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#ifndef _ASM_X86_DMA_MAPPING_H
#define _ASM_X86_DMA_MAPPING_H

/*
 * IOMMU interface. See Documentation/DMA-mapping.txt and DMA-API.txt for
 * documentation.
 */

#include <linux/scatterlist.h>
#include <asm/io.h>
#include <asm/swiotlb.h>
#include <asm-generic/dma-coherent.h>

extern dma_addr_t bad_dma_address;
extern int iommu_merge;
extern struct device x86_dma_fallback_dev;
extern int panic_on_overflow;

struct dma_mapping_ops {
	int             (*mapping_error)(struct device *dev,
					 dma_addr_t dma_addr);
	void*           (*alloc_coherent)(struct device *dev, size_t size,
				dma_addr_t *dma_handle, gfp_t gfp);
	void            (*free_coherent)(struct device *dev, size_t size,
				void *vaddr, dma_addr_t dma_handle);
	dma_addr_t      (*map_single)(struct device *hwdev, phys_addr_t ptr,
				size_t size, int direction);
	void            (*unmap_single)(struct device *dev, dma_addr_t addr,
				size_t size, int direction);
	void            (*sync_single_for_cpu)(struct device *hwdev,
				dma_addr_t dma_handle, size_t size,
				int direction);
	void            (*sync_single_for_device)(struct device *hwdev,
				dma_addr_t dma_handle, size_t size,
				int direction);
	void            (*sync_single_range_for_cpu)(struct device *hwdev,
				dma_addr_t dma_handle, unsigned long offset,
				size_t size, int direction);
	void            (*sync_single_range_for_device)(struct device *hwdev,
				dma_addr_t dma_handle, unsigned long offset,
				size_t size, int direction);
	void            (*sync_sg_for_cpu)(struct device *hwdev,
				struct scatterlist *sg, int nelems,
				int direction);
	void            (*sync_sg_for_device)(struct device *hwdev,
				struct scatterlist *sg, int nelems,
				int direction);
	int             (*map_sg)(struct device *hwdev, struct scatterlist *sg,
				int nents, int direction);
	void            (*unmap_sg)(struct device *hwdev,
				struct scatterlist *sg, int nents,
				int direction);
	int             (*dma_supported)(struct device *hwdev, u64 mask);
	int		is_phys;
};

extern struct dma_mapping_ops *dma_ops;

static inline struct dma_mapping_ops *get_dma_ops(struct device *dev)
{
#ifdef CONFIG_X86_32
	return dma_ops;
#else
	if (unlikely(!dev) || !dev->archdata.dma_ops)
		return dma_ops;
	else
		return dev->archdata.dma_ops;
#endif /* _ASM_X86_DMA_MAPPING_H */
}

/* Make sure we keep the same behaviour */
static inline int dma_mapping_error(struct device *dev, dma_addr_t dma_addr)
{
#ifdef CONFIG_X86_64
	struct dma_mapping_ops *ops = get_dma_ops(dev);
	if (ops->mapping_error)
		return ops->mapping_error(dev, dma_addr);

#endif
	return (dma_addr == bad_dma_address);
}

#define dma_alloc_noncoherent(d, s, h, f) dma_alloc_coherent(d, s, h, f)
#define dma_free_noncoherent(d, s, v, h) dma_free_coherent(d, s, v, h)
#define dma_is_consistent(d, h)	(1)

extern int dma_supported(struct device *hwdev, u64 mask);
extern int dma_set_mask(struct device *dev, u64 mask);

extern void *dma_generic_alloc_coherent(struct device *dev, size_t size,
					dma_addr_t *dma_addr, gfp_t flag);

static inline dma_addr_t
dma_map_single(struct device *hwdev, void *ptr, size_t size,
	       int direction)
{
	struct dma_mapping_ops *ops = get_dma_ops(hwdev);

	BUG_ON(!valid_dma_direction(direction));
	return ops->map_single(hwdev, virt_to_phys(ptr), size, direction);
}

static inline void
dma_unmap_single(struct device *dev, dma_addr_t addr, size_t size,
		 int direction)
{
	struct dma_mapping_ops *ops = get_dma_ops(dev);

