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  1. #
  2. # (C) Copyright 2000 - 2005
  3. # Wolfgang Denk, DENX Software Engineering, wd@denx.de.
  4. #
  5. # See file CREDITS for list of people who contributed to this
  6. # project.
  7. #
  8. # This program is free software; you can redistribute it and/or
  9. # modify it under the terms of the GNU General Public License as
  10. # published by the Free Software Foundation; either version 2 of
  11. # the License, or (at your option) any later version.
  12. #
  13. # This program is distributed in the hope that it will be useful,
  14. # but WITHOUT ANY WARRANTY; without even the implied warranty of
  15. # MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
  16. # GNU General Public License for more details.
  17. #
  18. # You should have received a copy of the GNU General Public License
  19. # along with this program; if not, write to the Free Software
  20. # Foundation, Inc., 59 Temple Place, Suite 330, Boston,
  21. # MA 02111-1307 USA
  22. #
  23. Summary:
  24. ========
  25. This directory contains the source code for U-Boot, a boot loader for
  26. Embedded boards based on PowerPC, ARM, MIPS and several other
  27. processors, which can be installed in a boot ROM and used to
  28. initialize and test the hardware or to download and run application
  29. code.
  30. The development of U-Boot is closely related to Linux: some parts of
  31. the source code originate in the Linux source tree, we have some
  32. header files in common, and special provision has been made to
  33. support booting of Linux images.
  34. Some attention has been paid to make this software easily
  35. configurable and extendable. For instance, all monitor commands are
  36. implemented with the same call interface, so that it's very easy to
  37. add new commands. Also, instead of permanently adding rarely used
  38. code (for instance hardware test utilities) to the monitor, you can
  39. load and run it dynamically.
  40. Status:
  41. =======
  42. In general, all boards for which a configuration option exists in the
  43. Makefile have been tested to some extent and can be considered
  44. "working". In fact, many of them are used in production systems.
  45. In case of problems see the CHANGELOG and CREDITS files to find out
  46. who contributed the specific port.
  47. Where to get help:
  48. ==================
  49. In case you have questions about, problems with or contributions for
  50. U-Boot you should send a message to the U-Boot mailing list at
  51. <u-boot-users@lists.sourceforge.net>. There is also an archive of
  52. previous traffic on the mailing list - please search the archive
  53. before asking FAQ's. Please see
  54. http://lists.sourceforge.net/lists/listinfo/u-boot-users/
  55. Where we come from:
  56. ===================
  57. - start from 8xxrom sources
  58. - create PPCBoot project (http://sourceforge.net/projects/ppcboot)
  59. - clean up code
  60. - make it easier to add custom boards
  61. - make it possible to add other [PowerPC] CPUs
  62. - extend functions, especially:
  63. * Provide extended interface to Linux boot loader
  64. * S-Record download
  65. * network boot
  66. * PCMCIA / CompactFLash / ATA disk / SCSI ... boot
  67. - create ARMBoot project (http://sourceforge.net/projects/armboot)
  68. - add other CPU families (starting with ARM)
  69. - create U-Boot project (http://sourceforge.net/projects/u-boot)
  70. Names and Spelling:
  71. ===================
  72. The "official" name of this project is "Das U-Boot". The spelling
  73. "U-Boot" shall be used in all written text (documentation, comments
  74. in source files etc.). Example:
  75. This is the README file for the U-Boot project.
  76. File names etc. shall be based on the string "u-boot". Examples:
  77. include/asm-ppc/u-boot.h
  78. #include <asm/u-boot.h>
  79. Variable names, preprocessor constants etc. shall be either based on
  80. the string "u_boot" or on "U_BOOT". Example:
  81. U_BOOT_VERSION u_boot_logo
  82. IH_OS_U_BOOT u_boot_hush_start
  83. Versioning:
  84. ===========
  85. U-Boot uses a 3 level version number containing a version, a
  86. sub-version, and a patchlevel: "U-Boot-2.34.5" means version "2",
  87. sub-version "34", and patchlevel "4".
  88. The patchlevel is used to indicate certain stages of development
  89. between released versions, i. e. officially released versions of
  90. U-Boot will always have a patchlevel of "0".
  91. Directory Hierarchy:
  92. ====================
  93. - board Board dependent files
  94. - common Misc architecture independent functions
  95. - cpu CPU specific files
  96. - 74xx_7xx Files specific to Freescale MPC74xx and 7xx CPUs
  97. - arm720t Files specific to ARM 720 CPUs
  98. - arm920t Files specific to ARM 920 CPUs
  99. - at91rm9200 Files specific to Atmel AT91RM9200 CPU
  100. - imx Files specific to Freescale MC9328 i.MX CPUs
  101. - s3c24x0 Files specific to Samsung S3C24X0 CPUs
  102. - arm925t Files specific to ARM 925 CPUs
  103. - arm926ejs Files specific to ARM 926 CPUs
  104. - arm1136 Files specific to ARM 1136 CPUs
  105. - at32ap Files specific to Atmel AVR32 AP CPUs
  106. - i386 Files specific to i386 CPUs
  107. - ixp Files specific to Intel XScale IXP CPUs
  108. - mcf52x2 Files specific to Freescale ColdFire MCF52x2 CPUs
  109. - mcf532x Files specific to Freescale ColdFire MCF5329 CPUs
  110. - mcf5445x Files specific to Freescale ColdFire MCF5445x CPUs
  111. - mips Files specific to MIPS CPUs
  112. - mpc5xx Files specific to Freescale MPC5xx CPUs
  113. - mpc5xxx Files specific to Freescale MPC5xxx CPUs
  114. - mpc8xx Files specific to Freescale MPC8xx CPUs
  115. - mpc8220 Files specific to Freescale MPC8220 CPUs
  116. - mpc824x Files specific to Freescale MPC824x CPUs
  117. - mpc8260 Files specific to Freescale MPC8260 CPUs
  118. - mpc85xx Files specific to Freescale MPC85xx CPUs
  119. - nios Files specific to Altera NIOS CPUs
  120. - nios2 Files specific to Altera Nios-II CPUs
  121. - ppc4xx Files specific to AMCC PowerPC 4xx CPUs
  122. - pxa Files specific to Intel XScale PXA CPUs
  123. - s3c44b0 Files specific to Samsung S3C44B0 CPUs
  124. - sa1100 Files specific to Intel StrongARM SA1100 CPUs
  125. - disk Code for disk drive partition handling
  126. - doc Documentation (don't expect too much)
  127. - drivers Commonly used device drivers
  128. - dtt Digital Thermometer and Thermostat drivers
  129. - examples Example code for standalone applications, etc.
  130. - include Header Files
  131. - lib_arm Files generic to ARM architecture
  132. - lib_avr32 Files generic to AVR32 architecture
  133. - lib_generic Files generic to all architectures
  134. - lib_i386 Files generic to i386 architecture
  135. - lib_m68k Files generic to m68k architecture
  136. - lib_mips Files generic to MIPS architecture
  137. - lib_nios Files generic to NIOS architecture
  138. - lib_ppc Files generic to PowerPC architecture
  139. - libfdt Library files to support flattened device trees
  140. - net Networking code
  141. - post Power On Self Test
  142. - rtc Real Time Clock drivers
  143. - tools Tools to build S-Record or U-Boot images, etc.
  144. Software Configuration:
  145. =======================
  146. Configuration is usually done using C preprocessor defines; the
  147. rationale behind that is to avoid dead code whenever possible.
  148. There are two classes of configuration variables:
  149. * Configuration _OPTIONS_:
  150. These are selectable by the user and have names beginning with
  151. "CONFIG_".
  152. * Configuration _SETTINGS_:
  153. These depend on the hardware etc. and should not be meddled with if
  154. you don't know what you're doing; they have names beginning with
  155. "CFG_".
  156. Later we will add a configuration tool - probably similar to or even
  157. identical to what's used for the Linux kernel. Right now, we have to
  158. do the configuration by hand, which means creating some symbolic
  159. links and editing some configuration files. We use the TQM8xxL boards
  160. as an example here.
  161. Selection of Processor Architecture and Board Type:
  162. ---------------------------------------------------
  163. For all supported boards there are ready-to-use default
  164. configurations available; just type "make <board_name>_config".
  165. Example: For a TQM823L module type:
  166. cd u-boot
  167. make TQM823L_config
  168. For the Cogent platform, you need to specify the cpu type as well;
  169. e.g. "make cogent_mpc8xx_config". And also configure the cogent
  170. directory according to the instructions in cogent/README.
  171. Configuration Options:
  172. ----------------------
  173. Configuration depends on the combination of board and CPU type; all
  174. such information is kept in a configuration file
  175. "include/configs/<board_name>.h".
  176. Example: For a TQM823L module, all configuration settings are in
  177. "include/configs/TQM823L.h".
  178. Many of the options are named exactly as the corresponding Linux
  179. kernel configuration options. The intention is to make it easier to
  180. build a config tool - later.
  181. The following options need to be configured:
  182. - CPU Type: Define exactly one, e.g. CONFIG_MPC85XX.
  183. - Board Type: Define exactly one, e.g. CONFIG_MPC8540ADS.
  184. - CPU Daughterboard Type: (if CONFIG_ATSTK1000 is defined)
  185. Define exactly one of
  186. CONFIG_ATSTK1002
  187. - CPU Module Type: (if CONFIG_COGENT is defined)
  188. Define exactly one of
  189. CONFIG_CMA286_60_OLD
  190. --- FIXME --- not tested yet:
  191. CONFIG_CMA286_60, CONFIG_CMA286_21, CONFIG_CMA286_60P,
  192. CONFIG_CMA287_23, CONFIG_CMA287_50
  193. - Motherboard Type: (if CONFIG_COGENT is defined)
  194. Define exactly one of
  195. CONFIG_CMA101, CONFIG_CMA102
  196. - Motherboard I/O Modules: (if CONFIG_COGENT is defined)
  197. Define one or more of
  198. CONFIG_CMA302
  199. - Motherboard Options: (if CONFIG_CMA101 or CONFIG_CMA102 are defined)
  200. Define one or more of
  201. CONFIG_LCD_HEARTBEAT - update a character position on
  202. the lcd display every second with
  203. a "rotator" |\-/|\-/
  204. - Board flavour: (if CONFIG_MPC8260ADS is defined)
  205. CONFIG_ADSTYPE
  206. Possible values are:
  207. CFG_8260ADS - original MPC8260ADS
  208. CFG_8266ADS - MPC8266ADS
  209. CFG_PQ2FADS - PQ2FADS-ZU or PQ2FADS-VR
  210. CFG_8272ADS - MPC8272ADS
  211. - MPC824X Family Member (if CONFIG_MPC824X is defined)
  212. Define exactly one of
  213. CONFIG_MPC8240, CONFIG_MPC8245
  214. - 8xx CPU Options: (if using an MPC8xx cpu)
  215. CONFIG_8xx_GCLK_FREQ - deprecated: CPU clock if
  216. get_gclk_freq() cannot work
  217. e.g. if there is no 32KHz
  218. reference PIT/RTC clock
  219. CONFIG_8xx_OSCLK - PLL input clock (either EXTCLK
  220. or XTAL/EXTAL)
  221. - 859/866/885 CPU options: (if using a MPC859 or MPC866 or MPC885 CPU):
  222. CFG_8xx_CPUCLK_MIN
  223. CFG_8xx_CPUCLK_MAX
  224. CONFIG_8xx_CPUCLK_DEFAULT
  225. See doc/README.MPC866
  226. CFG_MEASURE_CPUCLK
  227. Define this to measure the actual CPU clock instead
  228. of relying on the correctness of the configured
  229. values. Mostly useful for board bringup to make sure
  230. the PLL is locked at the intended frequency. Note
  231. that this requires a (stable) reference clock (32 kHz
  232. RTC clock or CFG_8XX_XIN)
  233. - Intel Monahans options:
  234. CFG_MONAHANS_RUN_MODE_OSC_RATIO
  235. Defines the Monahans run mode to oscillator
  236. ratio. Valid values are 8, 16, 24, 31. The core
  237. frequency is this value multiplied by 13 MHz.
  238. CFG_MONAHANS_TURBO_RUN_MODE_RATIO
  239. Defines the Monahans turbo mode to oscillator
  240. ratio. Valid values are 1 (default if undefined) and
  241. 2. The core frequency as calculated above is multiplied
  242. by this value.
  243. - Linux Kernel Interface:
  244. CONFIG_CLOCKS_IN_MHZ
  245. U-Boot stores all clock information in Hz
  246. internally. For binary compatibility with older Linux
  247. kernels (which expect the clocks passed in the
  248. bd_info data to be in MHz) the environment variable
  249. "clocks_in_mhz" can be defined so that U-Boot
  250. converts clock data to MHZ before passing it to the
  251. Linux kernel.
  252. When CONFIG_CLOCKS_IN_MHZ is defined, a definition of
  253. "clocks_in_mhz=1" is automatically included in the
  254. default environment.
  255. CONFIG_MEMSIZE_IN_BYTES [relevant for MIPS only]
  256. When transfering memsize parameter to linux, some versions
  257. expect it to be in bytes, others in MB.
  258. Define CONFIG_MEMSIZE_IN_BYTES to make it in bytes.
  259. CONFIG_OF_LIBFDT / CONFIG_OF_FLAT_TREE
  260. New kernel versions are expecting firmware settings to be
  261. passed using flattened device trees (based on open firmware
  262. concepts).
  263. CONFIG_OF_LIBFDT
  264. * New libfdt-based support
  265. * Adds the "fdt" command
  266. * The bootm command does _not_ modify the fdt
  267. CONFIG_OF_FLAT_TREE
  268. * Deprecated, see CONFIG_OF_LIBFDT
  269. * Original ft_build.c-based support
  270. * Automatically modifies the dft as part of the bootm command
  271. * The environment variable "disable_of", when set,
  272. disables this functionality.
  273. CONFIG_OF_FLAT_TREE_MAX_SIZE
  274. The maximum size of the constructed OF tree.
  275. OF_CPU - The proper name of the cpus node.
  276. OF_SOC - The proper name of the soc node.
  277. OF_TBCLK - The timebase frequency.
  278. OF_STDOUT_PATH - The path to the console device
  279. CONFIG_OF_HAS_BD_T
  280. * CONFIG_OF_LIBFDT - enables the "fdt bd_t" command
  281. * CONFIG_OF_FLAT_TREE - The resulting flat device tree
  282. will have a copy of the bd_t. Space should be
  283. pre-allocated in the dts for the bd_t.
  284. CONFIG_OF_HAS_UBOOT_ENV
  285. * CONFIG_OF_LIBFDT - enables the "fdt bd_t" command
  286. * CONFIG_OF_FLAT_TREE - The resulting flat device tree
  287. will have a copy of u-boot's environment variables
  288. CONFIG_OF_BOARD_SETUP
  289. Board code has addition modification that it wants to make
  290. to the flat device tree before handing it off to the kernel
  291. CONFIG_OF_BOOT_CPU
  292. This define fills in the correct boot cpu in the boot
  293. param header, the default value is zero if undefined.
  294. - Serial Ports:
  295. CFG_PL010_SERIAL
  296. Define this if you want support for Amba PrimeCell PL010 UARTs.
  297. CFG_PL011_SERIAL
  298. Define this if you want support for Amba PrimeCell PL011 UARTs.
  299. CONFIG_PL011_CLOCK
  300. If you have Amba PrimeCell PL011 UARTs, set this variable to
  301. the clock speed of the UARTs.
  302. CONFIG_PL01x_PORTS
  303. If you have Amba PrimeCell PL010 or PL011 UARTs on your board,
  304. define this to a list of base addresses for each (supported)
  305. port. See e.g. include/configs/versatile.h
  306. - Console Interface:
  307. Depending on board, define exactly one serial port
  308. (like CONFIG_8xx_CONS_SMC1, CONFIG_8xx_CONS_SMC2,
  309. CONFIG_8xx_CONS_SCC1, ...), or switch off the serial
  310. console by defining CONFIG_8xx_CONS_NONE
  311. Note: if CONFIG_8xx_CONS_NONE is defined, the serial
  312. port routines must be defined elsewhere
  313. (i.e. serial_init(), serial_getc(), ...)
  314. CONFIG_CFB_CONSOLE
  315. Enables console device for a color framebuffer. Needs following
  316. defines (cf. smiLynxEM, i8042, board/eltec/bab7xx)
  317. VIDEO_FB_LITTLE_ENDIAN graphic memory organisation
  318. (default big endian)
  319. VIDEO_HW_RECTFILL graphic chip supports
  320. rectangle fill
  321. (cf. smiLynxEM)
  322. VIDEO_HW_BITBLT graphic chip supports
  323. bit-blit (cf. smiLynxEM)
  324. VIDEO_VISIBLE_COLS visible pixel columns
  325. (cols=pitch)
  326. VIDEO_VISIBLE_ROWS visible pixel rows
  327. VIDEO_PIXEL_SIZE bytes per pixel
  328. VIDEO_DATA_FORMAT graphic data format
  329. (0-5, cf. cfb_console.c)
  330. VIDEO_FB_ADRS framebuffer address
  331. VIDEO_KBD_INIT_FCT keyboard int fct
  332. (i.e. i8042_kbd_init())
  333. VIDEO_TSTC_FCT test char fct
  334. (i.e. i8042_tstc)
  335. VIDEO_GETC_FCT get char fct
  336. (i.e. i8042_getc)
  337. CONFIG_CONSOLE_CURSOR cursor drawing on/off
  338. (requires blink timer
  339. cf. i8042.c)
  340. CFG_CONSOLE_BLINK_COUNT blink interval (cf. i8042.c)
  341. CONFIG_CONSOLE_TIME display time/date info in
  342. upper right corner
  343. (requires CONFIG_CMD_DATE)
  344. CONFIG_VIDEO_LOGO display Linux logo in
  345. upper left corner
  346. CONFIG_VIDEO_BMP_LOGO use bmp_logo.h instead of
  347. linux_logo.h for logo.
  348. Requires CONFIG_VIDEO_LOGO
  349. CONFIG_CONSOLE_EXTRA_INFO
  350. addional board info beside
  351. the logo
  352. When CONFIG_CFB_CONSOLE is defined, video console is
  353. default i/o. Serial console can be forced with
  354. environment 'console=serial'.
  355. When CONFIG_SILENT_CONSOLE is defined, all console
  356. messages (by U-Boot and Linux!) can be silenced with
  357. the "silent" environment variable. See
  358. doc/README.silent for more information.
  359. - Console Baudrate:
  360. CONFIG_BAUDRATE - in bps
  361. Select one of the baudrates listed in
  362. CFG_BAUDRATE_TABLE, see below.
  363. CFG_BRGCLK_PRESCALE, baudrate prescale
  364. - Interrupt driven serial port input:
  365. CONFIG_SERIAL_SOFTWARE_FIFO
  366. PPC405GP only.
  367. Use an interrupt handler for receiving data on the
  368. serial port. It also enables using hardware handshake
  369. (RTS/CTS) and UART's built-in FIFO. Set the number of
  370. bytes the interrupt driven input buffer should have.
  371. Leave undefined to disable this feature, including
  372. disable the buffer and hardware handshake.
