| Auke Kok | 9d5c824 | 2008-01-24 02:22:38 -0800 | [diff] [blame] | 1 | /******************************************************************************* | 
|  | 2 |  | 
|  | 3 | Intel(R) Gigabit Ethernet Linux driver | 
| Alexander Duyck | 86d5d38 | 2009-02-06 23:23:12 +0000 | [diff] [blame] | 4 | Copyright(c) 2007-2009 Intel Corporation. | 
| Auke Kok | 9d5c824 | 2008-01-24 02:22:38 -0800 | [diff] [blame] | 5 |  | 
|  | 6 | This program is free software; you can redistribute it and/or modify it | 
|  | 7 | under the terms and conditions of the GNU General Public License, | 
|  | 8 | version 2, as published by the Free Software Foundation. | 
|  | 9 |  | 
|  | 10 | This program is distributed in the hope it will be useful, but WITHOUT | 
|  | 11 | ANY WARRANTY; without even the implied warranty of MERCHANTABILITY or | 
|  | 12 | FITNESS FOR A PARTICULAR PURPOSE.  See the GNU General Public License for | 
|  | 13 | more details. | 
|  | 14 |  | 
|  | 15 | You should have received a copy of the GNU General Public License along with | 
|  | 16 | this program; if not, write to the Free Software Foundation, Inc., | 
|  | 17 | 51 Franklin St - Fifth Floor, Boston, MA 02110-1301 USA. | 
|  | 18 |  | 
|  | 19 | The full GNU General Public License is included in this distribution in | 
|  | 20 | the file called "COPYING". | 
|  | 21 |  | 
|  | 22 | Contact Information: | 
|  | 23 | e1000-devel Mailing List <e1000-devel@lists.sourceforge.net> | 
|  | 24 | Intel Corporation, 5200 N.E. Elam Young Parkway, Hillsboro, OR 97124-6497 | 
|  | 25 |  | 
|  | 26 | *******************************************************************************/ | 
|  | 27 |  | 
|  | 28 | #include <linux/if_ether.h> | 
|  | 29 | #include <linux/delay.h> | 
|  | 30 |  | 
|  | 31 | #include "e1000_mac.h" | 
|  | 32 | #include "e1000_nvm.h" | 
|  | 33 |  | 
|  | 34 | /** | 
| Jeff Kirsher | 733596b | 2008-06-27 10:59:59 -0700 | [diff] [blame] | 35 | *  igb_raise_eec_clk - Raise EEPROM clock | 
| Auke Kok | 9d5c824 | 2008-01-24 02:22:38 -0800 | [diff] [blame] | 36 | *  @hw: pointer to the HW structure | 
|  | 37 | *  @eecd: pointer to the EEPROM | 
|  | 38 | * | 
|  | 39 | *  Enable/Raise the EEPROM clock bit. | 
|  | 40 | **/ | 
|  | 41 | static void igb_raise_eec_clk(struct e1000_hw *hw, u32 *eecd) | 
|  | 42 | { | 
|  | 43 | *eecd = *eecd | E1000_EECD_SK; | 
|  | 44 | wr32(E1000_EECD, *eecd); | 
|  | 45 | wrfl(); | 
|  | 46 | udelay(hw->nvm.delay_usec); | 
|  | 47 | } | 
|  | 48 |  | 
|  | 49 | /** | 
| Jeff Kirsher | 733596b | 2008-06-27 10:59:59 -0700 | [diff] [blame] | 50 | *  igb_lower_eec_clk - Lower EEPROM clock | 
| Auke Kok | 9d5c824 | 2008-01-24 02:22:38 -0800 | [diff] [blame] | 51 | *  @hw: pointer to the HW structure | 
|  | 52 | *  @eecd: pointer to the EEPROM | 
|  | 53 | * | 
|  | 54 | *  Clear/Lower the EEPROM clock bit. | 
|  | 55 | **/ | 
|  | 56 | static void igb_lower_eec_clk(struct e1000_hw *hw, u32 *eecd) | 
|  | 57 | { | 
|  | 58 | *eecd = *eecd & ~E1000_EECD_SK; | 
|  | 59 | wr32(E1000_EECD, *eecd); | 
|  | 60 | wrfl(); | 
|  | 61 | udelay(hw->nvm.delay_usec); | 
|  | 62 | } | 
|  | 63 |  | 
|  | 64 | /** | 
| Jeff Kirsher | 733596b | 2008-06-27 10:59:59 -0700 | [diff] [blame] | 65 | *  igb_shift_out_eec_bits - Shift data bits our to the EEPROM | 
| Auke Kok | 9d5c824 | 2008-01-24 02:22:38 -0800 | [diff] [blame] | 66 | *  @hw: pointer to the HW structure | 
|  | 67 | *  @data: data to send to the EEPROM | 
|  | 68 | *  @count: number of bits to shift out | 
|  | 69 | * | 
|  | 70 | *  We need to shift 'count' bits out to the EEPROM.  So, the value in the | 
|  | 71 | *  "data" parameter will be shifted out to the EEPROM one bit at a time. | 
|  | 72 | *  In order to do this, "data" must be broken down into bits. | 
