const TypeInfo *info);
675 * object_class_dynamic_cast_assert:
676 * @klass: The #ObjectClass to attempt to cast.
677 * @typename: The QOM typename of the class to cast to.
679 * See object_class_dynamic_cast() for a description of the parameters
680 * of this function. The only difference in behavior is that this function
681 * asserts instead of returning #NULL on failure if QOM cast debugging is
682 * enabled. This function is not meant to be called directly, but only through
683 * the wrapper macros OBJECT_CLASS_CHECK and INTERFACE_CHECK.
685 ObjectClass *object_class_dynamic_cast_assert(ObjectClass *klass,
686 const char *typename,
687 const char *file, int line,
688 const char *func);
691 * object_class_dynamic_cast:
692 * @klass: The #ObjectClass to attempt to cast.
693 * @typename: The QOM typename of the class to cast to.
695 * Returns: If @typename is a class, this function returns @klass if
696 * @typename is a subtype of @klass, else returns #NULL.
698 * If @typename is an interface, this function returns the interface
699 * definition for @klass if @klass implements it unambiguously; #NULL
700 * is returned if @klass does not implement the interface or if multiple
701 * classes or interfaces on the hierarchy leading to @klass implement
702 * it. (FIXME: perhaps this can be detected at type definition time?)
704 ObjectClass *object_class_dynamic_cast(ObjectClass *klass,
705 const char *typename);
708 * object_class_get_parent:
709 * @klass: The class to obtain the parent for.
711 * Returns: The parent for @klass or %NULL if none.
713 ObjectClass *object_class_get_parent(ObjectClass *klass);
716 * object_class_get_name:
717 * @klass: The class to obtain the QOM typename for.
719 * Returns: The QOM typename for @klass.
721 const char *object_class_get_name(ObjectClass *klass);
724 * object_class_is_abstract:
725 * @klass: The class to obtain the abstractness for.
727 * Returns: %true if @klass is abstract, %false otherwise.
729 bool object_class_is_abstract(ObjectClass *klass);
732 * object_class_by_name:
733 * @typename: The QOM typename to obtain the class for.
735 * Returns: The class for @typename or %NULL if not found.
737 ObjectClass *object_class_by_name(const char *typename);
739 void object_class_foreach(void (*fn)(ObjectClass *klass, void *opaque),
740 const char *implements_type, bool include_abstract,
741 void *opaque);
744 * object_class_get_list:
745 * @implements_type: The type to filter for, including its derivatives.
746 * @include_abstract: Whether to include abstract classes.
748 * Returns: A singly-linked list of the classes in reverse hashtable order.
750 GSList *object_class_get_list(const char *implements_type,
751 bool include_abstract);
754 * object_ref:
755 * @obj: the object
757 * Increase the reference count of a object. A object cannot be freed as long
758 * as its reference count is greater than zero.
760 void object_ref(Object *obj);
763 * qdef_unref:
764 * @obj: the object
766 * Decrease the reference count of a object. A object cannot be freed as long
767 * as its reference count is greater than zero.
769 void object_unref(Object *obj);
772 * object_property_add:
773 * @obj: the object to add a property to
774 * @name: the name of the property. This can contain any character except for
775 * a forward slash. In general, you should use hyphens '-' instead of
776 * underscores '_' when naming properties.
777 * @type: the type name of the property. This namespace is pretty loosely
778 * defined. Sub namespaces are constructed by using a prefix and then
779 * to angle brackets. For instance, the type 'virtio-net-pci' in the
780 * 'link' namespace would be 'link<virtio-net-pci>'.
781 * @get: The getter to be called to read a property. If this is NULL, then
782 * the property cannot be read.
783 * @set: the setter to be called to write a property. If this is NULL,
784 * then the property cannot be written.
785 * @release: called when the property is removed from the object. This is
786 * meant to allow a property to free its opaque upon object
787 * destruction. This may be NULL.
788 * @opaque: an opaque pointer to pass to the callbacks for the property
789 * @errp: returns an error if this function fails
791 void object_property_add(Object *obj, const char *name, const char *type,
792 ObjectPropertyAccessor *get,
793 ObjectPropertyAccessor *set,
794 ObjectPropertyRelease *release,
795 void *opaque, Error **errp);
797 void object_property_del(Object *obj, const char *name, Error **errp);
800 * object_property_find:
801 * @obj: the object
802 * @name: the name of the property
803 * @errp: returns an error if this function fails
805 * Look up a property for an object and return its #ObjectProperty if found.
807 ObjectProperty *object_property_find(Object *obj, const char *name,
808 Error **errp);
810 void object_unparent(Object *obj);
813 * object_property_get:
814 * @obj: the object
815 * @v: the visitor that will receive the property value. This should be an
816 * Output visitor and the data will be written with @name as the name.