	BUG_ON(!valid_dma_direction(direction));
	if (ops->unmap_single)
		ops->unmap_single(dev, addr, size, direction);
}

static inline int
dma_map_sg(struct device *hwdev, struct scatterlist *sg,
	   int nents, int direction)
{
	struct dma_mapping_ops *ops = get_dma_ops(hwdev);

	BUG_ON(!valid_dma_direction(direction));
	return ops->map_sg(hwdev, sg, nents, direction);
}

static inline void
dma_unmap_sg(struct device *hwdev, struct scatterlist *sg, int nents,
	     int direction)
{
	struct dma_mapping_ops *ops = get_dma_ops(hwdev);

	BUG_ON(!valid_dma_direction(direction));
	if (ops->unmap_sg)
		ops->unmap_sg(hwdev, sg, nents, direction);
}

static inline void
dma_sync_single_for_cpu(struct device *hwdev, dma_addr_t dma_handle,
			size_t size, int direction)
{
	struct dma_mapping_ops *ops = get_dma_ops(hwdev);

	BUG_ON(!valid_dma_direction(direction));
	if (ops->sync_single_for_cpu)
		ops->sync_single_for_cpu(hwdev, dma_handle, size, direction);
	flush_write_buffers();
}

static inline void
dma_sync_single_for_device(struct device *hwdev, dma_addr_t dma_handle,
			   size_t size, int direction)
{
	struct dma_mapping_ops *ops = get_dma_ops(hwdev);

	BUG_ON(!valid_dma_direction(direction));
	if (ops->sync_single_for_device)
		ops->sync_single_for_device(hwdev, dma_handle, size, direction);
	flush_write_buffers();
}

static inline void
dma_sync_single_range_for_cpu(struct device *hwdev, dma_addr_t dma_handle,
			      unsigned long offset, size_t size, int direction)
{
	struct dma_mapping_ops *ops = get_dma_ops(hwdev);

	BUG_ON(!valid_dma_direction(direction));
	if (ops->sync_single_range_for_cpu)
		ops->sync_single_range_for_cpu(hwdev, dma_handle, offset,
					       size, direction);
	flush_write_buffers();
}

static inline void
dma_sync_single_range_for_device(struct device *hwdev, dma_addr_t dma_handle,
				 unsigned long offset, size_t size,
				 int direction)
{
	struct dma_mapping_ops *ops = get_dma_ops(hwdev);

	BUG_ON(!valid_dma_direction(direction));
	if (ops->sync_single_range_for_device)
		ops->sync_single_range_for_device(hwdev, dma_handle,
						  offset, size, direction);
	flush_write_buffers();
}

static inline void
dma_sync_sg_for_cpu(struct device *hwdev, struct scatterlist *sg,
		    int nelems, int direction)
{
	struct dma_mapping_ops *ops = get_dma_ops(hwdev);

	BUG_ON(!valid_dma_direction(direction));
	if (ops->sync_sg_for_cpu)
		ops->sync_sg_for_cpu(hwdev, sg, nelems, direction);
	flush_write_buffers();
}

static inline void
dma_sync_sg_for_device(struct device *hwdev, struct scatterlist *sg,
		       int nelems, int direction)
{
	struct dma_mapping_ops *ops = get_dma_ops(hwdev);

	BUG_ON(!valid_dma_direction(direction));
	if (ops->sync_sg_for_device)
		ops->sync_sg_for_device(hwdev, sg, nelems, direction);

	flush_write_buffers();
}

static inline dma_addr_t dma_map_page(struct device *dev, struct page *page,
				      size_t offset, size_t size,
				      int direction)
{
	struct dma_mapping_ops *ops = get_dma_ops(dev);