|  | 73 | **/ | 
|  | 74 | static void igb_shift_out_eec_bits(struct e1000_hw *hw, u16 data, u16 count) | 
|  | 75 | { | 
|  | 76 | struct e1000_nvm_info *nvm = &hw->nvm; | 
|  | 77 | u32 eecd = rd32(E1000_EECD); | 
|  | 78 | u32 mask; | 
|  | 79 |  | 
|  | 80 | mask = 0x01 << (count - 1); | 
| Alexander Duyck | 285b416 | 2009-10-05 06:34:44 +0000 | [diff] [blame] | 81 | if (nvm->type == e1000_nvm_eeprom_spi) | 
| Auke Kok | 9d5c824 | 2008-01-24 02:22:38 -0800 | [diff] [blame] | 82 | eecd |= E1000_EECD_DO; | 
|  | 83 |  | 
|  | 84 | do { | 
|  | 85 | eecd &= ~E1000_EECD_DI; | 
|  | 86 |  | 
|  | 87 | if (data & mask) | 
|  | 88 | eecd |= E1000_EECD_DI; | 
|  | 89 |  | 
|  | 90 | wr32(E1000_EECD, eecd); | 
|  | 91 | wrfl(); | 
|  | 92 |  | 
|  | 93 | udelay(nvm->delay_usec); | 
|  | 94 |  | 
|  | 95 | igb_raise_eec_clk(hw, &eecd); | 
|  | 96 | igb_lower_eec_clk(hw, &eecd); | 
|  | 97 |  | 
|  | 98 | mask >>= 1; | 
|  | 99 | } while (mask); | 
|  | 100 |  | 
|  | 101 | eecd &= ~E1000_EECD_DI; | 
|  | 102 | wr32(E1000_EECD, eecd); | 
|  | 103 | } | 
|  | 104 |  | 
|  | 105 | /** | 
| Jeff Kirsher | 733596b | 2008-06-27 10:59:59 -0700 | [diff] [blame] | 106 | *  igb_shift_in_eec_bits - Shift data bits in from the EEPROM | 
| Auke Kok | 9d5c824 | 2008-01-24 02:22:38 -0800 | [diff] [blame] | 107 | *  @hw: pointer to the HW structure | 
|  | 108 | *  @count: number of bits to shift in | 
|  | 109 | * | 
|  | 110 | *  In order to read a register from the EEPROM, we need to shift 'count' bits | 
|  | 111 | *  in from the EEPROM.  Bits are "shifted in" by raising the clock input to | 
|  | 112 | *  the EEPROM (setting the SK bit), and then reading the value of the data out | 
|  | 113 | *  "DO" bit.  During this "shifting in" process the data in "DI" bit should | 
|  | 114 | *  always be clear. | 
|  | 115 | **/ | 
|  | 116 | static u16 igb_shift_in_eec_bits(struct e1000_hw *hw, u16 count) | 
|  | 117 | { | 
|  | 118 | u32 eecd; | 
|  | 119 | u32 i; | 
|  | 120 | u16 data; | 
|  | 121 |  | 
|  | 122 | eecd = rd32(E1000_EECD); | 
|  | 123 |  | 
|  | 124 | eecd &= ~(E1000_EECD_DO | E1000_EECD_DI); | 
|  | 125 | data = 0; | 
|  | 126 |  | 
|  | 127 | for (i = 0; i < count; i++) { | 
|  | 128 | data <<= 1; | 
|  | 129 | igb_raise_eec_clk(hw, &eecd); | 
|  | 130 |  | 
|  | 131 | eecd = rd32(E1000_EECD); | 
|  | 132 |  | 
|  | 133 | eecd &= ~E1000_EECD_DI; | 
|  | 134 | if (eecd & E1000_EECD_DO) | 
|  | 135 | data |= 1; | 
|  | 136 |  | 
|  | 137 | igb_lower_eec_clk(hw, &eecd); | 
|  | 138 | } | 
|  | 139 |  | 
|  | 140 | return data; | 
|  | 141 | } | 
|  | 142 |  | 
|  | 143 | /** | 
| Jeff Kirsher | 733596b | 2008-06-27 10:59:59 -0700 | [diff] [blame] | 144 | *  igb_poll_eerd_eewr_done - Poll for EEPROM read/write completion | 
| Auke Kok | 9d5c824 | 2008-01-24 02:22:38 -0800 | [diff] [blame] | 145 | *  @hw: pointer to the HW structure | 
|  | 146 | *  @ee_reg: EEPROM flag for polling | 
|  | 147 | * | 
|  | 148 | *  Polls the EEPROM status bit for either read or write completion based | 
|  | 149 | *  upon the value of 'ee_reg'. | 
|  | 150 | **/ | 
|  | 151 | static s32 igb_poll_eerd_eewr_done(struct e1000_hw *hw, int ee_reg) | 
|  | 152 | { | 
|  | 153 | u32 attempts = 100000; | 
|  | 154 | u32 i, reg = 0; | 
|  | 155 | s32 ret_val = -E1000_ERR_NVM; | 
|  | 156 |  | 
|  | 157 | for (i = 0; i < attempts; i++) { | 
|  | 158 | if (ee_reg == E1000_NVM_POLL_READ) | 
|  | 159 | reg = rd32(E1000_EERD); | 
|  | 160 | else | 
|  | 161 | reg = rd32(E1000_EEWR); | 
|  | 162 |  | 
|  | 163 | if (reg & E1000_NVM_RW_REG_DONE) { | 
|  | 164 | ret_val = 0; | 
|  | 165 | break; | 
|  | 166 | } | 
|  | 167 |  | 
|  | 168 | udelay(5); | 
|  | 169 | } | 
|  | 170 |  | 
|  | 171 | return ret_val; | 
