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634 lines
19 KiB
634 lines
19 KiB
/* |
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* This file is subject to the terms and conditions of the GNU General Public |
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* License. See the file "COPYING" in the main directory of this archive |
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* for more details. |
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* |
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* Copyright (C) 1994, 1995 Waldorf GmbH |
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* Copyright (C) 1994 - 2000, 06 Ralf Baechle |
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* Copyright (C) 1999, 2000 Silicon Graphics, Inc. |
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* Copyright (C) 2004, 2005 MIPS Technologies, Inc. All rights reserved. |
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* Author: Maciej W. Rozycki <macro@mips.com> |
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*/ |
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#ifndef _ASM_IO_H |
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#define _ASM_IO_H |
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#include <linux/compiler.h> |
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#include <linux/kernel.h> |
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#include <linux/types.h> |
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#include <linux/irqflags.h> |
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#include <asm/addrspace.h> |
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#include <asm/bug.h> |
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#include <asm/byteorder.h> |
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#include <asm/cpu.h> |
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#include <asm/cpu-features.h> |
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#include <asm-generic/iomap.h> |
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#include <asm/page.h> |
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#include <asm/pgtable-bits.h> |
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#include <asm/processor.h> |
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#include <asm/string.h> |
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#include <ioremap.h> |
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#include <mangle-port.h> |
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/* |
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* Slowdown I/O port space accesses for antique hardware. |
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*/ |
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#undef CONF_SLOWDOWN_IO |
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|
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/* |
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* Raw operations are never swapped in software. OTOH values that raw |
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* operations are working on may or may not have been swapped by the bus |
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* hardware. An example use would be for flash memory that's used for |
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* execute in place. |
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*/ |
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# define __raw_ioswabb(a, x) (x) |
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# define __raw_ioswabw(a, x) (x) |
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# define __raw_ioswabl(a, x) (x) |
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# define __raw_ioswabq(a, x) (x) |
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# define ____raw_ioswabq(a, x) (x) |
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/* ioswab[bwlq], __mem_ioswab[bwlq] are defined in mangle-port.h */ |
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#define IO_SPACE_LIMIT 0xffff |
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/* |
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* On MIPS I/O ports are memory mapped, so we access them using normal |
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* load/store instructions. mips_io_port_base is the virtual address to |
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* which all ports are being mapped. For sake of efficiency some code |
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* assumes that this is an address that can be loaded with a single lui |
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* instruction, so the lower 16 bits must be zero. Should be true on |
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* on any sane architecture; generic code does not use this assumption. |
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*/ |
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extern const unsigned long mips_io_port_base; |
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|
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/* |
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* Gcc will generate code to load the value of mips_io_port_base after each |
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* function call which may be fairly wasteful in some cases. So we don't |
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* play quite by the book. We tell gcc mips_io_port_base is a long variable |
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* which solves the code generation issue. Now we need to violate the |
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* aliasing rules a little to make initialization possible and finally we |
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* will need the barrier() to fight side effects of the aliasing chat. |
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* This trickery will eventually collapse under gcc's optimizer. Oh well. |
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*/ |
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static inline void set_io_port_base(unsigned long base) |
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{ |
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* (unsigned long *) &mips_io_port_base = base; |
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barrier(); |
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} |
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|
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/* |
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* Thanks to James van Artsdalen for a better timing-fix than |
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* the two short jumps: using outb's to a nonexistent port seems |
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* to guarantee better timings even on fast machines. |
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* |
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* On the other hand, I'd like to be sure of a non-existent port: |
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* I feel a bit unsafe about using 0x80 (should be safe, though) |
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* |
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* Linus |
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* |
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*/ |
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#define __SLOW_DOWN_IO \ |
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__asm__ __volatile__( \ |
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"sb\t$0,0x80(%0)" \ |
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: : "r" (mips_io_port_base)); |
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|
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#ifdef CONF_SLOWDOWN_IO |
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#ifdef REALLY_SLOW_IO |
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#define SLOW_DOWN_IO { __SLOW_DOWN_IO; __SLOW_DOWN_IO; __SLOW_DOWN_IO; __SLOW_DOWN_IO; } |
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#else |
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#define SLOW_DOWN_IO __SLOW_DOWN_IO |