  373. - Console UART Number:
  374. CONFIG_UART1_CONSOLE
  375. AMCC PPC4xx only.
  376. If defined internal UART1 (and not UART0) is used
  377. as default U-Boot console.
  378. - Boot Delay: CONFIG_BOOTDELAY - in seconds
  379. Delay before automatically booting the default image;
  380. set to -1 to disable autoboot.
  381. See doc/README.autoboot for these options that
  382. work with CONFIG_BOOTDELAY. None are required.
  383. CONFIG_BOOT_RETRY_TIME
  384. CONFIG_BOOT_RETRY_MIN
  385. CONFIG_AUTOBOOT_KEYED
  386. CONFIG_AUTOBOOT_PROMPT
  387. CONFIG_AUTOBOOT_DELAY_STR
  388. CONFIG_AUTOBOOT_STOP_STR
  389. CONFIG_AUTOBOOT_DELAY_STR2
  390. CONFIG_AUTOBOOT_STOP_STR2
  391. CONFIG_ZERO_BOOTDELAY_CHECK
  392. CONFIG_RESET_TO_RETRY
  393. - Autoboot Command:
  394. CONFIG_BOOTCOMMAND
  395. Only needed when CONFIG_BOOTDELAY is enabled;
  396. define a command string that is automatically executed
  397. when no character is read on the console interface
  398. within "Boot Delay" after reset.
  399. CONFIG_BOOTARGS
  400. This can be used to pass arguments to the bootm
  401. command. The value of CONFIG_BOOTARGS goes into the
  402. environment value "bootargs".
  403. CONFIG_RAMBOOT and CONFIG_NFSBOOT
  404. The value of these goes into the environment as
  405. "ramboot" and "nfsboot" respectively, and can be used
  406. as a convenience, when switching between booting from
  407. ram and nfs.
  408. - Pre-Boot Commands:
  409. CONFIG_PREBOOT
  410. When this option is #defined, the existence of the
  411. environment variable "preboot" will be checked
  412. immediately before starting the CONFIG_BOOTDELAY
  413. countdown and/or running the auto-boot command resp.
  414. entering interactive mode.
  415. This feature is especially useful when "preboot" is
  416. automatically generated or modified. For an example
  417. see the LWMON board specific code: here "preboot" is
  418. modified when the user holds down a certain
  419. combination of keys on the (special) keyboard when
  420. booting the systems
  421. - Serial Download Echo Mode:
  422. CONFIG_LOADS_ECHO
  423. If defined to 1, all characters received during a
  424. serial download (using the "loads" command) are
  425. echoed back. This might be needed by some terminal
  426. emulations (like "cu"), but may as well just take
  427. time on others. This setting #define's the initial
  428. value of the "loads_echo" environment variable.
  429. - Kgdb Serial Baudrate: (if CONFIG_CMD_KGDB is defined)
  430. CONFIG_KGDB_BAUDRATE
  431. Select one of the baudrates listed in
  432. CFG_BAUDRATE_TABLE, see below.
  433. - Monitor Functions:
  434. Monitor commands can be included or excluded
  435. from the build by using the #include files
  436. "config_cmd_all.h" and #undef'ing unwanted
  437. commands, or using "config_cmd_default.h"
  438. and augmenting with additional #define's
  439. for wanted commands.
  440. The default command configuration includes all commands
  441. except those marked below with a "*".
  442. CONFIG_CMD_ASKENV * ask for env variable
  443. CONFIG_CMD_AUTOSCRIPT Autoscript Support
  444. CONFIG_CMD_BDI bdinfo
  445. CONFIG_CMD_BEDBUG * Include BedBug Debugger
  446. CONFIG_CMD_BMP * BMP support
  447. CONFIG_CMD_BSP * Board specific commands
  448. CONFIG_CMD_BOOTD bootd
  449. CONFIG_CMD_CACHE * icache, dcache
  450. CONFIG_CMD_CONSOLE coninfo
  451. CONFIG_CMD_DATE * support for RTC, date/time...
  452. CONFIG_CMD_DHCP * DHCP support
  453. CONFIG_CMD_DIAG * Diagnostics
  454. CONFIG_CMD_DOC * Disk-On-Chip Support
  455. CONFIG_CMD_DTT * Digital Therm and Thermostat
  456. CONFIG_CMD_ECHO echo arguments
  457. CONFIG_CMD_EEPROM * EEPROM read/write support
  458. CONFIG_CMD_ELF * bootelf, bootvx
  459. CONFIG_CMD_ENV saveenv
  460. CONFIG_CMD_FDC * Floppy Disk Support
  461. CONFIG_CMD_FAT * FAT partition support
  462. CONFIG_CMD_FDOS * Dos diskette Support
  463. CONFIG_CMD_FLASH flinfo, erase, protect
  464. CONFIG_CMD_FPGA FPGA device initialization support
  465. CONFIG_CMD_HWFLOW * RTS/CTS hw flow control
  466. CONFIG_CMD_I2C * I2C serial bus support
  467. CONFIG_CMD_IDE * IDE harddisk support
  468. CONFIG_CMD_IMI iminfo
  469. CONFIG_CMD_IMLS List all found images
  470. CONFIG_CMD_IMMAP * IMMR dump support
  471. CONFIG_CMD_IRQ * irqinfo
  472. CONFIG_CMD_ITEST Integer/string test of 2 values
  473. CONFIG_CMD_JFFS2 * JFFS2 Support
  474. CONFIG_CMD_KGDB * kgdb
  475. CONFIG_CMD_LOADB loadb
  476. CONFIG_CMD_LOADS loads
  477. CONFIG_CMD_MEMORY md, mm, nm, mw, cp, cmp, crc, base,
  478. loop, loopw, mtest
  479. CONFIG_CMD_MISC Misc functions like sleep etc
  480. CONFIG_CMD_MMC * MMC memory mapped support
  481. CONFIG_CMD_MII * MII utility commands
  482. CONFIG_CMD_NAND * NAND support
  483. CONFIG_CMD_NET bootp, tftpboot, rarpboot
  484. CONFIG_CMD_PCI * pciinfo
  485. CONFIG_CMD_PCMCIA * PCMCIA support
  486. CONFIG_CMD_PING * send ICMP ECHO_REQUEST to network
  487. host
  488. CONFIG_CMD_PORTIO * Port I/O
  489. CONFIG_CMD_REGINFO * Register dump
  490. CONFIG_CMD_RUN run command in env variable
  491. CONFIG_CMD_SAVES * save S record dump
  492. CONFIG_CMD_SCSI * SCSI Support
  493. CONFIG_CMD_SDRAM * print SDRAM configuration information
  494. (requires CONFIG_CMD_I2C)
  495. CONFIG_CMD_SETGETDCR Support for DCR Register access
  496. (4xx only)
  497. CONFIG_CMD_SPI * SPI serial bus support
  498. CONFIG_CMD_USB * USB support
  499. CONFIG_CMD_VFD * VFD support (TRAB)
  500. CONFIG_CMD_BSP * Board SPecific functions
  501. CONFIG_CMD_CDP * Cisco Discover Protocol support
  502. CONFIG_CMD_FSL * Microblaze FSL support
  503. EXAMPLE: If you want all functions except of network
  504. support you can write:
  505. #include "config_cmd_all.h"
  506. #undef CONFIG_CMD_NET
  507. Other Commands:
  508. fdt (flattened device tree) command: CONFIG_OF_LIBFDT
  509. Note: Don't enable the "icache" and "dcache" commands
  510. (configuration option CONFIG_CMD_CACHE) unless you know
  511. what you (and your U-Boot users) are doing. Data
  512. cache cannot be enabled on systems like the 8xx or
  513. 8260 (where accesses to the IMMR region must be
  514. uncached), and it cannot be disabled on all other
  515. systems where we (mis-) use the data cache to hold an
  516. initial stack and some data.
  517. XXX - this list needs to get updated!
  518. - Watchdog:
  519. CONFIG_WATCHDOG
  520. If this variable is defined, it enables watchdog
  521. support. There must be support in the platform specific
  522. code for a watchdog. For the 8xx and 8260 CPUs, the
  523. SIU Watchdog feature is enabled in the SYPCR
  524. register.
  525. - U-Boot Version:
  526. CONFIG_VERSION_VARIABLE
  527. If this variable is defined, an environment variable
  528. named "ver" is created by U-Boot showing the U-Boot
  529. version as printed by the "version" command.
  530. This variable is readonly.
  531. - Real-Time Clock:
  532. When CONFIG_CMD_DATE is selected, the type of the RTC
  533. has to be selected, too. Define exactly one of the
  534. following options:
  535. CONFIG_RTC_MPC8xx - use internal RTC of MPC8xx
  536. CONFIG_RTC_PCF8563 - use Philips PCF8563 RTC
  537. CONFIG_RTC_MC146818 - use MC146818 RTC
  538. CONFIG_RTC_DS1307 - use Maxim, Inc. DS1307 RTC
  539. CONFIG_RTC_DS1337 - use Maxim, Inc. DS1337 RTC
  540. CONFIG_RTC_DS1338 - use Maxim, Inc. DS1338 RTC
  541. CONFIG_RTC_DS164x - use Dallas DS164x RTC
  542. CONFIG_RTC_MAX6900 - use Maxim, Inc. MAX6900 RTC
  543. Note that if the RTC uses I2C, then the I2C interface
  544. must also be configured. See I2C Support, below.
  545. - Timestamp Support:
  546. When CONFIG_TIMESTAMP is selected, the timestamp
  547. (date and time) of an image is printed by image
  548. commands like bootm or iminfo. This option is
  549. automatically enabled when you select CONFIG_CMD_DATE .
  550. - Partition Support:
  551. CONFIG_MAC_PARTITION and/or CONFIG_DOS_PARTITION
  552. and/or CONFIG_ISO_PARTITION
  553. If IDE or SCSI support is enabled (CONFIG_CMD_IDE or
  554. CONFIG_CMD_SCSI) you must configure support for at least
  555. one partition type as well.
  556. - IDE Reset method:
  557. CONFIG_IDE_RESET_ROUTINE - this is defined in several
  558. board configurations files but used nowhere!
  559. CONFIG_IDE_RESET - is this is defined, IDE Reset will
  560. be performed by calling the function
  561. ide_set_reset(int reset)
  562. which has to be defined in a board specific file
  563. - ATAPI Support:
  564. CONFIG_ATAPI
  565. Set this to enable ATAPI support.
  566. - LBA48 Support
  567. CONFIG_LBA48
  568. Set this to enable support for disks larger than 137GB
  569. Also look at CFG_64BIT_LBA ,CFG_64BIT_VSPRINTF and CFG_64BIT_STRTOUL
  570. Whithout these , LBA48 support uses 32bit variables and will 'only'
  571. support disks up to 2.1TB.
  572. CFG_64BIT_LBA:
  573. When enabled, makes the IDE subsystem use 64bit sector addresses.
  574. Default is 32bit.
  575. - SCSI Support:
  576. At the moment only there is only support for the
  577. SYM53C8XX SCSI controller; define
  578. CONFIG_SCSI_SYM53C8XX to enable it.
  579. CFG_SCSI_MAX_LUN [8], CFG_SCSI_MAX_SCSI_ID [7] and
  580. CFG_SCSI_MAX_DEVICE [CFG_SCSI_MAX_SCSI_ID *
  581. CFG_SCSI_MAX_LUN] can be adjusted to define the
  582. maximum numbers of LUNs, SCSI ID's and target
  583. devices.
  584. CFG_SCSI_SYM53C8XX_CCF to fix clock timing (80Mhz)
  585. - NETWORK Support (PCI):
  586. CONFIG_E1000
  587. Support for Intel 8254x gigabit chips.
  588. CONFIG_EEPRO100
  589. Support for Intel 82557/82559/82559ER chips.
  590. Optional CONFIG_EEPRO100_SROM_WRITE enables eeprom
  591. write routine for first time initialisation.
  592. CONFIG_TULIP
  593. Support for Digital 2114x chips.
  594. Optional CONFIG_TULIP_SELECT_MEDIA for board specific
  595. modem chip initialisation (KS8761/QS6611).
  596. CONFIG_NATSEMI
  597. Support for National dp83815 chips.
  598. CONFIG_NS8382X
  599. Support for National dp8382[01] gigabit chips.
  600. - NETWORK Support (other):
  601. CONFIG_DRIVER_LAN91C96
  602. Support for SMSC's LAN91C96 chips.
  603. CONFIG_LAN91C96_BASE
  604. Define this to hold the physical address
  605. of the LAN91C96's I/O space
  606. CONFIG_LAN91C96_USE_32_BIT
  607. Define this to enable 32 bit addressing
  608. CONFIG_DRIVER_SMC91111
  609. Support for SMSC's LAN91C111 chip
  610. CONFIG_SMC91111_BASE
  611. Define this to hold the physical address
  612. of the device (I/O space)
  613. CONFIG_SMC_USE_32_BIT
  614. Define this if data bus is 32 bits
  615. CONFIG_SMC_USE_IOFUNCS
  616. Define this to use i/o functions instead of macros
  617. (some hardware wont work with macros)
  618. - USB Support:
  619. At the moment only the UHCI host controller is
  620. supported (PIP405, MIP405, MPC5200); define
  621. CONFIG_USB_UHCI to enable it.
  622. define CONFIG_USB_KEYBOARD to enable the USB Keyboard
  623. and define CONFIG_USB_STORAGE to enable the USB
  624. storage devices.
  625. Note:
  626. Supported are USB Keyboards and USB Floppy drives
  627. (TEAC FD-05PUB).
  628. MPC5200 USB requires additional defines:
  629. CONFIG_USB_CLOCK
  630. for 528 MHz Clock: 0x0001bbbb
  631. CONFIG_USB_CONFIG
  632. for differential drivers: 0x00001000
  633. for single ended drivers: 0x00005000
  634. CFG_USB_EVENT_POLL
  635. May be defined to allow interrupt polling
  636. instead of using asynchronous interrupts
  637. - USB Device:
  638. Define the below if you wish to use the USB console.
  639. Once firmware is rebuilt from a serial console issue the
  640. command "setenv stdin usbtty; setenv stdout usbtty" and
  641. attach your usb cable. The Unix command "dmesg" should print
  642. it has found a new device. The environment variable usbtty
  643. can be set to gserial or cdc_acm to enable your device to
  644. appear to a USB host as a Linux gserial device or a
  645. Common Device Class Abstract Control Model serial device.
  646. If you select usbtty = gserial you should be able to enumerate
  647. a Linux host by
  648. # modprobe usbserial vendor=0xVendorID product=0xProductID
  649. else if using cdc_acm, simply setting the environment
  650. variable usbtty to be cdc_acm should suffice. The following
  651. might be defined in YourBoardName.h
  652. CONFIG_USB_DEVICE
  653. Define this to build a UDC device
  654. CONFIG_USB_TTY
  655. Define this to have a tty type of device available to
  656. talk to the UDC device
  657. CFG_CONSOLE_IS_IN_ENV
  658. Define this if you want stdin, stdout &/or stderr to
  659. be set to usbtty.
  660. mpc8xx:
  661. CFG_USB_EXTC_CLK 0xBLAH
  662. Derive USB clock from external clock "blah"
  663. - CFG_USB_EXTC_CLK 0x02
  664. CFG_USB_BRG_CLK 0xBLAH
  665. Derive USB clock from brgclk
  666. - CFG_USB_BRG_CLK 0x04
  667. If you have a USB-IF assigned VendorID then you may wish to
  668. define your own vendor specific values either in BoardName.h
  669. or directly in usbd_vendor_info.h. If you don't define
  670. CONFIG_USBD_MANUFACTURER, CONFIG_USBD_PRODUCT_NAME,
  671. CONFIG_USBD_VENDORID and CONFIG_USBD_PRODUCTID, then U-Boot
  672. should pretend to be a Linux device to it's target host.
  673. CONFIG_USBD_MANUFACTURER
  674. Define this string as the name of your company for
  675. - CONFIG_USBD_MANUFACTURER "my company"
  676. CONFIG_USBD_PRODUCT_NAME
  677. Define this string as the name of your product
  678. - CONFIG_USBD_PRODUCT_NAME "acme usb device"
  679. CONFIG_USBD_VENDORID
  680. Define this as your assigned Vendor ID from the USB
  681. Implementors Forum. This *must* be a genuine Vendor ID
  682. to avoid polluting the USB namespace.
  683. - CONFIG_USBD_VENDORID 0xFFFF
  684. CONFIG_USBD_PRODUCTID
  685. Define this as the unique Product ID
  686. for your device
  687. - CONFIG_USBD_PRODUCTID 0xFFFF
  688. - MMC Support:
  689. The MMC controller on the Intel PXA is supported. To
  690. enable this define CONFIG_MMC. The MMC can be
  691. accessed from the boot prompt by mapping the device
  692. to physical memory similar to flash. Command line is
  693. enabled with CONFIG_CMD_MMC. The MMC driver also works with
  694. the FAT fs. This is enabled with CONFIG_CMD_FAT.
  695. - Journaling Flash filesystem support:
  696. CONFIG_JFFS2_NAND, CONFIG_JFFS2_NAND_OFF, CONFIG_JFFS2_NAND_SIZE,
  697. CONFIG_JFFS2_NAND_DEV
  698. Define these for a default partition on a NAND device
  699. CFG_JFFS2_FIRST_SECTOR,
  700. CFG_JFFS2_FIRST_BANK, CFG_JFFS2_NUM_BANKS
  701. Define these for a default partition on a NOR device
  702. CFG_JFFS_CUSTOM_PART
  703. Define this to create an own partition. You have to provide a
  704. function struct part_info* jffs2_part_info(int part_num)
  705. If you define only one JFFS2 partition you may also want to
  706. #define CFG_JFFS_SINGLE_PART 1
  707. to disable the command chpart. This is the default when you
  708. have not defined a custom partition
  709. - Keyboard Support:
  710. CONFIG_ISA_KEYBOARD
  711. Define this to enable standard (PC-Style) keyboard
  712. support
  713. CONFIG_I8042_KBD
  714. Standard PC keyboard driver with US (is default) and
  715. GERMAN key layout (switch via environment 'keymap=de') support.
  716. Export function i8042_kbd_init, i8042_tstc and i8042_getc
  717. for cfb_console. Supports cursor blinking.
  718. - Video support:
  719. CONFIG_VIDEO
  720. Define this to enable video support (for output to
  721. video).
  722. CONFIG_VIDEO_CT69000
  723. Enable Chips & Technologies 69000 Video chip
  724. CONFIG_VIDEO_SMI_LYNXEM
  725. Enable Silicon Motion SMI 712/710/810 Video chip. The
  726. video output is selected via environment 'videoout'
  727. (1 = LCD and 2 = CRT). If videoout is undefined, CRT is
  728. assumed.
  729. For the CT69000 and SMI_LYNXEM drivers, videomode is
  730. selected via environment 'videomode'. Two diferent ways
  731. are possible:
  732. - "videomode=num" 'num' is a standard LiLo mode numbers.