|  | 172 | } | 
|  | 173 |  | 
|  | 174 | /** | 
| Jeff Kirsher | 733596b | 2008-06-27 10:59:59 -0700 | [diff] [blame] | 175 | *  igb_acquire_nvm - Generic request for access to EEPROM | 
| Auke Kok | 9d5c824 | 2008-01-24 02:22:38 -0800 | [diff] [blame] | 176 | *  @hw: pointer to the HW structure | 
|  | 177 | * | 
|  | 178 | *  Set the EEPROM access request bit and wait for EEPROM access grant bit. | 
|  | 179 | *  Return successful if access grant bit set, else clear the request for | 
|  | 180 | *  EEPROM access and return -E1000_ERR_NVM (-1). | 
|  | 181 | **/ | 
|  | 182 | s32 igb_acquire_nvm(struct e1000_hw *hw) | 
|  | 183 | { | 
|  | 184 | u32 eecd = rd32(E1000_EECD); | 
|  | 185 | s32 timeout = E1000_NVM_GRANT_ATTEMPTS; | 
|  | 186 | s32 ret_val = 0; | 
|  | 187 |  | 
|  | 188 |  | 
|  | 189 | wr32(E1000_EECD, eecd | E1000_EECD_REQ); | 
|  | 190 | eecd = rd32(E1000_EECD); | 
|  | 191 |  | 
|  | 192 | while (timeout) { | 
|  | 193 | if (eecd & E1000_EECD_GNT) | 
|  | 194 | break; | 
|  | 195 | udelay(5); | 
|  | 196 | eecd = rd32(E1000_EECD); | 
|  | 197 | timeout--; | 
|  | 198 | } | 
|  | 199 |  | 
|  | 200 | if (!timeout) { | 
|  | 201 | eecd &= ~E1000_EECD_REQ; | 
|  | 202 | wr32(E1000_EECD, eecd); | 
| Auke Kok | 652fff3 | 2008-06-27 11:00:18 -0700 | [diff] [blame] | 203 | hw_dbg("Could not acquire NVM grant\n"); | 
| Auke Kok | 9d5c824 | 2008-01-24 02:22:38 -0800 | [diff] [blame] | 204 | ret_val = -E1000_ERR_NVM; | 
|  | 205 | } | 
|  | 206 |  | 
|  | 207 | return ret_val; | 
|  | 208 | } | 
|  | 209 |  | 
|  | 210 | /** | 
| Jeff Kirsher | 733596b | 2008-06-27 10:59:59 -0700 | [diff] [blame] | 211 | *  igb_standby_nvm - Return EEPROM to standby state | 
| Auke Kok | 9d5c824 | 2008-01-24 02:22:38 -0800 | [diff] [blame] | 212 | *  @hw: pointer to the HW structure | 
|  | 213 | * | 
|  | 214 | *  Return the EEPROM to a standby state. | 
|  | 215 | **/ | 
|  | 216 | static void igb_standby_nvm(struct e1000_hw *hw) | 
|  | 217 | { | 
|  | 218 | struct e1000_nvm_info *nvm = &hw->nvm; | 
|  | 219 | u32 eecd = rd32(E1000_EECD); | 
|  | 220 |  | 
| Alexander Duyck | 285b416 | 2009-10-05 06:34:44 +0000 | [diff] [blame] | 221 | if (nvm->type == e1000_nvm_eeprom_spi) { | 
| Auke Kok | 9d5c824 | 2008-01-24 02:22:38 -0800 | [diff] [blame] | 222 | /* Toggle CS to flush commands */ | 
|  | 223 | eecd |= E1000_EECD_CS; | 
|  | 224 | wr32(E1000_EECD, eecd); | 
|  | 225 | wrfl(); | 
|  | 226 | udelay(nvm->delay_usec); | 
|  | 227 | eecd &= ~E1000_EECD_CS; | 
|  | 228 | wr32(E1000_EECD, eecd); | 
|  | 229 | wrfl(); | 
|  | 230 | udelay(nvm->delay_usec); | 
|  | 231 | } | 
|  | 232 | } | 
|  | 233 |  | 
|  | 234 | /** | 
|  | 235 | *  e1000_stop_nvm - Terminate EEPROM command | 
|  | 236 | *  @hw: pointer to the HW structure | 
|  | 237 | * | 
|  | 238 | *  Terminates the current command by inverting the EEPROM's chip select pin. | 
|  | 239 | **/ | 
|  | 240 | static void e1000_stop_nvm(struct e1000_hw *hw) | 
|  | 241 | { | 
|  | 242 | u32 eecd; | 
|  | 243 |  | 
|  | 244 | eecd = rd32(E1000_EECD); | 
|  | 245 | if (hw->nvm.type == e1000_nvm_eeprom_spi) { | 
|  | 246 | /* Pull CS high */ | 
|  | 247 | eecd |= E1000_EECD_CS; | 
|  | 248 | igb_lower_eec_clk(hw, &eecd); | 
| Auke Kok | 9d5c824 | 2008-01-24 02:22:38 -0800 | [diff] [blame] | 249 | } | 
|  | 250 | } | 
|  | 251 |  | 
|  | 252 | /** | 
| Jeff Kirsher | 733596b | 2008-06-27 10:59:59 -0700 | [diff] [blame] | 253 | *  igb_release_nvm - Release exclusive access to EEPROM | 
| Auke Kok | 9d5c824 | 2008-01-24 02:22:38 -0800 | [diff] [blame] | 254 | *  @hw: pointer to the HW structure | 
|  | 255 | * | 
|  | 256 | *  Stop any current commands to the EEPROM and clear the EEPROM request bit. | 
|  | 257 | **/ | 
|  | 258 | void igb_release_nvm(struct e1000_hw *hw) | 