	BUG_ON(!valid_dma_direction(direction));
	return ops->map_single(dev, page_to_phys(page) + offset,
			       size, direction);
}

static inline void dma_unmap_page(struct device *dev, dma_addr_t addr,
				  size_t size, int direction)
{
	dma_unmap_single(dev, addr, size, direction);
}

static inline void
dma_cache_sync(struct device *dev, void *vaddr, size_t size,
	enum dma_data_direction dir)
{
	flush_write_buffers();
}

static inline int dma_get_cache_alignment(void)
{
	/* no easy way to get cache size on all x86, so return the
	 * maximum possible, to be safe */
	return boot_cpu_data.x86_clflush_size;
}

static inline unsigned long dma_alloc_coherent_mask(struct device *dev,
						    gfp_t gfp)
{
	unsigned long dma_mask = 0;

	dma_mask = dev->coherent_dma_mask;
	if (!dma_mask)
		dma_mask = (gfp & GFP_DMA) ? DMA_24BIT_MASK : DMA_32BIT_MASK;

	return dma_mask;
}

static inline gfp_t dma_alloc_coherent_gfp_flags(struct device *dev, gfp_t gfp)
{
	unsigned long dma_mask = dma_alloc_coherent_mask(dev, gfp);

	if (dma_mask <= DMA_24BIT_MASK)
		gfp |= GFP_DMA;
#ifdef CONFIG_X86_64
	if (dma_mask <= DMA_32BIT_MASK && !(gfp & GFP_DMA))
		gfp |= GFP_DMA32;
#endif
       return gfp;
}

static inline void *
dma_alloc_coherent(struct device *dev, size_t size, dma_addr_t *dma_handle,
		gfp_t gfp)
{
	struct dma_mapping_ops *ops = get_dma_ops(dev);
	void *memory;

	gfp &= ~(__GFP_DMA | __GFP_HIGHMEM | __GFP_DMA32);

	if (dma_alloc_from_coherent(dev, size, dma_handle, &memory))
		return memory;

	if (!dev) {
		dev = &x86_dma_fallback_dev;
		gfp |= GFP_DMA;
	}

	if (!is_device_dma_capable(dev))
		return NULL;

	if (!ops->alloc_coherent)
		return NULL;

	return ops->alloc_coherent(dev, size, dma_handle,
				   dma_alloc_coherent_gfp_flags(dev, gfp));
}

static inline void dma_free_coherent(struct device *dev, size_t size,
				     void *vaddr, dma_addr_t bus)
{
	struct dma_mapping_ops *ops = get_dma_ops(dev);

	WARN_ON(irqs_disabled());       /* for portability */

	if (dma_release_from_coherent(dev, get_order(size), vaddr))
		return;