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#endif |
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#else |
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#define SLOW_DOWN_IO |
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#endif |
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/* |
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* virt_to_phys - map virtual addresses to physical |
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* @address: address to remap |
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* |
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* The returned physical address is the physical (CPU) mapping for |
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* the memory address given. It is only valid to use this function on |
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* addresses directly mapped or allocated via kmalloc. |
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* |
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* This function does not give bus mappings for DMA transfers. In |
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* almost all conceivable cases a device driver should not be using |
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* this function |
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*/ |
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static inline unsigned long virt_to_phys(volatile const void *address) |
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{ |
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return __pa(address); |
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} |
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|
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/* |
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* phys_to_virt - map physical address to virtual |
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* @address: address to remap |
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* |
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* The returned virtual address is a current CPU mapping for |
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* the memory address given. It is only valid to use this function on |
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* addresses that have a kernel mapping |
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* |
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* This function does not handle bus mappings for DMA transfers. In |
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* almost all conceivable cases a device driver should not be using |
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* this function |
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*/ |
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static inline void * phys_to_virt(unsigned long address) |
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{ |
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return (void *)(address + PAGE_OFFSET - PHYS_OFFSET); |
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} |
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/* |
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* ISA I/O bus memory addresses are 1:1 with the physical address. |
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*/ |
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static inline unsigned long isa_virt_to_bus(volatile void * address) |
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{ |
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return (unsigned long)address - PAGE_OFFSET; |
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} |
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static inline void * isa_bus_to_virt(unsigned long address) |
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{ |
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return (void *)(address + PAGE_OFFSET); |
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} |
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#define isa_page_to_bus page_to_phys |
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|
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/* |
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* However PCI ones are not necessarily 1:1 and therefore these interfaces |
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* are forbidden in portable PCI drivers. |
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* |
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* Allow them for x86 for legacy drivers, though. |
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*/ |
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#define virt_to_bus virt_to_phys |
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#define bus_to_virt phys_to_virt |
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/* |
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* Change "struct page" to physical address. |
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*/ |
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#define page_to_phys(page) ((dma_addr_t)page_to_pfn(page) << PAGE_SHIFT) |
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extern void __iomem * __ioremap(phys_addr_t offset, phys_addr_t size, unsigned long flags); |
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extern void __iounmap(const volatile void __iomem *addr); |
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#ifndef CONFIG_PCI |
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struct pci_dev; |
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static inline void pci_iounmap(struct pci_dev *dev, void __iomem *addr) {} |
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#endif |
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static inline void __iomem * __ioremap_mode(phys_addr_t offset, unsigned long size, |
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unsigned long flags) |
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{ |
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void __iomem *addr = plat_ioremap(offset, size, flags); |
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if (addr) |
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return addr; |
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#define __IS_LOW512(addr) (!((phys_addr_t)(addr) & (phys_addr_t) ~0x1fffffffULL)) |
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if (cpu_has_64bit_addresses) { |
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u64 base = UNCAC_BASE; |
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/* |
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* R10000 supports a 2 bit uncached attribute therefore |
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* UNCAC_BASE may not equal IO_BASE. |
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*/ |
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if (flags == _CACHE_UNCACHED) |
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base = (u64) IO_BASE; |
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return (void __iomem *) (unsigned long) (base + offset); |
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} else if (__builtin_constant_p(offset) && |
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__builtin_constant_p(size) && __builtin_constant_p(flags)) { |
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phys_addr_t phys_addr, last_addr; |
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phys_addr = fixup_bigphys_addr(offset, size); |
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/* Don't allow wraparound or zero size. */ |
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last_addr = phys_addr + size - 1; |
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if (!size || last_addr < phys_addr) |
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return NULL; |
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/* |
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* Map uncached objects in the low 512MB of address |
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* space using KSEG1. |
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*/ |
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if (__IS_LOW512(phys_addr) && __IS_LOW512(last_addr) && |