  733. Following standard modes are supported (* is default):
  734. Colors 640x480 800x600 1024x768 1152x864 1280x1024
  735. -------------+---------------------------------------------
  736. 8 bits | 0x301* 0x303 0x305 0x161 0x307
  737. 15 bits | 0x310 0x313 0x316 0x162 0x319
  738. 16 bits | 0x311 0x314 0x317 0x163 0x31A
  739. 24 bits | 0x312 0x315 0x318 ? 0x31B
  740. -------------+---------------------------------------------
  741. (i.e. setenv videomode 317; saveenv; reset;)
  742. - "videomode=bootargs" all the video parameters are parsed
  743. from the bootargs. (See drivers/videomodes.c)
  744. CONFIG_VIDEO_SED13806
  745. Enable Epson SED13806 driver. This driver supports 8bpp
  746. and 16bpp modes defined by CONFIG_VIDEO_SED13806_8BPP
  747. or CONFIG_VIDEO_SED13806_16BPP
  748. - Keyboard Support:
  749. CONFIG_KEYBOARD
  750. Define this to enable a custom keyboard support.
  751. This simply calls drv_keyboard_init() which must be
  752. defined in your board-specific files.
  753. The only board using this so far is RBC823.
  754. - LCD Support: CONFIG_LCD
  755. Define this to enable LCD support (for output to LCD
  756. display); also select one of the supported displays
  757. by defining one of these:
  758. CONFIG_NEC_NL6448AC33:
  759. NEC NL6448AC33-18. Active, color, single scan.
  760. CONFIG_NEC_NL6448BC20
  761. NEC NL6448BC20-08. 6.5", 640x480.
  762. Active, color, single scan.
  763. CONFIG_NEC_NL6448BC33_54
  764. NEC NL6448BC33-54. 10.4", 640x480.
  765. Active, color, single scan.
  766. CONFIG_SHARP_16x9
  767. Sharp 320x240. Active, color, single scan.
  768. It isn't 16x9, and I am not sure what it is.
  769. CONFIG_SHARP_LQ64D341
  770. Sharp LQ64D341 display, 640x480.
  771. Active, color, single scan.
  772. CONFIG_HLD1045
  773. HLD1045 display, 640x480.
  774. Active, color, single scan.
  775. CONFIG_OPTREX_BW
  776. Optrex CBL50840-2 NF-FW 99 22 M5
  777. or
  778. Hitachi LMG6912RPFC-00T
  779. or
  780. Hitachi SP14Q002
  781. 320x240. Black & white.
  782. Normally display is black on white background; define
  783. CFG_WHITE_ON_BLACK to get it inverted.
  784. - Splash Screen Support: CONFIG_SPLASH_SCREEN
  785. If this option is set, the environment is checked for
  786. a variable "splashimage". If found, the usual display
  787. of logo, copyright and system information on the LCD
  788. is suppressed and the BMP image at the address
  789. specified in "splashimage" is loaded instead. The
  790. console is redirected to the "nulldev", too. This
  791. allows for a "silent" boot where a splash screen is
  792. loaded very quickly after power-on.
  793. - Gzip compressed BMP image support: CONFIG_VIDEO_BMP_GZIP
  794. If this option is set, additionally to standard BMP
  795. images, gzipped BMP images can be displayed via the
  796. splashscreen support or the bmp command.
  797. - Compression support:
  798. CONFIG_BZIP2
  799. If this option is set, support for bzip2 compressed
  800. images is included. If not, only uncompressed and gzip
  801. compressed images are supported.
  802. NOTE: the bzip2 algorithm requires a lot of RAM, so
  803. the malloc area (as defined by CFG_MALLOC_LEN) should
  804. be at least 4MB.
  805. - MII/PHY support:
  806. CONFIG_PHY_ADDR
  807. The address of PHY on MII bus.
  808. CONFIG_PHY_CLOCK_FREQ (ppc4xx)
  809. The clock frequency of the MII bus
  810. CONFIG_PHY_GIGE
  811. If this option is set, support for speed/duplex
  812. detection of Gigabit PHY is included.
  813. CONFIG_PHY_RESET_DELAY
  814. Some PHY like Intel LXT971A need extra delay after
  815. reset before any MII register access is possible.
  816. For such PHY, set this option to the usec delay
  817. required. (minimum 300usec for LXT971A)
  818. CONFIG_PHY_CMD_DELAY (ppc4xx)
  819. Some PHY like Intel LXT971A need extra delay after
  820. command issued before MII status register can be read
  821. - Ethernet address:
  822. CONFIG_ETHADDR
  823. CONFIG_ETH2ADDR
  824. CONFIG_ETH3ADDR
  825. Define a default value for ethernet address to use
  826. for the respective ethernet interface, in case this
  827. is not determined automatically.
  828. - IP address:
  829. CONFIG_IPADDR
  830. Define a default value for the IP address to use for
  831. the default ethernet interface, in case this is not
  832. determined through e.g. bootp.
  833. - Server IP address:
  834. CONFIG_SERVERIP
  835. Defines a default value for theIP address of a TFTP
  836. server to contact when using the "tftboot" command.
  837. - Multicast TFTP Mode:
  838. CONFIG_MCAST_TFTP
  839. Defines whether you want to support multicast TFTP as per
  840. rfc-2090; for example to work with atftp. Lets lots of targets
  841. tftp down the same boot image concurrently. Note: the ethernet
  842. driver in use must provide a function: mcast() to join/leave a
  843. multicast group.
  844. CONFIG_BOOTP_RANDOM_DELAY
  845. - BOOTP Recovery Mode:
  846. CONFIG_BOOTP_RANDOM_DELAY
  847. If you have many targets in a network that try to
  848. boot using BOOTP, you may want to avoid that all
  849. systems send out BOOTP requests at precisely the same
  850. moment (which would happen for instance at recovery
  851. from a power failure, when all systems will try to
  852. boot, thus flooding the BOOTP server. Defining
  853. CONFIG_BOOTP_RANDOM_DELAY causes a random delay to be
  854. inserted before sending out BOOTP requests. The
  855. following delays are inserted then:
  856. 1st BOOTP request: delay 0 ... 1 sec
  857. 2nd BOOTP request: delay 0 ... 2 sec
  858. 3rd BOOTP request: delay 0 ... 4 sec
  859. 4th and following
  860. BOOTP requests: delay 0 ... 8 sec
  861. - DHCP Advanced Options:
  862. You can fine tune the DHCP functionality by defining
  863. CONFIG_BOOTP_* symbols:
  864. CONFIG_BOOTP_SUBNETMASK
  865. CONFIG_BOOTP_GATEWAY
  866. CONFIG_BOOTP_HOSTNAME
  867. CONFIG_BOOTP_NISDOMAIN
  868. CONFIG_BOOTP_BOOTPATH
  869. CONFIG_BOOTP_BOOTFILESIZE
  870. CONFIG_BOOTP_DNS
  871. CONFIG_BOOTP_DNS2
  872. CONFIG_BOOTP_SEND_HOSTNAME
  873. CONFIG_BOOTP_NTPSERVER
  874. CONFIG_BOOTP_TIMEOFFSET
  875. CONFIG_BOOTP_VENDOREX
  876. CONFIG_BOOTP_SERVERIP - TFTP server will be the serverip
  877. environment variable, not the BOOTP server.
  878. CONFIG_BOOTP_DNS2 - If a DHCP client requests the DNS
  879. serverip from a DHCP server, it is possible that more
  880. than one DNS serverip is offered to the client.
  881. If CONFIG_BOOTP_DNS2 is enabled, the secondary DNS
  882. serverip will be stored in the additional environment
  883. variable "dnsip2". The first DNS serverip is always
  884. stored in the variable "dnsip", when CONFIG_BOOTP_DNS
  885. is defined.
  886. CONFIG_BOOTP_SEND_HOSTNAME - Some DHCP servers are capable
  887. to do a dynamic update of a DNS server. To do this, they
  888. need the hostname of the DHCP requester.
  889. If CONFIG_BOOTP_SEND_HOSTNAME is defined, the content
  890. of the "hostname" environment variable is passed as
  891. option 12 to the DHCP server.
  892. - CDP Options:
  893. CONFIG_CDP_DEVICE_ID
  894. The device id used in CDP trigger frames.
  895. CONFIG_CDP_DEVICE_ID_PREFIX
  896. A two character string which is prefixed to the MAC address
  897. of the device.
  898. CONFIG_CDP_PORT_ID
  899. A printf format string which contains the ascii name of
  900. the port. Normally is set to "eth%d" which sets
  901. eth0 for the first ethernet, eth1 for the second etc.
  902. CONFIG_CDP_CAPABILITIES
  903. A 32bit integer which indicates the device capabilities;
  904. 0x00000010 for a normal host which does not forwards.
  905. CONFIG_CDP_VERSION
  906. An ascii string containing the version of the software.
  907. CONFIG_CDP_PLATFORM
  908. An ascii string containing the name of the platform.
  909. CONFIG_CDP_TRIGGER
  910. A 32bit integer sent on the trigger.
  911. CONFIG_CDP_POWER_CONSUMPTION
  912. A 16bit integer containing the power consumption of the
  913. device in .1 of milliwatts.
  914. CONFIG_CDP_APPLIANCE_VLAN_TYPE
  915. A byte containing the id of the VLAN.
  916. - Status LED: CONFIG_STATUS_LED
  917. Several configurations allow to display the current
  918. status using a LED. For instance, the LED will blink
  919. fast while running U-Boot code, stop blinking as
  920. soon as a reply to a BOOTP request was received, and
  921. start blinking slow once the Linux kernel is running
  922. (supported by a status LED driver in the Linux
  923. kernel). Defining CONFIG_STATUS_LED enables this
  924. feature in U-Boot.
  925. - CAN Support: CONFIG_CAN_DRIVER
  926. Defining CONFIG_CAN_DRIVER enables CAN driver support
  927. on those systems that support this (optional)
  928. feature, like the TQM8xxL modules.
  929. - I2C Support: CONFIG_HARD_I2C | CONFIG_SOFT_I2C
  930. These enable I2C serial bus commands. Defining either of
  931. (but not both of) CONFIG_HARD_I2C or CONFIG_SOFT_I2C will
  932. include the appropriate I2C driver for the selected cpu.
  933. This will allow you to use i2c commands at the u-boot
  934. command line (as long as you set CONFIG_CMD_I2C in
  935. CONFIG_COMMANDS) and communicate with i2c based realtime
  936. clock chips. See common/cmd_i2c.c for a description of the
  937. command line interface.
  938. CONFIG_I2C_CMD_TREE is a recommended option that places
  939. all I2C commands under a single 'i2c' root command. The
  940. older 'imm', 'imd', 'iprobe' etc. commands are considered
  941. deprecated and may disappear in the future.
  942. CONFIG_HARD_I2C selects a hardware I2C controller.
  943. CONFIG_SOFT_I2C configures u-boot to use a software (aka
  944. bit-banging) driver instead of CPM or similar hardware
  945. support for I2C.
  946. There are several other quantities that must also be
  947. defined when you define CONFIG_HARD_I2C or CONFIG_SOFT_I2C.
  948. In both cases you will need to define CFG_I2C_SPEED
  949. to be the frequency (in Hz) at which you wish your i2c bus
  950. to run and CFG_I2C_SLAVE to be the address of this node (ie
  951. the cpu's i2c node address).
  952. Now, the u-boot i2c code for the mpc8xx (cpu/mpc8xx/i2c.c)
  953. sets the cpu up as a master node and so its address should
  954. therefore be cleared to 0 (See, eg, MPC823e User's Manual
  955. p.16-473). So, set CFG_I2C_SLAVE to 0.
  956. That's all that's required for CONFIG_HARD_I2C.
  957. If you use the software i2c interface (CONFIG_SOFT_I2C)
  958. then the following macros need to be defined (examples are
  959. from include/configs/lwmon.h):
  960. I2C_INIT
  961. (Optional). Any commands necessary to enable the I2C
  962. controller or configure ports.
  963. eg: #define I2C_INIT (immr->im_cpm.cp_pbdir |= PB_SCL)
  964. I2C_PORT
  965. (Only for MPC8260 CPU). The I/O port to use (the code
  966. assumes both bits are on the same port). Valid values
  967. are 0..3 for ports A..D.
  968. I2C_ACTIVE
  969. The code necessary to make the I2C data line active
  970. (driven). If the data line is open collector, this
  971. define can be null.
  972. eg: #define I2C_ACTIVE (immr->im_cpm.cp_pbdir |= PB_SDA)
  973. I2C_TRISTATE
  974. The code necessary to make the I2C data line tri-stated
  975. (inactive). If the data line is open collector, this
  976. define can be null.
  977. eg: #define I2C_TRISTATE (immr->im_cpm.cp_pbdir &= ~PB_SDA)
  978. I2C_READ
  979. Code that returns TRUE if the I2C data line is high,
  980. FALSE if it is low.
  981. eg: #define I2C_READ ((immr->im_cpm.cp_pbdat & PB_SDA) != 0)
  982. I2C_SDA(bit)
  983. If <bit> is TRUE, sets the I2C data line high. If it
  984. is FALSE, it clears it (low).
  985. eg: #define I2C_SDA(bit) \
  986. if(bit) immr->im_cpm.cp_pbdat |= PB_SDA; \
  987. else immr->im_cpm.cp_pbdat &= ~PB_SDA
  988. I2C_SCL(bit)
  989. If <bit> is TRUE, sets the I2C clock line high. If it
  990. is FALSE, it clears it (low).
  991. eg: #define I2C_SCL(bit) \
  992. if(bit) immr->im_cpm.cp_pbdat |= PB_SCL; \
  993. else immr->im_cpm.cp_pbdat &= ~PB_SCL
  994. I2C_DELAY
  995. This delay is invoked four times per clock cycle so this
  996. controls the rate of data transfer. The data rate thus
  997. is 1 / (I2C_DELAY * 4). Often defined to be something
  998. like:
  999. #define I2C_DELAY udelay(2)
  1000. CFG_I2C_INIT_BOARD
  1001. When a board is reset during an i2c bus transfer
  1002. chips might think that the current transfer is still
  1003. in progress. On some boards it is possible to access
  1004. the i2c SCLK line directly, either by using the
  1005. processor pin as a GPIO or by having a second pin
  1006. connected to the bus. If this option is defined a
  1007. custom i2c_init_board() routine in boards/xxx/board.c
  1008. is run early in the boot sequence.
  1009. CONFIG_I2CFAST (PPC405GP|PPC405EP only)
  1010. This option enables configuration of bi_iic_fast[] flags
  1011. in u-boot bd_info structure based on u-boot environment
  1012. variable "i2cfast". (see also i2cfast)
  1013. CONFIG_I2C_MULTI_BUS
  1014. This option allows the use of multiple I2C buses, each of which
  1015. must have a controller. At any point in time, only one bus is
  1016. active. To switch to a different bus, use the 'i2c dev' command.
  1017. Note that bus numbering is zero-based.
  1018. CFG_I2C_NOPROBES
  1019. This option specifies a list of I2C devices that will be skipped
  1020. when the 'i2c probe' command is issued (or 'iprobe' using the legacy
  1021. command). If CONFIG_I2C_MULTI_BUS is set, specify a list of bus-device
  1022. pairs. Otherwise, specify a 1D array of device addresses
  1023. e.g.
  1024. #undef CONFIG_I2C_MULTI_BUS
  1025. #define CFG_I2C_NOPROBES {0x50,0x68}
  1026. will skip addresses 0x50 and 0x68 on a board with one I2C bus
  1027. #define CONFIG_I2C_MULTI_BUS
  1028. #define CFG_I2C_MULTI_NOPROBES {{0,0x50},{0,0x68},{1,0x54}}
  1029. will skip addresses 0x50 and 0x68 on bus 0 and address 0x54 on bus 1
  1030. CFG_SPD_BUS_NUM
  1031. If defined, then this indicates the I2C bus number for DDR SPD.
  1032. If not defined, then U-Boot assumes that SPD is on I2C bus 0.
  1033. CFG_RTC_BUS_NUM
  1034. If defined, then this indicates the I2C bus number for the RTC.
  1035. If not defined, then U-Boot assumes that RTC is on I2C bus 0.
  1036. CFG_DTT_BUS_NUM
  1037. If defined, then this indicates the I2C bus number for the DTT.
  1038. If not defined, then U-Boot assumes that DTT is on I2C bus 0.
  1039. CONFIG_FSL_I2C
  1040. Define this option if you want to use Freescale's I2C driver in
  1041. drivers/fsl_i2c.c.
  1042. - SPI Support: CONFIG_SPI
  1043. Enables SPI driver (so far only tested with
  1044. SPI EEPROM, also an instance works with Crystal A/D and
  1045. D/As on the SACSng board)
  1046. CONFIG_SPI_X
  1047. Enables extended (16-bit) SPI EEPROM addressing.
  1048. (symmetrical to CONFIG_I2C_X)
  1049. CONFIG_SOFT_SPI
  1050. Enables a software (bit-bang) SPI driver rather than
  1051. using hardware support. This is a general purpose
  1052. driver that only requires three general I/O port pins
  1053. (two outputs, one input) to function. If this is
  1054. defined, the board configuration must define several
  1055. SPI configuration items (port pins to use, etc). For
  1056. an example, see include/configs/sacsng.h.
  1057. - FPGA Support: CONFIG_FPGA_COUNT
  1058. Specify the number of FPGA devices to support.
  1059. CONFIG_FPGA
  1060. Used to specify the types of FPGA devices. For example,
  1061. #define CONFIG_FPGA CFG_XILINX_VIRTEX2
  1062. CFG_FPGA_PROG_FEEDBACK
  1063. Enable printing of hash marks during FPGA configuration.
  1064. CFG_FPGA_CHECK_BUSY
  1065. Enable checks on FPGA configuration interface busy
  1066. status by the configuration function. This option
  1067. will require a board or device specific function to
  1068. be written.
  1069. CONFIG_FPGA_DELAY
  1070. If defined, a function that provides delays in the FPGA
  1071. configuration driver.
  1072. CFG_FPGA_CHECK_CTRLC
  1073. Allow Control-C to interrupt FPGA configuration
  1074. CFG_FPGA_CHECK_ERROR
  1075. Check for configuration errors during FPGA bitfile
  1076. loading. For example, abort during Virtex II
  1077. configuration if the INIT_B line goes low (which
  1078. indicated a CRC error).
  1079. CFG_FPGA_WAIT_INIT
  1080. Maximum time to wait for the INIT_B line to deassert
  1081. after PROB_B has been deasserted during a Virtex II
  1082. FPGA configuration sequence. The default time is 500
  1083. mS.
  1084. CFG_FPGA_WAIT_BUSY
  1085. Maximum time to wait for BUSY to deassert during
  1086. Virtex II FPGA configuration. The default is 5 mS.
  1087. CFG_FPGA_WAIT_CONFIG
  1088. Time to wait after FPGA configuration. The default is
  1089. 200 mS.
