/linux-6.12.1/tools/testing/selftests/kvm/lib/x86_64/ |
D | handlers.S | 51 .macro HANDLERS has_error from to macro 73 HANDLERS has_error=0 from=0 to=7 74 HANDLERS has_error=1 from=8 to=8 75 HANDLERS has_error=0 from=9 to=9 76 HANDLERS has_error=1 from=10 to=14 77 HANDLERS has_error=0 from=15 to=16 78 HANDLERS has_error=1 from=17 to=17 79 HANDLERS has_error=0 from=18 to=255
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/linux-6.12.1/include/linux/ |
D | reboot.h | 76 * SYS_OFF_PRIO_PLATFORM: Use this for platform-level handlers. 80 * SYS_OFF_PRIO_DEFAULT: Use this for normal handlers. 82 * SYS_OFF_PRIO_HIGH: Use this for higher priority handlers. 96 * Handlers prepare system to be powered off. Handlers are 104 * Handlers power-off system. Handlers are disallowed to sleep. 111 * Handlers prepare system to be restarted. Handlers are 119 * Handlers restart system. Handlers are disallowed to sleep.
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/linux-6.12.1/Documentation/driver-api/acpi/ |
D | scan_handlers.rst | 5 ACPI Scan Handlers 39 called ACPI scan handlers represented by the following structure:: 49 take care of, list_node is the hook to the global list of ACPI scan handlers 57 available scan handlers. If a matching scan handler is found, its .attach() 72 callbacks from the scan handlers of all device nodes in the given namespace 73 scope (if they have scan handlers). Next, it unregisters all of the device 76 ACPI scan handlers can be added to the list maintained by the ACPI core with the 78 handler as an argument. The order in which scan handlers are added to the list
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/linux-6.12.1/tools/testing/selftests/kvm/lib/riscv/ |
D | processor.c | 401 struct handlers { struct 407 struct handlers *handlers = (struct handlers *)exception_handlers; in route_exception() local 420 if (handlers && handlers->exception_handlers[vector][ec]) in route_exception() 421 return handlers->exception_handlers[vector][ec](regs); in route_exception() 436 vm->handlers = __vm_vaddr_alloc(vm, sizeof(struct handlers), in vm_init_vector_tables() 439 *(vm_vaddr_t *)addr_gva2hva(vm, (vm_vaddr_t)(&exception_handlers)) = vm->handlers; in vm_init_vector_tables() 444 struct handlers *handlers = addr_gva2hva(vm, vm->handlers); in vm_install_exception_handler() local 447 handlers->exception_handlers[0][vector] = handler; in vm_install_exception_handler() 452 struct handlers *handlers = addr_gva2hva(vm, vm->handlers); in vm_install_interrupt_handler() local 454 handlers->exception_handlers[1][0] = handler; in vm_install_interrupt_handler()
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/linux-6.12.1/tools/testing/selftests/kvm/lib/aarch64/ |
D | processor.c | 452 struct handlers { struct 465 struct handlers *handlers = (struct handlers *)exception_handlers; in route_exception() local 489 if (handlers && handlers->exception_handlers[vector][ec]) in route_exception() 490 return handlers->exception_handlers[vector][ec](regs); in route_exception() 498 vm->handlers = __vm_vaddr_alloc(vm, sizeof(struct handlers), in vm_init_descriptor_tables() 501 *(vm_vaddr_t *)addr_gva2hva(vm, (vm_vaddr_t)(&exception_handlers)) = vm->handlers; in vm_init_descriptor_tables() 507 struct handlers *handlers = addr_gva2hva(vm, vm->handlers); in vm_install_sync_handler() local 512 handlers->exception_handlers[vector][ec] = handler; in vm_install_sync_handler() 518 struct handlers *handlers = addr_gva2hva(vm, vm->handlers); in vm_install_exception_handler() local 522 handlers->exception_handlers[vector][0] = handler; in vm_install_exception_handler()
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/linux-6.12.1/include/net/ |
D | rtnetlink.h | 48 int __rtnl_register_many(const struct rtnl_msg_handler *handlers, int n); 49 void __rtnl_unregister_many(const struct rtnl_msg_handler *handlers, int n); 51 #define rtnl_register_many(handlers) \ argument 52 __rtnl_register_many(handlers, ARRAY_SIZE(handlers)) 53 #define rtnl_unregister_many(handlers) \ argument 54 __rtnl_unregister_many(handlers, ARRAY_SIZE(handlers))