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flags == _CACHE_UNCACHED) |
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return (void __iomem *) |
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(unsigned long)CKSEG1ADDR(phys_addr); |
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} |
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return __ioremap(offset, size, flags); |
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#undef __IS_LOW512 |
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} |
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/* |
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* ioremap - map bus memory into CPU space |
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* @offset: bus address of the memory |
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* @size: size of the resource to map |
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* |
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* ioremap performs a platform specific sequence of operations to |
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* make bus memory CPU accessible via the readb/readw/readl/writeb/ |
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* writew/writel functions and the other mmio helpers. The returned |
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* address is not guaranteed to be usable directly as a virtual |
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* address. |
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*/ |
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#define ioremap(offset, size) \ |
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__ioremap_mode((offset), (size), _CACHE_UNCACHED) |
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|
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/* |
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* ioremap_nocache - map bus memory into CPU space |
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* @offset: bus address of the memory |
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* @size: size of the resource to map |
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* |
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* ioremap_nocache performs a platform specific sequence of operations to |
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* make bus memory CPU accessible via the readb/readw/readl/writeb/ |
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* writew/writel functions and the other mmio helpers. The returned |
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* address is not guaranteed to be usable directly as a virtual |
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* address. |
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* |
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* This version of ioremap ensures that the memory is marked uncachable |
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* on the CPU as well as honouring existing caching rules from things like |
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* the PCI bus. Note that there are other caches and buffers on many |
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* busses. In particular driver authors should read up on PCI writes |
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* |
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* It's useful if some control registers are in such an area and |
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* write combining or read caching is not desirable: |
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*/ |
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#define ioremap_nocache(offset, size) \ |
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__ioremap_mode((offset), (size), _CACHE_UNCACHED) |
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#define ioremap_uc ioremap_nocache |
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/* |
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* ioremap_cachable - map bus memory into CPU space |
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* @offset: bus address of the memory |
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* @size: size of the resource to map |
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* |
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* ioremap_nocache performs a platform specific sequence of operations to |
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* make bus memory CPU accessible via the readb/readw/readl/writeb/ |
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* writew/writel functions and the other mmio helpers. The returned |
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* address is not guaranteed to be usable directly as a virtual |
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* address. |
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* |
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* This version of ioremap ensures that the memory is marked cachable by |
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* the CPU. Also enables full write-combining. Useful for some |
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* memory-like regions on I/O busses. |
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*/ |
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#define ioremap_cachable(offset, size) \ |
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__ioremap_mode((offset), (size), _page_cachable_default) |
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|
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/* |
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* These two are MIPS specific ioremap variant. ioremap_cacheable_cow |
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* requests a cachable mapping, ioremap_uncached_accelerated requests a |
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* mapping using the uncached accelerated mode which isn't supported on |
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* all processors. |
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*/ |
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#define ioremap_cacheable_cow(offset, size) \ |
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__ioremap_mode((offset), (size), _CACHE_CACHABLE_COW) |
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#define ioremap_uncached_accelerated(offset, size) \ |
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__ioremap_mode((offset), (size), _CACHE_UNCACHED_ACCELERATED) |
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static inline void iounmap(const volatile void __iomem *addr) |
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{ |
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if (plat_iounmap(addr)) |
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return; |
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#define __IS_KSEG1(addr) (((unsigned long)(addr) & ~0x1fffffffUL) == CKSEG1) |
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if (cpu_has_64bit_addresses || |
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(__builtin_constant_p(addr) && __IS_KSEG1(addr))) |
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return; |
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__iounmap(addr); |
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#undef __IS_KSEG1 |
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} |
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#ifdef CONFIG_CPU_CAVIUM_OCTEON |
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#define war_octeon_io_reorder_wmb() wmb() |
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#else |
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#define war_octeon_io_reorder_wmb() do { } while (0) |
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#endif |
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#define __BUILD_MEMORY_SINGLE(pfx, bwlq, type, irq) \ |
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\ |
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static inline void pfx##write##bwlq(type val, \ |
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volatile void __iomem *mem) \ |