|  | 259 | { | 
|  | 260 | u32 eecd; | 
|  | 261 |  | 
|  | 262 | e1000_stop_nvm(hw); | 
|  | 263 |  | 
|  | 264 | eecd = rd32(E1000_EECD); | 
|  | 265 | eecd &= ~E1000_EECD_REQ; | 
|  | 266 | wr32(E1000_EECD, eecd); | 
|  | 267 | } | 
|  | 268 |  | 
|  | 269 | /** | 
| Jeff Kirsher | 733596b | 2008-06-27 10:59:59 -0700 | [diff] [blame] | 270 | *  igb_ready_nvm_eeprom - Prepares EEPROM for read/write | 
| Auke Kok | 9d5c824 | 2008-01-24 02:22:38 -0800 | [diff] [blame] | 271 | *  @hw: pointer to the HW structure | 
|  | 272 | * | 
|  | 273 | *  Setups the EEPROM for reading and writing. | 
|  | 274 | **/ | 
|  | 275 | static s32 igb_ready_nvm_eeprom(struct e1000_hw *hw) | 
|  | 276 | { | 
|  | 277 | struct e1000_nvm_info *nvm = &hw->nvm; | 
|  | 278 | u32 eecd = rd32(E1000_EECD); | 
|  | 279 | s32 ret_val = 0; | 
|  | 280 | u16 timeout = 0; | 
|  | 281 | u8 spi_stat_reg; | 
|  | 282 |  | 
|  | 283 |  | 
| Alexander Duyck | 285b416 | 2009-10-05 06:34:44 +0000 | [diff] [blame] | 284 | if (nvm->type == e1000_nvm_eeprom_spi) { | 
| Auke Kok | 9d5c824 | 2008-01-24 02:22:38 -0800 | [diff] [blame] | 285 | /* Clear SK and CS */ | 
|  | 286 | eecd &= ~(E1000_EECD_CS | E1000_EECD_SK); | 
|  | 287 | wr32(E1000_EECD, eecd); | 
|  | 288 | udelay(1); | 
|  | 289 | timeout = NVM_MAX_RETRY_SPI; | 
|  | 290 |  | 
|  | 291 | /* | 
|  | 292 | * Read "Status Register" repeatedly until the LSB is cleared. | 
|  | 293 | * The EEPROM will signal that the command has been completed | 
|  | 294 | * by clearing bit 0 of the internal status register.  If it's | 
|  | 295 | * not cleared within 'timeout', then error out. | 
|  | 296 | */ | 
|  | 297 | while (timeout) { | 
|  | 298 | igb_shift_out_eec_bits(hw, NVM_RDSR_OPCODE_SPI, | 
|  | 299 | hw->nvm.opcode_bits); | 
|  | 300 | spi_stat_reg = (u8)igb_shift_in_eec_bits(hw, 8); | 
|  | 301 | if (!(spi_stat_reg & NVM_STATUS_RDY_SPI)) | 
|  | 302 | break; | 
|  | 303 |  | 
|  | 304 | udelay(5); | 
|  | 305 | igb_standby_nvm(hw); | 
|  | 306 | timeout--; | 
|  | 307 | } | 
|  | 308 |  | 
|  | 309 | if (!timeout) { | 
| Auke Kok | 652fff3 | 2008-06-27 11:00:18 -0700 | [diff] [blame] | 310 | hw_dbg("SPI NVM Status error\n"); | 
| Auke Kok | 9d5c824 | 2008-01-24 02:22:38 -0800 | [diff] [blame] | 311 | ret_val = -E1000_ERR_NVM; | 
|  | 312 | goto out; | 
|  | 313 | } | 
|  | 314 | } | 
|  | 315 |  | 
|  | 316 | out: | 
|  | 317 | return ret_val; | 
|  | 318 | } | 
|  | 319 |  | 
|  | 320 | /** | 
| Jeff Kirsher | 733596b | 2008-06-27 10:59:59 -0700 | [diff] [blame] | 321 | *  igb_read_nvm_eerd - Reads EEPROM using EERD register | 
| Auke Kok | 9d5c824 | 2008-01-24 02:22:38 -0800 | [diff] [blame] | 322 | *  @hw: pointer to the HW structure | 
|  | 323 | *  @offset: offset of word in the EEPROM to read | 
|  | 324 | *  @words: number of words to read | 
|  | 325 | *  @data: word read from the EEPROM | 
|  | 326 | * | 
|  | 327 | *  Reads a 16 bit word from the EEPROM using the EERD register. | 
|  | 328 | **/ | 
|  | 329 | s32 igb_read_nvm_eerd(struct e1000_hw *hw, u16 offset, u16 words, u16 *data) | 
|  | 330 | { | 
|  | 331 | struct e1000_nvm_info *nvm = &hw->nvm; | 
|  | 332 | u32 i, eerd = 0; | 
|  | 333 | s32 ret_val = 0; | 
|  | 334 |  | 
|  | 335 | /* | 
|  | 336 | * A check for invalid values:  offset too large, too many words, | 
|  | 337 | * and not enough words. | 
|  | 338 | */ | 
|  | 339 | if ((offset >= nvm->word_size) || (words > (nvm->word_size - offset)) || | 
|  | 340 | (words == 0)) { | 
| Auke Kok | 652fff3 | 2008-06-27 11:00:18 -0700 | [diff] [blame] | 341 | hw_dbg("nvm parameter(s) out of bounds\n"); | 
| Auke Kok | 9d5c824 | 2008-01-24 02:22:38 -0800 | [diff] [blame] | 342 | ret_val = -E1000_ERR_NVM; | 
|  | 343 | goto out; | 
