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      1 /*
      2  * CDDL HEADER START
      3  *
      4  * The contents of this file are subject to the terms of the
      5  * Common Development and Distribution License (the "License").
      6  * You may not use this file except in compliance with the License.
      7  *
      8  * You can obtain a copy of the license at usr/src/OPENSOLARIS.LICENSE
      9  * or http://www.opensolaris.org/os/licensing.
     10  * See the License for the specific language governing permissions
     11  * and limitations under the License.
     12  *
     13  * When distributing Covered Code, include this CDDL HEADER in each
     14  * file and include the License file at usr/src/OPENSOLARIS.LICENSE.
     15  * If applicable, add the following below this CDDL HEADER, with the
     16  * fields enclosed by brackets "[]" replaced with your own identifying
     17  * information: Portions Copyright [yyyy] [name of copyright owner]
     18  *
     19  * CDDL HEADER END
     20  */
     21 /*
     22  * Copyright 2009 Sun Microsystems, Inc.  All rights reserved.
     23  * Use is subject to license terms.
     24  */
     25 
     26 /*
     27  * This file contains the code to perform program startup.  This
     28  * includes reading the data file and the search for disks.
     29  */
     30 #include "global.h"
     31 
     32 #include <ctype.h>
     33 #include <stdlib.h>
     34 #include <unistd.h>
     35 #include <string.h>
     36 #include <strings.h>
     37 #include <fcntl.h>
     38 #include <errno.h>
     39 #include <memory.h>
     40 #include <dirent.h>
     41 #include <sys/fcntl.h>
     42 #include <sys/param.h>
     43 #include <sys/stat.h>
     44 
     45 #include "startup.h"
     46 #include "param.h"
     47 #include "label.h"
     48 #include "misc.h"
     49 #include "menu_command.h"
     50 #include "partition.h"
     51 #include "ctlr_scsi.h"
     52 
     53 #include "auto_sense.h"
     54 
     55 extern	struct	ctlr_type ctlr_types[];
     56 extern	int	nctypes;
     57 extern	struct	ctlr_ops	genericops;
     58 extern	long	strtol();
     59 
     60 extern	int	errno;
     61 
     62 #ifdef __STDC__
     63 
     64 /* Function prototypes for ANSI C Compilers */
     65 static void	usage(void);
     66 static int	sup_prxfile(void);
     67 static void	sup_setpath(void);
     68 static void	sup_setdtype(void);
     69 static int	sup_change_spec(struct disk_type *, char *);
     70 static void	sup_setpart(void);
     71 static void	search_for_logical_dev(char *devname);
     72 static void	add_device_to_disklist(char *devname, char *devpath);
     73 static int	disk_is_known(struct dk_cinfo *dkinfo);
     74 static void	datafile_error(char *errmsg, char *token);
     75 static void	search_duplicate_dtypes(void);
     76 static void	search_duplicate_pinfo(void);
     77 static void	check_dtypes_for_inconsistency(struct disk_type *dp1,
     78 		struct disk_type *dp2);
     79 static void	check_pinfo_for_inconsistency(struct partition_info *pp1,
     80 		struct partition_info *pp2);
     81 static uint_t	str2blks(char *str);
     82 static int	str2cyls(char *str);
     83 static struct	chg_list *new_chg_list(struct disk_type *);
     84 static char	*get_physical_name(char *);
     85 static void	sort_disk_list(void);
     86 static int	disk_name_compare(const void *, const void *);
     87 static void	make_controller_list(void);
     88 static void	check_for_duplicate_disknames(char *arglist[]);
     89 
     90 #else	/* __STDC__ */
     91 
     92 /* Function prototypes for non-ANSI C Compilers */
     93 static void	usage();
     94 static int	sup_prxfile();
     95 static void	sup_setpath();
     96 static void	sup_setdtype();
     97 static int	sup_change_spec();
     98 static void	sup_setpart();
     99 static void	search_for_logical_dev();
    100 static void	add_device_to_disklist();
    101 static int	disk_is_known();
    102 static void	datafile_error();
    103 static void	search_duplicate_dtypes();
    104 static void	search_duplicate_pinfo();
    105 static void	check_dtypes_for_inconsistency();
    106 static void	check_pinfo_for_inconsistency();
    107 static uint_t	str2blks();
    108 static int	str2cyls();
    109 static struct	chg_list *new_chg_list();
    110 static char	*get_physical_name();
    111 static void	sort_disk_list();
    112 static int	disk_name_compare();
    113 static void	make_controller_list();
    114 static void	check_for_duplicate_disknames();
    115 
    116 #endif	/* __STDC__ */
    117 
    118 #if defined(sparc)
    119 static char *other_ctlrs[] = {
    120 	"ata"
    121 	};
    122 #define	OTHER_CTLRS 1
    123 
    124 #elif defined(i386)
    125 static char *other_ctlrs[] = {
    126 	"ISP-80"
    127 	};
    128 #define	OTHER_CTLRS 2
    129 
    130 #else
    131 #error No Platform defined.