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{ \ |
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volatile type *__mem; \ |
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type __val; \ |
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\ |
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war_octeon_io_reorder_wmb(); \ |
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\ |
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__mem = (void *)__swizzle_addr_##bwlq((unsigned long)(mem)); \ |
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\ |
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__val = pfx##ioswab##bwlq(__mem, val); \ |
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\ |
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if (sizeof(type) != sizeof(u64) || sizeof(u64) == sizeof(long)) \ |
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*__mem = __val; \ |
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else if (cpu_has_64bits) { \ |
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unsigned long __flags; \ |
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type __tmp; \ |
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\ |
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if (irq) \ |
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local_irq_save(__flags); \ |
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__asm__ __volatile__( \ |
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".set arch=r4000" "\t\t# __writeq""\n\t" \ |
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"dsll32 %L0, %L0, 0" "\n\t" \ |
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"dsrl32 %L0, %L0, 0" "\n\t" \ |
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"dsll32 %M0, %M0, 0" "\n\t" \ |
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"or %L0, %L0, %M0" "\n\t" \ |
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"sd %L0, %2" "\n\t" \ |
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".set mips0" "\n" \ |
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: "=r" (__tmp) \ |
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: "0" (__val), "m" (*__mem)); \ |
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if (irq) \ |
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local_irq_restore(__flags); \ |
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} else \ |
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BUG(); \ |
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} \ |
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\ |
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static inline type pfx##read##bwlq(const volatile void __iomem *mem) \ |
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{ \ |
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volatile type *__mem; \ |
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type __val; \ |
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\ |
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__mem = (void *)__swizzle_addr_##bwlq((unsigned long)(mem)); \ |
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\ |
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if (sizeof(type) != sizeof(u64) || sizeof(u64) == sizeof(long)) \ |
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__val = *__mem; \ |
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else if (cpu_has_64bits) { \ |
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unsigned long __flags; \ |
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\ |
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if (irq) \ |
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local_irq_save(__flags); \ |
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__asm__ __volatile__( \ |
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".set arch=r4000" "\t\t# __readq" "\n\t" \ |
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"ld %L0, %1" "\n\t" \ |
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"dsra32 %M0, %L0, 0" "\n\t" \ |
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"sll %L0, %L0, 0" "\n\t" \ |
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".set mips0" "\n" \ |
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: "=r" (__val) \ |
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: "m" (*__mem)); \ |
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if (irq) \ |
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local_irq_restore(__flags); \ |
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} else { \ |
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__val = 0; \ |
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BUG(); \ |
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} \ |
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\ |
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return pfx##ioswab##bwlq(__mem, __val); \ |
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} |
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|
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#define __BUILD_IOPORT_SINGLE(pfx, bwlq, type, p, slow) \ |
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\ |
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static inline void pfx##out##bwlq##p(type val, unsigned long port) \ |
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{ \ |
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volatile type *__addr; \ |
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type __val; \ |
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\ |
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war_octeon_io_reorder_wmb(); \ |
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\ |
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__addr = (void *)__swizzle_addr_##bwlq(mips_io_port_base + port); \ |
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\ |
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__val = pfx##ioswab##bwlq(__addr, val); \ |
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\ |
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/* Really, we want this to be atomic */ \ |
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BUILD_BUG_ON(sizeof(type) > sizeof(unsigned long)); \ |
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\ |
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*__addr = __val; \ |
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slow; \ |
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} \ |
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\ |
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static inline type pfx##in##bwlq##p(unsigned long port) \ |
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{ \ |
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volatile type *__addr; \ |
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type __val; \ |
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\ |
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__addr = (void *)__swizzle_addr_##bwlq(mips_io_port_base + port); \ |
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\ |
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BUILD_BUG_ON(sizeof(type) > sizeof(unsigned long)); \ |
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\ |
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__val = *__addr; \ |
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slow; \ |
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\ |
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return pfx##ioswab##bwlq(__addr, __val); \ |
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} |
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#define __BUILD_MEMORY_PFX(bus, bwlq, type) \ |
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\ |
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__BUILD_MEMORY_SINGLE(bus, bwlq, type, 1) |
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|
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#define BUILDIO_MEM(bwlq, type) \ |
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\ |
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__BUILD_MEMORY_PFX(__raw_, bwlq, type) \ |
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__BUILD_MEMORY_PFX(, bwlq, type) \ |