|  | 344 | } | 
|  | 345 |  | 
|  | 346 | for (i = 0; i < words; i++) { | 
|  | 347 | eerd = ((offset+i) << E1000_NVM_RW_ADDR_SHIFT) + | 
|  | 348 | E1000_NVM_RW_REG_START; | 
|  | 349 |  | 
|  | 350 | wr32(E1000_EERD, eerd); | 
|  | 351 | ret_val = igb_poll_eerd_eewr_done(hw, E1000_NVM_POLL_READ); | 
|  | 352 | if (ret_val) | 
|  | 353 | break; | 
|  | 354 |  | 
|  | 355 | data[i] = (rd32(E1000_EERD) >> | 
|  | 356 | E1000_NVM_RW_REG_DATA); | 
|  | 357 | } | 
|  | 358 |  | 
|  | 359 | out: | 
|  | 360 | return ret_val; | 
|  | 361 | } | 
|  | 362 |  | 
|  | 363 | /** | 
| Jeff Kirsher | 733596b | 2008-06-27 10:59:59 -0700 | [diff] [blame] | 364 | *  igb_write_nvm_spi - Write to EEPROM using SPI | 
| Auke Kok | 9d5c824 | 2008-01-24 02:22:38 -0800 | [diff] [blame] | 365 | *  @hw: pointer to the HW structure | 
|  | 366 | *  @offset: offset within the EEPROM to be written to | 
|  | 367 | *  @words: number of words to write | 
|  | 368 | *  @data: 16 bit word(s) to be written to the EEPROM | 
|  | 369 | * | 
|  | 370 | *  Writes data to EEPROM at offset using SPI interface. | 
|  | 371 | * | 
|  | 372 | *  If e1000_update_nvm_checksum is not called after this function , the | 
|  | 373 | *  EEPROM will most likley contain an invalid checksum. | 
|  | 374 | **/ | 
|  | 375 | s32 igb_write_nvm_spi(struct e1000_hw *hw, u16 offset, u16 words, u16 *data) | 
|  | 376 | { | 
|  | 377 | struct e1000_nvm_info *nvm = &hw->nvm; | 
|  | 378 | s32 ret_val; | 
|  | 379 | u16 widx = 0; | 
|  | 380 |  | 
|  | 381 | /* | 
|  | 382 | * A check for invalid values:  offset too large, too many words, | 
|  | 383 | * and not enough words. | 
|  | 384 | */ | 
|  | 385 | if ((offset >= nvm->word_size) || (words > (nvm->word_size - offset)) || | 
|  | 386 | (words == 0)) { | 
| Auke Kok | 652fff3 | 2008-06-27 11:00:18 -0700 | [diff] [blame] | 387 | hw_dbg("nvm parameter(s) out of bounds\n"); | 
| Auke Kok | 9d5c824 | 2008-01-24 02:22:38 -0800 | [diff] [blame] | 388 | ret_val = -E1000_ERR_NVM; | 
|  | 389 | goto out; | 
|  | 390 | } | 
|  | 391 |  | 
| Alexander Duyck | 312c75a | 2009-02-06 23:17:47 +0000 | [diff] [blame] | 392 | ret_val = hw->nvm.ops.acquire(hw); | 
| Auke Kok | 9d5c824 | 2008-01-24 02:22:38 -0800 | [diff] [blame] | 393 | if (ret_val) | 
|  | 394 | goto out; | 
|  | 395 |  | 
|  | 396 | msleep(10); | 
|  | 397 |  | 
|  | 398 | while (widx < words) { | 
|  | 399 | u8 write_opcode = NVM_WRITE_OPCODE_SPI; | 
|  | 400 |  | 
|  | 401 | ret_val = igb_ready_nvm_eeprom(hw); | 
|  | 402 | if (ret_val) | 
|  | 403 | goto release; | 
|  | 404 |  | 
|  | 405 | igb_standby_nvm(hw); | 
|  | 406 |  | 
|  | 407 | /* Send the WRITE ENABLE command (8 bit opcode) */ | 
|  | 408 | igb_shift_out_eec_bits(hw, NVM_WREN_OPCODE_SPI, | 
|  | 409 | nvm->opcode_bits); | 
|  | 410 |  | 
|  | 411 | igb_standby_nvm(hw); | 
|  | 412 |  | 
|  | 413 | /* | 
|  | 414 | * Some SPI eeproms use the 8th address bit embedded in the | 
|  | 415 | * opcode | 
|  | 416 | */ | 
|  | 417 | if ((nvm->address_bits == 8) && (offset >= 128)) | 
|  | 418 | write_opcode |= NVM_A8_OPCODE_SPI; | 
|  | 419 |  | 
|  | 420 | /* Send the Write command (8-bit opcode + addr) */ | 
|  | 421 | igb_shift_out_eec_bits(hw, write_opcode, nvm->opcode_bits); | 
|  | 422 | igb_shift_out_eec_bits(hw, (u16)((offset + widx) * 2), | 
|  | 423 | nvm->address_bits); | 
|  | 424 |  | 
|  | 425 | /* Loop to allow for up to whole page write of eeprom */ | 
|  | 426 | while (widx < words) { | 
|  | 427 | u16 word_out = data[widx]; | 
|  | 428 | word_out = (word_out >> 8) | (word_out << 8); | 
|  | 429 | igb_shift_out_eec_bits(hw, word_out, 16); | 
|  | 430 | widx++; | 
|  | 431 |  | 
|  | 432 | if ((((offset + widx) * 2) % nvm->page_size) == 0) { | 
|  | 433 | igb_standby_nvm(hw); | 