  1090. - Configuration Management:
  1091. CONFIG_IDENT_STRING
  1092. If defined, this string will be added to the U-Boot
  1093. version information (U_BOOT_VERSION)
  1094. - Vendor Parameter Protection:
  1095. U-Boot considers the values of the environment
  1096. variables "serial#" (Board Serial Number) and
  1097. "ethaddr" (Ethernet Address) to be parameters that
  1098. are set once by the board vendor / manufacturer, and
  1099. protects these variables from casual modification by
  1100. the user. Once set, these variables are read-only,
  1101. and write or delete attempts are rejected. You can
  1102. change this behviour:
  1103. If CONFIG_ENV_OVERWRITE is #defined in your config
  1104. file, the write protection for vendor parameters is
  1105. completely disabled. Anybody can change or delete
  1106. these parameters.
  1107. Alternatively, if you #define _both_ CONFIG_ETHADDR
  1108. _and_ CONFIG_OVERWRITE_ETHADDR_ONCE, a default
  1109. ethernet address is installed in the environment,
  1110. which can be changed exactly ONCE by the user. [The
  1111. serial# is unaffected by this, i. e. it remains
  1112. read-only.]
  1113. - Protected RAM:
  1114. CONFIG_PRAM
  1115. Define this variable to enable the reservation of
  1116. "protected RAM", i. e. RAM which is not overwritten
  1117. by U-Boot. Define CONFIG_PRAM to hold the number of
  1118. kB you want to reserve for pRAM. You can overwrite
  1119. this default value by defining an environment
  1120. variable "pram" to the number of kB you want to
  1121. reserve. Note that the board info structure will
  1122. still show the full amount of RAM. If pRAM is
  1123. reserved, a new environment variable "mem" will
  1124. automatically be defined to hold the amount of
  1125. remaining RAM in a form that can be passed as boot
  1126. argument to Linux, for instance like that:
  1127. setenv bootargs ... mem=\${mem}
  1128. saveenv
  1129. This way you can tell Linux not to use this memory,
  1130. either, which results in a memory region that will
  1131. not be affected by reboots.
  1132. *WARNING* If your board configuration uses automatic
  1133. detection of the RAM size, you must make sure that
  1134. this memory test is non-destructive. So far, the
  1135. following board configurations are known to be
  1136. "pRAM-clean":
  1137. ETX094, IVMS8, IVML24, SPD8xx, TQM8xxL,
  1138. HERMES, IP860, RPXlite, LWMON, LANTEC,
  1139. PCU_E, FLAGADM, TQM8260
  1140. - Error Recovery:
  1141. CONFIG_PANIC_HANG
  1142. Define this variable to stop the system in case of a
  1143. fatal error, so that you have to reset it manually.
  1144. This is probably NOT a good idea for an embedded
  1145. system where you want to system to reboot
  1146. automatically as fast as possible, but it may be
  1147. useful during development since you can try to debug
  1148. the conditions that lead to the situation.
  1149. CONFIG_NET_RETRY_COUNT
  1150. This variable defines the number of retries for
  1151. network operations like ARP, RARP, TFTP, or BOOTP
  1152. before giving up the operation. If not defined, a
  1153. default value of 5 is used.
  1154. - Command Interpreter:
  1155. CONFIG_AUTO_COMPLETE
  1156. Enable auto completion of commands using TAB.
  1157. Note that this feature has NOT been implemented yet
  1158. for the "hush" shell.
  1159. CFG_HUSH_PARSER
  1160. Define this variable to enable the "hush" shell (from
  1161. Busybox) as command line interpreter, thus enabling
  1162. powerful command line syntax like
  1163. if...then...else...fi conditionals or `&&' and '||'
  1164. constructs ("shell scripts").
  1165. If undefined, you get the old, much simpler behaviour
  1166. with a somewhat smaller memory footprint.
  1167. CFG_PROMPT_HUSH_PS2
  1168. This defines the secondary prompt string, which is
  1169. printed when the command interpreter needs more input
  1170. to complete a command. Usually "> ".
  1171. Note:
  1172. In the current implementation, the local variables
  1173. space and global environment variables space are
  1174. separated. Local variables are those you define by
  1175. simply typing `name=value'. To access a local
  1176. variable later on, you have write `$name' or
  1177. `${name}'; to execute the contents of a variable
  1178. directly type `$name' at the command prompt.
  1179. Global environment variables are those you use
  1180. setenv/printenv to work with. To run a command stored
  1181. in such a variable, you need to use the run command,
  1182. and you must not use the '$' sign to access them.
  1183. To store commands and special characters in a
  1184. variable, please use double quotation marks
  1185. surrounding the whole text of the variable, instead
  1186. of the backslashes before semicolons and special
  1187. symbols.
  1188. - Commandline Editing and History:
  1189. CONFIG_CMDLINE_EDITING
  1190. Enable editiong and History functions for interactive
  1191. commandline input operations
  1192. - Default Environment:
  1193. CONFIG_EXTRA_ENV_SETTINGS
  1194. Define this to contain any number of null terminated
  1195. strings (variable = value pairs) that will be part of
  1196. the default environment compiled into the boot image.
  1197. For example, place something like this in your
  1198. board's config file:
  1199. #define CONFIG_EXTRA_ENV_SETTINGS \
  1200. "myvar1=value1\0" \
  1201. "myvar2=value2\0"
  1202. Warning: This method is based on knowledge about the
  1203. internal format how the environment is stored by the
  1204. U-Boot code. This is NOT an official, exported
  1205. interface! Although it is unlikely that this format
  1206. will change soon, there is no guarantee either.
  1207. You better know what you are doing here.
  1208. Note: overly (ab)use of the default environment is
  1209. discouraged. Make sure to check other ways to preset
  1210. the environment like the autoscript function or the
  1211. boot command first.
  1212. - DataFlash Support:
  1213. CONFIG_HAS_DATAFLASH
  1214. Defining this option enables DataFlash features and
  1215. allows to read/write in Dataflash via the standard
  1216. commands cp, md...
  1217. - SystemACE Support:
  1218. CONFIG_SYSTEMACE
  1219. Adding this option adds support for Xilinx SystemACE
  1220. chips attached via some sort of local bus. The address
  1221. of the chip must alsh be defined in the
  1222. CFG_SYSTEMACE_BASE macro. For example:
  1223. #define CONFIG_SYSTEMACE
  1224. #define CFG_SYSTEMACE_BASE 0xf0000000
  1225. When SystemACE support is added, the "ace" device type
  1226. becomes available to the fat commands, i.e. fatls.
  1227. - TFTP Fixed UDP Port:
  1228. CONFIG_TFTP_PORT
  1229. If this is defined, the environment variable tftpsrcp
  1230. is used to supply the TFTP UDP source port value.
  1231. If tftpsrcp isn't defined, the normal pseudo-random port
  1232. number generator is used.
  1233. Also, the environment variable tftpdstp is used to supply
  1234. the TFTP UDP destination port value. If tftpdstp isn't
  1235. defined, the normal port 69 is used.
  1236. The purpose for tftpsrcp is to allow a TFTP server to
  1237. blindly start the TFTP transfer using the pre-configured
  1238. target IP address and UDP port. This has the effect of
  1239. "punching through" the (Windows XP) firewall, allowing
  1240. the remainder of the TFTP transfer to proceed normally.
  1241. A better solution is to properly configure the firewall,
  1242. but sometimes that is not allowed.
  1243. - Show boot progress:
  1244. CONFIG_SHOW_BOOT_PROGRESS
  1245. Defining this option allows to add some board-
  1246. specific code (calling a user-provided function
  1247. "show_boot_progress(int)") that enables you to show
  1248. the system's boot progress on some display (for
  1249. example, some LED's) on your board. At the moment,
  1250. the following checkpoints are implemented:
  1251. Arg Where When
  1252. 1 common/cmd_bootm.c before attempting to boot an image
  1253. -1 common/cmd_bootm.c Image header has bad magic number
  1254. 2 common/cmd_bootm.c Image header has correct magic number
  1255. -2 common/cmd_bootm.c Image header has bad checksum
  1256. 3 common/cmd_bootm.c Image header has correct checksum
  1257. -3 common/cmd_bootm.c Image data has bad checksum
  1258. 4 common/cmd_bootm.c Image data has correct checksum
  1259. -4 common/cmd_bootm.c Image is for unsupported architecture
  1260. 5 common/cmd_bootm.c Architecture check OK
  1261. -5 common/cmd_bootm.c Wrong Image Type (not kernel, multi, standalone)
  1262. 6 common/cmd_bootm.c Image Type check OK
  1263. -6 common/cmd_bootm.c gunzip uncompression error
  1264. -7 common/cmd_bootm.c Unimplemented compression type
  1265. 7 common/cmd_bootm.c Uncompression OK
  1266. -8 common/cmd_bootm.c Wrong Image Type (not kernel, multi, standalone)
  1267. 8 common/cmd_bootm.c Image Type check OK
  1268. -9 common/cmd_bootm.c Unsupported OS (not Linux, BSD, VxWorks, QNX)
  1269. 9 common/cmd_bootm.c Start initial ramdisk verification
  1270. -10 common/cmd_bootm.c Ramdisk header has bad magic number
  1271. -11 common/cmd_bootm.c Ramdisk header has bad checksum
  1272. 10 common/cmd_bootm.c Ramdisk header is OK
  1273. -12 common/cmd_bootm.c Ramdisk data has bad checksum
  1274. 11 common/cmd_bootm.c Ramdisk data has correct checksum
  1275. 12 common/cmd_bootm.c Ramdisk verification complete, start loading
  1276. -13 common/cmd_bootm.c Wrong Image Type (not PPC Linux Ramdisk)
  1277. 13 common/cmd_bootm.c Start multifile image verification
  1278. 14 common/cmd_bootm.c No initial ramdisk, no multifile, continue.
  1279. 15 common/cmd_bootm.c All preparation done, transferring control to OS
  1280. -30 lib_ppc/board.c Fatal error, hang the system
  1281. -31 post/post.c POST test failed, detected by post_output_backlog()
  1282. -32 post/post.c POST test failed, detected by post_run_single()
  1283. 34 common/cmd_doc.c before loading a Image from a DOC device
  1284. -35 common/cmd_doc.c Bad usage of "doc" command
  1285. 35 common/cmd_doc.c correct usage of "doc" command
  1286. -36 common/cmd_doc.c No boot device
  1287. 36 common/cmd_doc.c correct boot device
  1288. -37 common/cmd_doc.c Unknown Chip ID on boot device
  1289. 37 common/cmd_doc.c correct chip ID found, device available
  1290. -38 common/cmd_doc.c Read Error on boot device
  1291. 38 common/cmd_doc.c reading Image header from DOC device OK
  1292. -39 common/cmd_doc.c Image header has bad magic number
  1293. 39 common/cmd_doc.c Image header has correct magic number
  1294. -40 common/cmd_doc.c Error reading Image from DOC device
  1295. 40 common/cmd_doc.c Image header has correct magic number
  1296. 41 common/cmd_ide.c before loading a Image from a IDE device
  1297. -42 common/cmd_ide.c Bad usage of "ide" command
  1298. 42 common/cmd_ide.c correct usage of "ide" command
  1299. -43 common/cmd_ide.c No boot device
  1300. 43 common/cmd_ide.c boot device found
  1301. -44 common/cmd_ide.c Device not available
  1302. 44 common/cmd_ide.c Device available
  1303. -45 common/cmd_ide.c wrong partition selected
  1304. 45 common/cmd_ide.c partition selected
  1305. -46 common/cmd_ide.c Unknown partition table
  1306. 46 common/cmd_ide.c valid partition table found
  1307. -47 common/cmd_ide.c Invalid partition type
  1308. 47 common/cmd_ide.c correct partition type
  1309. -48 common/cmd_ide.c Error reading Image Header on boot device
  1310. 48 common/cmd_ide.c reading Image Header from IDE device OK
  1311. -49 common/cmd_ide.c Image header has bad magic number
  1312. 49 common/cmd_ide.c Image header has correct magic number
  1313. -50 common/cmd_ide.c Image header has bad checksum
  1314. 50 common/cmd_ide.c Image header has correct checksum
  1315. -51 common/cmd_ide.c Error reading Image from IDE device
  1316. 51 common/cmd_ide.c reading Image from IDE device OK
  1317. 52 common/cmd_nand.c before loading a Image from a NAND device
  1318. -53 common/cmd_nand.c Bad usage of "nand" command
  1319. 53 common/cmd_nand.c correct usage of "nand" command
  1320. -54 common/cmd_nand.c No boot device
  1321. 54 common/cmd_nand.c boot device found
  1322. -55 common/cmd_nand.c Unknown Chip ID on boot device
  1323. 55 common/cmd_nand.c correct chip ID found, device available
  1324. -56 common/cmd_nand.c Error reading Image Header on boot device
  1325. 56 common/cmd_nand.c reading Image Header from NAND device OK
  1326. -57 common/cmd_nand.c Image header has bad magic number
  1327. 57 common/cmd_nand.c Image header has correct magic number
  1328. -58 common/cmd_nand.c Error reading Image from NAND device
  1329. 58 common/cmd_nand.c reading Image from NAND device OK
  1330. -60 common/env_common.c Environment has a bad CRC, using default
  1331. 64 net/eth.c starting with Ethernetconfiguration.
  1332. -64 net/eth.c no Ethernet found.
  1333. 65 net/eth.c Ethernet found.
  1334. -80 common/cmd_net.c usage wrong
  1335. 80 common/cmd_net.c before calling NetLoop()
  1336. -81 common/cmd_net.c some error in NetLoop() occured
  1337. 81 common/cmd_net.c NetLoop() back without error
  1338. -82 common/cmd_net.c size == 0 (File with size 0 loaded)
  1339. 82 common/cmd_net.c trying automatic boot
  1340. 83 common/cmd_net.c running autoscript
  1341. -83 common/cmd_net.c some error in automatic boot or autoscript
  1342. 84 common/cmd_net.c end without errors
  1343. Modem Support:
  1344. --------------
  1345. [so far only for SMDK2400 and TRAB boards]
  1346. - Modem support endable:
  1347. CONFIG_MODEM_SUPPORT
  1348. - RTS/CTS Flow control enable:
  1349. CONFIG_HWFLOW
  1350. - Modem debug support:
  1351. CONFIG_MODEM_SUPPORT_DEBUG
  1352. Enables debugging stuff (char screen[1024], dbg())
  1353. for modem support. Useful only with BDI2000.
  1354. - Interrupt support (PPC):
  1355. There are common interrupt_init() and timer_interrupt()
  1356. for all PPC archs. interrupt_init() calls interrupt_init_cpu()
  1357. for cpu specific initialization. interrupt_init_cpu()
  1358. should set decrementer_count to appropriate value. If
  1359. cpu resets decrementer automatically after interrupt
  1360. (ppc4xx) it should set decrementer_count to zero.
  1361. timer_interrupt() calls timer_interrupt_cpu() for cpu
  1362. specific handling. If board has watchdog / status_led
  1363. / other_activity_monitor it works automatically from
  1364. general timer_interrupt().
  1365. - General:
  1366. In the target system modem support is enabled when a
  1367. specific key (key combination) is pressed during
  1368. power-on. Otherwise U-Boot will boot normally
  1369. (autoboot). The key_pressed() fuction is called from
  1370. board_init(). Currently key_pressed() is a dummy
  1371. function, returning 1 and thus enabling modem
  1372. initialization.
  1373. If there are no modem init strings in the
  1374. environment, U-Boot proceed to autoboot; the
  1375. previous output (banner, info printfs) will be
  1376. supressed, though.
  1377. See also: doc/README.Modem
  1378. Configuration Settings:
  1379. -----------------------
  1380. - CFG_LONGHELP: Defined when you want long help messages included;
  1381. undefine this when you're short of memory.
  1382. - CFG_PROMPT: This is what U-Boot prints on the console to
  1383. prompt for user input.
  1384. - CFG_CBSIZE: Buffer size for input from the Console
  1385. - CFG_PBSIZE: Buffer size for Console output
  1386. - CFG_MAXARGS: max. Number of arguments accepted for monitor commands
  1387. - CFG_BARGSIZE: Buffer size for Boot Arguments which are passed to
  1388. the application (usually a Linux kernel) when it is
  1389. booted
  1390. - CFG_BAUDRATE_TABLE:
  1391. List of legal baudrate settings for this board.
  1392. - CFG_CONSOLE_INFO_QUIET
  1393. Suppress display of console information at boot.
  1394. - CFG_CONSOLE_IS_IN_ENV
  1395. If the board specific function
  1396. extern int overwrite_console (void);
  1397. returns 1, the stdin, stderr and stdout are switched to the
  1398. serial port, else the settings in the environment are used.
  1399. - CFG_CONSOLE_OVERWRITE_ROUTINE
  1400. Enable the call to overwrite_console().
  1401. - CFG_CONSOLE_ENV_OVERWRITE
  1402. Enable overwrite of previous console environment settings.
  1403. - CFG_MEMTEST_START, CFG_MEMTEST_END:
  1404. Begin and End addresses of the area used by the
  1405. simple memory test.
  1406. - CFG_ALT_MEMTEST:
  1407. Enable an alternate, more extensive memory test.
  1408. - CFG_MEMTEST_SCRATCH:
  1409. Scratch address used by the alternate memory test
  1410. You only need to set this if address zero isn't writeable
  1411. - CFG_TFTP_LOADADDR:
  1412. Default load address for network file downloads
  1413. - CFG_LOADS_BAUD_CHANGE:
  1414. Enable temporary baudrate change while serial download
  1415. - CFG_SDRAM_BASE:
  1416. Physical start address of SDRAM. _Must_ be 0 here.
  1417. - CFG_MBIO_BASE:
  1418. Physical start address of Motherboard I/O (if using a
  1419. Cogent motherboard)
  1420. - CFG_FLASH_BASE:
  1421. Physical start address of Flash memory.
  1422. - CFG_MONITOR_BASE:
  1423. Physical start address of boot monitor code (set by
  1424. make config files to be same as the text base address
  1425. (TEXT_BASE) used when linking) - same as
  1426. CFG_FLASH_BASE when booting from flash.
  1427. - CFG_MONITOR_LEN:
  1428. Size of memory reserved for monitor code, used to
  1429. determine _at_compile_time_ (!) if the environment is
  1430. embedded within the U-Boot image, or in a separate
  1431. flash sector.
  1432. - CFG_MALLOC_LEN:
  1433. Size of DRAM reserved for malloc() use.
  1434. - CFG_BOOTM_LEN:
  1435. Normally compressed uImages are limited to an
  1436. uncompressed size of 8 MBytes. If this is not enough,
  1437. you can define CFG_BOOTM_LEN in your board config file
  1438. to adjust this setting to your needs.
  1439. - CFG_BOOTMAPSZ:
  1440. Maximum size of memory mapped by the startup code of
  1441. the Linux kernel; all data that must be processed by
  1442. the Linux kernel (bd_info, boot arguments, eventually
  1443. initrd image) must be put below this limit.