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__BUILD_MEMORY_PFX(__mem_, bwlq, type) \ |
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BUILDIO_MEM(b, u8) |
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BUILDIO_MEM(w, u16) |
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BUILDIO_MEM(l, u32) |
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BUILDIO_MEM(q, u64) |
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|
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#define __BUILD_IOPORT_PFX(bus, bwlq, type) \ |
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__BUILD_IOPORT_SINGLE(bus, bwlq, type, ,) \ |
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__BUILD_IOPORT_SINGLE(bus, bwlq, type, _p, SLOW_DOWN_IO) |
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|
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#define BUILDIO_IOPORT(bwlq, type) \ |
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__BUILD_IOPORT_PFX(, bwlq, type) \ |
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__BUILD_IOPORT_PFX(__mem_, bwlq, type) |
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|
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BUILDIO_IOPORT(b, u8) |
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BUILDIO_IOPORT(w, u16) |
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BUILDIO_IOPORT(l, u32) |
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#ifdef CONFIG_64BIT |
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BUILDIO_IOPORT(q, u64) |
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#endif |
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|
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#define __BUILDIO(bwlq, type) \ |
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\ |
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__BUILD_MEMORY_SINGLE(____raw_, bwlq, type, 0) |
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|
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__BUILDIO(q, u64) |
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|
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#define readb_relaxed readb |
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#define readw_relaxed readw |
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#define readl_relaxed readl |
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#define readq_relaxed readq |
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|
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#define writeb_relaxed writeb |
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#define writew_relaxed writew |
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#define writel_relaxed writel |
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#define writeq_relaxed writeq |
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|
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#define readb_be(addr) \ |
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__raw_readb((__force unsigned *)(addr)) |
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#define readw_be(addr) \ |
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be16_to_cpu(__raw_readw((__force unsigned *)(addr))) |
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#define readl_be(addr) \ |
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be32_to_cpu(__raw_readl((__force unsigned *)(addr))) |
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#define readq_be(addr) \ |
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be64_to_cpu(__raw_readq((__force unsigned *)(addr))) |
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|
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#define writeb_be(val, addr) \ |
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__raw_writeb((val), (__force unsigned *)(addr)) |
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#define writew_be(val, addr) \ |
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__raw_writew(cpu_to_be16((val)), (__force unsigned *)(addr)) |
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#define writel_be(val, addr) \ |
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__raw_writel(cpu_to_be32((val)), (__force unsigned *)(addr)) |
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#define writeq_be(val, addr) \ |
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__raw_writeq(cpu_to_be64((val)), (__force unsigned *)(addr)) |
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|
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/* |
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* Some code tests for these symbols |
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*/ |
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#define readq readq |
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#define writeq writeq |
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|
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#define __BUILD_MEMORY_STRING(bwlq, type) \ |
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\ |
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static inline void writes##bwlq(volatile void __iomem *mem, \ |
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const void *addr, unsigned int count) \ |
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{ \ |
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const volatile type *__addr = addr; \ |
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\ |
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while (count--) { \ |
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__mem_write##bwlq(*__addr, mem); \ |
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__addr++; \ |
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} \ |
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} \ |
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\ |
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static inline void reads##bwlq(volatile void __iomem *mem, void *addr, \ |
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unsigned int count) \ |
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{ \ |
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volatile type *__addr = addr; \ |
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\ |
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while (count--) { \ |
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*__addr = __mem_read##bwlq(mem); \ |
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__addr++; \ |
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} \ |
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} |
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|
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#define __BUILD_IOPORT_STRING(bwlq, type) \ |
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\ |
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static inline void outs##bwlq(unsigned long port, const void *addr, \ |
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unsigned int count) \ |
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{ \ |
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const volatile type *__addr = addr; \ |
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\ |
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while (count--) { \ |
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__mem_out##bwlq(*__addr, port); \ |
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__addr++; \ |
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} \ |
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} \ |
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\ |
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static inline void ins##bwlq(unsigned long port, void *addr, \ |
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unsigned int count) \ |
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{ \ |
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volatile type *__addr = addr; \ |
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\ |
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while (count--) { \ |
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*__addr = __mem_in##bwlq(port); \ |
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__addr++; \ |
