Mercurial > flash_v2
view packages/devs/flash/amd/am29xxxxxv2/current/src/am29xxxxx.c @ 1764:96ec7e534d98
V2 flash header files clean-up. Eliminate flash_priv.h, moving the
functionality into flash_dev.h instead.
| author | bartv |
|---|---|
| date | Tue, 22 Feb 2005 21:03:43 +0000 |
| parents | 42c8ea63b78d |
| children | 5783e8dbedf5 |
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//========================================================================== // // am29xxxxx.c // // Flash driver for the AMD family // //========================================================================== //####ECOSGPLCOPYRIGHTBEGIN#### // ------------------------------------------- // This file is part of eCos, the Embedded Configurable Operating System. // Copyright (C) 2004 eCosCentric Ltd // // eCos is free software; you can redistribute it and/or modify it under // the terms of the GNU General Public License as published by the Free // Software Foundation; either version 2 or (at your option) any later version. // // eCos is distributed in the hope that it will be useful, but WITHOUT ANY // WARRANTY; without even the implied warranty of MERCHANTABILITY or // FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License // for more details. // // You should have received a copy of the GNU General Public License along // with eCos; if not, write to the Free Software Foundation, Inc., // 59 Temple Place, Suite 330, Boston, MA 02111-1307 USA. // // As a special exception, if other files instantiate templates or use macros // or inline functions from this file, or you compile this file and link it // with other works to produce a work based on this file, this file does not // by itself cause the resulting work to be covered by the GNU General Public // License. However the source code for this file must still be made available // in accordance with section (3) of the GNU General Public License. // // This exception does not invalidate any other reasons why a work based on // this file might be covered by the GNU General Public License. // ------------------------------------------- //####ECOSGPLCOPYRIGHTEND#### //========================================================================== //#####DESCRIPTIONBEGIN#### // // Author(s): bartv // Contributors: // Date: 2004-11-05 // //####DESCRIPTIONEND#### // //========================================================================== #include <pkgconf/devs_flash_amd_am29xxxxx_v2.h> #include <cyg/infra/cyg_type.h> #include <cyg/infra/cyg_ass.h> #include <cyg/infra/diag.h> #include <cyg/io/flash.h> #include <cyg/io/flash_dev.h> #include <cyg/io/am29xxxxx_dev.h> #include <cyg/hal/hal_arch.h> #include <cyg/hal/hal_cache.h> #include <cyg/hal/hal_io.h> // This driver supports multiple banks of AMD am29xxxxx flash devices // or compatibles. These are NOR-flash devices, requiring explicit // erase operations with an erase value of 0xff. // // The devices may be 8-bit, 16-bit, or 32-bit (64-bit devices are not // yet supported). Most but not all 16-bit devices can also be // accessed as 8-bit, in which case the chip may be hooked up to an // 8-bit bus. A bank of flash may involve just a single chip, or there // may be several chips in parallel. Typical combinations are 88 to // get 16-bit, 8888 for 32-bit, and 1616 for 32-bit. It is assumed // that all chips within a bank are the same device. There may also be // several banks of flash, and different banks may use different // devices. // // This driver instantiates support for the various bus // configurations: 8, 16, 16AS8, 32, 88, 8888, and 1616. On any given // platform only one or two of these combinations will be of interest, // but the remainder will be eliminated via linker garbage collection. // To avoid excessive duplication an auxiliary file contains the // actual implementations. Compiler optimization should eliminate any // unnecessary code. // A flash driver is supposed to provide the following functions: // int (*init)(...) // size_t (*query)(...) // int (*erase)(...) // int (*program)(...) // int (*block_lock)(...) // int (*block_unlock)(...) // // The devices do not need any special initialization. However a given // board may be manufactured with any one of several devices, which // complicates things. The main complication is that there may be // different bootsector layouts. The primary job of the init function // is to check the device id, possibly fill in the bootsector info, // or even to use the CFI support to get the bootsector info from the // device itself. There may be other complications, e.g. minor variations // of a given board design. These can be handled by h/w specific init // functions in the platform HAL. // // The query function need not do anything useful, it is // driver-defined. // // No read function need be supplied because the flash memory is // always directly accessible to the cpu. // // Erase, program, and the locking functions need real // implementations, although locking is not always available. // ---------------------------------------------------------------------------- // The protocol understood by AMD flash chips and compatibles. // The AM29_PARALLEL() macro is used in bus configurations with multiple // devices in parallel, to issue commands to all the devices in a single // write. In theory some of the operations, e.g. READ_DEVID, only need // to access a single chip but then you get into complications for the // SETUP commands. #define AM29_COMMAND_SETUP1 AM29_PARALLEL(0x00AA) #define AM29_COMMAND_SETUP2 AM29_PARALLEL(0x0055) #define AM29_COMMAND_RESET AM29_PARALLEL(0x00F0) #define AM29_COMMAND_AUTOSELECT AM29_PARALLEL(0x0090) #define AM29_COMMAND_ERASE AM29_PARALLEL(0x0080) #define AM29_COMMAND_ERASE_SECTOR AM29_PARALLEL(0x0030) #define AM29_COMMAND_CFI AM29_PARALLEL(0x0098) #define AM29_COMMAND_PROGRAM AM29_PARALLEL(0x00A0) // CFI offsets of interest. This assumes that the standard query table // has not been replaced by the extended query table, although the // CFI standard allows that behaviour. #define AM29_OFFSET_CFI_Q AM29_OFFSET_CFI_DATA(0x0010) #define AM29_OFFSET_CFI_SIZE AM29_OFFSET_CFI_DATA(0x0027) #define AM29_OFFSET_CFI_BLOCK_REGIONS AM29_OFFSET_CFI_DATA(0x002C) #define AM29_OFFSET_CFI_BLOCK_COUNT_LSB(_i_) AM29_OFFSET_CFI_DATA(0x002D + (4 * _i_)) #define AM29_OFFSET_CFI_BLOCK_COUNT_MSB(_i_) AM29_OFFSET_CFI_DATA(0x002E + (4 * _i_)) #define AM29_OFFSET_CFI_BLOCK_SIZE_LSB(_i_) AM29_OFFSET_CFI_DATA(0x002F + (4 * _i_)) #define AM29_OFFSET_CFI_BLOCK_SIZE_MSB(_i_) AM29_OFFSET_CFI_DATA(0x0030 + (4 * _i_)) #define AM29_STATUS_DQ7 AM29_PARALLEL(0x0080) #define AM29_STATUS_DQ6 AM29_PARALLEL(0x0040) #define AM29_STATUS_DQ5 AM29_PARALLEL(0x0020) #define AM29_STATUS_DQ4 AM29_PARALLEL(0x0010) #define AM29_STATUS_DQ3 AM29_PARALLEL(0x0008) #define AM29_STATUS_DQ2 AM29_PARALLEL(0x0004) #define AM29_STATUS_DQ1 AM29_PARALLEL(0x0002) #define AM29_STATUS_DQ0 AM29_PARALLEL(0x0001) // The addresses used for programming the flash may be different from // the ones used to read the flash. For example the former may be in // uncached memory while the latter are in cached memory. The platform // HAL can provide a macro HAL_AM29XXXXX_P2V() to convert an address // relative to the base in the flash dev structure to the address that // should actually be manipulated. # ifdef HAL_AM29XXXXX_P2V # define AM29_P2V(_addr_) (volatile AM29_TYPE*)HAL_AM29XXXXX_P2V(_addr_) # else # define AM29_P2V(_addr_) (volatile AM29_TYPE*)(_addr_) # endif // When programming the flash the source data may not be aligned // correctly (although usually it will be). Hence it is necessary to // construct the 16-bit or 32-bit numbers to be written to the flash // from individual bytes, allowing for endianness. #define AM29_NEXT_DATUM_8(_ptr_) (*_ptr_++) #if CYG_BYTEORDER == CYG_LSBFIRST # define AM29_NEXT_DATUM_16(_ptr_) \ ({ \ cyg_uint16 _result_; \ _result_ = (_ptr_[1] << 8) | _ptr_[0]; \ _ptr_ += 2; \ _result_; }) # define AM29_NEXT_DATUM_32(_ptr_) \ ({ \ cyg_uint16 _result_; \ _result_ = (_ptr_[3] << 24) | (_ptr_[2] << 16) | (_ptr_[1] << 8) | _ptr_[0]; \ _ptr_ += 4; \ _result_; }) #else # define AM29_NEXT_DATUM_16(_ptr_) \ ({ \ cyg_uint16 _result_; \ _result_ = (_ptr_[0] << 8) | _ptr_[1]; \ _ptr_ += 2; \ _result_; }) # define AM29_NEXT_DATUM_32(_ptr_) \ ({ \ cyg_uint16 _result_; \ _result_ = (_ptr_[0] << 24) | (_ptr_[1] << 16) | (_ptr_[2] << 8) | _ptr_[3]; \ _ptr_ += 4; \ _result_; }) #endif // ---------------------------------------------------------------------------- // Generic code. // Get info about the current block, i.e. base and size. static void am29_get_block_info(struct cyg_flash_dev* dev, const cyg_flashaddr_t addr, cyg_flashaddr_t* block_start, size_t* block_size) { cyg_uint32 i; size_t offset = addr - dev->start; cyg_flashaddr_t result; result = dev->start; for (i = 0; i < dev->num_block_infos; i++) { if (offset < (dev->block_info[i].blocks * dev->block_info[i].block_size)) { offset -= (offset % dev->block_info[i].block_size); *block_start = result + offset; *block_size = dev->block_info[i].block_size; return; } result += (dev->block_info[i].blocks * dev->block_info[i].block_size); offset -= (dev->block_info[i].blocks * dev->block_info[i].block_size); } CYG_FAIL("Address out of range of selected flash device"); } // ---------------------------------------------------------------------------- // Instantiate all of the h/w functions appropriate for the various // configurations. // The suffix is used to construct the function names. // Types for the width of the bus, controlling the granularity of access. // devcount specifies the number of devices in parallel, and is used for looping // The NEXT_DATUM() macro allows for misaligned source data. // The PARALLEL macro, if defined, is used for sending commands and reading // status bits from all devices in the bank in one operation. // A single 8-bit device on an 8-bit bus. #define AM29_SUFFIX 8 #define AM29_TYPE cyg_uint8 #define AM29_DEVCOUNT 1 #define AM29_NEXT_DATUM(_ptr_) AM29_NEXT_DATUM_8(_ptr_) #include "am29xxxxx_aux.c" #undef AM29_SUFFIX #undef AM29_TYPE #undef AM29_DEVCOUNT #undef AM29_NEXT_DATUM // A single 16-bit device. #define AM29_SUFFIX 16 #define AM29_TYPE cyg_uint16 #define AM29_DEVCOUNT 1 #define AM29_NEXT_DATUM(_ptr_) AM29_NEXT_DATUM_16(_ptr_) #include "am29xxxxx_aux.c" #undef AM29_SUFFIX #undef AM29_TYPE #undef AM29_DEVCOUNT #undef AM29_NEXT_DATUM // A single 32-bit device. #define AM29_SUFFIX 32 #define AM29_TYPE cyg_uint32 #define AM29_DEVCOUNT 1 #define AM29_NEXT_DATUM(_ptr_) AM29_NEXT_DATUM_32(_ptr_) #include "am29xxxxx_aux.c" #undef AM29_SUFFIX #undef AM29_TYPE #undef AM29_DEVCOUNT #undef AM29_NEXT_DATUM // Two 8-bit devices, giving a 16-bit bus. #define AM29_SUFFIX 88 #define AM29_TYPE cyg_uint16 #define AM29_DEVCOUNT 2 #define AM29_NEXT_DATUM(_ptr_) AM29_NEXT_DATUM_16(_ptr_) #define AM29_PARALLEL(_cmd_) ((_cmd_ << 8) | _cmd_) #include "am29xxxxx_aux.c" #undef AM29_SUFFIX #undef AM29_TYPE #undef AM29_DEVCOUNT #undef AM29_NEXT_DATUM // Four 8-bit devices, giving a 32-bit bus. #define AM29_SUFFIX 8888 #define AM29_TYPE cyg_uint32 #define AM29_DEVCOUNT 4 #define AM29_NEXT_DATUM(_ptr_) AM29_NEXT_DATUM_32(_ptr_) #define AM29_PARALLEL(_cmd_) ((_cmd_ << 24) | (_cmd_ << 16) | (_cmd_ << 8) | _cmd_) #include "am29xxxxx_aux.c" #undef AM29_SUFFIX #undef AM29_TYPE #undef AM29_DEVCOUNT #undef AM29_NEXT_DATUM // Two 16-bit devices, giving a 32-bit bus. #define AM29_SUFFIX 1616 #define AM29_TYPE cyg_uint32 #define AM29_DEVCOUNT 2 #define AM29_NEXT_DATUM(_ptr_) AM29_NEXT_DATUM_32(_ptr_) #define AM29_PARALLEL(_cmd_) ((_cmd_ << 16) | _cmd_) #include "am29xxxxx_aux.c" #undef AM29_SUFFIX #undef AM29_TYPE #undef AM29_DEVCOUNT #undef AM29_NEXT_DATUM // 16AS8. A 16-bit device hooked up so that only byte accesses are // allowed. This requires unusual offsets #define AM29_SUFFIX 16as8 #define AM29_TYPE cyg_uint8 #define AM29_DEVCOUNT 1 #define AM29_NEXT_DATUM(_ptr_) AM29_NEXT_DATUM_8(_ptr_) #define AM29_OFFSET_COMMAND 0x0AAA #define AM29_OFFSET_COMMAND2 0x0555 #define AM29_OFFSET_DEVID 0x0002 #define AM29_OFFSET_DEVID2 0x001C #define AM29_OFFSET_DEVID3 0x001E #define AM29_OFFSET_CFI 0x00AA #define AM29_OFFSET_CFI_DATA(_idx_) (2 * _idx_) #include "am29xxxxx_aux.c"