  1444. - CFG_MAX_FLASH_BANKS:
  1445. Max number of Flash memory banks
  1446. - CFG_MAX_FLASH_SECT:
  1447. Max number of sectors on a Flash chip
  1448. - CFG_FLASH_ERASE_TOUT:
  1449. Timeout for Flash erase operations (in ms)
  1450. - CFG_FLASH_WRITE_TOUT:
  1451. Timeout for Flash write operations (in ms)
  1452. - CFG_FLASH_LOCK_TOUT
  1453. Timeout for Flash set sector lock bit operation (in ms)
  1454. - CFG_FLASH_UNLOCK_TOUT
  1455. Timeout for Flash clear lock bits operation (in ms)
  1456. - CFG_FLASH_PROTECTION
  1457. If defined, hardware flash sectors protection is used
  1458. instead of U-Boot software protection.
  1459. - CFG_DIRECT_FLASH_TFTP:
  1460. Enable TFTP transfers directly to flash memory;
  1461. without this option such a download has to be
  1462. performed in two steps: (1) download to RAM, and (2)
  1463. copy from RAM to flash.
  1464. The two-step approach is usually more reliable, since
  1465. you can check if the download worked before you erase
  1466. the flash, but in some situations (when sytem RAM is
  1467. too limited to allow for a tempory copy of the
  1468. downloaded image) this option may be very useful.
  1469. - CFG_FLASH_CFI:
  1470. Define if the flash driver uses extra elements in the
  1471. common flash structure for storing flash geometry.
  1472. - CFG_FLASH_CFI_DRIVER
  1473. This option also enables the building of the cfi_flash driver
  1474. in the drivers directory
  1475. - CFG_FLASH_QUIET_TEST
  1476. If this option is defined, the common CFI flash doesn't
  1477. print it's warning upon not recognized FLASH banks. This
  1478. is useful, if some of the configured banks are only
  1479. optionally available.
  1480. - CFG_RX_ETH_BUFFER:
  1481. Defines the number of ethernet receive buffers. On some
  1482. ethernet controllers it is recommended to set this value
  1483. to 8 or even higher (EEPRO100 or 405 EMAC), since all
  1484. buffers can be full shortly after enabling the interface
  1485. on high ethernet traffic.
  1486. Defaults to 4 if not defined.
  1487. The following definitions that deal with the placement and management
  1488. of environment data (variable area); in general, we support the
  1489. following configurations:
  1490. - CFG_ENV_IS_IN_FLASH:
  1491. Define this if the environment is in flash memory.
  1492. a) The environment occupies one whole flash sector, which is
  1493. "embedded" in the text segment with the U-Boot code. This
  1494. happens usually with "bottom boot sector" or "top boot
  1495. sector" type flash chips, which have several smaller
  1496. sectors at the start or the end. For instance, such a
  1497. layout can have sector sizes of 8, 2x4, 16, Nx32 kB. In
  1498. such a case you would place the environment in one of the
  1499. 4 kB sectors - with U-Boot code before and after it. With
  1500. "top boot sector" type flash chips, you would put the
  1501. environment in one of the last sectors, leaving a gap
  1502. between U-Boot and the environment.
  1503. - CFG_ENV_OFFSET:
  1504. Offset of environment data (variable area) to the
  1505. beginning of flash memory; for instance, with bottom boot
  1506. type flash chips the second sector can be used: the offset
  1507. for this sector is given here.
  1508. CFG_ENV_OFFSET is used relative to CFG_FLASH_BASE.
  1509. - CFG_ENV_ADDR:
  1510. This is just another way to specify the start address of
  1511. the flash sector containing the environment (instead of
  1512. CFG_ENV_OFFSET).
  1513. - CFG_ENV_SECT_SIZE:
  1514. Size of the sector containing the environment.
  1515. b) Sometimes flash chips have few, equal sized, BIG sectors.
  1516. In such a case you don't want to spend a whole sector for
  1517. the environment.
  1518. - CFG_ENV_SIZE:
  1519. If you use this in combination with CFG_ENV_IS_IN_FLASH
  1520. and CFG_ENV_SECT_SIZE, you can specify to use only a part
  1521. of this flash sector for the environment. This saves
  1522. memory for the RAM copy of the environment.
  1523. It may also save flash memory if you decide to use this
  1524. when your environment is "embedded" within U-Boot code,
  1525. since then the remainder of the flash sector could be used
  1526. for U-Boot code. It should be pointed out that this is
  1527. STRONGLY DISCOURAGED from a robustness point of view:
  1528. updating the environment in flash makes it always
  1529. necessary to erase the WHOLE sector. If something goes
  1530. wrong before the contents has been restored from a copy in
  1531. RAM, your target system will be dead.
  1532. - CFG_ENV_ADDR_REDUND
  1533. CFG_ENV_SIZE_REDUND
  1534. These settings describe a second storage area used to hold
  1535. a redundand copy of the environment data, so that there is
  1536. a valid backup copy in case there is a power failure during
  1537. a "saveenv" operation.
  1538. BE CAREFUL! Any changes to the flash layout, and some changes to the
  1539. source code will make it necessary to adapt <board>/u-boot.lds*
  1540. accordingly!
  1541. - CFG_ENV_IS_IN_NVRAM:
  1542. Define this if you have some non-volatile memory device
  1543. (NVRAM, battery buffered SRAM) which you want to use for the
  1544. environment.
  1545. - CFG_ENV_ADDR:
  1546. - CFG_ENV_SIZE:
  1547. These two #defines are used to determin the memory area you
  1548. want to use for environment. It is assumed that this memory
  1549. can just be read and written to, without any special
  1550. provision.
  1551. BE CAREFUL! The first access to the environment happens quite early
  1552. in U-Boot initalization (when we try to get the setting of for the
  1553. console baudrate). You *MUST* have mappend your NVRAM area then, or
  1554. U-Boot will hang.
  1555. Please note that even with NVRAM we still use a copy of the
  1556. environment in RAM: we could work on NVRAM directly, but we want to
  1557. keep settings there always unmodified except somebody uses "saveenv"
  1558. to save the current settings.
  1559. - CFG_ENV_IS_IN_EEPROM:
  1560. Use this if you have an EEPROM or similar serial access
  1561. device and a driver for it.
  1562. - CFG_ENV_OFFSET:
  1563. - CFG_ENV_SIZE:
  1564. These two #defines specify the offset and size of the
  1565. environment area within the total memory of your EEPROM.
  1566. - CFG_I2C_EEPROM_ADDR:
  1567. If defined, specified the chip address of the EEPROM device.
  1568. The default address is zero.
  1569. - CFG_EEPROM_PAGE_WRITE_BITS:
  1570. If defined, the number of bits used to address bytes in a
  1571. single page in the EEPROM device. A 64 byte page, for example
  1572. would require six bits.
  1573. - CFG_EEPROM_PAGE_WRITE_DELAY_MS:
  1574. If defined, the number of milliseconds to delay between
  1575. page writes. The default is zero milliseconds.
  1576. - CFG_I2C_EEPROM_ADDR_LEN:
  1577. The length in bytes of the EEPROM memory array address. Note
  1578. that this is NOT the chip address length!
  1579. - CFG_I2C_EEPROM_ADDR_OVERFLOW:
  1580. EEPROM chips that implement "address overflow" are ones
  1581. like Catalyst 24WC04/08/16 which has 9/10/11 bits of
  1582. address and the extra bits end up in the "chip address" bit
  1583. slots. This makes a 24WC08 (1Kbyte) chip look like four 256
  1584. byte chips.
  1585. Note that we consider the length of the address field to
  1586. still be one byte because the extra address bits are hidden
  1587. in the chip address.
  1588. - CFG_EEPROM_SIZE:
  1589. The size in bytes of the EEPROM device.
  1590. - CFG_ENV_IS_IN_DATAFLASH:
  1591. Define this if you have a DataFlash memory device which you
  1592. want to use for the environment.
  1593. - CFG_ENV_OFFSET:
  1594. - CFG_ENV_ADDR:
  1595. - CFG_ENV_SIZE:
  1596. These three #defines specify the offset and size of the
  1597. environment area within the total memory of your DataFlash placed
  1598. at the specified address.
  1599. - CFG_ENV_IS_IN_NAND:
  1600. Define this if you have a NAND device which you want to use
  1601. for the environment.
  1602. - CFG_ENV_OFFSET:
  1603. - CFG_ENV_SIZE:
  1604. These two #defines specify the offset and size of the environment
  1605. area within the first NAND device.
  1606. - CFG_ENV_OFFSET_REDUND
  1607. This setting describes a second storage area of CFG_ENV_SIZE
  1608. size used to hold a redundant copy of the environment data,
  1609. so that there is a valid backup copy in case there is a
  1610. power failure during a "saveenv" operation.
  1611. Note: CFG_ENV_OFFSET and CFG_ENV_OFFSET_REDUND must be aligned
  1612. to a block boundary, and CFG_ENV_SIZE must be a multiple of
  1613. the NAND devices block size.
  1614. - CFG_SPI_INIT_OFFSET
  1615. Defines offset to the initial SPI buffer area in DPRAM. The
  1616. area is used at an early stage (ROM part) if the environment
  1617. is configured to reside in the SPI EEPROM: We need a 520 byte
  1618. scratch DPRAM area. It is used between the two initialization
  1619. calls (spi_init_f() and spi_init_r()). A value of 0xB00 seems
  1620. to be a good choice since it makes it far enough from the
  1621. start of the data area as well as from the stack pointer.
  1622. Please note that the environment is read-only as long as the monitor
  1623. has been relocated to RAM and a RAM copy of the environment has been
  1624. created; also, when using EEPROM you will have to use getenv_r()
  1625. until then to read environment variables.
  1626. The environment is protected by a CRC32 checksum. Before the monitor
  1627. is relocated into RAM, as a result of a bad CRC you will be working
  1628. with the compiled-in default environment - *silently*!!! [This is
  1629. necessary, because the first environment variable we need is the
  1630. "baudrate" setting for the console - if we have a bad CRC, we don't
  1631. have any device yet where we could complain.]
  1632. Note: once the monitor has been relocated, then it will complain if
  1633. the default environment is used; a new CRC is computed as soon as you
  1634. use the "saveenv" command to store a valid environment.
  1635. - CFG_FAULT_ECHO_LINK_DOWN:
  1636. Echo the inverted Ethernet link state to the fault LED.
  1637. Note: If this option is active, then CFG_FAULT_MII_ADDR
  1638. also needs to be defined.
  1639. - CFG_FAULT_MII_ADDR:
  1640. MII address of the PHY to check for the Ethernet link state.
  1641. - CFG_64BIT_VSPRINTF:
  1642. Makes vsprintf (and all *printf functions) support printing
  1643. of 64bit values by using the L quantifier
  1644. - CFG_64BIT_STRTOUL:
  1645. Adds simple_strtoull that returns a 64bit value
  1646. Low Level (hardware related) configuration options:
  1647. ---------------------------------------------------
  1648. - CFG_CACHELINE_SIZE:
  1649. Cache Line Size of the CPU.
  1650. - CFG_DEFAULT_IMMR:
  1651. Default address of the IMMR after system reset.
  1652. Needed on some 8260 systems (MPC8260ADS, PQ2FADS-ZU,
  1653. and RPXsuper) to be able to adjust the position of
  1654. the IMMR register after a reset.
  1655. - Floppy Disk Support:
  1656. CFG_FDC_DRIVE_NUMBER
  1657. the default drive number (default value 0)
  1658. CFG_ISA_IO_STRIDE
  1659. defines the spacing between fdc chipset registers
  1660. (default value 1)
  1661. CFG_ISA_IO_OFFSET
  1662. defines the offset of register from address. It
  1663. depends on which part of the data bus is connected to
  1664. the fdc chipset. (default value 0)
  1665. If CFG_ISA_IO_STRIDE CFG_ISA_IO_OFFSET and
  1666. CFG_FDC_DRIVE_NUMBER are undefined, they take their
  1667. default value.
  1668. if CFG_FDC_HW_INIT is defined, then the function
  1669. fdc_hw_init() is called at the beginning of the FDC
  1670. setup. fdc_hw_init() must be provided by the board
  1671. source code. It is used to make hardware dependant
  1672. initializations.
  1673. - CFG_IMMR: Physical address of the Internal Memory.
  1674. DO NOT CHANGE unless you know exactly what you're
  1675. doing! (11-4) [MPC8xx/82xx systems only]
  1676. - CFG_INIT_RAM_ADDR:
  1677. Start address of memory area that can be used for
  1678. initial data and stack; please note that this must be
  1679. writable memory that is working WITHOUT special
  1680. initialization, i. e. you CANNOT use normal RAM which
  1681. will become available only after programming the
  1682. memory controller and running certain initialization
  1683. sequences.
  1684. U-Boot uses the following memory types:
  1685. - MPC8xx and MPC8260: IMMR (internal memory of the CPU)
  1686. - MPC824X: data cache
  1687. - PPC4xx: data cache
  1688. - CFG_GBL_DATA_OFFSET:
  1689. Offset of the initial data structure in the memory
  1690. area defined by CFG_INIT_RAM_ADDR. Usually
  1691. CFG_GBL_DATA_OFFSET is chosen such that the initial
  1692. data is located at the end of the available space
  1693. (sometimes written as (CFG_INIT_RAM_END -
  1694. CFG_INIT_DATA_SIZE), and the initial stack is just
  1695. below that area (growing from (CFG_INIT_RAM_ADDR +
  1696. CFG_GBL_DATA_OFFSET) downward.
  1697. Note:
  1698. On the MPC824X (or other systems that use the data
  1699. cache for initial memory) the address chosen for
  1700. CFG_INIT_RAM_ADDR is basically arbitrary - it must
  1701. point to an otherwise UNUSED address space between
  1702. the top of RAM and the start of the PCI space.
  1703. - CFG_SIUMCR: SIU Module Configuration (11-6)
  1704. - CFG_SYPCR: System Protection Control (11-9)
  1705. - CFG_TBSCR: Time Base Status and Control (11-26)
  1706. - CFG_PISCR: Periodic Interrupt Status and Control (11-31)
  1707. - CFG_PLPRCR: PLL, Low-Power, and Reset Control Register (15-30)
  1708. - CFG_SCCR: System Clock and reset Control Register (15-27)
  1709. - CFG_OR_TIMING_SDRAM:
  1710. SDRAM timing
  1711. - CFG_MAMR_PTA:
  1712. periodic timer for refresh
  1713. - CFG_DER: Debug Event Register (37-47)
  1714. - FLASH_BASE0_PRELIM, FLASH_BASE1_PRELIM, CFG_REMAP_OR_AM,
  1715. CFG_PRELIM_OR_AM, CFG_OR_TIMING_FLASH, CFG_OR0_REMAP,
  1716. CFG_OR0_PRELIM, CFG_BR0_PRELIM, CFG_OR1_REMAP, CFG_OR1_PRELIM,
  1717. CFG_BR1_PRELIM:
  1718. Memory Controller Definitions: BR0/1 and OR0/1 (FLASH)
  1719. - SDRAM_BASE2_PRELIM, SDRAM_BASE3_PRELIM, SDRAM_MAX_SIZE,
  1720. CFG_OR_TIMING_SDRAM, CFG_OR2_PRELIM, CFG_BR2_PRELIM,
  1721. CFG_OR3_PRELIM, CFG_BR3_PRELIM:
  1722. Memory Controller Definitions: BR2/3 and OR2/3 (SDRAM)
  1723. - CFG_MAMR_PTA, CFG_MPTPR_2BK_4K, CFG_MPTPR_1BK_4K, CFG_MPTPR_2BK_8K,
  1724. CFG_MPTPR_1BK_8K, CFG_MAMR_8COL, CFG_MAMR_9COL:
  1725. Machine Mode Register and Memory Periodic Timer
  1726. Prescaler definitions (SDRAM timing)
  1727. - CFG_I2C_UCODE_PATCH, CFG_I2C_DPMEM_OFFSET [0x1FC0]:
  1728. enable I2C microcode relocation patch (MPC8xx);
  1729. define relocation offset in DPRAM [DSP2]
  1730. - CFG_SPI_UCODE_PATCH, CFG_SPI_DPMEM_OFFSET [0x1FC0]:
  1731. enable SPI microcode relocation patch (MPC8xx);
  1732. define relocation offset in DPRAM [SCC4]
  1733. - CFG_USE_OSCCLK:
  1734. Use OSCM clock mode on MBX8xx board. Be careful,
  1735. wrong setting might damage your board. Read
  1736. doc/README.MBX before setting this variable!
  1737. - CFG_CPM_POST_WORD_ADDR: (MPC8xx, MPC8260 only)
  1738. Offset of the bootmode word in DPRAM used by post
  1739. (Power On Self Tests). This definition overrides
  1740. #define'd default value in commproc.h resp.
  1741. cpm_8260.h.
  1742. - CFG_PCI_SLV_MEM_LOCAL, CFG_PCI_SLV_MEM_BUS, CFG_PICMR0_MASK_ATTRIB,
  1743. CFG_PCI_MSTR0_LOCAL, CFG_PCIMSK0_MASK, CFG_PCI_MSTR1_LOCAL,
  1744. CFG_PCIMSK1_MASK, CFG_PCI_MSTR_MEM_LOCAL, CFG_PCI_MSTR_MEM_BUS,
  1745. CFG_CPU_PCI_MEM_START, CFG_PCI_MSTR_MEM_SIZE, CFG_POCMR0_MASK_ATTRIB,
  1746. CFG_PCI_MSTR_MEMIO_LOCAL, CFG_PCI_MSTR_MEMIO_BUS, CPU_PCI_MEMIO_START,
  1747. CFG_PCI_MSTR_MEMIO_SIZE, CFG_POCMR1_MASK_ATTRIB, CFG_PCI_MSTR_IO_LOCAL,
  1748. CFG_PCI_MSTR_IO_BUS, CFG_CPU_PCI_IO_START, CFG_PCI_MSTR_IO_SIZE,
  1749. CFG_POCMR2_MASK_ATTRIB: (MPC826x only)
  1750. Overrides the default PCI memory map in cpu/mpc8260/pci.c if set.
  1751. - CONFIG_SPD_EEPROM
  1752. Get DDR timing information from an I2C EEPROM. Common with pluggable
  1753. memory modules such as SODIMMs
  1754. SPD_EEPROM_ADDRESS
  1755. I2C address of the SPD EEPROM
  1756. - CFG_SPD_BUS_NUM
  1757. If SPD EEPROM is on an I2C bus other than the first one, specify here.
  1758. Note that the value must resolve to something your driver can deal with.
  1759. - CFG_83XX_DDR_USES_CS0
  1760. Only for 83xx systems. If specified, then DDR should be configured
  1761. using CS0 and CS1 instead of CS2 and CS3.
  1762. - CFG_83XX_DDR_USES_CS0
  1763. Only for 83xx systems. If specified, then DDR should be configured
  1764. using CS0 and CS1 instead of CS2 and CS3.
  1765. - CONFIG_ETHER_ON_FEC[12]
  1766. Define to enable FEC[12] on a 8xx series processor.
  1767. - CONFIG_FEC[12]_PHY
  1768. Define to the hardcoded PHY address which corresponds
  1769. to the given FEC; i. e.
  1770. #define CONFIG_FEC1_PHY 4
  1771. means that the PHY with address 4 is connected to FEC1
  1772. When set to -1, means to probe for first available.
  1773. - CONFIG_FEC[12]_PHY_NORXERR
  1774. The PHY does not have a RXERR line (RMII only).
  1775. (so program the FEC to ignore it).