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} \ |
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} |
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|
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#define BUILDSTRING(bwlq, type) \ |
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\ |
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__BUILD_MEMORY_STRING(bwlq, type) \ |
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__BUILD_IOPORT_STRING(bwlq, type) |
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|
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BUILDSTRING(b, u8) |
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BUILDSTRING(w, u16) |
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BUILDSTRING(l, u32) |
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#ifdef CONFIG_64BIT |
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BUILDSTRING(q, u64) |
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#endif |
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|
|
|
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#ifdef CONFIG_CPU_CAVIUM_OCTEON |
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#define mmiowb() wmb() |
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#else |
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/* Depends on MIPS II instruction set */ |
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#define mmiowb() asm volatile ("sync" ::: "memory") |
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#endif |
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static inline void memset_io(volatile void __iomem *addr, unsigned char val, int count) |
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{ |
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memset((void __force *) addr, val, count); |
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} |
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static inline void memcpy_fromio(void *dst, const volatile void __iomem *src, int count) |
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{ |
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memcpy(dst, (void __force *) src, count); |
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} |
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static inline void memcpy_toio(volatile void __iomem *dst, const void *src, int count) |
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{ |
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memcpy((void __force *) dst, src, count); |
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} |
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/* |
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* The caches on some architectures aren't dma-coherent and have need to |
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* handle this in software. There are three types of operations that |
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* can be applied to dma buffers. |
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* |
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* - dma_cache_wback_inv(start, size) makes caches and coherent by |
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* writing the content of the caches back to memory, if necessary. |
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* The function also invalidates the affected part of the caches as |
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* necessary before DMA transfers from outside to memory. |
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* - dma_cache_wback(start, size) makes caches and coherent by |
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* writing the content of the caches back to memory, if necessary. |
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* The function also invalidates the affected part of the caches as |
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* necessary before DMA transfers from outside to memory. |
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* - dma_cache_inv(start, size) invalidates the affected parts of the |
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* caches. Dirty lines of the caches may be written back or simply |
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* be discarded. This operation is necessary before dma operations |
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* to the memory. |
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* |
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* This API used to be exported; it now is for arch code internal use only. |
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*/ |
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#if defined(CONFIG_DMA_NONCOHERENT) || defined(CONFIG_DMA_MAYBE_COHERENT) |
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extern void (*_dma_cache_wback_inv)(unsigned long start, unsigned long size); |
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extern void (*_dma_cache_wback)(unsigned long start, unsigned long size); |
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extern void (*_dma_cache_inv)(unsigned long start, unsigned long size); |
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#define dma_cache_wback_inv(start, size) _dma_cache_wback_inv(start, size) |
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#define dma_cache_wback(start, size) _dma_cache_wback(start, size) |
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#define dma_cache_inv(start, size) _dma_cache_inv(start, size) |
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#else /* Sane hardware */ |
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#define dma_cache_wback_inv(start,size) \ |
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do { (void) (start); (void) (size); } while (0) |
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#define dma_cache_wback(start,size) \ |
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do { (void) (start); (void) (size); } while (0) |
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#define dma_cache_inv(start,size) \ |
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do { (void) (start); (void) (size); } while (0) |
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#endif /* CONFIG_DMA_NONCOHERENT || CONFIG_DMA_MAYBE_COHERENT */ |
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/* |
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* Read a 32-bit register that requires a 64-bit read cycle on the bus. |
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* Avoid interrupt mucking, just adjust the address for 4-byte access. |
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* Assume the addresses are 8-byte aligned. |
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*/ |
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#ifdef __MIPSEB__ |
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#define __CSR_32_ADJUST 4 |
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#else |
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#define __CSR_32_ADJUST 0 |
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#endif |
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#define csr_out32(v, a) (*(volatile u32 *)((unsigned long)(a) + __CSR_32_ADJUST) = (v)) |
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#define csr_in32(a) (*(volatile u32 *)((unsigned long)(a) + __CSR_32_ADJUST)) |
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/* |
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* Convert a physical pointer to a virtual kernel pointer for /dev/mem |
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* access |
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*/ |
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#define xlate_dev_mem_ptr(p) __va(p) |
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/* |
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* Convert a virtual cached pointer to an uncached pointer |
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*/ |
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#define xlate_dev_kmem_ptr(p) p |
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#endif /* _ASM_IO_H */
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