817 * @name: the name of the property
818 * @errp: returns an error if this function fails
820 * Reads a property from a object.
822 void object_property_get(Object *obj, struct Visitor *v, const char *name,
823 Error **errp);
826 * object_property_set_str:
827 * @value: the value to be written to the property
828 * @name: the name of the property
829 * @errp: returns an error if this function fails
831 * Writes a string value to a property.
833 void object_property_set_str(Object *obj, const char *value,
834 const char *name, Error **errp);
837 * object_property_get_str:
838 * @obj: the object
839 * @name: the name of the property
840 * @errp: returns an error if this function fails
842 * Returns: the value of the property, converted to a C string, or NULL if
843 * an error occurs (including when the property value is not a string).
844 * The caller should free the string.
846 char *object_property_get_str(Object *obj, const char *name,
847 Error **errp);
850 * object_property_set_link:
851 * @value: the value to be written to the property
852 * @name: the name of the property
853 * @errp: returns an error if this function fails
855 * Writes an object's canonical path to a property.
857 void object_property_set_link(Object *obj, Object *value,
858 const char *name, Error **errp);
861 * object_property_get_link:
862 * @obj: the object
863 * @name: the name of the property
864 * @errp: returns an error if this function fails
866 * Returns: the value of the property, resolved from a path to an Object,
867 * or NULL if an error occurs (including when the property value is not a
868 * string or not a valid object path).
870 Object *object_property_get_link(Object *obj, const char *name,
871 Error **errp);
874 * object_property_set_bool:
875 * @value: the value to be written to the property
876 * @name: the name of the property
877 * @errp: returns an error if this function fails
879 * Writes a bool value to a property.
881 void object_property_set_bool(Object *obj, bool value,
882 const char *name, Error **errp);
885 * object_property_get_bool:
886 * @obj: the object
887 * @name: the name of the property
888 * @errp: returns an error if this function fails
890 * Returns: the value of the property, converted to a boolean, or NULL if
891 * an error occurs (including when the property value is not a bool).
893 bool object_property_get_bool(Object *obj, const char *name,
894 Error **errp);
897 * object_property_set_int:
898 * @value: the value to be written to the property
899 * @name: the name of the property
900 * @errp: returns an error if this function fails
902 * Writes an integer value to a property.
904 void object_property_set_int(Object *obj, int64_t value,
905 const char *name, Error **errp);
908 * object_property_get_int:
909 * @obj: the object
910 * @name: the name of the property
911 * @errp: returns an error if this function fails
913 * Returns: the value of the property, converted to an integer, or NULL if
914 * an error occurs (including when the property value is not an integer).
916 int64_t object_property_get_int(Object *obj, const char *name,
917 Error **errp);
920 * object_property_get_enum:
921 * @obj: the object
922 * @name: the name of the property
923 * @strings: strings corresponding to enums
924 * @errp: returns an error if this function fails
926 * Returns: the value of the property, converted to an integer, or
927 * undefined if an error occurs (including when the property value is not
928 * an enum).
930 int object_property_get_enum(Object *obj, const char *name,
931 const char *strings[], Error **errp);
934 * object_property_get_uint16List:
935 * @obj: the object
936 * @name: the name of the property
937 * @list: the returned int list
938 * @errp: returns an error if this function fails
940 * Returns: the value of the property, converted to integers, or
941 * undefined if an error occurs (including when the property value is not
942 * an list of integers).
944 void object_property_get_uint16List(Object *obj, const char *name,
945 uint16List **list, Error **errp);
948 * object_property_set:
949 * @obj: the object
950 * @v: the visitor that will be used to write the property value. This should
951 * be an Input visitor and the data will be first read with @name as the
952 * name and then written as the property value.
953 * @name: the name of the property
954 * @errp: returns an error if this function fails
956 * Writes a property to a object.
958 void object_property_set(Object *obj, struct Visitor *v, const char *name,
959 Error **errp);
962 * object_property_parse:
963 * @obj: the object
964 * @string: the string that will be used to parse the property value.
965 * @name: the name of the property
966 * @errp: returns an error if this function fails
968 * Parses a string and writes the result into a property of an object.
970 void object_property_parse(Object *obj, const char *string,
971 const char *name, Error **errp);
974 * object_property_print:
975 * @obj: the object
976 * @name: the name of the property
977 * @human: if true, print for human consumption
978 * @errp: returns an error if this function fails
980 * Returns a string representation of the value of the property. The
981 * caller shall free the string.
