2 * Driver for HP iLO/iLO2 management processor.
4 * Copyright (C) 2008 Hewlett-Packard Development Company, L.P.
5 * David Altobelli <david.altobelli@hp.com>
7 * This program is free software; you can redistribute it and/or modify
8 * it under the terms of the GNU General Public License version 2 as
9 * published by the Free Software Foundation.
11 #include <linux/kernel.h>
12 #include <linux/types.h>
13 #include <linux/module.h>
15 #include <linux/pci.h>
16 #include <linux/interrupt.h>
17 #include <linux/ioport.h>
18 #include <linux/device.h>
19 #include <linux/file.h>
20 #include <linux/cdev.h>
21 #include <linux/sched.h>
22 #include <linux/spinlock.h>
23 #include <linux/delay.h>
24 #include <linux/uaccess.h>
26 #include <linux/wait.h>
27 #include <linux/poll.h>
28 #include <linux/slab.h>
31 static struct class *ilo_class
;
32 static unsigned int ilo_major
;
33 static char ilo_hwdev
[MAX_ILO_DEV
];
35 static inline int get_entry_id(int entry
)
37 return (entry
& ENTRY_MASK_DESCRIPTOR
) >> ENTRY_BITPOS_DESCRIPTOR
;
40 static inline int get_entry_len(int entry
)
42 return ((entry
& ENTRY_MASK_QWORDS
) >> ENTRY_BITPOS_QWORDS
) << 3;
45 static inline int mk_entry(int id
, int len
)
47 int qlen
= len
& 7 ? (len
>> 3) + 1 : len
>> 3;
48 return id
<< ENTRY_BITPOS_DESCRIPTOR
| qlen
<< ENTRY_BITPOS_QWORDS
;
51 static inline int desc_mem_sz(int nr_entry
)
53 return nr_entry
<< L2_QENTRY_SZ
;
57 * FIFO queues, shared with hardware.
59 * If a queue has empty slots, an entry is added to the queue tail,
60 * and that entry is marked as occupied.
61 * Entries can be dequeued from the head of the list, when the device
62 * has marked the entry as consumed.
64 * Returns true on successful queue/dequeue, false on failure.
66 static int fifo_enqueue(struct ilo_hwinfo
*hw
, char *fifobar
, int entry
)
68 struct fifo
*fifo_q
= FIFOBARTOHANDLE(fifobar
);
72 spin_lock_irqsave(&hw
->fifo_lock
, flags
);
73 if (!(fifo_q
->fifobar
[(fifo_q
->tail
+ 1) & fifo_q
->imask
]
75 fifo_q
->fifobar
[fifo_q
->tail
& fifo_q
->imask
] |=
76 (entry
& ENTRY_MASK_NOSTATE
) | fifo_q
->merge
;
80 spin_unlock_irqrestore(&hw
->fifo_lock
, flags
);
85 static int fifo_dequeue(struct ilo_hwinfo
*hw
, char *fifobar
, int *entry
)
87 struct fifo
*fifo_q
= FIFOBARTOHANDLE(fifobar
);
92 spin_lock_irqsave(&hw
->fifo_lock
, flags
);
93 c
= fifo_q
->fifobar
[fifo_q
->head
& fifo_q
->imask
];
94 if (c
& ENTRY_MASK_C
) {
96 *entry
= c
& ENTRY_MASK_NOSTATE
;
98 fifo_q
->fifobar
[fifo_q
->head
& fifo_q
->imask
] =
103 spin_unlock_irqrestore(&hw
->fifo_lock
, flags
);
108 static int fifo_check_recv(struct ilo_hwinfo
*hw
, char *fifobar
)
110 struct fifo
*fifo_q
= FIFOBARTOHANDLE(fifobar
);
115 spin_lock_irqsave(&hw
->fifo_lock
, flags
);
116 c
= fifo_q
->fifobar
[fifo_q
->head
& fifo_q
->imask
];
117 if (c
& ENTRY_MASK_C
)
119 spin_unlock_irqrestore(&hw