    132 #endif
    133 
    134 
    135 /*
    136  * This global is used to store the current line # in the data file.
    137  * It must be global because the I/O routines are allowed to side
    138  * effect it to keep track of backslashed newlines.
    139  */
    140 int	data_lineno;			/* current line # in data file */
    141 
    142 /*
    143  * Search path as defined in the format.dat files
    144  */
    145 static char	**search_path = NULL;
    146 
    147 
    148 static int name_represents_wholedisk(char *name);
    149 
    150 
    151 
    152 /*
    153  * This routine digests the options on the command line.  It returns
    154  * the index into argv of the first string that is not an option.  If
    155  * there are none, it returns -1.
    156  */
    157 int
    158 do_options(int argc, char *argv[])
    159 {
    160 	char	*ptr;
    161 	int	i;
    162 	int	next;
    163 
    164 	/*
    165 	 * Default is no extended messages.  Can be enabled manually.
    166 	 */
    167 	option_msg = 0;
    168 	diag_msg = 0;
    169 	expert_mode = 0;
    170 	need_newline = 0;
    171 	dev_expert = 0;
    172 
    173 	/*
    174 	 * Loop through the argument list, incrementing each time by
    175 	 * an amount determined by the options found.
    176 	 */
    177 	for (i = 1; i < argc; i = next) {
    178 		/*
    179 		 * Start out assuming an increment of 1.
    180 		 */
    181 		next = i + 1;
    182 		/*
    183 		 * As soon as we hit a non-option, we're done.
    184 		 */
    185 		if (*argv[i] != '-')
    186 			return (i);
    187 		/*
    188 		 * Loop through all the characters in this option string.
    189 		 */
    190 		for (ptr = argv[i] + 1; *ptr != '\0'; ptr++) {
    191 			/*
    192 			 * Determine each option represented.  For options
    193 			 * that use a second string, increase the increment
    194 			 * of the main loop so they aren't re-interpreted.
    195 			 */
    196 			switch (*ptr) {
    197 			case 's':
    198 			case 'S':
    199 				option_s = 1;
    200 				break;
    201 			case 'f':
    202 			case 'F':
    203 				option_f = argv[next++];
    204 				if (next > argc)
    205 					goto badopt;
    206 				break;
    207 			case 'l':
    208 			case 'L':
    209 				option_l = argv[next++];
    210 				if (next > argc)
    211 					goto badopt;
    212 				break;
    213 			case 'x':
    214 			case 'X':
    215 				option_x = argv[next++];
    216 				if (next > argc)
    217 					goto badopt;
    218 				break;
    219 			case 'd':
    220 			case 'D':
    221 				option_d = argv[next++];
    222 				if (next > argc)
    223 					goto badopt;
    224 				break;
    225 			case 't':
    226 			case 'T':
    227 				option_t = argv[next++];
    228 				if (next > argc)
    229 					goto badopt;
    230 				break;
    231 			case 'p':
    232 			case 'P':
    233 				option_p = argv[next++];
    234 				if (next > argc)
    235 					goto badopt;
    236 				break;
    237 			case 'm':
    238 				option_msg = 1;
    239 				break;
    240 			case 'M':
    241 				option_msg = 1;
    242 				diag_msg = 1;
    243 				break;
    244 			case 'e':
    245 				expert_mode = 1;
    246 				break;
    247 #ifdef DEBUG
    248 			case 'z':
    249 				dev_expert = 1;
    250 				break;
    251 #endif
    252 			default:
    253 badopt:
    254 				usage();
    255 				break;
    256 			}
    257 		}
    258 	}
    259 	/*
    260 	 * All the command line strings were options.  Return that fact.