	if (ops->free_coherent)
		ops->free_coherent(dev, size, vaddr, bus);
}

#endif
opt">} return 0; } /* Add a single MSN */ while (p) { /* Found in list, replace MSN */ if (p->eaz == eazmsn[0]) { spin_lock_irqsave(&card->lock, flags); strcpy(p->msn, &eazmsn[1]); spin_unlock_irqrestore(&card->lock, flags); printk(KERN_DEBUG "Mapping for EAZ %c changed to %s\n", eazmsn[0], &eazmsn[1]); return 0; } p = p->next; } /* Not found in list, add new entry */ p = kmalloc(sizeof(msn_entry), GFP_KERNEL); if (!p) return -ENOMEM; p->eaz = eazmsn[0]; strcpy(p->msn, &eazmsn[1]); p->next = card->msn_list; spin_lock_irqsave(&card->lock, flags); card->msn_list = p; spin_unlock_irqrestore(&card->lock, flags); printk(KERN_DEBUG "Mapping %c -> %s added\n", eazmsn[0], &eazmsn[1]); return 0; } static void act2000_transmit(struct act2000_card *card) { switch (card->bus) { case ACT2000_BUS_ISA: act2000_isa_send(card); break; case ACT2000_BUS_PCMCIA: case ACT2000_BUS_MCA: default: printk(KERN_WARNING "act2000_transmit: Illegal bustype %d\n", card->bus); } } static void act2000_receive(struct act2000_card *card) { switch (card->bus) { case ACT2000_BUS_ISA: act2000_isa_receive(card); break; case ACT2000_BUS_PCMCIA: case ACT2000_BUS_MCA: default: printk(KERN_WARNING "act2000_receive: Illegal bustype %d\n", card->bus); } } static void act2000_poll(unsigned long data) { act2000_card * card = (act2000_card *)data; unsigned long flags; act2000_receive(card); spin_lock_irqsave(&card->lock, flags); mod_timer(&card->ptimer, jiffies+3); spin_unlock_irqrestore(&card->lock, flags); } static int act2000_command(act2000_card * card, isdn_ctrl * c) { ulong a; act2000_chan *chan; act2000_cdef cdef; isdn_ctrl cmd; char tmp[17]; int ret; unsigned long flags; void __user *arg; switch (c->command) { case ISDN_CMD_IOCTL: memcpy(&a, c->parm.num, sizeof(ulong)); arg = (void __user *)a; switch (c->arg) { case ACT2000_IOCTL_LOADBOOT: switch (card->bus) { case ACT2000_BUS_ISA: ret = act2000_isa_download(card, arg); if (!ret) { card->flags |= ACT2000_FLAGS_LOADED; if (!(card->flags & ACT2000_FLAGS_IVALID)) { card->ptimer.expires = jiffies + 3; card->ptimer.function = act2000_poll; card->ptimer.data = (unsigned long)card; add_timer(&card->ptimer); } actcapi_manufacturer_req_errh(card); } break; default: printk(KERN_WARNING "act2000: Illegal BUS type %d\n", card->bus); ret = -EIO; } return ret; case ACT2000_IOCTL_SETPROTO: card->ptype = a?ISDN_PTYPE_EURO:ISDN_PTYPE_1TR6; if (!(card->flags & ACT2000_FLAGS_RUNNING)) return 0; actcapi_manufacturer_req_net(card); return 0; case ACT2000_IOCTL_SETMSN: if (copy_from_user(tmp, arg, sizeof(tmp))) return -EFAULT; if ((ret = act2000_set_msn(card, tmp))) return ret; if (card->flags & ACT2000_FLAGS_RUNNING) return(actcapi_manufacturer_req_msn(card)); return 0; case ACT2000_IOCTL_ADDCARD: if (copy_from_user(&cdef, arg, sizeof(cdef))) return -EFAULT; if (act2000_addcard(cdef.bus, cdef.port, cdef.irq, cdef.id)) return -EIO; return 0; case ACT2000_IOCTL_TEST: if (!(card->flags & ACT2000_FLAGS_RUNNING)) return -ENODEV; return 0; default: return -EINVAL; } break; case ISDN_CMD_DIAL: if (!card->flags & ACT2000_FLAGS_RUNNING) return -ENODEV; if (!