->fifo_lock
, flags
);
124 static int ilo_pkt_enqueue(struct ilo_hwinfo
*hw
, struct ccb
*ccb
,
125 int dir
, int id
, int len
)
131 fifobar
= ccb
->ccb_u1
.send_fifobar
;
133 fifobar
= ccb
->ccb_u3
.recv_fifobar
;
135 entry
= mk_entry(id
, len
);
136 return fifo_enqueue(hw
, fifobar
, entry
);
139 static int ilo_pkt_dequeue(struct ilo_hwinfo
*hw
, struct ccb
*ccb
,
140 int dir
, int *id
, int *len
, void **pkt
)
142 char *fifobar
, *desc
;
143 int entry
= 0, pkt_id
= 0;
147 fifobar
= ccb
->ccb_u1
.send_fifobar
;
148 desc
= ccb
->ccb_u2
.send_desc
;
150 fifobar
= ccb
->ccb_u3
.recv_fifobar
;
151 desc
= ccb
->ccb_u4
.recv_desc
;
154 ret
= fifo_dequeue(hw
, fifobar
, &entry
);
156 pkt_id
= get_entry_id(entry
);
160 *len
= get_entry_len(entry
);
162 *pkt
= (void *)(desc
+ desc_mem_sz(pkt_id
));
168 static int ilo_pkt_recv(struct ilo_hwinfo
*hw
, struct ccb
*ccb
)
170 char *fifobar
= ccb
->ccb_u3
.recv_fifobar
;
172 return fifo_check_recv(hw
, fifobar
);
175 static inline void doorbell_set(struct ccb
*ccb
)
177 iowrite8(1, ccb
->ccb_u5
.db_base
);
180 static inline void doorbell_clr(struct ccb
*ccb
)
182 iowrite8(2, ccb
->ccb_u5
.db_base
);
185 static inline int ctrl_set(int l2sz
, int idxmask
, int desclim
)
187 int active
= 0, go
= 1;
188 return l2sz
<< CTRL_BITPOS_L2SZ
|
189 idxmask
<< CTRL_BITPOS_FIFOINDEXMASK
|
190 desclim
<< CTRL_BITPOS_DESCLIMIT
|
191 active
<< CTRL_BITPOS_A
|
195 static void ctrl_setup(struct ccb
*ccb
, int nr_desc
, int l2desc_sz
)
197 /* for simplicity, use the same parameters for send and recv ctrls */
198 ccb
->send_ctrl
= ctrl_set(l2desc_sz
, nr_desc
-1, nr_desc
-1);
199 ccb
->recv_ctrl
= ctrl_set(l2desc_sz
, nr_desc
-1, nr_desc
-1);
202 static inline int fifo_sz(int nr_entry
)
204 /* size of a fifo is determined by the number of entries it contains */
205 return (nr_entry
* sizeof(u64
)) + FIFOHANDLESIZE
;
208 static void fifo_setup(void *base_addr
, int nr_entry
)
210 struct fifo
*fifo_q
= base_addr
;
213 /* set up an empty fifo */
217 fifo_q
->nrents
= nr_entry
;
218 fifo_q
->imask
= nr_entry
- 1;
219 fifo_q
->merge
= ENTRY_MASK_O
;
221 for (i
= 0; i
< nr_entry
; i
++)
222 fifo_q
->fifobar
[i
] = 0;
225 static void ilo_ccb_close(struct pci_dev
*pdev
, struct ccb_data
*data
)
227 struct ccb
*driver_ccb
= &data
->driver_ccb
;
228 struct ccb __iomem
*device_ccb
= data
->mapped_ccb
;
231 /* complicated dance to tell the hw we are stopping */
232 doorbell_clr(driver_ccb
);
233 iowrite32(ioread32(&device_ccb
->send_ctrl
) & ~(1 << CTRL_BITPOS_G
),
234 &device_ccb
->send_ctrl
);
235 iowrite32(ioread32(&device_ccb
->recv_ctrl
) & ~(1 << CTRL_BITPOS_G
),
236 &device_ccb
->recv_ctrl
);
238 /* give iLO some time to process stop request */
239 for (retries
= MAX_WAIT
; retries
> 0; retries
--) {
240 doorbell_set(driver_ccb
);
242 if (!(ioread32(&device_ccb