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/linux-6.12.1/drivers/soc/fsl/qbman/ |
D | qman_test_stash.c | 39 * Each cpu will have HP_PER_CPU "handlers" set up, each of which incorporates 41 * organisation of FQIDs is such that the HP_PER_CPU*NUM_CPUS handlers will 44 * is to allow enough handlers/FQs to truly test the significance of caching - 65 * handlers and link-list them (but do no other handler setup). 162 /* root node for the per-cpu list of handlers */ 163 struct list_head handlers; member 168 * handlers together, this is used as per-cpu iterator state 186 /* handlers are allocated out of this, so they're properly aligned. */ 328 INIT_LIST_HEAD(&hp_cpu->handlers); in create_per_cpu_handlers() 339 list_add_tail(&handler->node, &hp_cpu->handlers); in create_per_cpu_handlers() [all …]
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/linux-6.12.1/arch/powerpc/platforms/powermac/ |
D | pfunc_core.c | 124 #define PMF_PARSE_CALL(name, cmd, handlers, p...) \ argument 128 if (handlers == NULL) \ 130 if (handlers->name) \ 131 return handlers->name(cmd->func, cmd->instdata, \ 542 struct pmf_handlers *handlers; member 580 struct pmf_handlers *handlers, in pmf_parse_one() argument 596 handlers ? "executing" : "parsing"); in pmf_parse_one() 621 rc = pmf_parsers[ccode](&cmd, handlers); in pmf_parse_one() 630 if (handlers == NULL) in pmf_parse_one() 702 struct pmf_handlers *handlers, in pmf_register_driver() argument [all …]
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/linux-6.12.1/fs/ext4/ |
D | fsmap.c | 64 /* Compare two getfsmap device handlers. */ 634 struct ext4_getfsmap_dev handlers[EXT4_GETFSMAP_DEVS]; in ext4_getfsmap() local 647 /* Set up our device handlers. */ in ext4_getfsmap() 648 memset(handlers, 0, sizeof(handlers)); in ext4_getfsmap() 649 handlers[0].gfd_dev = new_encode_dev(sb->s_bdev->bd_dev); in ext4_getfsmap() 650 handlers[0].gfd_fn = ext4_getfsmap_datadev; in ext4_getfsmap() 652 handlers[1].gfd_dev = new_encode_dev( in ext4_getfsmap() 654 handlers[1].gfd_fn = ext4_getfsmap_logdev; in ext4_getfsmap() 657 sort(handlers, EXT4_GETFSMAP_DEVS, sizeof(struct ext4_getfsmap_dev), in ext4_getfsmap() 689 if (!handlers[i].gfd_fn) in ext4_getfsmap() [all …]
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/linux-6.12.1/include/sound/ |
D | soc-topology.h | 74 * Kcontrol operations - used to map handlers onto firmware based controls. 96 * DAPM widget event handlers - used to map handlers onto widgets. 160 /* vendor specific kcontrol handlers available for binding */ 164 /* vendor specific bytes ext handlers available for binding */ 184 /* Binds event handlers to dynamic widgets */
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/linux-6.12.1/fs/xfs/ |
D | xfs_fsmap.c | 189 /* Compare two getfsmap device handlers. */ 900 struct xfs_getfsmap_dev handlers[XFS_GETFSMAP_DEVS]; in xfs_getfsmap() local 918 /* Set up our device handlers. */ in xfs_getfsmap() 919 memset(handlers, 0, sizeof(handlers)); in xfs_getfsmap() 920 handlers[0].nr_sectors = XFS_FSB_TO_BB(mp, mp->m_sb.sb_dblocks); in xfs_getfsmap() 921 handlers[0].dev = new_encode_dev(mp->m_ddev_targp->bt_dev); in xfs_getfsmap() 923 handlers[0].fn = xfs_getfsmap_datadev_rmapbt; in xfs_getfsmap() 925 handlers[0].fn = xfs_getfsmap_datadev_bnobt; in xfs_getfsmap() 927 handlers[1].nr_sectors = XFS_FSB_TO_BB(mp, in xfs_getfsmap() 929 handlers[1].dev = new_encode_dev(mp->m_logdev_targp->bt_dev); in xfs_getfsmap() [all …]
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/linux-6.12.1/Documentation/RCU/ |
D | NMI-RCU.rst | 3 Using RCU to Protect Dynamic NMI Handlers 9 handlers, as well as dynamic irq handlers. This document describes 97 Since NMI handlers disable preemption, synchronize_rcu() is guaranteed 98 not to return until all ongoing NMI handlers exit. It is therefore safe