983 char *object_property_print(Object *obj, const char *name, bool human,
984 Error **errp);
987 * object_property_get_type:
988 * @obj: the object
989 * @name: the name of the property
990 * @errp: returns an error if this function fails
992 * Returns: The type name of the property.
994 const char *object_property_get_type(Object *obj, const char *name,
995 Error **errp);
998 * object_get_root:
1000 * Returns: the root object of the composition tree
1002 Object *object_get_root(void);
1005 * object_get_canonical_path_component:
1007 * Returns: The final component in the object's canonical path. The canonical
1008 * path is the path within the composition tree starting from the root.
1010 gchar *object_get_canonical_path_component(Object *obj);
1013 * object_get_canonical_path:
1015 * Returns: The canonical path for a object. This is the path within the
1016 * composition tree starting from the root.
1018 gchar *object_get_canonical_path(Object *obj);
1021 * object_resolve_path:
1022 * @path: the path to resolve
1023 * @ambiguous: returns true if the path resolution failed because of an
1024 * ambiguous match
1026 * There are two types of supported paths--absolute paths and partial paths.
1028 * Absolute paths are derived from the root object and can follow child<> or
1029 * link<> properties. Since they can follow link<> properties, they can be
1030 * arbitrarily long. Absolute paths look like absolute filenames and are
1031 * prefixed with a leading slash.
1033 * Partial paths look like relative filenames. They do not begin with a
1034 * prefix. The matching rules for partial paths are subtle but designed to make
1035 * specifying objects easy. At each level of the composition tree, the partial
1036 * path is matched as an absolute path. The first match is not returned. At
1037 * least two matches are searched for. A successful result is only returned if
1038 * only one match is found. If more than one match is found, a flag is
1039 * returned to indicate that the match was ambiguous.
1041 * Returns: The matched object or NULL on path lookup failure.
1043 Object *object_resolve_path(const char *path, bool *ambiguous);
1046 * object_resolve_path_type:
1047 * @path: the path to resolve
1048 * @typename: the type to look for.
1049 * @ambiguous: returns true if the path resolution failed because of an
1050 * ambiguous match
1052 * This is similar to object_resolve_path. However, when looking for a
1053 * partial path only matches that implement the given type are considered.
1054 * This restricts the search and avoids spuriously flagging matches as
1055 * ambiguous.
1057 * For both partial and absolute paths, the return value goes through
1058 * a dynamic cast to @typename. This is important if either the link,
1059 * or the typename itself are of interface types.
1061 * Returns: The matched object or NULL on path lookup failure.
1063 Object *object_resolve_path_type(const char *path, const char *typename,
1064 bool *ambiguous);
1067 * object_resolve_path_component:
1068 * @parent: the object in which to resolve the path
1069 * @part: the component to resolve.
1071 * This is similar to object_resolve_path with an absolute path, but it
1072 * only resolves one element (@part) and takes the others from @parent.
1074 * Returns: The resolved object or NULL on path lookup failure.
1076 Object *object_resolve_path_component(Object *parent, const gchar *part);
1079 * object_property_add_child:
1080 * @obj: the object to add a property to
1081 * @name: the name of the property
1082 * @child: the child object
1083 * @errp: if an error occurs, a pointer to an area to store the area
1085 * Child properties form the composition tree. All objects need to be a child
1086 * of another object. Objects can only be a child of one object.
1088 * There is no way for a child to determine what its parent is. It is not
1089 * a bidirectional relationship. This is by design.
1091 * The value of a child property as a C string will be the child object's
1092 * canonical path. It can be retrieved using object_property_get_str().
1093 * The child object itself can be retrieved using object_property_get_link().
1095 void object_property_add_child(Object *obj, const char *name,
1096 Object *child, Error **errp);
1098 typedef enum {
1099 /* Unref the link pointer when the property is deleted */
1100 OBJ_PROP_LINK_UNREF_ON_RELEASE = 0x1,
1101 } ObjectPropertyLinkFlags;
1104 * object_property_allow_set_link:
1106 * The default implementation of the object_property_add_link() check()
1107 * callback function. It allows the link property to be set and never returns
1108 * an error.
1110 void object_property_allow_set_link(Object *, const char *,
1111 Object *, Error **);
1114 * object_property_add_link:
1115 * @obj: the object to add a property to
1116 * @name: the name of the property
1117 * @type: the qobj type of the link
1118 * @child: a pointer to where the link object reference is stored
1119 * @check: callback to veto setting or NULL if the property is read-only
1120 * @flags: additional options for the link
1121 * @errp: if an error occurs, a pointer to an area to store the area
1123 * Links establish relationships between objects. Links are unidirectional
1124 * although two links can be combined to form a bidirectional relationship
1125 * between objects.
