vserver 1.9.5.x5
[linux-2.6.git] / arch / ia64 / kernel / irq.c
1 /*
2  *      linux/arch/ia64/kernel/irq.c
3  *
4  *      Copyright (C) 1992, 1998 Linus Torvalds, Ingo Molnar
5  *
6  * This file contains the code used by various IRQ handling routines:
7  * asking for different IRQ's should be done through these routines
8  * instead of just grabbing them. Thus setups with different IRQ numbers
9  * shouldn't result in any weird surprises, and installing new handlers
10  * should be easier.
11  *
12  * Copyright (C) Ashok Raj<ashok.raj@intel.com>, Intel Corporation 2004
13  *
14  * 4/14/2004: Added code to handle cpu migration and do safe irq
15  *                      migration without lossing interrupts for iosapic
16  *                      architecture.
17  */
18
19 #include <asm/delay.h>
20 #include <asm/uaccess.h>
21 #include <linux/module.h>
22 #include <linux/seq_file.h>
23 #include <linux/interrupt.h>
24 #include <linux/kernel_stat.h>
25
26 /*
27  * 'what should we do if we get a hw irq event on an illegal vector'.
28  * each architecture has to answer this themselves.
29  */
30 void ack_bad_irq(unsigned int irq)
31 {
32         printk(KERN_ERR "Unexpected irq vector 0x%x on CPU %u!\n", irq, smp_processor_id());
33 }
34
35 #ifdef CONFIG_IA64_GENERIC
36 unsigned int __ia64_local_vector_to_irq (ia64_vector vec)
37 {
38         return (unsigned int) vec;
39 }
40 #endif
41
42 /*
43  * Interrupt statistics:
44  */
45
46 atomic_t irq_err_count;
47
48 /*
49  * /proc/interrupts printing:
50  */
51
52 int show_interrupts(struct seq_file *p, void *v)
53 {
54         int i = *(loff_t *) v, j;
55         struct irqaction * action;
56         unsigned long flags;
57
58         if (i == 0) {
59                 seq_printf(p, "           ");
60                 for (j=0; j<NR_CPUS; j++)
61                         if (cpu_online(j))
62                                 seq_printf(p, "CPU%d       ",j);
63                 seq_putc(p, '\n');
64         }
65
66         if (i < NR_IRQS) {
67                 spin_lock_irqsave(&irq_desc[i].lock, flags);
68                 action = irq_desc[i].action;
69                 if (!action)
70                         goto skip;
71                 seq_printf(p, "%3d: ",i);
72 #ifndef CONFIG_SMP
73                 seq_printf(p, "%10u ", kstat_irqs(i));
74 #else
75                 for (j = 0; j < NR_CPUS; j++)
76                         if (cpu_online(j))
77                                 seq_printf(p, "%10u ", kstat_cpu(j).irqs[i]);
78 #endif
79                 seq_printf(p, " %14s", irq_desc[i].handler->typename);
80                 seq_printf(p, "  %s", action->name);
81
82                 for (action=action->next; action; action = action->next)
83                         seq_printf(p, ", %s", action->name);
84
85                 seq_putc(p, '\n');
86 skip:
87                 spin_unlock_irqrestore(&irq_desc[i].lock, flags);
88         } else if (i == NR_IRQS)
89                 seq_printf(p, "ERR: %10u\n", atomic_read(&irq_err_count));
90         return 0;
91 }
92
93 #ifdef CONFIG_SMP
94 /*
95  * This is updated when the user sets irq affinity via /proc
96  */
97 cpumask_t __cacheline_aligned pending_irq_cpumask[NR_IRQS];
98 static unsigned long pending_irq_redir[BITS_TO_LONGS(NR_IRQS)];
99
100 static cpumask_t irq_affinity [NR_IRQS] = { [0 ... NR_IRQS-1] = CPU_MASK_ALL };
101 static char irq_redir [NR_IRQS]; // = { [0 ... NR_IRQS-1] = 1 };
102
103 void set_irq_affinity_info (unsigned int irq, int hwid, int redir)
104 {
105         cpumask_t mask = CPU_MASK_NONE;
106
107         cpu_set(cpu_logical_id(hwid), mask);
108
109         if (irq < NR_IRQS) {
110                 irq_affinity[irq] = mask;
111                 irq_redir[irq] = (char) (redir & 0xff);
112         }
113 }
114
115
116 void move_irq(int irq)
117 {
118         /* note - we hold desc->lock */
119         cpumask_t tmp;
120         irq_desc_t *desc = irq_descp(irq);
121         int redir = test_bit(irq, pending_irq_redir);
122
123         if (unlikely(!desc->handler->set_affinity))
124                 return;