|  | 434 | break; | 
|  | 435 | } | 
|  | 436 | } | 
|  | 437 | } | 
|  | 438 |  | 
|  | 439 | msleep(10); | 
|  | 440 | release: | 
| Alexander Duyck | 312c75a | 2009-02-06 23:17:47 +0000 | [diff] [blame] | 441 | hw->nvm.ops.release(hw); | 
| Auke Kok | 9d5c824 | 2008-01-24 02:22:38 -0800 | [diff] [blame] | 442 |  | 
|  | 443 | out: | 
|  | 444 | return ret_val; | 
|  | 445 | } | 
|  | 446 |  | 
|  | 447 | /** | 
| Carolyn Wyborny | 9835fd7 | 2010-11-22 17:17:21 +0000 | [diff] [blame] | 448 | *  igb_read_part_string - Read device part number | 
| Auke Kok | 9d5c824 | 2008-01-24 02:22:38 -0800 | [diff] [blame] | 449 | *  @hw: pointer to the HW structure | 
|  | 450 | *  @part_num: pointer to device part number | 
| Carolyn Wyborny | 9835fd7 | 2010-11-22 17:17:21 +0000 | [diff] [blame] | 451 | *  @part_num_size: size of part number buffer | 
| Auke Kok | 9d5c824 | 2008-01-24 02:22:38 -0800 | [diff] [blame] | 452 | * | 
|  | 453 | *  Reads the product board assembly (PBA) number from the EEPROM and stores | 
|  | 454 | *  the value in part_num. | 
|  | 455 | **/ | 
| Carolyn Wyborny | 9835fd7 | 2010-11-22 17:17:21 +0000 | [diff] [blame] | 456 | s32 igb_read_part_string(struct e1000_hw *hw, u8 *part_num, u32 part_num_size) | 
| Auke Kok | 9d5c824 | 2008-01-24 02:22:38 -0800 | [diff] [blame] | 457 | { | 
| Carolyn Wyborny | 9835fd7 | 2010-11-22 17:17:21 +0000 | [diff] [blame] | 458 | s32 ret_val; | 
| Auke Kok | 9d5c824 | 2008-01-24 02:22:38 -0800 | [diff] [blame] | 459 | u16 nvm_data; | 
| Carolyn Wyborny | 9835fd7 | 2010-11-22 17:17:21 +0000 | [diff] [blame] | 460 | u16 pointer; | 
|  | 461 | u16 offset; | 
|  | 462 | u16 length; | 
|  | 463 |  | 
|  | 464 | if (part_num == NULL) { | 
|  | 465 | hw_dbg("PBA string buffer was null\n"); | 
|  | 466 | ret_val = E1000_ERR_INVALID_ARGUMENT; | 
|  | 467 | goto out; | 
|  | 468 | } | 
| Auke Kok | 9d5c824 | 2008-01-24 02:22:38 -0800 | [diff] [blame] | 469 |  | 
| Alexander Duyck | 312c75a | 2009-02-06 23:17:47 +0000 | [diff] [blame] | 470 | ret_val = hw->nvm.ops.read(hw, NVM_PBA_OFFSET_0, 1, &nvm_data); | 
| Auke Kok | 9d5c824 | 2008-01-24 02:22:38 -0800 | [diff] [blame] | 471 | if (ret_val) { | 
| Auke Kok | 652fff3 | 2008-06-27 11:00:18 -0700 | [diff] [blame] | 472 | hw_dbg("NVM Read Error\n"); | 
| Auke Kok | 9d5c824 | 2008-01-24 02:22:38 -0800 | [diff] [blame] | 473 | goto out; | 
|  | 474 | } | 
| Auke Kok | 9d5c824 | 2008-01-24 02:22:38 -0800 | [diff] [blame] | 475 |  | 
| Carolyn Wyborny | 9835fd7 | 2010-11-22 17:17:21 +0000 | [diff] [blame] | 476 | ret_val = hw->nvm.ops.read(hw, NVM_PBA_OFFSET_1, 1, &pointer); | 
| Auke Kok | 9d5c824 | 2008-01-24 02:22:38 -0800 | [diff] [blame] | 477 | if (ret_val) { | 
| Auke Kok | 652fff3 | 2008-06-27 11:00:18 -0700 | [diff] [blame] | 478 | hw_dbg("NVM Read Error\n"); | 
| Auke Kok | 9d5c824 | 2008-01-24 02:22:38 -0800 | [diff] [blame] | 479 | goto out; | 
|  | 480 | } | 
| Carolyn Wyborny | 9835fd7 | 2010-11-22 17:17:21 +0000 | [diff] [blame] | 481 |  | 
|  | 482 | /* | 
|  | 483 | * if nvm_data is not ptr guard the PBA must be in legacy format which | 
|  | 484 | * means pointer is actually our second data word for the PBA number | 
|  | 485 | * and we can decode it into an ascii string | 
|  | 486 | */ | 
|  | 487 | if (nvm_data != NVM_PBA_PTR_GUARD) { | 
|  | 488 | hw_dbg("NVM PBA number is not stored as string\n"); | 
|  | 489 |  | 
|  | 490 | /* we will need 11 characters to store the PBA */ | 
|  | 491 | if (part_num_size < 11) { | 
|  | 492 | hw_dbg("PBA string buffer too small\n"); | 
|  | 493 | return E1000_ERR_NO_SPACE; | 
|  | 494 | } | 
|  | 495 |  | 
|  | 496 | /* extract hex string from data and pointer */ | 
|  | 497 | part_num[0] = (nvm_data >> 12) & 0xF; | 