->send_ctrl
) & (1 << CTRL_BITPOS_A
))
244 !(ioread32(&device_ccb
->recv_ctrl
) & (1 << CTRL_BITPOS_A
)))
248 dev_err(&pdev
->dev
, "Closing, but controller still active\n");
250 /* clear the hw ccb */
251 memset_io(device_ccb
, 0, sizeof(struct ccb
));
253 /* free resources used to back send/recv queues */
254 pci_free_consistent(pdev
, data
->dma_size
, data
->dma_va
, data
->dma_pa
);
257 static int ilo_ccb_setup(struct ilo_hwinfo
*hw
, struct ccb_data
*data
, int slot
)
259 char *dma_va
, *dma_pa
;
260 struct ccb
*driver_ccb
, *ilo_ccb
;
262 driver_ccb
= &data
->driver_ccb
;
263 ilo_ccb
= &data
->ilo_ccb
;
265 data
->dma_size
= 2 * fifo_sz(NR_QENTRY
) +
266 2 * desc_mem_sz(NR_QENTRY
) +
267 ILO_START_ALIGN
+ ILO_CACHE_SZ
;
269 data
->dma_va
= pci_alloc_consistent(hw
->ilo_dev
, data
->dma_size
,
274 dma_va
= (char *)data
->dma_va
;
275 dma_pa
= (char *)data
->dma_pa
;
277 memset(dma_va
, 0, data
->dma_size
);
279 dma_va
= (char *)roundup((unsigned long)dma_va
, ILO_START_ALIGN
);
280 dma_pa
= (char *)roundup((unsigned long)dma_pa
, ILO_START_ALIGN
);
283 * Create two ccb's, one with virt addrs, one with phys addrs.
284 * Copy the phys addr ccb to device shared mem.
286 ctrl_setup(driver_ccb
, NR_QENTRY
, L2_QENTRY_SZ
);
287 ctrl_setup(ilo_ccb
, NR_QENTRY
, L2_QENTRY_SZ
);
289 fifo_setup(dma_va
, NR_QENTRY
);
290 driver_ccb
->ccb_u1
.send_fifobar
= dma_va
+ FIFOHANDLESIZE
;
291 ilo_ccb
->ccb_u1
.send_fifobar
= dma_pa
+ FIFOHANDLESIZE
;
292 dma_va
+= fifo_sz(NR_QENTRY
);
293 dma_pa
+= fifo_sz(NR_QENTRY
);
295 dma_va
= (char *)roundup((unsigned long)dma_va
, ILO_CACHE_SZ
);
296 dma_pa
= (char *)roundup((unsigned long)dma_pa
, ILO_CACHE_SZ
);
298 fifo_setup(dma_va
, NR_QENTRY
);
299 driver_ccb
->ccb_u3
.recv_fifobar
= dma_va
+ FIFOHANDLESIZE
;
300 ilo_ccb
->ccb_u3
.recv_fifobar
= dma_pa
+ FIFOHANDLESIZE
;
301 dma_va
+= fifo_sz(NR_QENTRY
);
302 dma_pa
+= fifo_sz(NR_QENTRY
);
304 driver_ccb
->ccb_u2
.send_desc
= dma_va
;
305 ilo_ccb
->ccb_u2
.send_desc
= dma_pa
;
306 dma_pa
+= desc_mem_sz(NR_QENTRY
);
307 dma_va
+= desc_mem_sz(NR_QENTRY
);
309 driver_ccb
->ccb_u4
.recv_desc
= dma_va
;
310 ilo_ccb
->ccb_u4
.recv_desc
= dma_pa
;
312 driver_ccb
->channel
= slot
;
313 ilo_ccb
->channel
= slot
;
315 driver_ccb
->ccb_u5
.db_base
= hw
->db_vaddr
+ (slot
<< L2_DB_SIZE
);
316 ilo_ccb
->ccb_u5
.db_base
= NULL
; /* hw ccb's doorbell is not used */
321 static void ilo_ccb_open(struct ilo_hwinfo
*hw
, struct ccb_data
*data
, int slot
)
324 struct ccb
*driver_ccb
= &data
->driver_ccb
;
326 /* copy the ccb with physical addrs to device memory */
327 data
->mapped_ccb
= (struct ccb __iomem
*)
328 (hw
->ram_vaddr
+ (slot
* ILOHW_CCB_SZ
));
329 memcpy_toio(data
->mapped_ccb
, &data
->ilo_ccb
, sizeof(struct ccb
));
331 /* put packets on the send and receive queues */
333 for (pkt_id
= 0; pkt_id