  1776. - CONFIG_RMII
  1777. Enable RMII mode for all FECs.
  1778. Note that this is a global option, we can't
  1779. have one FEC in standard MII mode and another in RMII mode.
  1780. - CONFIG_CRC32_VERIFY
  1781. Add a verify option to the crc32 command.
  1782. The syntax is:
  1783. => crc32 -v <address> <count> <crc32>
  1784. Where address/count indicate a memory area
  1785. and crc32 is the correct crc32 which the
  1786. area should have.
  1787. - CONFIG_LOOPW
  1788. Add the "loopw" memory command. This only takes effect if
  1789. the memory commands are activated globally (CONFIG_CMD_MEM).
  1790. - CONFIG_MX_CYCLIC
  1791. Add the "mdc" and "mwc" memory commands. These are cyclic
  1792. "md/mw" commands.
  1793. Examples:
  1794. => mdc.b 10 4 500
  1795. This command will print 4 bytes (10,11,12,13) each 500 ms.
  1796. => mwc.l 100 12345678 10
  1797. This command will write 12345678 to address 100 all 10 ms.
  1798. This only takes effect if the memory commands are activated
  1799. globally (CONFIG_CMD_MEM).
  1800. - CONFIG_SKIP_LOWLEVEL_INIT
  1801. - CONFIG_SKIP_RELOCATE_UBOOT
  1802. [ARM only] If these variables are defined, then
  1803. certain low level initializations (like setting up
  1804. the memory controller) are omitted and/or U-Boot does
  1805. not relocate itself into RAM.
  1806. Normally these variables MUST NOT be defined. The
  1807. only exception is when U-Boot is loaded (to RAM) by
  1808. some other boot loader or by a debugger which
  1809. performs these intializations itself.
  1810. Building the Software:
  1811. ======================
  1812. Building U-Boot has been tested in native PPC environments (on a
  1813. PowerBook G3 running LinuxPPC 2000) and in cross environments
  1814. (running RedHat 6.x and 7.x Linux on x86, Solaris 2.6 on a SPARC, and
  1815. NetBSD 1.5 on x86).
  1816. If you are not using a native PPC environment, it is assumed that you
  1817. have the GNU cross compiling tools available in your path and named
  1818. with a prefix of "powerpc-linux-". If this is not the case, (e.g. if
  1819. you are using Monta Vista's Hard Hat Linux CDK 1.2) you must change
  1820. the definition of CROSS_COMPILE in Makefile. For HHL on a 4xx CPU,
  1821. change it to:
  1822. CROSS_COMPILE = ppc_4xx-
  1823. U-Boot is intended to be simple to build. After installing the
  1824. sources you must configure U-Boot for one specific board type. This
  1825. is done by typing:
  1826. make NAME_config
  1827. where "NAME_config" is the name of one of the existing
  1828. configurations; see the main Makefile for supported names.
  1829. Note: for some board special configuration names may exist; check if
  1830. additional information is available from the board vendor; for
  1831. instance, the TQM823L systems are available without (standard)
  1832. or with LCD support. You can select such additional "features"
  1833. when chosing the configuration, i. e.
  1834. make TQM823L_config
  1835. - will configure for a plain TQM823L, i. e. no LCD support
  1836. make TQM823L_LCD_config
  1837. - will configure for a TQM823L with U-Boot console on LCD
  1838. etc.
  1839. Finally, type "make all", and you should get some working U-Boot
  1840. images ready for download to / installation on your system:
  1841. - "u-boot.bin" is a raw binary image
  1842. - "u-boot" is an image in ELF binary format
  1843. - "u-boot.srec" is in Motorola S-Record format
  1844. By default the build is performed locally and the objects are saved
  1845. in the source directory. One of the two methods can be used to change
  1846. this behavior and build U-Boot to some external directory:
  1847. 1. Add O= to the make command line invocations:
  1848. make O=/tmp/build distclean
  1849. make O=/tmp/build NAME_config
  1850. make O=/tmp/build all
  1851. 2. Set environment variable BUILD_DIR to point to the desired location:
  1852. export BUILD_DIR=/tmp/build
  1853. make distclean
  1854. make NAME_config
  1855. make all
  1856. Note that the command line "O=" setting overrides the BUILD_DIR environment
  1857. variable.
  1858. Please be aware that the Makefiles assume you are using GNU make, so
  1859. for instance on NetBSD you might need to use "gmake" instead of
  1860. native "make".
  1861. If the system board that you have is not listed, then you will need
  1862. to port U-Boot to your hardware platform. To do this, follow these
  1863. steps:
  1864. 1. Add a new configuration option for your board to the toplevel
  1865. "Makefile" and to the "MAKEALL" script, using the existing
  1866. entries as examples. Note that here and at many other places
  1867. boards and other names are listed in alphabetical sort order. Please
  1868. keep this order.
  1869. 2. Create a new directory to hold your board specific code. Add any
  1870. files you need. In your board directory, you will need at least
  1871. the "Makefile", a "<board>.c", "flash.c" and "u-boot.lds".
  1872. 3. Create a new configuration file "include/configs/<board>.h" for
  1873. your board
  1874. 3. If you're porting U-Boot to a new CPU, then also create a new
  1875. directory to hold your CPU specific code. Add any files you need.
  1876. 4. Run "make <board>_config" with your new name.
  1877. 5. Type "make", and you should get a working "u-boot.srec" file
  1878. to be installed on your target system.
  1879. 6. Debug and solve any problems that might arise.
  1880. [Of course, this last step is much harder than it sounds.]
  1881. Testing of U-Boot Modifications, Ports to New Hardware, etc.:
  1882. ==============================================================
  1883. If you have modified U-Boot sources (for instance added a new board
  1884. or support for new devices, a new CPU, etc.) you are expected to
  1885. provide feedback to the other developers. The feedback normally takes
  1886. the form of a "patch", i. e. a context diff against a certain (latest
  1887. official or latest in CVS) version of U-Boot sources.
  1888. But before you submit such a patch, please verify that your modifi-
  1889. cation did not break existing code. At least make sure that *ALL* of
  1890. the supported boards compile WITHOUT ANY compiler warnings. To do so,
  1891. just run the "MAKEALL" script, which will configure and build U-Boot
  1892. for ALL supported system. Be warned, this will take a while. You can
  1893. select which (cross) compiler to use by passing a `CROSS_COMPILE'
  1894. environment variable to the script, i. e. to use the cross tools from
  1895. MontaVista's Hard Hat Linux you can type
  1896. CROSS_COMPILE=ppc_8xx- MAKEALL
  1897. or to build on a native PowerPC system you can type
  1898. CROSS_COMPILE=' ' MAKEALL
  1899. When using the MAKEALL script, the default behaviour is to build U-Boot
  1900. in the source directory. This location can be changed by setting the
  1901. BUILD_DIR environment variable. Also, for each target built, the MAKEALL
  1902. script saves two log files (<target>.ERR and <target>.MAKEALL) in the
  1903. <source dir>/LOG directory. This default location can be changed by
  1904. setting the MAKEALL_LOGDIR environment variable. For example:
  1905. export BUILD_DIR=/tmp/build
  1906. export MAKEALL_LOGDIR=/tmp/log
  1907. CROSS_COMPILE=ppc_8xx- MAKEALL
  1908. With the above settings build objects are saved in the /tmp/build, log
  1909. files are saved in the /tmp/log and the source tree remains clean during
  1910. the whole build process.
  1911. See also "U-Boot Porting Guide" below.
  1912. Monitor Commands - Overview:
  1913. ============================
  1914. go - start application at address 'addr'
  1915. run - run commands in an environment variable
  1916. bootm - boot application image from memory
  1917. bootp - boot image via network using BootP/TFTP protocol
  1918. tftpboot- boot image via network using TFTP protocol
  1919. and env variables "ipaddr" and "serverip"
  1920. (and eventually "gatewayip")
  1921. rarpboot- boot image via network using RARP/TFTP protocol
  1922. diskboot- boot from IDE devicebootd - boot default, i.e., run 'bootcmd'
  1923. loads - load S-Record file over serial line
  1924. loadb - load binary file over serial line (kermit mode)
  1925. md - memory display
  1926. mm - memory modify (auto-incrementing)
  1927. nm - memory modify (constant address)
  1928. mw - memory write (fill)
  1929. cp - memory copy
  1930. cmp - memory compare
  1931. crc32 - checksum calculation
  1932. imd - i2c memory display
  1933. imm - i2c memory modify (auto-incrementing)
  1934. inm - i2c memory modify (constant address)
  1935. imw - i2c memory write (fill)
  1936. icrc32 - i2c checksum calculation
  1937. iprobe - probe to discover valid I2C chip addresses
  1938. iloop - infinite loop on address range
  1939. isdram - print SDRAM configuration information
  1940. sspi - SPI utility commands
  1941. base - print or set address offset
  1942. printenv- print environment variables
  1943. setenv - set environment variables
  1944. saveenv - save environment variables to persistent storage
  1945. protect - enable or disable FLASH write protection
  1946. erase - erase FLASH memory
  1947. flinfo - print FLASH memory information
  1948. bdinfo - print Board Info structure
  1949. iminfo - print header information for application image
  1950. coninfo - print console devices and informations
  1951. ide - IDE sub-system
  1952. loop - infinite loop on address range
  1953. loopw - infinite write loop on address range
  1954. mtest - simple RAM test
  1955. icache - enable or disable instruction cache
  1956. dcache - enable or disable data cache
  1957. reset - Perform RESET of the CPU
  1958. echo - echo args to console
  1959. version - print monitor version
  1960. help - print online help
  1961. ? - alias for 'help'
  1962. Monitor Commands - Detailed Description:
  1963. ========================================
  1964. TODO.
  1965. For now: just type "help <command>".
  1966. Environment Variables:
  1967. ======================
  1968. U-Boot supports user configuration using Environment Variables which
  1969. can be made persistent by saving to Flash memory.
  1970. Environment Variables are set using "setenv", printed using
  1971. "printenv", and saved to Flash using "saveenv". Using "setenv"
  1972. without a value can be used to delete a variable from the
  1973. environment. As long as you don't save the environment you are
  1974. working with an in-memory copy. In case the Flash area containing the
  1975. environment is erased by accident, a default environment is provided.
  1976. Some configuration options can be set using Environment Variables:
  1977. baudrate - see CONFIG_BAUDRATE
  1978. bootdelay - see CONFIG_BOOTDELAY
  1979. bootcmd - see CONFIG_BOOTCOMMAND
  1980. bootargs - Boot arguments when booting an RTOS image
  1981. bootfile - Name of the image to load with TFTP
  1982. autoload - if set to "no" (any string beginning with 'n'),
  1983. "bootp" will just load perform a lookup of the
  1984. configuration from the BOOTP server, but not try to
  1985. load any image using TFTP
  1986. autostart - if set to "yes", an image loaded using the "bootp",
  1987. "rarpboot", "tftpboot" or "diskboot" commands will
  1988. be automatically started (by internally calling
  1989. "bootm")
  1990. If set to "no", a standalone image passed to the
  1991. "bootm" command will be copied to the load address
  1992. (and eventually uncompressed), but NOT be started.
  1993. This can be used to load and uncompress arbitrary
  1994. data.
  1995. i2cfast - (PPC405GP|PPC405EP only)
  1996. if set to 'y' configures Linux I2C driver for fast
  1997. mode (400kHZ). This environment variable is used in
  1998. initialization code. So, for changes to be effective
  1999. it must be saved and board must be reset.
  2000. initrd_high - restrict positioning of initrd images:
  2001. If this variable is not set, initrd images will be
  2002. copied to the highest possible address in RAM; this
  2003. is usually what you want since it allows for
  2004. maximum initrd size. If for some reason you want to
  2005. make sure that the initrd image is loaded below the
  2006. CFG_BOOTMAPSZ limit, you can set this environment
  2007. variable to a value of "no" or "off" or "0".
  2008. Alternatively, you can set it to a maximum upper
  2009. address to use (U-Boot will still check that it
  2010. does not overwrite the U-Boot stack and data).
  2011. For instance, when you have a system with 16 MB
  2012. RAM, and want to reserve 4 MB from use by Linux,
  2013. you can do this by adding "mem=12M" to the value of
  2014. the "bootargs" variable. However, now you must make
  2015. sure that the initrd image is placed in the first
  2016. 12 MB as well - this can be done with
  2017. setenv initrd_high 00c00000
  2018. If you set initrd_high to 0xFFFFFFFF, this is an
  2019. indication to U-Boot that all addresses are legal
  2020. for the Linux kernel, including addresses in flash
  2021. memory. In this case U-Boot will NOT COPY the
  2022. ramdisk at all. This may be useful to reduce the
  2023. boot time on your system, but requires that this
  2024. feature is supported by your Linux kernel.
  2025. ipaddr - IP address; needed for tftpboot command
  2026. loadaddr - Default load address for commands like "bootp",
  2027. "rarpboot", "tftpboot", "loadb" or "diskboot"
  2028. loads_echo - see CONFIG_LOADS_ECHO
  2029. serverip - TFTP server IP address; needed for tftpboot command
  2030. bootretry - see CONFIG_BOOT_RETRY_TIME
  2031. bootdelaykey - see CONFIG_AUTOBOOT_DELAY_STR
  2032. bootstopkey - see CONFIG_AUTOBOOT_STOP_STR
  2033. ethprime - When CONFIG_NET_MULTI is enabled controls which
  2034. interface is used first.
  2035. ethact - When CONFIG_NET_MULTI is enabled controls which
  2036. interface is currently active. For example you
  2037. can do the following
  2038. => setenv ethact FEC ETHERNET
  2039. => ping 192.168.0.1 # traffic sent on FEC ETHERNET
  2040. => setenv ethact SCC ETHERNET
  2041. => ping 10.0.0.1 # traffic sent on SCC ETHERNET
  2042. netretry - When set to "no" each network operation will
  2043. either succeed or fail without retrying.
  2044. When set to "once" the network operation will
  2045. fail when all the available network interfaces
  2046. are tried once without success.
  2047. Useful on scripts which control the retry operation
  2048. themselves.
  2049. tftpsrcport - If this is set, the value is used for TFTP's
  2050. UDP source port.
  2051. tftpdstport - If this is set, the value is used for TFTP's UDP
  2052. destination port instead of the Well Know Port 69.
  2053. vlan - When set to a value < 4095 the traffic over
  2054. ethernet is encapsulated/received over 802.1q
  2055. VLAN tagged frames.
  2056. The following environment variables may be used and automatically
  2057. updated by the network boot commands ("bootp" and "rarpboot"),
  2058. depending the information provided by your boot server:
  2059. bootfile - see above
  2060. dnsip - IP address of your Domain Name Server
  2061. dnsip2 - IP address of your secondary Domain Name Server
  2062. gatewayip - IP address of the Gateway (Router) to use
  2063. hostname - Target hostname
  2064. ipaddr - see above
  2065. netmask - Subnet Mask
  2066. rootpath - Pathname of the root filesystem on the NFS server
  2067. serverip - see above
  2068. There are two special Environment Variables:
  2069. serial# - contains hardware identification information such
  2070. as type string and/or serial number
  2071. ethaddr - Ethernet address
  2072. These variables can be set only once (usually during manufacturing of
  2073. the board). U-Boot refuses to delete or overwrite these variables
  2074. once they have been set once.
  2075. Further special Environment Variables:
  2076. ver - Contains the U-Boot version string as printed
  2077. with the "version" command. This variable is
  2078. readonly (see CONFIG_VERSION_VARIABLE).
  2079. Please note that changes to some configuration parameters may take
  2080. only effect after the next boot (yes, that's just like Windoze :-).
  2081. Command Line Parsing:
  2082. =====================
  2083. There are two different command line parsers available with U-Boot:
  2084. the old "simple" one, and the much more powerful "hush" shell:
  2085. Old, simple command line parser:
  2086. --------------------------------
  2087. - supports environment variables (through setenv / saveenv commands)
  2088. - several commands on one line, separated by ';'
  2089. - variable substitution using "... ${name} ..." syntax
  2090. - special characters ('$', ';') can be escaped by prefixing with '\',
  2091. for example:
  2092. setenv bootcmd bootm \${address}
  2093. - You can also escape text by enclosing in single apostrophes, for example:
  2094. setenv addip 'setenv bootargs $bootargs ip=$ipaddr:$serverip:$gatewayip:$netmask:$hostname::off'
  2095. Hush shell:
  2096. -----------
  2097. - similar to Bourne shell, with control structures like
  2098. if...then...else...fi, for...do...done; while...do...done,
  2099. until...do...done, ...
  2100. - supports environment ("global") variables (through setenv / saveenv
  2101. commands) and local shell variables (through standard shell syntax
  2102. "name=value"); only environment variables can be used with "run"
  2103. command
  2104. General rules:
  2105. --------------
  2106. (1) If a command line (or an environment variable executed by a "run"
  2107. command) contains several commands separated by semicolon, and
  2108. one of these commands fails, then the remaining commands will be
  2109. executed anyway.
  2110. (2) If you execute several variables with one call to run (i. e.
  2111. calling run with a list af variables as arguments), any failing
  2112. command will cause "run" to terminate, i. e. the remaining
  2113. variables are not executed.
  2114. Note for Redundant Ethernet Interfaces:
  2115. =======================================
  2116. Some boards come with redundant ethernet interfaces; U-Boot supports
  2117. such configurations and is capable of automatic selection of a
  2118. "working" interface when needed. MAC assignment works as follows:
  2119. Network interfaces are numbered eth0, eth1, eth2, ... Corresponding
  2120. MAC addresses can be stored in the environment as "ethaddr" (=>eth0),
  2121. "eth1addr" (=>eth1), "eth2addr", ...
  2122. If the network interface stores some valid MAC address (for instance
  2123. in SROM), this is used as default address if there is NO correspon-
  2124. ding setting in the environment; if the corresponding environment
  2125. variable is set, this overrides the settings in the card; that means:
  2126. o If the SROM has a valid MAC address, and there is no address in the
  2127. environment, the SROM's address is used.
  2128. o If there is no valid address in the SROM, and a definition in the
  2129. environment exists, then the value from the environment variable is
  2130. used.
  2131. o If both the SROM and the environment contain a MAC address, and
  2132. both addresses are the same, this MAC address is used.
  2133. o If both the SROM and the environment contain a MAC address, and the
  2134. addresses differ, the value from the environment is used and a
  2135. warning is printed.
  2136. o If neither SROM nor the environment contain a MAC address, an error
  2137. is raised.