(chan = find_channel(card, c->arg & 0x0f))) break; spin_lock_irqsave(&card->lock, flags); if (chan->fsm_state != ACT2000_STATE_NULL) { spin_unlock_irqrestore(&card->lock, flags); printk(KERN_WARNING "Dial on channel with state %d\n", chan->fsm_state); return -EBUSY; } if (card->ptype == ISDN_PTYPE_EURO) tmp[0] = act2000_find_msn(card, c->parm.setup.eazmsn, 1); else tmp[0] = c->parm.setup.eazmsn[0]; chan->fsm_state = ACT2000_STATE_OCALL; chan->callref = 0xffff; spin_unlock_irqrestore(&card->lock, flags); ret = actcapi_connect_req(card, chan, c->parm.setup.phone, tmp[0], c->parm.setup.si1, c->parm.setup.si2); if (ret) { cmd.driver = card->myid; cmd.command = ISDN_STAT_DHUP; cmd.arg &= 0x0f; card->interface.statcallb(&cmd); } return ret; case ISDN_CMD_ACCEPTD: if (!card->flags & ACT2000_FLAGS_RUNNING) return -ENODEV; if (!(chan = find_channel(card, c->arg & 0x0f))) break; if (chan->fsm_state == ACT2000_STATE_ICALL) actcapi_select_b2_protocol_req(card, chan); return 0; case ISDN_CMD_ACCEPTB: if (!card->flags & ACT2000_FLAGS_RUNNING) return -ENODEV; return 0; case ISDN_CMD_HANGUP: if (!card->flags & ACT2000_FLAGS_RUNNING) return -ENODEV; if (!(chan = find_channel(card, c->arg & 0x0f))) break; switch (chan->fsm_state) { case ACT2000_STATE_ICALL: case ACT2000_STATE_BSETUP: actcapi_connect_resp(card, chan, 0x15); break; case ACT2000_STATE_ACTIVE: actcapi_disconnect_b3_req(card, chan); break; } return 0; case ISDN_CMD_SETEAZ: if (!card->flags & ACT2000_FLAGS_RUNNING) return -ENODEV; if (!(chan = find_channel(card, c->arg & 0x0f))) break; if (strlen(c->parm.num)) { if (card->ptype == ISDN_PTYPE_EURO) { chan->eazmask = act2000_find_msn(card, c->parm.num, 0); } if (card->ptype == ISDN_PTYPE_1TR6) { int i; chan->eazmask = 0; for (i = 0; i < strlen(c->parm.num); i++) if (isdigit(c->parm.num[i])) chan->eazmask |= (1 << (c->parm.num[i] - '0')); } } else chan->eazmask = 0x3ff; actcapi_listen_req(card); return 0; case ISDN_CMD_CLREAZ: if (!card->flags & ACT2000_FLAGS_RUNNING) return -ENODEV; if (!(chan = find_channel(card, c->arg & 0x0f))) break; chan->eazmask = 0; actcapi_listen_req(card); return 0; case ISDN_CMD_SETL2: if (!card->flags & ACT2000_FLAGS_RUNNING) return -ENODEV; if (!(chan = find_channel(card, c->arg & 0x0f))) break; chan->l2prot = (c->arg >> 8); return 0; case ISDN_CMD_SETL3: if (!card->flags & ACT2000_FLAGS_RUNNING) return -ENODEV; if ((c->arg >> 8) != ISDN_PROTO_L3_TRANS) { printk(KERN_WARNING "L3 protocol unknown\n"); return -1; } if (!(chan = find_channel(card, c->arg & 0x0f))) break; chan->l3prot = (c->arg >> 8); return 0; } return -EINVAL; } static int act2000_sendbuf(act2000_card *card, int channel, int ack, struct sk_buff *skb) { struct sk_buff *xmit_skb; int len; act2000_chan *chan; actcapi_msg *msg; if (!(chan = find_channel(card, channel))) return -1; if (chan->fsm_state != ACT2000_STATE_ACTIVE) return -1; len = skb->len; if ((chan->queued + len) >= ACT2000_MAX_QUEUED) return 0; if (!len) return 0; if (skb_headroom(skb) < 19) { printk(KERN_WARNING "act2000_sendbuf: Headroom only %d\n", skb_headroom(skb)); xmit_skb = alloc_skb(len + 19, GFP_ATOMIC); if (!xmit_skb) { printk(KERN_WARNING "act2000_sendbuf: Out of memory\n"); return 0; } skb_reserve(xmit_skb, 19); memcpy(skb_put(xmit_skb, len), skb->data, len); } else { xmit_skb = skb_clone(skb, GFP_ATOMIC); if (!xmit_skb) { printk(KERN_WARNING "act2000_sendbuf: Out of memory\n"); return 0; } } dev_kfree_skb(skb); msg = (actcapi_msg *)skb_push(xmit_skb, 19); msg->hdr.len = 19 + len; msg->hdr.applicationID = 1; msg->hdr.cmd.cmd = 0x86; msg->hdr.cmd.subcmd = 0x00; msg->hdr.msgnum = actcapi_nextsmsg(card); msg->msg.data_b3_req.datalen = len; msg->msg.data_b3_req.blocknr = (msg->hdr.msgnum & 0xff); msg->msg.data_b3_req.fakencci = MAKE_NCCI(chan->plci, 0, chan->ncci); msg->msg.data_b3_req.flags = ack; /* Will be set to 0 on actual sending */ actcapi_debug_msg(xmit_skb, 1); chan->queued += len; skb_queue_tail(&card->sndq, xmit_skb); act2000_schedule_tx(card); return