< NR_QENTRY
; pkt_id
++) {
334 ilo_pkt_enqueue(hw
, driver_ccb
, SENDQ
, pkt_id
, pkt_sz
);
335 doorbell_set(driver_ccb
);
338 pkt_sz
= desc_mem_sz(1);
339 for (pkt_id
= 0; pkt_id
< NR_QENTRY
; pkt_id
++)
340 ilo_pkt_enqueue(hw
, driver_ccb
, RECVQ
, pkt_id
, pkt_sz
);
342 /* the ccb is ready to use */
343 doorbell_clr(driver_ccb
);
346 static int ilo_ccb_verify(struct ilo_hwinfo
*hw
, struct ccb_data
*data
)
349 struct ccb
*driver_ccb
= &data
->driver_ccb
;
351 /* make sure iLO is really handling requests */
352 for (i
= MAX_WAIT
; i
> 0; i
--) {
353 if (ilo_pkt_dequeue(hw
, driver_ccb
, SENDQ
, &pkt_id
, NULL
, NULL
))
359 dev_err(&hw
->ilo_dev
->dev
, "Open could not dequeue a packet\n");
363 ilo_pkt_enqueue(hw
, driver_ccb
, SENDQ
, pkt_id
, 0);
364 doorbell_set(driver_ccb
);
368 static inline int is_channel_reset(struct ccb
*ccb
)
370 /* check for this particular channel needing a reset */
371 return FIFOBARTOHANDLE(ccb
->ccb_u1
.send_fifobar
)->reset
;
374 static inline void set_channel_reset(struct ccb
*ccb
)
376 /* set a flag indicating this channel needs a reset */
377 FIFOBARTOHANDLE(ccb
->ccb_u1
.send_fifobar
)->reset
= 1;
380 static inline int get_device_outbound(struct ilo_hwinfo
*hw
)
382 return ioread32(&hw
->mmio_vaddr
[DB_OUT
]);
385 static inline int is_db_reset(int db_out
)
387 return db_out
& (1 << DB_RESET
);
390 static inline int is_device_reset(struct ilo_hwinfo
*hw
)
392 /* check for global reset condition */
393 return is_db_reset(get_device_outbound(hw
));
396 static inline void clear_pending_db(struct ilo_hwinfo
*hw
, int clr
)
398 iowrite32(clr
, &hw
->mmio_vaddr
[DB_OUT
]);
401 static inline void clear_device(struct ilo_hwinfo
*hw
)
403 /* clear the device (reset bits, pending channel entries) */
404 clear_pending_db(hw
, -1);
407 static inline void ilo_enable_interrupts(struct ilo_hwinfo
*hw
)
409 iowrite8(ioread8(&hw
->mmio_vaddr
[DB_IRQ
]) | 1, &hw
->mmio_vaddr
[DB_IRQ
]);
412 static inline void ilo_disable_interrupts(struct ilo_hwinfo
*hw
)
414 iowrite8(ioread8(&hw
->mmio_vaddr
[DB_IRQ
]) & ~1,
415 &hw
->mmio_vaddr
[DB_IRQ
]);
418 static void ilo_set_reset(struct ilo_hwinfo
*hw
)
423 * Mapped memory is zeroed on ilo reset, so set a per ccb flag
424 * to indicate that this ccb needs to be closed and reopened.
426 for (slot
= 0; slot
< MAX_CCB
; slot
++) {
427 if (!hw
->ccb_alloc
[slot
])
429 set_channel_reset(&hw
->ccb_alloc
[slot
]->driver_ccb
);
433 static ssize_t
ilo_read(struct file
*fp
, char __user
*buf
,
434 size_t len
, loff_t
*off
)
436 int err
, found
, cnt
, pkt_id
, pkt_len
;
437 struct ccb_data
*data
= fp
->private_data
;
438 struct ccb
*driver_ccb
= &data
->driver_ccb
;
439 struct ilo_hwinfo
*hw
= data
->ilo_hw
;
442 if (is_channel_reset(driver_ccb
)) {
444 * If the device has been reset, applications
445 * need to close and reopen all ccbs.