    261 	 */
    262 	return (-1);
    263 }
    264 
    265 
    266 static void
    267 usage()
    268 {
    269 	err_print("Usage:  format [-s][-d disk_name]");
    270 	err_print("[-t disk_type][-p partition_name]\n");
    271 	err_print("\t[-f cmd_file][-l log_file]");
    272 	err_print("[-x data_file] [-m] [-M] [-e] disk_list\n");
    273 	fullabort();
    274 }
    275 
    276 
    277 /*
    278  * This routine reads in and digests the data file.  The data file contains
    279  * definitions for the search path, known disk types, and known partition
    280  * maps.
    281  *
    282  * Note: for each file being processed, file_name is a pointer to that
    283  * file's name.  We are careful to make sure that file_name points to
    284  * globally-accessible data, not data on the stack, because each
    285  * disk/partition/controller definition now keeps a pointer to the
    286  * filename in which it was defined.  In the case of duplicate,
    287  * conflicting definitions, we can thus tell the user exactly where
    288  * the problem is occurring.
    289  */
    290 void
    291 sup_init()
    292 {
    293 	int		nopened_files = 0;
    294 
    295 #if defined(sparc)
    296 	char		fname[MAXPATHLEN];
    297 	char		*path;
    298 	char		*p;
    299 	struct stat	stbuf;
    300 #endif /* defined(sparc) */
    301 
    302 
    303 	/*
    304 	 * Create a singly-linked list of controller types so that we may
    305 	 * dynamically add unknown controllers to this for 3'rd
    306 	 * party disk support.
    307 	 */
    308 
    309 	make_controller_list();
    310 
    311 	/*
    312 	 * If a data file was specified on the command line, use it first
    313 	 * If the file cannot be opened, fail.  We want to guarantee
    314 	 * that, if the user explicitly names a file, they can
    315 	 * access it.
    316 	 *
    317 	 * option_x is already global, no need to dup it on the heap.
    318 	 */
    319 	if (option_x) {
    320 		file_name = option_x;
    321 		if (sup_prxfile()) {
    322 			nopened_files++;
    323 		} else {
    324 			err_print("Unable to open data file '%s' - %s.\n",
    325 			    file_name, strerror(errno));
    326 			fullabort();
    327 		}
    328 	}
    329 
    330 #if defined(sparc)
    331 	/*
    332 	 * Now look for an environment variable FORMAT_PATH.
    333 	 * If found, we use it as a colon-separated list
    334 	 * of directories.  If no such environment variable
    335 	 * is defined, use a default path of "/etc".
    336 	 */
    337 	path = getenv("FORMAT_PATH");
    338 	if (path == NULL) {
    339 		path = "/etc";
    340 	}
    341 	/*
    342 	 * Traverse the path one file at a time.  Pick off
    343 	 * the file name, and append the name "format.dat"
    344 	 * at the end of the pathname.
    345 	 * Whatever string we construct, duplicate it on the
    346 	 * heap, so that file_name is globally accessible.
    347 	 */
    348 	while (*path != 0) {
    349 		p = fname;
    350 		while (*path != 0 && *path != ':')
    351 			*p++ = *path++;
    352 		if (p == fname)
    353 			continue;
    354 		*p = 0;
    355 		if (*path == ':')
    356 			path++;
    357 		/*
    358 		 * If the path we have so far is a directory,
    359 		 * look for a format.dat file in that directory,
    360 		 * otherwise try using the path name specified.
    361 		 * This permits arbitrary file names in the
    362 		 * path specification, if this proves useful.