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/linux-6.12.1/drivers/net/wireless/intel/iwlwifi/dvm/ |
D | rx.c | 942 * Setup the RX handlers for each of the reply types sent from the uCode 947 void (**handlers)(struct iwl_priv *priv, struct iwl_rx_cmd_buffer *rxb); in iwl_setup_rx_handlers() local 949 handlers = priv->rx_handlers; in iwl_setup_rx_handlers() 951 handlers[REPLY_ERROR] = iwlagn_rx_reply_error; in iwl_setup_rx_handlers() 952 handlers[CHANNEL_SWITCH_NOTIFICATION] = iwlagn_rx_csa; in iwl_setup_rx_handlers() 953 handlers[SPECTRUM_MEASURE_NOTIFICATION] = in iwl_setup_rx_handlers() 955 handlers[PM_SLEEP_NOTIFICATION] = iwlagn_rx_pm_sleep_notif; in iwl_setup_rx_handlers() 956 handlers[PM_DEBUG_STATISTIC_NOTIFIC] = in iwl_setup_rx_handlers() 958 handlers[BEACON_NOTIFICATION] = iwlagn_rx_beacon_notif; in iwl_setup_rx_handlers() 959 handlers[REPLY_ADD_STA] = iwl_add_sta_callback; in iwl_setup_rx_handlers() [all …]
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/linux-6.12.1/drivers/net/wireless/ralink/rt2x00/ |
D | rt2x00lib.h | 58 * Radio control handlers. 64 * Initialization handlers. 70 * Configuration handlers. 87 * DOC: Queue handlers 273 * Firmware handlers. 289 * Debugfs handlers. 312 * Crypto handlers. 370 * RFkill handlers. 385 * LED handlers
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/linux-6.12.1/drivers/char/ipmi/ |
D | ipmi_si_intf.c | 130 const struct si_sm_handlers *handlers; member 329 err = smi_info->handlers->start_transaction( in start_next_msg() 362 smi_info->handlers->start_transaction(smi_info->si_sm, msg, size); in start_new_msg() 549 = smi_info->handlers->get_result( in handle_transaction_done() 570 len = smi_info->handlers->get_result(smi_info->si_sm, msg, 4); in handle_transaction_done() 592 smi_info->handlers->get_result(smi_info->si_sm, msg, 3); in handle_transaction_done() 605 = smi_info->handlers->get_result( in handle_transaction_done() 643 = smi_info->handlers->get_result( in handle_transaction_done() 685 smi_info->handlers->get_result(smi_info->si_sm, msg, 4); in handle_transaction_done() 703 smi_info->handlers->start_transaction( in handle_transaction_done() [all …]
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/linux-6.12.1/arch/powerpc/include/asm/ |
D | pmac_pfunc.h | 33 * A driver capable of interpreting commands provides a handlers 34 * structure filled with whatever handlers are implemented by this 35 * driver. Non implemented handlers are left NULL. 38 * and that gets passed back to the various handlers. 176 * Register/Unregister a function-capable driver and its handlers 179 struct pmf_handlers *handlers, 195 * Called by the handlers when an irq happens
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D | exception-64s.h | 13 * Low-level exception handlers and MMU support 25 * the prologue to each of the exception handlers. They 30 * exception handlers (including pSeries LPAR) and iSeries LPAR
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/linux-6.12.1/arch/powerpc/platforms/pseries/ |
D | io_event_irq.c | 25 * drivers can register their event handlers to receive events. 28 * their event handlers. Since multiple IO event types and scopes 29 * share an IO event interrupt, the event handlers are called one 30 * by one until the IO event is claimed by one of the handlers. 31 * The event handlers are expected to return NOTIFY_OK if the
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/linux-6.12.1/fs/btrfs/ |
D | props.c | 48 const struct hlist_head *handlers) in find_prop_handler() argument 52 if (!handlers) { in find_prop_handler() 55 handlers = find_prop_handlers_by_hash(hash); in find_prop_handler() 56 if (!handlers) in find_prop_handler() 60 hlist_for_each_entry(h, handlers, node) in find_prop_handler() 167 const struct hlist_head *handlers; in iterate_object_props() local 187 handlers = find_prop_handlers_by_hash(key.offset); in iterate_object_props() 188 if (!handlers) in iterate_object_props() 223 handler = find_prop_handler(name_buf, handlers); in iterate_object_props()
