/* SPDX-License-Identifier: GPL-2.0 */ /* * linux/include/asm-nds/io.h * * Copyright (C) 1996-2000 Russell King * * Copyright (C) 2011 Andes Technology Corporation * Shawn Lin, Andes Technology Corporation * Macpaul Lin, Andes Technology Corporation * * Modifications: * 16-Sep-1996 RMK Inlined the inx/outx functions & optimised for both * constant addresses and variable addresses. * 04-Dec-1997 RMK Moved a lot of this stuff to the new architecture * specific IO header files. * 27-Mar-1999 PJB Second parameter of memcpy_toio is const.. * 04-Apr-1999 PJB Added check_signature. * 12-Dec-1999 RMK More cleanups * 18-Jun-2000 RMK Removed virt_to_* and friends definitions */ #ifndef __ASM_NDS_IO_H #define __ASM_NDS_IO_H /* * CAUTION: * - do not implement for NDS32 Arch yet. * - cmd_pci.c, cmd_scsi.c, Lynxkdi.c, usb.c, usb_storage.c, etc... * iinclude asm/io.h */ #ifdef __KERNEL__ #include #include static inline void sync(void) { } #ifdef CONFIG_ARCH_MAP_SYSMEM static inline void *map_sysmem(phys_addr_t paddr, unsigned long len) { if(paddr */ /* * IO port access primitives * ------------------------- * * The NDS32 doesn't have special IO access instructions just like ARM; * all IO is memory mapped. * Note that these are defined to perform little endian accesses * only. Their primary purpose is to access PCI and ISA peripherals. * * Note that for a big endian machine, this implies that the following * big endian mode connectivity is in place, as described by numerious * ARM documents: * * PCI: D0-D7 D8-D15 D16-D23 D24-D31 * ARM: D24-D31 D16-D23 D8-D15 D0-D7 * * The machine specific io.h include defines __io to translate an "IO" * address to a memory address. * * Note that we prevent GCC re-ordering or caching values in expressions * by introducing sequence points into the in*() definitions. Note that * __raw_* do not guarantee this behaviour. * * The {in,out}[bwl] macros are for emulating x86-style PCI/ISA IO space. */ #ifdef __io #define outb(v, p) __raw_writeb(v, __io(p)) #define outw(v, p) __raw_writew(cpu_to_le16(v), __io(p)) #define outl(v, p) __raw_writel(cpu_to_le32(v), __io(p)) #define inb(p) ({ unsigned int __v = __raw_readb(__io(p)); __v; }) #define inw(p) ({ unsigned int __v = le16_to_cpu(__raw_readw(__io(p))); __v; }) #define inl(p) ({ unsigned int __v = le32_to_cpu(__raw_readl(__io(p))); __v; }) #define outsb(p, d, l) writesb(__io(p), d, l) #define outsw(p, d, l) writesw(__io(p), d, l) #define outsl(p, d, l) writesl(__io(p), d, l) #define insb(p, d, l) readsb(__io(p), d, l) #define insw(p, d, l) readsw(__io(p), d, l) #define insl(p, d, l) readsl(__io(p), d, l) static inline void readsb(unsigned int *addr, void * data, int bytelen) { unsigned char *ptr = (unsigned char *)addr; unsigned char *ptr2 = (unsigned char *)data; while (bytelen) { *ptr2 = *ptr; ptr2++; bytelen--; } } static inline void readsw(unsigned int *addr, void * data, int wordlen) { unsigned short *ptr = (unsigned short *)addr; unsigned short *ptr2 = (unsigned short *)data; while (wordlen) { *ptr2 = *ptr; ptr2++; wordlen--; } } static inline void readsl(unsigned int *addr, void * data, int longlen) { unsigned int *ptr = (unsigned int *)addr; unsigned int *ptr2 = (unsigned int *)data; while (longlen) { *ptr2 = *ptr; ptr2++; longlen--; } } static inline void writesb(unsigned int *addr, const void * data, int bytelen) { unsigned char *ptr = (unsigned char *)addr; unsigned char *ptr2 = (unsigned char *)data; while (bytelen) { *ptr = *ptr2; ptr2++; bytelen--; } } static inline void writesw(unsigned int *addr, const void * data, int wordlen) { unsigned short *ptr = (unsigned short *)addr; unsigned short *ptr2 = (unsigned short *)data; while (wordlen) { *ptr = *ptr2; ptr2++; wordlen--; } } static inline void writesl(unsigned int *addr, const void * data, int longlen) { unsigned int *ptr = (unsigned int *)addr; unsigned int *ptr2 = (unsigned int *)data; while (longlen) { *ptr = *ptr2; ptr2++; longlen--; } } #endif #define outb_p(val, port) outb((val), (port)) #define outw_p(val, port) outw((val), (port)) #define outl_p(val, port) outl((val), (port)) #define