    363 		 */
    364 		if (stat(fname, &stbuf) == -1) {
    365 			err_print("Unable to access '%s' - %s.\n",
    366 			    fname, strerror(errno));
    367 		} else {
    368 			if (S_ISDIR(stbuf.st_mode)) {
    369 				if (*(p-1) != '/')
    370 					*p++ = '/';
    371 				(void) strcpy(p, "format.dat");
    372 			}
    373 			file_name = alloc_string(fname);
    374 			if (sup_prxfile()) {
    375 				nopened_files++;
    376 			}
    377 		}
    378 	}
    379 #endif	/* defined(sparc) */
    380 
    381 	/*
    382 	 * Check for duplicate disk or partitions definitions
    383 	 * that are inconsistent - this would be very confusing.
    384 	 */
    385 	search_duplicate_dtypes();
    386 	search_duplicate_pinfo();
    387 }
    388 
    389 
    390 /*
    391  * Open and process a format data file.  Unfortunately, we use
    392  * globals: file_name for the file name, and data_file
    393  * for the descriptor.  Return true if able to open the file.
    394  */
    395 static int
    396 sup_prxfile()
    397 {
    398 	int	status;
    399 	TOKEN	token;
    400 	TOKEN	cleaned;
    401 
    402 	/*
    403 	 * Open the data file.  Return 0 if unable to do so.
    404 	 */
    405 	data_file = fopen(file_name, "r");
    406 	if (data_file == NULL) {
    407 		return (0);
    408 	}
    409 	/*
    410 	 * Step through the data file a meta-line at a time.  There are
    411 	 * typically several backslashed newlines in each meta-line,
    412 	 * so data_lineno will be getting side effected along the way.
    413 	 */
    414 	data_lineno = 0;
    415 	for (;;) {
    416 		data_lineno++;
    417 		/*
    418 		 * Get the keyword.
    419 		 */
    420 		status = sup_gettoken(token);
    421 		/*
    422 		 * If we hit the end of the data file, we're done.
    423 		 */
    424 		if (status == SUP_EOF)
    425 			break;
    426 		/*
    427 		 * If the line is blank, skip it.
    428 		 */
    429 		if (status == SUP_EOL)
    430 			continue;
    431 		/*
    432 		 * If the line starts with some key character, it's an error.
    433 		 */
    434 		if (status != SUP_STRING) {
    435 			datafile_error("Expecting keyword, found '%s'", token);
    436 			continue;
    437 		}
    438 		/*
    439 		 * Clean up the token and see which keyword it is.  Call
    440 		 * the appropriate routine to process the rest of the line.
    441 		 */
    442 		clean_token(cleaned, token);
    443 		if (strcmp(cleaned, "search_path") == 0)
    444 			sup_setpath();
    445 		else if (strcmp(cleaned, "disk_type") == 0)
    446 			sup_setdtype();
    447 		else if (strcmp(cleaned, "partition") == 0)
    448 			sup_setpart();
    449 		else {
    450 			datafile_error("Unknown keyword '%s'", cleaned);
    451 		}
    452 	}
    453 	/*
    454 	 * Close the data file.
    455 	 */
    456 	(void) fclose(data_file);
    457 
    458 	return (1);
    459 }
    460 
    461 /*
    462  * This routine processes a 'search_path' line in the data file.  The
    463  * search path is a list of disk names that will be searched for by the
    464  * program.
    465  *
    466  * The static path_size and path_alloc are used to build up the
    467  * list of files comprising the search path.  The static definitions
    468  * enable supporting multiple search path definitions.
    469  */
    470 static void
    471 sup_setpath()
    472 {
    473 	TOKEN		token;
    474 	TOKEN		cleaned;
    475 	int		status;
    476 	static int	path_size;
    477 	static int	path_alloc;
    478 
    479 	/*
    480 	 * Pull in some grammar.
    481 	 */
    482 	status = sup_gettoken(token);
    483 	if (status != SUP_EQL) {
    484 		datafile_error("Expecting '=', found '%s'", token);
    485 		return;
    486 	}
    487 	/*
    488 	 * Loop through the entries.