451 * This function is to be called when data is expected
452 * in the channel, and will return an error if no packet is found
453 * during the loop below. The sleep/retry logic is to allow
454 * applications to call read() immediately post write(),
455 * and give iLO some time to process the sent packet.
459 /* look for a received packet */
460 found
= ilo_pkt_dequeue(hw
, driver_ccb
, RECVQ
, &pkt_id
,
466 } while (!found
&& cnt
);
471 /* only copy the length of the received packet */
475 err
= copy_to_user(buf
, pkt
, len
);
477 /* return the received packet to the queue */
478 ilo_pkt_enqueue(hw
, driver_ccb
, RECVQ
, pkt_id
, desc_mem_sz(1));
480 return err
? -EFAULT
: len
;
483 static ssize_t
ilo_write(struct file
*fp
, const char __user
*buf
,
484 size_t len
, loff_t
*off
)
486 int err
, pkt_id
, pkt_len
;
487 struct ccb_data
*data
= fp
->private_data
;
488 struct ccb
*driver_ccb
= &data
->driver_ccb
;
489 struct ilo_hwinfo
*hw
= data
->ilo_hw
;
492 if (is_channel_reset(driver_ccb
))
495 /* get a packet to send the user command */
496 if (!ilo_pkt_dequeue(hw
, driver_ccb
, SENDQ
, &pkt_id
, &pkt_len
, &pkt
))
499 /* limit the length to the length of the packet */
503 /* on failure, set the len to 0 to return empty packet to the device */
504 err
= copy_from_user(pkt
, buf
, len
);
508 /* send the packet */
509 ilo_pkt_enqueue(hw
, driver_ccb
, SENDQ
, pkt_id
, len
);
510 doorbell_set(driver_ccb
);
512 return err
? -EFAULT
: len
;
515 static unsigned int ilo_poll(struct file
*fp
, poll_table
*wait
)
517 struct ccb_data
*data
= fp
->private_data
;
518 struct ccb
*driver_ccb
= &data
->driver_ccb
;
520 poll_wait(fp
, &data
->ccb_waitq
, wait
);
522 if (is_channel_reset(driver_ccb
))
524 else if (ilo_pkt_recv(data
->ilo_hw
, driver_ccb
))
525 return POLLIN
| POLLRDNORM
;
530 static int ilo_close(struct inode
*ip
, struct file
*fp
)
533 struct ccb_data
*data
;
534 struct ilo_hwinfo
*hw
;
537 slot
= iminor(ip
) % MAX_CCB
;
538 hw
= container_of(ip
->i_cdev
, struct ilo_hwinfo
, cdev
);
540 spin_lock(&hw
->open_lock
);
542 if (hw
->ccb_alloc
[slot
]->ccb_cnt
== 1) {
544 data
= fp
->private_data
;
546 spin_lock_irqsave(&hw
->alloc_lock
, flags
);
547 hw
->ccb_alloc
[slot
] = NULL
;
548 spin_unlock_irqrestore(&hw
->alloc_lock
, flags
);
550 ilo_ccb_close(hw
->ilo_dev
, data
);
554 hw
->ccb_alloc
[slot
]->ccb_cnt
--;
556 spin_unlock(&hw
->open_lock
);
561 static int ilo_open(struct inode
*ip
, struct file
*fp
)
564 struct ccb_data
*data
;
565 struct ilo_hwinfo
*hw
;
568 slot
= iminor(ip
) % MAX_CCB
;
569 hw
= container_of(ip
->i_cdev
, struct ilo_hwinfo
, cdev
);
571 /* new ccb allocation */
572 data
= kzalloc(sizeof(*data
), GFP_KERNEL
);
576 spin_lock(&hw
->open_lock
);
578 /* each fd private_data holds sw/hw view of ccb */
579 if (hw
->ccb_alloc
[slot
] == NULL
) {
580 /* create a channel control block for this minor */
581 error
= ilo_ccb_setup(hw
, data
, slot
);
588 data