len; } /* Read the Status-replies from the Interface */ static int act2000_readstatus(u_char __user * buf, int len, act2000_card * card) { int count; u_char __user *p; for (p = buf, count = 0; count < len; p++, count++) { if (card->status_buf_read == card->status_buf_write) return count; put_user(*card->status_buf_read++, p); if (card->status_buf_read > card->status_buf_end) card->status_buf_read = card->status_buf; } return count; } /* * Find card with given driverId */ static inline act2000_card * act2000_findcard(int driverid) { act2000_card *p = cards; while (p) { if (p->myid == driverid) return p; p = p->next; } return (act2000_card *) 0; } /* * Wrapper functions for interface to linklevel */ static int if_command(isdn_ctrl * c) { act2000_card *card = act2000_findcard(c->driver); if (card) return (act2000_command(card, c)); printk(KERN_ERR "act2000: if_command %d called with invalid driverId %d!\n", c->command, c->driver); return -ENODEV; } static int if_writecmd(const u_char __user *buf, int len, int id, int channel) { act2000_card *card = act2000_findcard(id); if (card) { if (!card->flags & ACT2000_FLAGS_RUNNING) return -ENODEV; return (len); } printk(KERN_ERR "act2000: if_writecmd called with invalid driverId!\n"); return -ENODEV; } static int if_readstatus(u_char __user * buf, int len, int id, int channel) { act2000_card *card = act2000_findcard(id); if (card) { if (!card->flags & ACT2000_FLAGS_RUNNING) return -ENODEV; return (act2000_readstatus(buf, len, card)); } printk(KERN_ERR "act2000: if_readstatus called with invalid driverId!\n"); return -ENODEV; } static int if_sendbuf(int id, int channel, int ack, struct sk_buff *skb) { act2000_card *card = act2000_findcard(id); if (card) { if (!card->flags & ACT2000_FLAGS_RUNNING) return -ENODEV; return (act2000_sendbuf(card, channel, ack, skb)); } printk(KERN_ERR "act2000: if_sendbuf called with invalid driverId!\n"); return -ENODEV; } /* * Allocate a new card-struct, initialize it * link it into cards-list. */ static void act2000_alloccard(int bus, int port, int irq, char *id) { int i; act2000_card *card; if (!(card = (act2000_card *) kmalloc(sizeof(act2000_card), GFP_KERNEL))) { printk(KERN_WARNING "act2000: (%s) Could not allocate card-struct.\n", id); return; } memset((char *) card, 0, sizeof(act2000_card)); spin_lock_init(&card->lock); spin_lock_init(&card->mnlock); skb_queue_head_init(&card->sndq); skb_queue_head_init(&card->rcvq); skb_queue_head_init(&card->ackq); INIT_WORK(&card->snd_tq, (void *) (void *) act2000_transmit, card); INIT_WORK(&card->rcv_tq, (void *) (void *) actcapi_dispatch, card); INIT_WORK(&card->poll_tq, (void *) (void *) act2000_receive, card); init_timer(&card->ptimer); card->interface.owner = THIS_MODULE; card->interface.channels = ACT2000_BCH; card->interface.maxbufsize = 4000; card->interface.command = if_command; card->interface.writebuf_skb = if_sendbuf; card->interface.writecmd = if_writecmd; card->interface.readstat = if_readstatus; card->interface.features = ISDN_FEATURE_L2_X75I | ISDN_FEATURE_L2_HDLC | ISDN_FEATURE_L3_TRANS | ISDN_FEATURE_P_UNKNOWN; card->interface.hl_hdrlen = 20; card->ptype = ISDN_PTYPE_EURO; strlcpy(card->interface.id, id, sizeof(card->interface.id)); for (i=0; i<ACT2000_BCH; i++) { card->bch[i].plci = 0x8000; card->bch[i].ncci = 0x8000; card->bch[i].l2prot = ISDN_PROTO_L2_X75I; card->bch[i].l3prot = ISDN_PROTO_L3_TRANS; } card->myid = -1; card->bus = bus; card->port = port; card->irq = irq; card->next = cards; cards = card; } /* * register card at linklevel */ static int