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/linux-6.12.1/kernel/irq/ |
D | spurious.c | 86 * All handlers must agree on IRQF_SHARED, so we test just the in try_one_irq() 206 printk(KERN_ERR "handlers:\n"); in __report_bad_irq() 287 * because we need to look at the compound of all handlers in note_interrupt() 296 * The threaded handlers store whether they successfully in note_interrupt() 308 * shared primary handlers returned IRQ_HANDLED. If in note_interrupt() 327 * Check whether one of the threaded handlers in note_interrupt() 353 * None of the threaded handlers felt in note_interrupt() 365 * One of the primary handlers returned in note_interrupt() 367 * threaded handlers on the same line. Clear in note_interrupt()
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/linux-6.12.1/drivers/net/ethernet/chelsio/cxgb3/ |
D | cxgb3_offload.c | 747 t3c_tid->client->handlers && in do_act_open_rpl() 748 t3c_tid->client->handlers[CPL_ACT_OPEN_RPL]) { in do_act_open_rpl() 749 return t3c_tid->client->handlers[CPL_ACT_OPEN_RPL] (dev, skb, in do_act_open_rpl() 766 if (t3c_tid && t3c_tid->ctx && t3c_tid->client->handlers && in do_stid_rpl() 767 t3c_tid->client->handlers[p->opcode]) { in do_stid_rpl() 768 return t3c_tid->client->handlers[p->opcode] (dev, skb, in do_stid_rpl() 784 if (t3c_tid && t3c_tid->ctx && t3c_tid->client->handlers && in do_hwtid_rpl() 785 t3c_tid->client->handlers[p->opcode]) { in do_hwtid_rpl() 786 return t3c_tid->client->handlers[p->opcode] in do_hwtid_rpl() 811 if (t3c_tid && t3c_tid->ctx && t3c_tid->client->handlers && in do_cr() [all …]
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/linux-6.12.1/Documentation/power/ |
D | suspend-and-interrupts.rst | 21 interrupt handlers for shared IRQs that device drivers implementing them were 51 user of it. Thus, if the IRQ is shared, all of the interrupt handlers installed 90 already suspended. However, after suspend_device_irqs() interrupt handlers are 122 interrupts (interrupt handlers are invoked after suspend_device_irqs()) are 124 handlers are not invoked after suspend_device_irqs()). 127 to individual interrupt handlers, so sharing an IRQ between a system wakeup
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/linux-6.12.1/arch/xtensa/kernel/ |
D | vectors.S | 151 * specify a particular fixup handler but wants to use the default handlers: 157 * register a valid fixup handler and cannot use the default handlers. 168 * The fixup handlers are special handlers: 187 * - Fixup handlers can jump to the default kernel and user exception 188 * handlers. Before it jumps, though, it has to setup a exception frame 370 * The tricky part here is that overflow8 and overflow12 handlers 375 * handlers save a0 in their very first instruction. If DEPC was past 684 /* Window overflow and underflow handlers. 685 * The handlers must be 64 bytes apart, first starting with the underflow 686 * handlers underflow-4 to underflow-12, then the overflow handlers [all …]
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/linux-6.12.1/drivers/acpi/acpica/ |
D | evsci.c | 27 * DESCRIPTION: Dispatch the SCI to all host-installed SCI handlers. 39 /* Are there any host-installed SCI handlers? */ in acpi_ev_sci_dispatch() 47 /* Invoke all host-installed SCI handlers */ in acpi_ev_sci_dispatch() 100 /* Invoke all host-installed SCI handlers */ in acpi_ev_sci_xrupt_handler() 173 * taken. Remove all host-installed SCI handlers. 202 /* Free all host-installed SCI handlers */ in acpi_ev_remove_all_sci_handlers()
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/linux-6.12.1/drivers/iio/ |
D | TODO | 11 property handlers. 14 to state struct and using property handlers and readers.
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