|  | 498 | part_num[1] = (nvm_data >> 8) & 0xF; | 
|  | 499 | part_num[2] = (nvm_data >> 4) & 0xF; | 
|  | 500 | part_num[3] = nvm_data & 0xF; | 
|  | 501 | part_num[4] = (pointer >> 12) & 0xF; | 
|  | 502 | part_num[5] = (pointer >> 8) & 0xF; | 
|  | 503 | part_num[6] = '-'; | 
|  | 504 | part_num[7] = 0; | 
|  | 505 | part_num[8] = (pointer >> 4) & 0xF; | 
|  | 506 | part_num[9] = pointer & 0xF; | 
|  | 507 |  | 
|  | 508 | /* put a null character on the end of our string */ | 
|  | 509 | part_num[10] = '\0'; | 
|  | 510 |  | 
|  | 511 | /* switch all the data but the '-' to hex char */ | 
|  | 512 | for (offset = 0; offset < 10; offset++) { | 
|  | 513 | if (part_num[offset] < 0xA) | 
|  | 514 | part_num[offset] += '0'; | 
|  | 515 | else if (part_num[offset] < 0x10) | 
|  | 516 | part_num[offset] += 'A' - 0xA; | 
|  | 517 | } | 
|  | 518 |  | 
|  | 519 | goto out; | 
|  | 520 | } | 
|  | 521 |  | 
|  | 522 | ret_val = hw->nvm.ops.read(hw, pointer, 1, &length); | 
|  | 523 | if (ret_val) { | 
|  | 524 | hw_dbg("NVM Read Error\n"); | 
|  | 525 | goto out; | 
|  | 526 | } | 
|  | 527 |  | 
|  | 528 | if (length == 0xFFFF || length == 0) { | 
|  | 529 | hw_dbg("NVM PBA number section invalid length\n"); | 
|  | 530 | ret_val = E1000_ERR_NVM_PBA_SECTION; | 
|  | 531 | goto out; | 
|  | 532 | } | 
|  | 533 | /* check if part_num buffer is big enough */ | 
|  | 534 | if (part_num_size < (((u32)length * 2) - 1)) { | 
|  | 535 | hw_dbg("PBA string buffer too small\n"); | 
|  | 536 | ret_val = E1000_ERR_NO_SPACE; | 
|  | 537 | goto out; | 
|  | 538 | } | 
|  | 539 |  | 
|  | 540 | /* trim pba length from start of string */ | 
|  | 541 | pointer++; | 
|  | 542 | length--; | 
|  | 543 |  | 
|  | 544 | for (offset = 0; offset < length; offset++) { | 
|  | 545 | ret_val = hw->nvm.ops.read(hw, pointer + offset, 1, &nvm_data); | 
|  | 546 | if (ret_val) { | 
|  | 547 | hw_dbg("NVM Read Error\n"); | 
|  | 548 | goto out; | 
|  | 549 | } | 
|  | 550 | part_num[offset * 2] = (u8)(nvm_data >> 8); | 
|  | 551 | part_num[(offset * 2) + 1] = (u8)(nvm_data & 0xFF); | 
|  | 552 | } | 
|  | 553 | part_num[offset * 2] = '\0'; | 
| Auke Kok | 9d5c824 | 2008-01-24 02:22:38 -0800 | [diff] [blame] | 554 |  | 
|  | 555 | out: | 
|  | 556 | return ret_val; | 
|  | 557 | } | 
|  | 558 |  | 
|  | 559 | /** | 
| Jeff Kirsher | 733596b | 2008-06-27 10:59:59 -0700 | [diff] [blame] | 560 | *  igb_read_mac_addr - Read device MAC address | 
| Auke Kok | 9d5c824 | 2008-01-24 02:22:38 -0800 | [diff] [blame] | 561 | *  @hw: pointer to the HW structure | 
|  | 562 | * | 
|  | 563 | *  Reads the device MAC address from the EEPROM and stores the value. | 
|  | 564 | *  Since devices with two ports use the same EEPROM, we increment the | 
|  | 565 | *  last bit in the MAC address for the second port. | 
|  | 566 | **/ | 
|  | 567 | s32 igb_read_mac_addr(struct e1000_hw *hw) | 
|  | 568 | { | 
| Alexander Duyck | 40a70b3 | 2009-02-06 23:17:06 +0000 | [diff] [blame] | 569 | u32 rar_high; | 
|  | 570 | u32 rar_low; | 
|  | 571 | u16 i; | 
| Auke Kok | 9d5c824 | 2008-01-24 02:22:38 -0800 | [diff] [blame] | 572 |  | 
| Alexander Duyck | 40a70b3 | 2009-02-06 23:17:06 +0000 | [diff] [blame] | 573 | rar_high = rd32(E1000_RAH(0)); | 
|  | 574 | rar_low = rd32(E1000_RAL(0)); | 
| Auke Kok | 9d5c824 | 2008-01-24 02:22:38 -0800 | [diff] [blame] | 575 |  | 
| Alexander Duyck | 40a70b3 | 2009-02-06 23:17:06 +0000 | [diff] [blame] | 576 | for (i = 0; i < E1000_RAL_MAC_ADDR_LEN; i++) | 
|  | 577 | hw->mac.perm_addr[i] = (u8)(rar_low >> (i*8)); | 
|  | 578 |  | 
|  | 579 | for (i = 0; i < E1000_RAH_MAC_ADDR_LEN; i++) | 
|  | 580 | hw->mac.perm_addr[i+4] = (u8)(rar_high >> (i*8)); | 
| Auke Kok | 9d5c824 | 2008-01-24 02:22:38 -0800 | [diff] [blame] | 581 |  | 