    489 	 */
    490 	for (;;) {
    491 		/*
    492 		 * Pull in the disk name.
    493 		 */
    494 		status = sup_gettoken(token);
    495 		/*
    496 		 * If we hit end of line, we're done.
    497 		 */
    498 		if (status == SUP_EOL)
    499 			break;
    500 		/*
    501 		 * If we hit some key character, it's an error.
    502 		 */
    503 		if (status != SUP_STRING) {
    504 			datafile_error("Expecting value, found '%s'", token);
    505 			break;
    506 		}
    507 		clean_token(cleaned, token);
    508 		/*
    509 		 * Build the string into an argvlist.  This array
    510 		 * is dynamically sized, as necessary, and terminated
    511 		 * with a null.  Each name is alloc'ed on the heap,
    512 		 * so no dangling references.
    513 		 */
    514 		search_path = build_argvlist(search_path, &path_size,
    515 		    &path_alloc, cleaned);
    516 		/*
    517 		 * Pull in some grammar.
    518 		 */
    519 		status = sup_gettoken(token);
    520 		if (status == SUP_EOL)
    521 			break;
    522 		if (status != SUP_COMMA) {
    523 			datafile_error("Expecting ', ', found '%s'", token);
    524 			break;
    525 		}
    526 	}
    527 }
    528 
    529 /*
    530  * This routine processes a 'disk_type' line in the data file.  It defines
    531  * the physical attributes of a brand of disk when connected to a specific
    532  * controller type.
    533  */
    534 static void
    535 sup_setdtype()
    536 {
    537 	TOKEN	token, cleaned, ident;
    538 	int	val, status, i;
    539 	ulong_t	flags = 0;
    540 	struct	disk_type *dtype, *type;
    541 	struct	ctlr_type *ctype;
    542 	char	*dtype_name, *ptr;
    543 	struct	mctlr_list	*mlp;
    544 
    545 	/*
    546 	 * Pull in some grammar.
    547 	 */
    548 	status = sup_gettoken(token);
    549 	if (status != SUP_EQL) {
    550 		datafile_error("Expecting '=', found '%s'", token);
    551 		return;
    552 	}
    553 	/*
    554 	 * Pull in the name of the disk type.
    555 	 */
    556 	status = sup_gettoken(token);
    557 	if (status != SUP_STRING) {
    558 		datafile_error("Expecting value, found '%s'", token);
    559 		return;
    560 	}
    561 	clean_token(cleaned, token);
    562 	/*
    563 	 * Allocate space for the disk type and copy in the name.
    564 	 */
    565 	dtype_name = (char *)zalloc(strlen(cleaned) + 1);
    566 	(void) strcpy(dtype_name, cleaned);
    567 	dtype = (struct disk_type *)zalloc(sizeof (struct disk_type));
    568 	dtype->dtype_asciilabel = dtype_name;
    569 	/*
    570 	 * Save the filename/linenumber where this disk was defined
    571 	 */
    572 	dtype->dtype_filename = file_name;
    573 	dtype->dtype_lineno = data_lineno;
    574 	/*
    575 	 * Loop for each attribute.
    576 	 */
    577 	for (;;) {
    578 		/*
    579 		 * Pull in some grammar.
    580 		 */
    581 		status = sup_gettoken(token);
    582 		/*
    583 		 * If we hit end of line, we're done.
    584 		 */
    585 		if (status == SUP_EOL)
    586 			break;
    587 		if (status != SUP_COLON) {
    588 			datafile_error("Expecting ':', found '%s'", token);
    589 			return;
    590 		}
    591 		/*
    592 		 * Pull in the attribute.
    593 		 */
    594 		status = sup_gettoken(token);
    595 		/*
    596 		 * If we hit end of line, we're done.
    597 		 */
    598 		if (status == SUP_EOL)
    599 			break;
    600 		/*
    601 		 * If we hit a key character, it's an error.