inb_p(port) inb((port)) #define inw_p(port) inw((port)) #define inl_p(port) inl((port)) #define outsb_p(port, from, len) outsb(port, from, len) #define outsw_p(port, from, len) outsw(port, from, len) #define outsl_p(port, from, len) outsl(port, from, len) #define insb_p(port, to, len) insb(port, to, len) #define insw_p(port, to, len) insw(port, to, len) #define insl_p(port, to, len) insl(port, to, len) /* * DMA-consistent mapping functions. These allocate/free a region of * uncached, unwrite-buffered mapped memory space for use with DMA * devices. This is the "generic" version. The PCI specific version * is in pci.h */ extern void *consistent_alloc(int gfp, size_t size, dma_addr_t *handle); extern void consistent_free(void *vaddr, size_t size, dma_addr_t handle); extern void consistent_sync(void *vaddr, size_t size, int rw); /* * String version of IO memory access ops: */ extern void _memcpy_fromio(void *, unsigned long, size_t); extern void _memcpy_toio(unsigned long, const void *, size_t); extern void _memset_io(unsigned long, int, size_t); extern void __readwrite_bug(const char *fn); /* * If this architecture has PCI memory IO, then define the read/write * macros. These should only be used with the cookie passed from * ioremap. */ #ifdef __mem_pci #define readb(c) ({ unsigned int __v = \ __raw_readb(__mem_pci(c)); __v; }) #define readw(c) ({ unsigned int __v = \ le16_to_cpu(__raw_readw(__mem_pci(c))); __v; }) #define readl(c) ({ unsigned int __v = \ le32_to_cpu(__raw_readl(__mem_pci(c))); __v; }) #define writeb(v, c) __raw_writeb(v, __mem_pci(c)) #define writew(v, c) __raw_writew(cpu_to_le16(v), __mem_pci(c)) #define writel(v, c) __raw_writel(cpu_to_le32(v), __mem_pci(c)) #define memset_io(c, v, l) _memset_io(__mem_pci(c), (v), (l)) #define memcpy_fromio(a, c, l) _memcpy_fromio((a), __mem_pci(c), (l)) #define memcpy_toio(c, a, l) _memcpy_toio(__mem_pci(c), (a), (l)) #define eth_io_copy_and_sum(s, c, l, b) \ eth_copy_and_sum((s), __mem_pci(c), (l), (b)) static inline int check_signature(unsigned long io_addr, const unsigned char *signature, int length) { int retval = 0; do { if (readb(io_addr) != *signature) goto out; io_addr++; signature++; length--; } while (length); retval = 1; out: return retval; } #endif /* __mem_pci */ /* * If this architecture has ISA IO, then define the isa_read/isa_write * macros. */ #ifdef __mem_isa #define isa_readb(addr) __raw_readb(__mem_isa(addr)) #define isa_readw(addr) __raw_readw(__mem_isa(addr)) #define isa_readl(addr) __raw_readl(__mem_isa(addr)) #define isa_writeb(val, addr) __raw_writeb(val, __mem_isa(addr)) #define isa_writew(val, addr) __raw_writew(val, __mem_isa(addr)) #define isa_writel(val, addr) __raw_writel(val, __mem_isa(addr)) #define isa_memset_io(a, b, c) _memset_io(__mem_isa(a), (b), (c)) #define isa_memcpy_fromio(a, b, c) _memcpy_fromio((a), __mem_isa(b), (c)) #define isa_memcpy_toio(a, b, c) _memcpy_toio(__mem_isa((a)), (b), (c)) #define isa_eth_io_copy_and_sum(a, b, c, d) \ eth_copy_and_sum((a), __mem_isa(b), (c), (d)) static inline int isa_check_signature(unsigned long io_addr, const unsigned char *signature, int length) { int retval = 0; do { if (isa_readb(io_addr) != *signature) goto out; io_addr++; signature++; length--; } while (length); retval = 1; out: return retval; } #else /* __mem_isa */ #define isa_readb(addr) (__readwrite_bug("isa_readb"), 0) #define isa_readw(addr) (__readwrite_bug("isa_readw"), 0) #define isa_readl(addr) (__readwrite_bug("isa_readl"), 0) #define isa_writeb(val, addr) __readwrite_bug("isa_writeb") #define isa_writew(val, addr) __readwrite_bug("isa_writew") #define isa_writel(val, addr) __readwrite_bug("isa_writel") #define isa_memset_io(a, b, c) __readwrite_bug("isa_memset_io") #define isa_memcpy_fromio(a, b, c) __readwrite_bug("isa_memcpy_fromio") #define isa_memcpy_toio(a, b, c) __readwrite_bug("isa_memcpy_toio") #define isa_eth_io_copy_and_sum(a, b, c, d) \ __readwrite_bug("isa_eth_io_copy_and_sum") #define isa_check_signature(io, sig, len) (0) #endif /* __mem_isa */ #include #endif /* __KERNEL__ */ #endif /* __ASM_NDS_IO_H */