->ccb_excl
= fp
->f_flags
& O_EXCL
;
590 init_waitqueue_head(&data
->ccb_waitq
);
592 /* write the ccb to hw */
593 spin_lock_irqsave(&hw
->alloc_lock
, flags
);
594 ilo_ccb_open(hw
, data
, slot
);
595 hw
->ccb_alloc
[slot
] = data
;
596 spin_unlock_irqrestore(&hw
->alloc_lock
, flags
);
598 /* make sure the channel is functional */
599 error
= ilo_ccb_verify(hw
, data
);
602 spin_lock_irqsave(&hw
->alloc_lock
, flags
);
603 hw
->ccb_alloc
[slot
] = NULL
;
604 spin_unlock_irqrestore(&hw
->alloc_lock
, flags
);
606 ilo_ccb_close(hw
->ilo_dev
, data
);
614 if (fp
->f_flags
& O_EXCL
|| hw
->ccb_alloc
[slot
]->ccb_excl
) {
616 * The channel exists, and either this open
617 * or a previous open of this channel wants
622 hw
->ccb_alloc
[slot
]->ccb_cnt
++;
627 spin_unlock(&hw
->open_lock
);
630 fp
->private_data
= hw
->ccb_alloc
[slot
];
635 static const struct file_operations ilo_fops
= {
636 .owner
= THIS_MODULE
,
641 .release
= ilo_close
,
644 static irqreturn_t
ilo_isr(int irq
, void *data
)
646 struct ilo_hwinfo
*hw
= data
;
649 spin_lock(&hw
->alloc_lock
);
651 /* check for ccbs which have data */
652 pending
= get_device_outbound(hw
);
654 spin_unlock(&hw
->alloc_lock
);
658 if (is_db_reset(pending
)) {
659 /* wake up all ccbs if the device was reset */
664 for (i
= 0; i
< MAX_CCB
; i
++) {
665 if (!hw
->ccb_alloc
[i
])
667 if (pending
& (1 << i
))
668 wake_up_interruptible(&hw
->ccb_alloc
[i
]->ccb_waitq
);
671 /* clear the device of the channels that have been handled */
672 clear_pending_db(hw
, pending
);
674 spin_unlock(&hw
->alloc_lock
);
679 static void ilo_unmap_device(struct pci_dev
*pdev
, struct ilo_hwinfo
*hw
)
681 pci_iounmap(pdev
, hw
->db_vaddr
);
682 pci_iounmap(pdev
, hw
->ram_vaddr
);
683 pci_iounmap(pdev
, hw
->mmio_vaddr
);
686 static int __devinit
ilo_map_device(struct pci_dev
*pdev
, struct ilo_hwinfo
*hw
)
690 /* map the memory mapped i/o registers */
691 hw
->mmio_vaddr
= pci_iomap(pdev
, 1, 0);
692 if (hw
->mmio_vaddr
== NULL
) {
693 dev_err(&pdev
->dev
, "Error mapping mmio\n");
697 /* map the adapter shared memory region */
698 hw
->ram_vaddr
= pci_iomap(pdev
, 2, MAX_CCB
* ILOHW_CCB_SZ
);
699 if (hw
->ram_vaddr
== NULL
) {
700 dev_err(&pdev
->dev
, "Error mapping shared mem\n");
704 /* map the doorbell aperture */
705 hw
->db_vaddr
= pci_iomap(pdev
, 3, MAX_CCB
* ONE_DB_SIZE
);
706 if (hw
->db_vaddr
== NULL
) {
707 dev_err(&pdev
->dev
, "Error mapping doorbell\n");
713 pci_iounmap(pdev
, hw
->ram_vaddr
);
715 pci_iounmap(pdev
, hw
->mmio_vaddr
);
720 static void ilo_remove(struct pci_dev
*pdev
)
723 struct ilo_hwinfo
*ilo_hw
= pci_get_drvdata(pdev
);
725 clear_device(ilo_hw
);
727 minor
= MINOR(ilo_hw
->cdev
.dev
);
728 for (i
= minor
; i
< minor
+ MAX_CCB
; i
++)
729 device_destroy(ilo_class
, MKDEV(ilo_major
, i
));
731 cdev_del(&ilo_hw
->cdev
);
732 ilo_disable_interrupts(ilo_hw
);
733 free_irq(pdev
->irq
, ilo_hw
);
734 ilo_unmap_device(pdev