1127 * Links form the graph in the object model.
1129 * The <code>@check()</code> callback is invoked when
1130 * object_property_set_link() is called and can raise an error to prevent the
1131 * link being set. If <code>@check</code> is NULL, the property is read-only
1132 * and cannot be set.
1134 * Ownership of the pointer that @child points to is transferred to the
1135 * link property. The reference count for <code>*@child</code> is
1136 * managed by the property from after the function returns till the
1137 * property is deleted with object_property_del(). If the
1138 * <code>@flags</code> <code>OBJ_PROP_LINK_UNREF_ON_RELEASE</code> bit is set,
1139 * the reference count is decremented when the property is deleted.
1141 void object_property_add_link(Object *obj, const char *name,
1142 const char *type, Object **child,
1143 void (*check)(Object *obj, const char *name,
1144 Object *val, Error **errp),
1145 ObjectPropertyLinkFlags flags,
1146 Error **errp);
1149 * object_property_add_str:
1150 * @obj: the object to add a property to
1151 * @name: the name of the property
1152 * @get: the getter or NULL if the property is write-only. This function must
1153 * return a string to be freed by g_free().
1154 * @set: the setter or NULL if the property is read-only
1155 * @errp: if an error occurs, a pointer to an area to store the error
1157 * Add a string property using getters/setters. This function will add a
1158 * property of type 'string'.
1160 void object_property_add_str(Object *obj, const char *name,
1161 char *(*get)(Object *, Error **),
1162 void (*set)(Object *, const char *, Error **),
1163 Error **errp);
1166 * object_property_add_bool:
1167 * @obj: the object to add a property to
1168 * @name: the name of the property
1169 * @get: the getter or NULL if the property is write-only.
1170 * @set: the setter or NULL if the property is read-only
1171 * @errp: if an error occurs, a pointer to an area to store the error
1173 * Add a bool property using getters/setters. This function will add a
1174 * property of type 'bool'.
1176 void object_property_add_bool(Object *obj, const char *name,
1177 bool (*get)(Object *, Error **),
1178 void (*set)(Object *, bool, Error **),
1179 Error **errp);
1182 * object_property_add_uint8_ptr:
1183 * @obj: the object to add a property to
1184 * @name: the name of the property
1185 * @v: pointer to value
1186 * @errp: if an error occurs, a pointer to an area to store the error
1188 * Add an integer property in memory. This function will add a
1189 * property of type 'uint8'.
1191 void object_property_add_uint8_ptr(Object *obj, const char *name,
1192 const uint8_t *v, Error **errp);
1195 * object_property_add_uint16_ptr:
1196 * @obj: the object to add a property to
1197 * @name: the name of the property
1198 * @v: pointer to value
1199 * @errp: if an error occurs, a pointer to an area to store the error
1201 * Add an integer property in memory. This function will add a
1202 * property of type 'uint16'.
1204 void object_property_add_uint16_ptr(Object *obj, const char *name,
1205 const uint16_t *v, Error **errp);
1208 * object_property_add_uint32_ptr:
1209 * @obj: the object to add a property to
1210 * @name: the name of the property
1211 * @v: pointer to value
1212 * @errp: if an error occurs, a pointer to an area to store the error
1214 * Add an integer property in memory. This function will add a
1215 * property of type 'uint32'.
1217 void object_property_add_uint32_ptr(Object *obj, const char *name,
1218 const uint32_t *v, Error **errp);
1221 * object_property_add_uint64_ptr:
1222 * @obj: the object to add a property to
1223 * @name: the name of the property
1224 * @v: pointer to value
1225 * @errp: if an error occurs, a pointer to an area to store the error
1227 * Add an integer property in memory. This function will add a
1228 * property of type 'uint64'.
1230 void object_property_add_uint64_ptr(Object *obj, const char *name,
1231 const uint64_t *v, Error **Errp);
1234 * object_child_foreach:
1235 * @obj: the object whose children will be navigated
1236 * @fn: the iterator function to be called
1237 * @opaque: an opaque value that will be passed to the iterator
1239 * Call @fn passing each child of @obj and @opaque to it, until @fn returns
1240 * non-zero.
1242 * Returns: The last value returned by @fn, or 0 if there is no child.
1244 int object_child_foreach(Object *obj, int (*fn)(Object *child, void *opaque),
1245 void *opaque);
1248 * container_get:
1249 * @root: root of the #path, e.g., object_get_root()
1250 * @path: path to the container
1252 * Return a container object whose path is @path. Create more containers
1253 * along the path if necessary.
1255 * Returns: the container object.
1257 Object *container_get(Object *root, const char *path);
1260 #endif