  2138. Image Formats:
  2139. ==============
  2140. The "boot" commands of this monitor operate on "image" files which
  2141. can be basicly anything, preceeded by a special header; see the
  2142. definitions in include/image.h for details; basicly, the header
  2143. defines the following image properties:
  2144. * Target Operating System (Provisions for OpenBSD, NetBSD, FreeBSD,
  2145. 4.4BSD, Linux, SVR4, Esix, Solaris, Irix, SCO, Dell, NCR, VxWorks,
  2146. LynxOS, pSOS, QNX, RTEMS, ARTOS;
  2147. Currently supported: Linux, NetBSD, VxWorks, QNX, RTEMS, ARTOS, LynxOS).
  2148. * Target CPU Architecture (Provisions for Alpha, ARM, AVR32, Intel x86,
  2149. IA64, MIPS, NIOS, PowerPC, IBM S390, SuperH, Sparc, Sparc 64 Bit;
  2150. Currently supported: ARM, AVR32, Intel x86, MIPS, NIOS, PowerPC).
  2151. * Compression Type (uncompressed, gzip, bzip2)
  2152. * Load Address
  2153. * Entry Point
  2154. * Image Name
  2155. * Image Timestamp
  2156. The header is marked by a special Magic Number, and both the header
  2157. and the data portions of the image are secured against corruption by
  2158. CRC32 checksums.
  2159. Linux Support:
  2160. ==============
  2161. Although U-Boot should support any OS or standalone application
  2162. easily, the main focus has always been on Linux during the design of
  2163. U-Boot.
  2164. U-Boot includes many features that so far have been part of some
  2165. special "boot loader" code within the Linux kernel. Also, any
  2166. "initrd" images to be used are no longer part of one big Linux image;
  2167. instead, kernel and "initrd" are separate images. This implementation
  2168. serves several purposes:
  2169. - the same features can be used for other OS or standalone
  2170. applications (for instance: using compressed images to reduce the
  2171. Flash memory footprint)
  2172. - it becomes much easier to port new Linux kernel versions because
  2173. lots of low-level, hardware dependent stuff are done by U-Boot
  2174. - the same Linux kernel image can now be used with different "initrd"
  2175. images; of course this also means that different kernel images can
  2176. be run with the same "initrd". This makes testing easier (you don't
  2177. have to build a new "zImage.initrd" Linux image when you just
  2178. change a file in your "initrd"). Also, a field-upgrade of the
  2179. software is easier now.
  2180. Linux HOWTO:
  2181. ============
  2182. Porting Linux to U-Boot based systems:
  2183. ---------------------------------------
  2184. U-Boot cannot save you from doing all the necessary modifications to
  2185. configure the Linux device drivers for use with your target hardware
  2186. (no, we don't intend to provide a full virtual machine interface to
  2187. Linux :-).
  2188. But now you can ignore ALL boot loader code (in arch/ppc/mbxboot).
  2189. Just make sure your machine specific header file (for instance
  2190. include/asm-ppc/tqm8xx.h) includes the same definition of the Board
  2191. Information structure as we define in include/u-boot.h, and make
  2192. sure that your definition of IMAP_ADDR uses the same value as your
  2193. U-Boot configuration in CFG_IMMR.
  2194. Configuring the Linux kernel:
  2195. -----------------------------
  2196. No specific requirements for U-Boot. Make sure you have some root
  2197. device (initial ramdisk, NFS) for your target system.
  2198. Building a Linux Image:
  2199. -----------------------
  2200. With U-Boot, "normal" build targets like "zImage" or "bzImage" are
  2201. not used. If you use recent kernel source, a new build target
  2202. "uImage" will exist which automatically builds an image usable by
  2203. U-Boot. Most older kernels also have support for a "pImage" target,
  2204. which was introduced for our predecessor project PPCBoot and uses a
  2205. 100% compatible format.
  2206. Example:
  2207. make TQM850L_config
  2208. make oldconfig
  2209. make dep
  2210. make uImage
  2211. The "uImage" build target uses a special tool (in 'tools/mkimage') to
  2212. encapsulate a compressed Linux kernel image with header information,
  2213. CRC32 checksum etc. for use with U-Boot. This is what we are doing:
  2214. * build a standard "vmlinux" kernel image (in ELF binary format):
  2215. * convert the kernel into a raw binary image:
  2216. ${CROSS_COMPILE}-objcopy -O binary \
  2217. -R .note -R .comment \
  2218. -S vmlinux linux.bin
  2219. * compress the binary image:
  2220. gzip -9 linux.bin
  2221. * package compressed binary image for U-Boot:
  2222. mkimage -A ppc -O linux -T kernel -C gzip \
  2223. -a 0 -e 0 -n "Linux Kernel Image" \
  2224. -d linux.bin.gz uImage
  2225. The "mkimage" tool can also be used to create ramdisk images for use
  2226. with U-Boot, either separated from the Linux kernel image, or
  2227. combined into one file. "mkimage" encapsulates the images with a 64
  2228. byte header containing information about target architecture,
  2229. operating system, image type, compression method, entry points, time
  2230. stamp, CRC32 checksums, etc.
  2231. "mkimage" can be called in two ways: to verify existing images and
  2232. print the header information, or to build new images.
  2233. In the first form (with "-l" option) mkimage lists the information
  2234. contained in the header of an existing U-Boot image; this includes
  2235. checksum verification:
  2236. tools/mkimage -l image
  2237. -l ==> list image header information
  2238. The second form (with "-d" option) is used to build a U-Boot image
  2239. from a "data file" which is used as image payload:
  2240. tools/mkimage -A arch -O os -T type -C comp -a addr -e ep \
  2241. -n name -d data_file image
  2242. -A ==> set architecture to 'arch'
  2243. -O ==> set operating system to 'os'
  2244. -T ==> set image type to 'type'
  2245. -C ==> set compression type 'comp'
  2246. -a ==> set load address to 'addr' (hex)
  2247. -e ==> set entry point to 'ep' (hex)
  2248. -n ==> set image name to 'name'
  2249. -d ==> use image data from 'datafile'
  2250. Right now, all Linux kernels for PowerPC systems use the same load
  2251. address (0x00000000), but the entry point address depends on the
  2252. kernel version:
  2253. - 2.2.x kernels have the entry point at 0x0000000C,
  2254. - 2.3.x and later kernels have the entry point at 0x00000000.
  2255. So a typical call to build a U-Boot image would read:
  2256. -> tools/mkimage -n '2.4.4 kernel for TQM850L' \
  2257. > -A ppc -O linux -T kernel -C gzip -a 0 -e 0 \
  2258. > -d /opt/elsk/ppc_8xx/usr/src/linux-2.4.4/arch/ppc/coffboot/vmlinux.gz \
  2259. > examples/uImage.TQM850L
  2260. Image Name: 2.4.4 kernel for TQM850L
  2261. Created: Wed Jul 19 02:34:59 2000
  2262. Image Type: PowerPC Linux Kernel Image (gzip compressed)
  2263. Data Size: 335725 Bytes = 327.86 kB = 0.32 MB
  2264. Load Address: 0x00000000
  2265. Entry Point: 0x00000000
  2266. To verify the contents of the image (or check for corruption):
  2267. -> tools/mkimage -l examples/uImage.TQM850L
  2268. Image Name: 2.4.4 kernel for TQM850L
  2269. Created: Wed Jul 19 02:34:59 2000
  2270. Image Type: PowerPC Linux Kernel Image (gzip compressed)
  2271. Data Size: 335725 Bytes = 327.86 kB = 0.32 MB
  2272. Load Address: 0x00000000
  2273. Entry Point: 0x00000000
  2274. NOTE: for embedded systems where boot time is critical you can trade
  2275. speed for memory and install an UNCOMPRESSED image instead: this
  2276. needs more space in Flash, but boots much faster since it does not
  2277. need to be uncompressed:
  2278. -> gunzip /opt/elsk/ppc_8xx/usr/src/linux-2.4.4/arch/ppc/coffboot/vmlinux.gz
  2279. -> tools/mkimage -n '2.4.4 kernel for TQM850L' \
  2280. > -A ppc -O linux -T kernel -C none -a 0 -e 0 \
  2281. > -d /opt/elsk/ppc_8xx/usr/src/linux-2.4.4/arch/ppc/coffboot/vmlinux \
  2282. > examples/uImage.TQM850L-uncompressed
  2283. Image Name: 2.4.4 kernel for TQM850L
  2284. Created: Wed Jul 19 02:34:59 2000
  2285. Image Type: PowerPC Linux Kernel Image (uncompressed)
  2286. Data Size: 792160 Bytes = 773.59 kB = 0.76 MB
  2287. Load Address: 0x00000000
  2288. Entry Point: 0x00000000
  2289. Similar you can build U-Boot images from a 'ramdisk.image.gz' file
  2290. when your kernel is intended to use an initial ramdisk:
  2291. -> tools/mkimage -n 'Simple Ramdisk Image' \
  2292. > -A ppc -O linux -T ramdisk -C gzip \
  2293. > -d /LinuxPPC/images/SIMPLE-ramdisk.image.gz examples/simple-initrd
  2294. Image Name: Simple Ramdisk Image
  2295. Created: Wed Jan 12 14:01:50 2000
  2296. Image Type: PowerPC Linux RAMDisk Image (gzip compressed)
  2297. Data Size: 566530 Bytes = 553.25 kB = 0.54 MB
  2298. Load Address: 0x00000000
  2299. Entry Point: 0x00000000
  2300. Installing a Linux Image:
  2301. -------------------------
  2302. To downloading a U-Boot image over the serial (console) interface,
  2303. you must convert the image to S-Record format:
  2304. objcopy -I binary -O srec examples/image examples/image.srec
  2305. The 'objcopy' does not understand the information in the U-Boot
  2306. image header, so the resulting S-Record file will be relative to
  2307. address 0x00000000. To load it to a given address, you need to
  2308. specify the target address as 'offset' parameter with the 'loads'
  2309. command.
  2310. Example: install the image to address 0x40100000 (which on the
  2311. TQM8xxL is in the first Flash bank):
  2312. => erase 40100000 401FFFFF
  2313. .......... done
  2314. Erased 8 sectors
  2315. => loads 40100000
  2316. ## Ready for S-Record download ...
  2317. ~>examples/image.srec
  2318. 1 2 3 4 5 6 7 8 9 10 11 12 13 ...
  2319. ...
  2320. 15989 15990 15991 15992
  2321. [file transfer complete]
  2322. [connected]
  2323. ## Start Addr = 0x00000000
  2324. You can check the success of the download using the 'iminfo' command;
  2325. this includes a checksum verification so you can be sure no data
  2326. corruption happened:
  2327. => imi 40100000
  2328. ## Checking Image at 40100000 ...
  2329. Image Name: 2.2.13 for initrd on TQM850L
  2330. Image Type: PowerPC Linux Kernel Image (gzip compressed)
  2331. Data Size: 335725 Bytes = 327 kB = 0 MB
  2332. Load Address: 00000000
  2333. Entry Point: 0000000c
  2334. Verifying Checksum ... OK
  2335. Boot Linux:
  2336. -----------
  2337. The "bootm" command is used to boot an application that is stored in
  2338. memory (RAM or Flash). In case of a Linux kernel image, the contents
  2339. of the "bootargs" environment variable is passed to the kernel as
  2340. parameters. You can check and modify this variable using the
  2341. "printenv" and "setenv" commands:
  2342. => printenv bootargs
  2343. bootargs=root=/dev/ram
  2344. => setenv bootargs root=/dev/nfs rw nfsroot=10.0.0.2:/LinuxPPC nfsaddrs=10.0.0.99:10.0.0.2
  2345. => printenv bootargs
  2346. bootargs=root=/dev/nfs rw nfsroot=10.0.0.2:/LinuxPPC nfsaddrs=10.0.0.99:10.0.0.2
  2347. => bootm 40020000
  2348. ## Booting Linux kernel at 40020000 ...
  2349. Image Name: 2.2.13 for NFS on TQM850L
  2350. Image Type: PowerPC Linux Kernel Image (gzip compressed)
  2351. Data Size: 381681 Bytes = 372 kB = 0 MB
  2352. Load Address: 00000000
  2353. Entry Point: 0000000c
  2354. Verifying Checksum ... OK
  2355. Uncompressing Kernel Image ... OK
  2356. Linux version 2.2.13 (wd@denx.local.net) (gcc version 2.95.2 19991024 (release)) #1 Wed Jul 19 02:35:17 MEST 2000
  2357. Boot arguments: root=/dev/nfs rw nfsroot=10.0.0.2:/LinuxPPC nfsaddrs=10.0.0.99:10.0.0.2
  2358. time_init: decrementer frequency = 187500000/60
  2359. Calibrating delay loop... 49.77 BogoMIPS
  2360. Memory: 15208k available (700k kernel code, 444k data, 32k init) [c0000000,c1000000]
  2361. ...
  2362. If you want to boot a Linux kernel with initial ram disk, you pass
  2363. the memory addresses of both the kernel and the initrd image (PPBCOOT
  2364. format!) to the "bootm" command:
  2365. => imi 40100000 40200000
  2366. ## Checking Image at 40100000 ...
  2367. Image Name: 2.2.13 for initrd on TQM850L
  2368. Image Type: PowerPC Linux Kernel Image (gzip compressed)
  2369. Data Size: 335725 Bytes = 327 kB = 0 MB
  2370. Load Address: 00000000
  2371. Entry Point: 0000000c
  2372. Verifying Checksum ... OK
  2373. ## Checking Image at 40200000 ...
  2374. Image Name: Simple Ramdisk Image
  2375. Image Type: PowerPC Linux RAMDisk Image (gzip compressed)
  2376. Data Size: 566530 Bytes = 553 kB = 0 MB
  2377. Load Address: 00000000
  2378. Entry Point: 00000000
  2379. Verifying Checksum ... OK
  2380. => bootm 40100000 40200000
  2381. ## Booting Linux kernel at 40100000 ...
  2382. Image Name: 2.2.13 for initrd on TQM850L
  2383. Image Type: PowerPC Linux Kernel Image (gzip compressed)
  2384. Data Size: 335725 Bytes = 327 kB = 0 MB
  2385. Load Address: 00000000
  2386. Entry Point: 0000000c
  2387. Verifying Checksum ... OK
  2388. Uncompressing Kernel Image ... OK
  2389. ## Loading RAMDisk Image at 40200000 ...
  2390. Image Name: Simple Ramdisk Image
  2391. Image Type: PowerPC Linux RAMDisk Image (gzip compressed)
  2392. Data Size: 566530 Bytes = 553 kB = 0 MB
  2393. Load Address: 00000000
  2394. Entry Point: 00000000
  2395. Verifying Checksum ... OK
  2396. Loading Ramdisk ... OK
  2397. Linux version 2.2.13 (wd@denx.local.net) (gcc version 2.95.2 19991024 (release)) #1 Wed Jul 19 02:32:08 MEST 2000
  2398. Boot arguments: root=/dev/ram
  2399. time_init: decrementer frequency = 187500000/60
  2400. Calibrating delay loop... 49.77 BogoMIPS
  2401. ...
  2402. RAMDISK: Compressed image found at block 0
  2403. VFS: Mounted root (ext2 filesystem).
  2404. bash#
  2405. Boot Linux and pass a flat device tree:
  2406. -----------
  2407. First, U-Boot must be compiled with the appropriate defines. See the section
  2408. titled "Linux Kernel Interface" above for a more in depth explanation. The
  2409. following is an example of how to start a kernel and pass an updated
  2410. flat device tree:
  2411. => print oftaddr
  2412. oftaddr=0x300000
  2413. => print oft
  2414. oft=oftrees/mpc8540ads.dtb
  2415. => tftp $oftaddr $oft
  2416. Speed: 1000, full duplex
  2417. Using TSEC0 device
  2418. TFTP from server 192.168.1.1; our IP address is 192.168.1.101
  2419. Filename 'oftrees/mpc8540ads.dtb'.
  2420. Load address: 0x300000
  2421. Loading: #
  2422. done
  2423. Bytes transferred = 4106 (100a hex)
  2424. => tftp $loadaddr $bootfile
  2425. Speed: 1000, full duplex
  2426. Using TSEC0 device
  2427. TFTP from server 192.168.1.1; our IP address is 192.168.1.2
  2428. Filename 'uImage'.
  2429. Load address: 0x200000
  2430. Loading:############
  2431. done
  2432. Bytes transferred = 1029407 (fb51f hex)
  2433. => print loadaddr
  2434. loadaddr=200000
  2435. => print oftaddr
  2436. oftaddr=0x300000
  2437. => bootm $loadaddr - $oftaddr
  2438. ## Booting image at 00200000 ...
  2439. Image Name: Linux-2.6.17-dirty
  2440. Image Type: PowerPC Linux Kernel Image (gzip compressed)
  2441. Data Size: 1029343 Bytes = 1005.2 kB
  2442. Load Address: 00000000
  2443. Entry Point: 00000000
  2444. Verifying Checksum ... OK
  2445. Uncompressing Kernel Image ... OK
  2446. Booting using flat device tree at 0x300000
  2447. Using MPC85xx ADS machine description
  2448. Memory CAM mapping: CAM0=256Mb, CAM1=256Mb, CAM2=0Mb residual: 0Mb
  2449. [snip]
  2450. More About U-Boot Image Types:
  2451. ------------------------------
  2452. U-Boot supports the following image types:
  2453. "Standalone Programs" are directly runnable in the environment
  2454. provided by U-Boot; it is expected that (if they behave
  2455. well) you can continue to work in U-Boot after return from
  2456. the Standalone Program.
  2457. "OS Kernel Images" are usually images of some Embedded OS which
  2458. will take over control completely. Usually these programs
  2459. will install their own set of exception handlers, device
  2460. drivers, set up the MMU, etc. - this means, that you cannot
  2461. expect to re-enter U-Boot except by resetting the CPU.
  2462. "RAMDisk Images" are more or less just data blocks, and their
  2463. parameters (address, size) are passed to an OS kernel that is
  2464. being started.
  2465. "Multi-File Images" contain several images, typically an OS
  2466. (Linux) kernel image and one or more data images like
  2467. RAMDisks. This construct is useful for instance when you want
  2468. to boot over the network using BOOTP etc., where the boot
  2469. server provides just a single image file, but you want to get
  2470. for instance an OS kernel and a RAMDisk image.
  2471. "Multi-File Images" start with a list of image sizes, each
  2472. image size (in bytes) specified by an "uint32_t" in network
  2473. byte order. This list is terminated by an "(uint32_t)0".
  2474. Immediately after the terminating 0 follow the images, one by
  2475. one, all aligned on "uint32_t" boundaries (size rounded up to
  2476. a multiple of 4 bytes).
  2477. "Firmware Images" are binary images containing firmware (like
  2478. U-Boot or FPGA images) which usually will be programmed to
  2479. flash memory.
  2480. "Script files" are command sequences that will be executed by
  2481. U-Boot's command interpreter; this feature is especially
  2482. useful when you configure U-Boot to use a real shell (hush)
  2483. as command interpreter.
  2484. Standalone HOWTO:
  2485. =================
  2486. One of the features of U-Boot is that you can dynamically load and
  2487. run "standalone" applications, which can use some resources of
  2488. U-Boot like console I/O functions or interrupt services.
  2489. Two simple examples are included with the sources:
  2490. "Hello World" Demo:
  2491. -------------------
  2492. 'examples/hello_world.c' contains a small "Hello World" Demo
  2493. application; it is automatically compiled when you build U-Boot.
  2494. It's configured to run at address 0x00040004, so you can play with it
  2495. like that:
  2496. => loads
  2497. ## Ready for S-Record download ...
  2498. ~>examples/hello_world.srec
  2499. 1 2 3 4 5 6 7 8 9 10 11 ...