act2000_registercard(act2000_card * card) { switch (card->bus) { case ACT2000_BUS_ISA: break; case ACT2000_BUS_MCA: case ACT2000_BUS_PCMCIA: default: printk(KERN_WARNING "act2000: Illegal BUS type %d\n", card->bus); return -1; } if (!register_isdn(&card->interface)) { printk(KERN_WARNING "act2000: Unable to register %s\n", card->interface.id); return -1; } card->myid = card->interface.channels; sprintf(card->regname, "act2000-isdn (%s)", card->interface.id); return 0; } static void unregister_card(act2000_card * card) { isdn_ctrl cmd; cmd.command = ISDN_STAT_UNLOAD; cmd.driver = card->myid; card->interface.statcallb(&cmd); switch (card->bus) { case ACT2000_BUS_ISA: act2000_isa_release(card); break; case ACT2000_BUS_MCA: case ACT2000_BUS_PCMCIA: default: printk(KERN_WARNING "act2000: Invalid BUS type %d\n", card->bus); break; } } static int act2000_addcard(int bus, int port, int irq, char *id) { act2000_card *p; act2000_card *q = NULL; int initialized; int added = 0; int failed = 0; int i; if (!bus) bus = ACT2000_BUS_ISA; if (port != -1) { /* Port defined, do fixed setup */ act2000_alloccard(bus, port, irq, id); } else { /* No port defined, perform autoprobing. * This may result in more than one card detected. */ switch (bus) { case ACT2000_BUS_ISA: for (i = 0; i < ISA_NRPORTS; i++) if (act2000_isa_detect(act2000_isa_ports[i])) { printk(KERN_INFO "act2000: Detected ISA card at port 0x%x\n", act2000_isa_ports[i]); act2000_alloccard(bus, act2000_isa_ports[i], irq, id); } break; case ACT2000_BUS_MCA: case ACT2000_BUS_PCMCIA: default: printk(KERN_WARNING "act2000: addcard: Invalid BUS type %d\n", bus); } } if (!cards) return 1; p = cards; while (p) { initialized = 0; if (!p->interface.statcallb) { /* Not yet registered. * Try to register and activate it. */ added++; switch (p->bus) { case ACT2000_BUS_ISA: if (act2000_isa_detect(p->port)) { if (act2000_registercard(p)) break; if (act2000_isa_config_port(p, p->port)) { printk(KERN_WARNING "act2000: Could not request port 0x%04x\n", p->port); unregister_card(p); p->interface.statcallb = NULL; break; } if (act2000_isa_config_irq(p, p->irq)) { printk(KERN_INFO "act2000: No IRQ available, fallback to polling\n"); /* Fall back to polled operation */ p->irq = 0; } printk(KERN_INFO "act2000: ISA" "-type card at port " "0x%04x ", p->port); if (p->irq) printk("irq %d\n", p->irq); else printk("polled\n"); initialized = 1; } break; case ACT2000_BUS_MCA: case ACT2000_BUS_PCMCIA: default: printk(KERN_WARNING "act2000: addcard: Invalid BUS type %d\n", p->bus); } } else /* Card already initialized */ initialized = 1; if (initialized) { /* Init OK, next card ... */ q = p; p = p->next; } else { /* Init failed, remove card from list, free memory */ printk(KERN_WARNING "act2000: Initialization of %s failed\n", p->interface.id); if (q) { q->next = p->next; kfree(p); p = q->next; } else { cards = p->next; kfree(p); p = cards; } failed++; } } return (added - failed); } #define DRIVERNAME "IBM Active 2000 ISDN driver" static int __init act2000_init(void) { printk(KERN_INFO "%s\n", DRIVERNAME); if (!cards) act2000_addcard(act_bus, act_port, act_irq, act_id); if (!cards) printk(KERN_INFO "act2000: No cards defined yet\n"); return 0; } static void __exit act2000_exit(void) { act2000_card *card = cards; act2000_card *last; while (card) { unregister_card(card); del_timer(&card->ptimer); card = card->next; } card = cards; while (card) { last = card; card = card->next; act2000_clear_msn(last); kfree(last); } printk(KERN_INFO "%s unloaded\n", DRIVERNAME); } module_init(act2000_init); module_exit(act2000_exit);