, ilo_hw
);
735 pci_release_regions(pdev
);
736 pci_disable_device(pdev
);
738 ilo_hwdev
[(minor
/ MAX_CCB
)] = 0;
741 static int __devinit
ilo_probe(struct pci_dev
*pdev
,
742 const struct pci_device_id
*ent
)
744 int devnum
, minor
, start
, error
;
745 struct ilo_hwinfo
*ilo_hw
;
747 /* find a free range for device files */
748 for (devnum
= 0; devnum
< MAX_ILO_DEV
; devnum
++) {
749 if (ilo_hwdev
[devnum
] == 0) {
750 ilo_hwdev
[devnum
] = 1;
755 if (devnum
== MAX_ILO_DEV
) {
756 dev_err(&pdev
->dev
, "Error finding free device\n");
760 /* track global allocations for this device */
762 ilo_hw
= kzalloc(sizeof(*ilo_hw
), GFP_KERNEL
);
766 ilo_hw
->ilo_dev
= pdev
;
767 spin_lock_init(&ilo_hw
->alloc_lock
);
768 spin_lock_init(&ilo_hw
->fifo_lock
);
769 spin_lock_init(&ilo_hw
->open_lock
);
771 error
= pci_enable_device(pdev
);
775 pci_set_master(pdev
);
777 error
= pci_request_regions(pdev
, ILO_NAME
);
781 error
= ilo_map_device(pdev
, ilo_hw
);
785 pci_set_drvdata(pdev
, ilo_hw
);
786 clear_device(ilo_hw
);
788 error
= request_irq(pdev
->irq
, ilo_isr
, IRQF_SHARED
, "hpilo", ilo_hw
);
792 ilo_enable_interrupts(ilo_hw
);
794 cdev_init(&ilo_hw
->cdev
, &ilo_fops
);
795 ilo_hw
->cdev
.owner
= THIS_MODULE
;
796 start
= devnum
* MAX_CCB
;
797 error
= cdev_add(&ilo_hw
->cdev
, MKDEV(ilo_major
, start
), MAX_CCB
);
799 dev_err(&pdev
->dev
, "Could not add cdev\n");
803 for (minor
= 0 ; minor
< MAX_CCB
; minor
++) {
805 dev
= device_create(ilo_class
, &pdev
->dev
,
806 MKDEV(ilo_major
, minor
), NULL
,
807 "hpilo!d%dccb%d", devnum
, minor
);
809 dev_err(&pdev
->dev
, "Could not create files\n");
814 ilo_disable_interrupts(ilo_hw
);
815 free_irq(pdev
->irq
, ilo_hw
);
817 ilo_unmap_device(pdev
, ilo_hw
);
819 pci_release_regions(pdev
);
821 pci_disable_device(pdev
);
825 ilo_hwdev
[devnum
] = 0;
829 static struct pci_device_id ilo_devices
[] = {
830 { PCI_DEVICE(PCI_VENDOR_ID_COMPAQ
, 0xB204) },
831 { PCI_DEVICE(PCI_VENDOR_ID_HP
, 0x3307) },
834 MODULE_DEVICE_TABLE(pci
, ilo_devices
);
836 static struct pci_driver ilo_driver
= {
838 .id_table
= ilo_devices
,
840 .remove
= __devexit_p(ilo_remove
),
843 static int __init
ilo_init(void)
848 ilo_class
= class_create(THIS_MODULE
, "iLO");
849 if (IS_ERR(ilo_class
)) {
850 error
= PTR_ERR(ilo_class
);
854 error
= alloc_chrdev_region(&dev
, 0, MAX_OPEN
, ILO_NAME
);
858 ilo_major
= MAJOR(dev
);
860 error
= pci_register_driver(&ilo_driver
);
866 unregister_chrdev_region(dev
, MAX_OPEN
);
868 class_destroy(ilo_class
);
873 static void __exit
ilo_exit(void)
875 pci_unregister_driver(&ilo_driver
);
876 unregister_chrdev_region(MKDEV(ilo_major
, 0), MAX_OPEN
);
877 class_destroy(ilo_class
);
880 MODULE_VERSION("1.2");
881 MODULE_ALIAS(ILO_NAME
);
882 MODULE_DESCRIPTION(ILO_NAME
);
883 MODULE_AUTHOR("David Altobelli <david.altobelli@hp.com>");
884 MODULE_LICENSE("GPL v2");
886 module_init(ilo_init
);
887 module_exit(ilo_exit
);