  2500. [file transfer complete]
  2501. [connected]
  2502. ## Start Addr = 0x00040004
  2503. => go 40004 Hello World! This is a test.
  2504. ## Starting application at 0x00040004 ...
  2505. Hello World
  2506. argc = 7
  2507. argv[0] = "40004"
  2508. argv[1] = "Hello"
  2509. argv[2] = "World!"
  2510. argv[3] = "This"
  2511. argv[4] = "is"
  2512. argv[5] = "a"
  2513. argv[6] = "test."
  2514. argv[7] = "<NULL>"
  2515. Hit any key to exit ...
  2516. ## Application terminated, rc = 0x0
  2517. Another example, which demonstrates how to register a CPM interrupt
  2518. handler with the U-Boot code, can be found in 'examples/timer.c'.
  2519. Here, a CPM timer is set up to generate an interrupt every second.
  2520. The interrupt service routine is trivial, just printing a '.'
  2521. character, but this is just a demo program. The application can be
  2522. controlled by the following keys:
  2523. ? - print current values og the CPM Timer registers
  2524. b - enable interrupts and start timer
  2525. e - stop timer and disable interrupts
  2526. q - quit application
  2527. => loads
  2528. ## Ready for S-Record download ...
  2529. ~>examples/timer.srec
  2530. 1 2 3 4 5 6 7 8 9 10 11 ...
  2531. [file transfer complete]
  2532. [connected]
  2533. ## Start Addr = 0x00040004
  2534. => go 40004
  2535. ## Starting application at 0x00040004 ...
  2536. TIMERS=0xfff00980
  2537. Using timer 1
  2538. tgcr @ 0xfff00980, tmr @ 0xfff00990, trr @ 0xfff00994, tcr @ 0xfff00998, tcn @ 0xfff0099c, ter @ 0xfff009b0
  2539. Hit 'b':
  2540. [q, b, e, ?] Set interval 1000000 us
  2541. Enabling timer
  2542. Hit '?':
  2543. [q, b, e, ?] ........
  2544. tgcr=0x1, tmr=0xff1c, trr=0x3d09, tcr=0x0, tcn=0xef6, ter=0x0
  2545. Hit '?':
  2546. [q, b, e, ?] .
  2547. tgcr=0x1, tmr=0xff1c, trr=0x3d09, tcr=0x0, tcn=0x2ad4, ter=0x0
  2548. Hit '?':
  2549. [q, b, e, ?] .
  2550. tgcr=0x1, tmr=0xff1c, trr=0x3d09, tcr=0x0, tcn=0x1efc, ter=0x0
  2551. Hit '?':
  2552. [q, b, e, ?] .
  2553. tgcr=0x1, tmr=0xff1c, trr=0x3d09, tcr=0x0, tcn=0x169d, ter=0x0
  2554. Hit 'e':
  2555. [q, b, e, ?] ...Stopping timer
  2556. Hit 'q':
  2557. [q, b, e, ?] ## Application terminated, rc = 0x0
  2558. Minicom warning:
  2559. ================
  2560. Over time, many people have reported problems when trying to use the
  2561. "minicom" terminal emulation program for serial download. I (wd)
  2562. consider minicom to be broken, and recommend not to use it. Under
  2563. Unix, I recommend to use C-Kermit for general purpose use (and
  2564. especially for kermit binary protocol download ("loadb" command), and
  2565. use "cu" for S-Record download ("loads" command).
  2566. Nevertheless, if you absolutely want to use it try adding this
  2567. configuration to your "File transfer protocols" section:
  2568. Name Program Name U/D FullScr IO-Red. Multi
  2569. X kermit /usr/bin/kermit -i -l %l -s Y U Y N N
  2570. Y kermit /usr/bin/kermit -i -l %l -r N D Y N N
  2571. NetBSD Notes:
  2572. =============
  2573. Starting at version 0.9.2, U-Boot supports NetBSD both as host
  2574. (build U-Boot) and target system (boots NetBSD/mpc8xx).
  2575. Building requires a cross environment; it is known to work on
  2576. NetBSD/i386 with the cross-powerpc-netbsd-1.3 package (you will also
  2577. need gmake since the Makefiles are not compatible with BSD make).
  2578. Note that the cross-powerpc package does not install include files;
  2579. attempting to build U-Boot will fail because <machine/ansi.h> is
  2580. missing. This file has to be installed and patched manually:
  2581. # cd /usr/pkg/cross/powerpc-netbsd/include
  2582. # mkdir powerpc
  2583. # ln -s powerpc machine
  2584. # cp /usr/src/sys/arch/powerpc/include/ansi.h powerpc/ansi.h
  2585. # ${EDIT} powerpc/ansi.h ## must remove __va_list, _BSD_VA_LIST
  2586. Native builds *don't* work due to incompatibilities between native
  2587. and U-Boot include files.
  2588. Booting assumes that (the first part of) the image booted is a
  2589. stage-2 loader which in turn loads and then invokes the kernel
  2590. proper. Loader sources will eventually appear in the NetBSD source
  2591. tree (probably in sys/arc/mpc8xx/stand/u-boot_stage2/); in the
  2592. meantime, see ftp://ftp.denx.de/pub/u-boot/ppcboot_stage2.tar.gz
  2593. Implementation Internals:
  2594. =========================
  2595. The following is not intended to be a complete description of every
  2596. implementation detail. However, it should help to understand the
  2597. inner workings of U-Boot and make it easier to port it to custom
  2598. hardware.
  2599. Initial Stack, Global Data:
  2600. ---------------------------
  2601. The implementation of U-Boot is complicated by the fact that U-Boot
  2602. starts running out of ROM (flash memory), usually without access to
  2603. system RAM (because the memory controller is not initialized yet).
  2604. This means that we don't have writable Data or BSS segments, and BSS
  2605. is not initialized as zero. To be able to get a C environment working
  2606. at all, we have to allocate at least a minimal stack. Implementation
  2607. options for this are defined and restricted by the CPU used: Some CPU
  2608. models provide on-chip memory (like the IMMR area on MPC8xx and
  2609. MPC826x processors), on others (parts of) the data cache can be
  2610. locked as (mis-) used as memory, etc.
  2611. Chris Hallinan posted a good summary of these issues to the
  2612. u-boot-users mailing list:
  2613. Subject: RE: [U-Boot-Users] RE: More On Memory Bank x (nothingness)?
  2614. From: "Chris Hallinan" <clh@net1plus.com>
  2615. Date: Mon, 10 Feb 2003 16:43:46 -0500 (22:43 MET)
  2616. ...
  2617. Correct me if I'm wrong, folks, but the way I understand it
  2618. is this: Using DCACHE as initial RAM for Stack, etc, does not
  2619. require any physical RAM backing up the cache. The cleverness
  2620. is that the cache is being used as a temporary supply of
  2621. necessary storage before the SDRAM controller is setup. It's
  2622. beyond the scope of this list to expain the details, but you
  2623. can see how this works by studying the cache architecture and
  2624. operation in the architecture and processor-specific manuals.
  2625. OCM is On Chip Memory, which I believe the 405GP has 4K. It
  2626. is another option for the system designer to use as an
  2627. initial stack/ram area prior to SDRAM being available. Either
  2628. option should work for you. Using CS 4 should be fine if your
  2629. board designers haven't used it for something that would
  2630. cause you grief during the initial boot! It is frequently not
  2631. used.
  2632. CFG_INIT_RAM_ADDR should be somewhere that won't interfere
  2633. with your processor/board/system design. The default value
  2634. you will find in any recent u-boot distribution in
  2635. walnut.h should work for you. I'd set it to a value larger
  2636. than your SDRAM module. If you have a 64MB SDRAM module, set
  2637. it above 400_0000. Just make sure your board has no resources
  2638. that are supposed to respond to that address! That code in
  2639. start.S has been around a while and should work as is when
  2640. you get the config right.
  2641. -Chris Hallinan
  2642. DS4.COM, Inc.
  2643. It is essential to remember this, since it has some impact on the C
  2644. code for the initialization procedures:
  2645. * Initialized global data (data segment) is read-only. Do not attempt
  2646. to write it.
  2647. * Do not use any unitialized global data (or implicitely initialized
  2648. as zero data - BSS segment) at all - this is undefined, initiali-
  2649. zation is performed later (when relocating to RAM).
  2650. * Stack space is very limited. Avoid big data buffers or things like
  2651. that.
  2652. Having only the stack as writable memory limits means we cannot use
  2653. normal global data to share information beween the code. But it
  2654. turned out that the implementation of U-Boot can be greatly
  2655. simplified by making a global data structure (gd_t) available to all
  2656. functions. We could pass a pointer to this data as argument to _all_
  2657. functions, but this would bloat the code. Instead we use a feature of
  2658. the GCC compiler (Global Register Variables) to share the data: we
  2659. place a pointer (gd) to the global data into a register which we
  2660. reserve for this purpose.
  2661. When choosing a register for such a purpose we are restricted by the
  2662. relevant (E)ABI specifications for the current architecture, and by
  2663. GCC's implementation.
  2664. For PowerPC, the following registers have specific use:
  2665. R1: stack pointer
  2666. R2: TOC pointer
  2667. R3-R4: parameter passing and return values
  2668. R5-R10: parameter passing
  2669. R13: small data area pointer
  2670. R30: GOT pointer
  2671. R31: frame pointer
  2672. (U-Boot also uses R14 as internal GOT pointer.)
  2673. ==> U-Boot will use R29 to hold a pointer to the global data
  2674. Note: on PPC, we could use a static initializer (since the
  2675. address of the global data structure is known at compile time),
  2676. but it turned out that reserving a register results in somewhat
  2677. smaller code - although the code savings are not that big (on
  2678. average for all boards 752 bytes for the whole U-Boot image,
  2679. 624 text + 127 data).
  2680. On ARM, the following registers are used:
  2681. R0: function argument word/integer result
  2682. R1-R3: function argument word
  2683. R9: GOT pointer
  2684. R10: stack limit (used only if stack checking if enabled)
  2685. R11: argument (frame) pointer
  2686. R12: temporary workspace
  2687. R13: stack pointer
  2688. R14: link register
  2689. R15: program counter
  2690. ==> U-Boot will use R8 to hold a pointer to the global data
  2691. NOTE: DECLARE_GLOBAL_DATA_PTR must be used with file-global scope,
  2692. or current versions of GCC may "optimize" the code too much.
  2693. Memory Management:
  2694. ------------------
  2695. U-Boot runs in system state and uses physical addresses, i.e. the
  2696. MMU is not used either for address mapping nor for memory protection.
  2697. The available memory is mapped to fixed addresses using the memory
  2698. controller. In this process, a contiguous block is formed for each
  2699. memory type (Flash, SDRAM, SRAM), even when it consists of several
  2700. physical memory banks.
  2701. U-Boot is installed in the first 128 kB of the first Flash bank (on
  2702. TQM8xxL modules this is the range 0x40000000 ... 0x4001FFFF). After
  2703. booting and sizing and initializing DRAM, the code relocates itself
  2704. to the upper end of DRAM. Immediately below the U-Boot code some
  2705. memory is reserved for use by malloc() [see CFG_MALLOC_LEN
  2706. configuration setting]. Below that, a structure with global Board
  2707. Info data is placed, followed by the stack (growing downward).
  2708. Additionally, some exception handler code is copied to the low 8 kB
  2709. of DRAM (0x00000000 ... 0x00001FFF).
  2710. So a typical memory configuration with 16 MB of DRAM could look like
  2711. this:
  2712. 0x0000 0000 Exception Vector code
  2713. :
  2714. 0x0000 1FFF
  2715. 0x0000 2000 Free for Application Use
  2716. :
  2717. :
  2718. :
  2719. :
  2720. 0x00FB FF20 Monitor Stack (Growing downward)
  2721. 0x00FB FFAC Board Info Data and permanent copy of global data
  2722. 0x00FC 0000 Malloc Arena
  2723. :
  2724. 0x00FD FFFF
  2725. 0x00FE 0000 RAM Copy of Monitor Code
  2726. ... eventually: LCD or video framebuffer
  2727. ... eventually: pRAM (Protected RAM - unchanged by reset)
  2728. 0x00FF FFFF [End of RAM]
  2729. System Initialization:
  2730. ----------------------
  2731. In the reset configuration, U-Boot starts at the reset entry point
  2732. (on most PowerPC systens at address 0x00000100). Because of the reset
  2733. configuration for CS0# this is a mirror of the onboard Flash memory.
  2734. To be able to re-map memory U-Boot then jumps to its link address.
  2735. To be able to implement the initialization code in C, a (small!)
  2736. initial stack is set up in the internal Dual Ported RAM (in case CPUs
  2737. which provide such a feature like MPC8xx or MPC8260), or in a locked
  2738. part of the data cache. After that, U-Boot initializes the CPU core,
  2739. the caches and the SIU.
  2740. Next, all (potentially) available memory banks are mapped using a
  2741. preliminary mapping. For example, we put them on 512 MB boundaries
  2742. (multiples of 0x20000000: SDRAM on 0x00000000 and 0x20000000, Flash
  2743. on 0x40000000 and 0x60000000, SRAM on 0x80000000). Then UPM A is
  2744. programmed for SDRAM access. Using the temporary configuration, a
  2745. simple memory test is run that determines the size of the SDRAM
  2746. banks.
  2747. When there is more than one SDRAM bank, and the banks are of
  2748. different size, the largest is mapped first. For equal size, the first
  2749. bank (CS2#) is mapped first. The first mapping is always for address
  2750. 0x00000000, with any additional banks following immediately to create
  2751. contiguous memory starting from 0.
  2752. Then, the monitor installs itself at the upper end of the SDRAM area
  2753. and allocates memory for use by malloc() and for the global Board
  2754. Info data; also, the exception vector code is copied to the low RAM
  2755. pages, and the final stack is set up.
  2756. Only after this relocation will you have a "normal" C environment;
  2757. until that you are restricted in several ways, mostly because you are
  2758. running from ROM, and because the code will have to be relocated to a
  2759. new address in RAM.
  2760. U-Boot Porting Guide:
  2761. ----------------------
  2762. [Based on messages by Jerry Van Baren in the U-Boot-Users mailing
  2763. list, October 2002]
  2764. int main (int argc, char *argv[])
  2765. {
  2766. sighandler_t no_more_time;
  2767. signal (SIGALRM, no_more_time);
  2768. alarm (PROJECT_DEADLINE - toSec (3 * WEEK));
  2769. if (available_money > available_manpower) {
  2770. pay consultant to port U-Boot;
  2771. return 0;
  2772. }
  2773. Download latest U-Boot source;
  2774. Subscribe to u-boot-users mailing list;
  2775. if (clueless) {
  2776. email ("Hi, I am new to U-Boot, how do I get started?");
  2777. }
  2778. while (learning) {
  2779. Read the README file in the top level directory;
  2780. Read http://www.denx.de/twiki/bin/view/DULG/Manual ;
  2781. Read the source, Luke;
  2782. }
  2783. if (available_money > toLocalCurrency ($2500)) {
  2784. Buy a BDI2000;
  2785. } else {
  2786. Add a lot of aggravation and time;
  2787. }
  2788. Create your own board support subdirectory;
  2789. Create your own board config file;
  2790. while (!running) {
  2791. do {
  2792. Add / modify source code;
  2793. } until (compiles);
  2794. Debug;
  2795. if (clueless)
  2796. email ("Hi, I am having problems...");
  2797. }
  2798. Send patch file to Wolfgang;
  2799. return 0;
  2800. }
  2801. void no_more_time (int sig)
  2802. {
  2803. hire_a_guru();
  2804. }
  2805. Coding Standards:
  2806. -----------------
  2807. All contributions to U-Boot should conform to the Linux kernel
  2808. coding style; see the file "Documentation/CodingStyle" and the script
  2809. "scripts/Lindent" in your Linux kernel source directory. In sources
  2810. originating from U-Boot a style corresponding to "Lindent -pcs" (adding
  2811. spaces before parameters to function calls) is actually used.
  2812. Source files originating from a different project (for example the
  2813. MTD subsystem) are generally exempt from these guidelines and are not
  2814. reformated to ease subsequent migration to newer versions of those
  2815. sources.
  2816. Please note that U-Boot is implemented in C (and to some small parts in
  2817. Assembler); no C++ is used, so please do not use C++ style comments (//)
  2818. in your code.
  2819. Please also stick to the following formatting rules:
  2820. - remove any trailing white space
  2821. - use TAB characters for indentation, not spaces
  2822. - make sure NOT to use DOS '\r\n' line feeds
  2823. - do not add more than 2 empty lines to source files
  2824. - do not add trailing empty lines to source files
  2825. Submissions which do not conform to the standards may be returned
  2826. with a request to reformat the changes.
  2827. Submitting Patches:
  2828. -------------------
  2829. Since the number of patches for U-Boot is growing, we need to
  2830. establish some rules. Submissions which do not conform to these rules
  2831. may be rejected, even when they contain important and valuable stuff.
  2832. Patches shall be sent to the u-boot-users mailing list.
  2833. When you send a patch, please include the following information with
  2834. it:
  2835. * For bug fixes: a description of the bug and how your patch fixes
  2836. this bug. Please try to include a way of demonstrating that the
  2837. patch actually fixes something.
  2838. * For new features: a description of the feature and your
  2839. implementation.
  2840. * A CHANGELOG entry as plaintext (separate from the patch)
  2841. * For major contributions, your entry to the CREDITS file
  2842. * When you add support for a new board, don't forget to add this
  2843. board to the MAKEALL script, too.
  2844. * If your patch adds new configuration options, don't forget to
  2845. document these in the README file.
  2846. * The patch itself. If you are accessing the CVS repository use "cvs
  2847. update; cvs diff -puRN"; else, use "diff -purN OLD NEW". If your
  2848. version of diff does not support these options, then get the latest
  2849. version of GNU diff.
  2850. The current directory when running this command shall be the top
  2851. level directory of the U-Boot source tree, or it's parent directory
  2852. (i. e. please make sure that your patch includes sufficient
  2853. directory information for the affected files).
  2854. We accept patches as plain text, MIME attachments or as uuencoded
  2855. gzipped text.
  2856. * If one logical set of modifications affects or creates several
  2857. files, all these changes shall be submitted in a SINGLE patch file.
  2858. * Changesets that contain different, unrelated modifications shall be
  2859. submitted as SEPARATE patches, one patch per changeset.
  2860. Notes:
  2861. * Before sending the patch, run the MAKEALL script on your patched
  2862. source tree and make sure that no errors or warnings are reported
  2863. for any of the boards.
  2864. * Keep your modifications to the necessary minimum: A patch
  2865. containing several unrelated changes or arbitrary reformats will be
  2866. returned with a request to re-formatting / split it.
  2867. * If you modify existing code, make sure that your new code does not
  2868. add to the memory footprint of the code ;-) Small is beautiful!
  2869. When adding new features, these should compile conditionally only
  2870. (using #ifdef), and the resulting code with the new feature
  2871. disabled must not need more memory than the old code without your
  2872. modification.
  2873. * Remember that there is a size limit of 40 kB per message on the
  2874. u-boot-users mailing list. Compression may help.