|  | 582 | for (i = 0; i < ETH_ALEN; i++) | 
|  | 583 | hw->mac.addr[i] = hw->mac.perm_addr[i]; | 
|  | 584 |  | 
| Alexander Duyck | 40a70b3 | 2009-02-06 23:17:06 +0000 | [diff] [blame] | 585 | return 0; | 
| Auke Kok | 9d5c824 | 2008-01-24 02:22:38 -0800 | [diff] [blame] | 586 | } | 
|  | 587 |  | 
|  | 588 | /** | 
| Jeff Kirsher | 733596b | 2008-06-27 10:59:59 -0700 | [diff] [blame] | 589 | *  igb_validate_nvm_checksum - Validate EEPROM checksum | 
| Auke Kok | 9d5c824 | 2008-01-24 02:22:38 -0800 | [diff] [blame] | 590 | *  @hw: pointer to the HW structure | 
|  | 591 | * | 
|  | 592 | *  Calculates the EEPROM checksum by reading/adding each word of the EEPROM | 
|  | 593 | *  and then verifies that the sum of the EEPROM is equal to 0xBABA. | 
|  | 594 | **/ | 
|  | 595 | s32 igb_validate_nvm_checksum(struct e1000_hw *hw) | 
|  | 596 | { | 
|  | 597 | s32 ret_val = 0; | 
|  | 598 | u16 checksum = 0; | 
|  | 599 | u16 i, nvm_data; | 
|  | 600 |  | 
|  | 601 | for (i = 0; i < (NVM_CHECKSUM_REG + 1); i++) { | 
| Alexander Duyck | 312c75a | 2009-02-06 23:17:47 +0000 | [diff] [blame] | 602 | ret_val = hw->nvm.ops.read(hw, i, 1, &nvm_data); | 
| Auke Kok | 9d5c824 | 2008-01-24 02:22:38 -0800 | [diff] [blame] | 603 | if (ret_val) { | 
| Auke Kok | 652fff3 | 2008-06-27 11:00:18 -0700 | [diff] [blame] | 604 | hw_dbg("NVM Read Error\n"); | 
| Auke Kok | 9d5c824 | 2008-01-24 02:22:38 -0800 | [diff] [blame] | 605 | goto out; | 
|  | 606 | } | 
|  | 607 | checksum += nvm_data; | 
|  | 608 | } | 
|  | 609 |  | 
|  | 610 | if (checksum != (u16) NVM_SUM) { | 
| Auke Kok | 652fff3 | 2008-06-27 11:00:18 -0700 | [diff] [blame] | 611 | hw_dbg("NVM Checksum Invalid\n"); | 
| Auke Kok | 9d5c824 | 2008-01-24 02:22:38 -0800 | [diff] [blame] | 612 | ret_val = -E1000_ERR_NVM; | 
|  | 613 | goto out; | 
|  | 614 | } | 
|  | 615 |  | 
|  | 616 | out: | 
|  | 617 | return ret_val; | 
|  | 618 | } | 
|  | 619 |  | 
|  | 620 | /** | 
| Jeff Kirsher | 733596b | 2008-06-27 10:59:59 -0700 | [diff] [blame] | 621 | *  igb_update_nvm_checksum - Update EEPROM checksum | 
| Auke Kok | 9d5c824 | 2008-01-24 02:22:38 -0800 | [diff] [blame] | 622 | *  @hw: pointer to the HW structure | 
|  | 623 | * | 
|  | 624 | *  Updates the EEPROM checksum by reading/adding each word of the EEPROM | 
|  | 625 | *  up to the checksum.  Then calculates the EEPROM checksum and writes the | 
|  | 626 | *  value to the EEPROM. | 
|  | 627 | **/ | 
|  | 628 | s32 igb_update_nvm_checksum(struct e1000_hw *hw) | 
|  | 629 | { | 
|  | 630 | s32  ret_val; | 
|  | 631 | u16 checksum = 0; | 
|  | 632 | u16 i, nvm_data; | 
|  | 633 |  | 
|  | 634 | for (i = 0; i < NVM_CHECKSUM_REG; i++) { | 
| Alexander Duyck | 312c75a | 2009-02-06 23:17:47 +0000 | [diff] [blame] | 635 | ret_val = hw->nvm.ops.read(hw, i, 1, &nvm_data); | 
| Auke Kok | 9d5c824 | 2008-01-24 02:22:38 -0800 | [diff] [blame] | 636 | if (ret_val) { | 
| Auke Kok | 652fff3 | 2008-06-27 11:00:18 -0700 | [diff] [blame] | 637 | hw_dbg("NVM Read Error while updating checksum.\n"); | 
| Auke Kok | 9d5c824 | 2008-01-24 02:22:38 -0800 | [diff] [blame] | 638 | goto out; | 
|  | 639 | } | 
|  | 640 | checksum += nvm_data; | 
|  | 641 | } | 
|  | 642 | checksum = (u16) NVM_SUM - checksum; | 
| Alexander Duyck | 312c75a | 2009-02-06 23:17:47 +0000 | [diff] [blame] | 643 | ret_val = hw->nvm.ops.write(hw, NVM_CHECKSUM_REG, 1, &checksum); | 
| Auke Kok | 9d5c824 | 2008-01-24 02:22:38 -0800 | [diff] [blame] | 644 | if (ret_val) | 
| Auke Kok | 652fff3 | 2008-06-27 11:00:18 -0700 | [diff] [blame] | 645 | hw_dbg("NVM Write Error while updating checksum.\n"); | 
| Auke Kok | 9d5c824 | 2008-01-24 02:22:38 -0800 | [diff] [blame] | 646 |  | 
|  | 647 | out: | 
|  | 648 | return ret_val; | 
|  | 649 | } | 
|  | 650 |  |