pci.c

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/* * pci.c - Low-Level PCI Access in IA-64 * * Derived from bios32.c of i386 tree. * * Copyright (C) 2002 Hewlett-Packard Co *	David Mosberger-Tang <davidm@hpl.hp.com> *	Bjorn Helgaas <bjorn_helgaas@hp.com> * Copyright (C) 2004 Silicon Graphics, Inc. * * Note: Above list of copyright holders is incomplete... */#include <linux/config.h>#include <linux/acpi.h>#include <linux/types.h>#include <linux/kernel.h>#include <linux/pci.h>#include <linux/init.h>#include <linux/ioport.h>#include <linux/slab.h>#include <linux/smp_lock.h>#include <linux/spinlock.h>#include <asm/machvec.h>#include <asm/page.h>#include <asm/segment.h>#include <asm/system.h>#include <asm/io.h>#include <asm/sal.h>#ifdef CONFIG_SMP# include <asm/smp.h>#endif#include <asm/irq.h>#include <asm/hw_irq.h>#undef DEBUG#define DEBUG#ifdef DEBUG#define DBG(x...) printk(x)#else#define DBG(x...)#endifstatic int pci_routeirq;/* * Low-level SAL-based PCI configuration access functions. Note that SAL * calls are already serialized (via sal_lock), so we don't need another * synchronization mechanism here. */#define PCI_SAL_ADDRESS(seg, bus, devfn, reg)	\	((u64)(seg << 24) | (u64)(bus << 16) |	\	 (u64)(devfn << 8) | (u64)(reg))/* SAL 3.2 adds support for extended config space. */#define PCI_SAL_EXT_ADDRESS(seg, bus, devfn, reg)	\	((u64)(seg << 28) | (u64)(bus << 20) |		\	 (u64)(devfn << 12) | (u64)(reg))static intpci_sal_read (int seg, int bus, int devfn, int reg, int len, u32 *value){	u64 addr, mode, data = 0;	int result = 0;	if ((seg > 65535) || (bus > 255) || (devfn > 255) || (reg > 4095))		return -EINVAL;	if ((seg | reg) <= 255) {		addr = PCI_SAL_ADDRESS(seg, bus, devfn, reg);		mode = 0;	} else {		addr = PCI_SAL_EXT_ADDRESS(seg, bus, devfn, reg);		mode = 1;	}	result = ia64_sal_pci_config_read(addr, mode, len, &data);	*value = (u32) data;	return result;}static intpci_sal_write (int seg, int bus, int devfn, int reg, int len, u32 value){	u64 addr, mode;	if ((seg > 65535) || (bus > 255) || (devfn > 255) || (reg > 4095))		return -EINVAL;	if ((seg | reg) <= 255) {		addr = PCI_SAL_ADDRESS(seg, bus, devfn, reg);		mode = 0;	} else {		addr = PCI_SAL_EXT_ADDRESS(seg, bus, devfn, reg);		mode = 1;	}	return ia64_sal_pci_config_write(addr, mode, len, value);}static struct pci_raw_ops pci_sal_ops = {	.read = 	pci_sal_read,	.write =	pci_sal_write};struct pci_raw_ops *raw_pci_ops = &pci_sal_ops;static intpci_read (struct pci_bus *bus, unsigned int devfn, int where, int size, u32 *value){	return raw_pci_ops->read(pci_domain_nr(bus), bus->number,				 devfn, where, size, value);}static intpci_write (struct pci_bus *bus, unsigned int devfn, int where, int size, u32 value){	return raw_pci_ops->write(pci_domain_nr(bus), bus->number,				  devfn, where, size, value);}struct pci_ops pci_root_ops = {	.read = pci_read,	.write = pci_write,};#ifdef CONFIG_NUMAextern acpi_status acpi_map_iosapic(acpi_handle, u32, void *, void **);static void acpi_map_iosapics(void){	acpi_get_devices(NULL, acpi_map_iosapic, NULL, NULL);}#elsestatic void acpi_map_iosapics(void){	return;}#endif /* CONFIG_NUMA */static int __initpci_acpi_init (void){	struct pci_dev *dev = NULL;	printk(KERN_INFO "PCI: Using ACPI for IRQ routing\n");	acpi_map_iosapics();	if (pci_routeirq) {		/*		 * PCI IRQ routing is set up by pci_enable_device(), but we		 * also do it here in case there are still broken drivers that		 * don't use pci_enable_device().		 */		printk(KERN_INFO "** Routing PCI interrupts for all devices because \"pci=routeirq\"\n");		printk(KERN_INFO "** was specified.  If this was required to make a driver work,\n");		printk(KERN_INFO "** please email the output of \"lspci\" to bjorn.helgaas@hp.com\n");		printk(KERN_INFO "** so I can fix the driver.\n");		for_each_pci_dev(dev)			acpi_pci_irq_enable(dev);	} else {		printk(KERN_INFO "** PCI interrupts are no longer routed automatically.  If this\n");		printk(KERN_INFO "** causes a device to stop working, it is probably because the\n");		printk(KERN_INFO "** driver failed to call pci_enable_device().  As a temporary\n");		printk(KERN_INFO "** workaround, the \"pci=routeirq\" argument restores the old\n");		printk(KERN_INFO "** behavior.  If this argument makes the device work again,\n");		printk(KERN_INFO "** please email the output of \"lspci\" to bjorn.helgaas@hp.com\n");		printk(KERN_INFO "** so I can fix the driver.\n");	}	return 0;}subsys_initcall(pci_acpi_init);/* Called by ACPI when it finds a new root bus.  */static struct pci_controller * __devinitalloc_pci_controller (int seg){	struct pci_controller *controller;	controller = kmalloc(sizeof(*controller), GFP_KERNEL);	if (!controller)		return NULL;	memset(controller, 0, sizeof(*controller));	controller->segment = seg;	return controller;}static int __devinitalloc_resource (char *name, struct resource *root, unsigned long start, unsigned long end,		unsigned long flags){	struct resource *res;	res = kmalloc(sizeof(*res), GFP_KERNEL);	if (!res)		return -ENOMEM;	memset(res, 0, sizeof(*res));	res->name = name;	res->start = start;	res->end = end;	res->flags = flags;	if (insert_resource(root, res))	{		kfree(res);		return -EBUSY;	}	return 0;}static u64 __devinitadd_io_space (struct acpi_resource_address64 *addr){	u64 offset;	int sparse = 0;	int i;	if (addr->address_translation_offset == 0)		return IO_SPACE_BASE(0);	/* part of legacy IO space */	if (addr->attribute.io.translation_attribute == ACPI_SPARSE_TRANSLATION)		sparse = 1;	offset = (u64) ioremap(addr->address_translation_offset, 0);	for (i = 0; i < num_io_spaces; i++)		if (io_space[i].mmio_base == offset &&		    io_space[i].sparse == sparse)			return IO_SPACE_BASE(i);	if (num_io_spaces == MAX_IO_SPACES) {		printk("Too many IO port spaces\n");		return ~0;	}	i = num_io_spaces++;	io_space[i].mmio_base = offset;	io_space[i].sparse = sparse;	return IO_SPACE_BASE(i);}static acpi_status __devinitcount_window (struct acpi_resource *resource, void *data){	unsigned int *windows = (unsigned int *) data;	struct acpi_resource_address64 addr;	acpi_status status;	status = acpi_resource_to_address64(resource, &addr);	if (ACPI_SUCCESS(status))		if (addr.resource_type == ACPI_MEMORY_RANGE ||		    addr.resource_type == ACPI_IO_RANGE)			(*windows)++;	return AE_OK;}struct pci_root_info {	struct pci_controller *controller;	char *name;};static acpi_status __devinitadd_window (struct acpi_resource *res, void *data){	struct pci_root_info *info = (struct pci_root_info *) data;	struct pci_window *window;	struct acpi_resource_address64 addr;	acpi_status status;	unsigned long flags, offset = 0;	struct resource *root;	status = acpi_resource_to_address64(res, &addr);	if (ACPI_SUCCESS(status)) {		if (!addr.address_length)			return AE_OK;		if (addr.resource_type == ACPI_MEMORY_RANGE) {			flags = IORESOURCE_MEM;			root = &iomem_resource;			offset = addr.address_translation_offset;		} else if (addr.resource_type == ACPI_IO_RANGE) {			flags = IORESOURCE_IO;			root = &ioport_resource;			offset = add_io_space(&addr);			if (offset == ~0)				return AE_OK;		} else			return AE_OK;		window = &info->controller->window[info->controller->windows++];		window->resource.flags	= flags;		window->resource.start  = addr.min_address_range;		window->resource.end    = addr.max_address_range;		window->offset		= offset;		if (alloc_resource(info->name, root, addr.min_address_range + offset,			addr.max_address_range + offset, flags))			printk(KERN_ERR "alloc 0x%lx-0x%lx from %s for %s failed\n",				addr.min_address_range + offset, addr.max_address_range + offset,				root->name, info->name);	}	return AE_OK;}struct pci_bus * __devinitpci_acpi_scan_root (struct acpi_device *device, int domain, int bus){	struct pci_root_info info;	struct pci_controller *controller;	unsigned int windows = 0;	char *name;	controller = alloc_pci_controller(domain);	if (!controller)		goto out1;	controller->acpi_handle = device->handle;	acpi_walk_resources(device->handle, METHOD_NAME__CRS, count_window, &windows);	controller->window = kmalloc(sizeof(*controller->window) * windows, GFP_KERNEL);	if (!controller->window)		goto out2;	name = kmalloc(16, GFP_KERNEL);	if (!name)		goto out3;	sprintf(name, "PCI Bus %04x:%02x", domain, bus);	info.controller = controller;	info.name = name;	acpi_walk_resources(device->handle, METHOD_NAME__CRS, add_window, &info);	return pci_scan_bus(bus, &pci_root_ops, controller);out3:	kfree(controller->window);out2:	kfree(controller);out1:	return NULL;}void pcibios_resource_to_bus(struct pci_dev *dev,		struct pci_bus_region *region, struct resource *res){	struct pci_controller *controller = PCI_CONTROLLER(dev);	unsigned long offset = 0;	int i;	for (i = 0; i < controller->windows; i++) {		struct pci_window *window = &controller->window[i];		if (!(window->resource.flags & res->flags))			continue;		if (window->resource.start > res->start - window->offset)			continue;		if (window->resource.end < res->end - window->offset)			continue;		offset = window->offset;		break;

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