125
126         if (!cpus_empty(pending_irq_cpumask[irq])) {
127                 cpus_and(tmp, pending_irq_cpumask[irq], cpu_online_map);
128                 if (unlikely(!cpus_empty(tmp))) {
129                         desc->handler->set_affinity(irq | (redir ? IA64_IRQ_REDIRECTED : 0),
130                                                     pending_irq_cpumask[irq]);
131                 }
132                 cpus_clear(pending_irq_cpumask[irq]);
133         }
134 }
135
136
137 #endif /* CONFIG_SMP */
138
139 #ifdef CONFIG_HOTPLUG_CPU
140 unsigned int vectors_in_migration[NR_IRQS];
141
142 /*
143  * Since cpu_online_map is already updated, we just need to check for
144  * affinity that has zeros
145  */
146 static void migrate_irqs(void)
147 {
148         cpumask_t       mask;
149         irq_desc_t *desc;
150         int             irq, new_cpu;
151
152         for (irq=0; irq < NR_IRQS; irq++) {
153                 desc = irq_descp(irq);
154
155                 /*
156                  * No handling for now.
157                  * TBD: Implement a disable function so we can now
158                  * tell CPU not to respond to these local intr sources.
159                  * such as ITV,CPEI,MCA etc.
160                  */
161                 if (desc->status == IRQ_PER_CPU)
162                         continue;
163
164                 cpus_and(mask, irq_affinity[irq], cpu_online_map);
165                 if (any_online_cpu(mask) == NR_CPUS) {
166                         /*
167                          * Save it for phase 2 processing
168                          */
169                         vectors_in_migration[irq] = irq;
170
171                         new_cpu = any_online_cpu(cpu_online_map);
172                         mask = cpumask_of_cpu(new_cpu);
173
174                         /*
175                          * Al three are essential, currently WARN_ON.. maybe panic?
176                          */
177                         if (desc->handler && desc->handler->disable &&
178                                 desc->handler->enable && desc->handler->set_affinity) {
179                                 desc->handler->disable(irq);
180                                 desc->handler->set_affinity(irq, mask);
181                                 desc->handler->enable(irq);
182                         } else {
183                                 WARN_ON((!(desc->handler) || !(desc->handler->disable) ||
184                                                 !(desc->handler->enable) ||
185                                                 !(desc->handler->set_affinity)));
186                         }
187                 }
188         }
189 }
190
191 void fixup_irqs(void)
192 {
193         unsigned int irq;
194         extern void ia64_process_pending_intr(void);
195
196         ia64_set_itv(1<<16);
197         /*
198          * Phase 1: Locate irq's bound to this cpu and
199          * relocate them for cpu removal.
200          */
201         migrate_irqs();
202
203         /*
204          * Phase 2: Perform interrupt processing for all entries reported in
205          * local APIC.
206          */
207         ia64_process_pending_intr();
208
209         /*
210          * Phase 3: Now handle any interrupts not captured in local APIC.
211          * This is to account for cases that device interrupted during the time the
212          * rte was being disabled and re-programmed.
213          */
214         for (irq=0; irq < NR_IRQS; irq++) {
215                 if (vectors_in_migration[irq]) {
216                         vectors_in_migration[irq]=0;
217                         __do_IRQ(irq, NULL);
218                 }
219         }
220
221         /*
222          * Now let processor die. We do irq disable and max_xtp() to
223          * ensure there is no more interrupts routed to this processor.
224          * But the local timer interrupt can have 1 pending which we
225          * take care in timer_interrupt().
226          */
227         max_xtp();
228         local_irq_disable();
229 }
230 #endif