    602 		 */
    603 		if (status != SUP_STRING) {
    604 			datafile_error("Expecting keyword, found '%s'", token);
    605 			return;
    606 		}
    607 		clean_token(ident, token);
    608 		/*
    609 		 * Check to see if we've got a change specification
    610 		 * If so, this routine will parse the entire
    611 		 * specification, so just restart at top of loop
    612 		 */
    613 		if (sup_change_spec(dtype, ident)) {
    614 			continue;
    615 		}
    616 		/*
    617 		 * Pull in more grammar.
    618 		 */
    619 		status = sup_gettoken(token);
    620 		if (status != SUP_EQL) {
    621 			datafile_error("Expecting '=', found '%s'", token);
    622 			return;
    623 		}
    624 		/*
    625 		 * Pull in the value of the attribute.
    626 		 */
    627 		status = sup_gettoken(token);
    628 		if (status != SUP_STRING) {
    629 			datafile_error("Expecting value, found '%s'", token);
    630 			return;
    631 		}
    632 		clean_token(cleaned, token);
    633 		/*
    634 		 * If the attribute defined the ctlr...
    635 		 */
    636 		if (strcmp(ident, "ctlr") == 0) {
    637 			/*
    638 			 * Match the value with a ctlr type.
    639 			 */
    640 			mlp = controlp;
    641 
    642 			while (mlp != NULL) {
    643 				if (strcmp(mlp->ctlr_type->ctype_name,
    644 				    cleaned) == 0)
    645 					break;
    646 				mlp = mlp->next;
    647 			}
    648 			/*
    649 			 * If we couldn't match it, it's an error.
    650 			 */
    651 			if (mlp == NULL) {
    652 				for (i = 0; i < OTHER_CTLRS; i++) {
    653 					if (strcmp(other_ctlrs[i], cleaned)
    654 					    == 0) {
    655 						datafile_error(NULL, NULL);
    656 						return;
    657 					}
    658 				}
    659 				if (i == OTHER_CTLRS) {
    660 					datafile_error(
    661 					    "Unknown controller '%s'",
    662 					    cleaned);
    663 					return;
    664 				}
    665 			}
    666 			/*
    667 			 * Found a match.  Add this disk type to the list
    668 			 * for the ctlr type if we can complete the
    669 			 * disk specification correctly.
    670 			 */
    671 			ctype = mlp->ctlr_type;
    672 			flags |= SUP_CTLR;
    673 			continue;
    674 		}
    675 		/*
    676 		 * All other attributes require a numeric value.  Convert
    677 		 * the value to a number.
    678 		 */
    679 		val = (int)strtol(cleaned, &ptr, 0);
    680 		if (*ptr != '\0') {
    681 			datafile_error("Expecting an integer, found '%s'",
    682 			    cleaned);
    683 			return;
    684 		}
    685 		/*
    686 		 * Figure out which attribute it was and fill in the
    687 		 * appropriate value.  Also note that the attribute
    688 		 * has been defined.
    689 		 */
    690 		if (strcmp(ident, "ncyl") == 0) {
    691 			dtype->dtype_ncyl = val;
    692 			flags |= SUP_NCYL;
    693 		} else if (strcmp(ident, "acyl") == 0) {
    694 			dtype->dtype_acyl = val;
    695 			flags |= SUP_ACYL;
    696 		} else if (strcmp(ident, "pcyl") == 0) {
    697 			dtype->dtype_pcyl = val;
    698 			flags |= SUP_PCYL;
    699 		} else if (strcmp(ident, "nhead") == 0) {
    700 			dtype->dtype_nhead = val;
    701 			flags |= SUP_NHEAD;
    702 		} else if (strcmp(ident, "nsect") == 0) {
    703 			dtype->dtype_nsect = val;
    704 			flags |= SUP_NSECT;
    705 		} else if (strcmp(ident, "rpm") == 0) {
    706 			dtype->dtype_rpm = val;
    707 			flags |= SUP_RPM;
    708 		} else if (strcmp(ident, "bpt") == 0) {
    709 			dtype->dtype_bpt = val;
    710 			flags |= SUP_BPT;
    711 		} else if (strcmp(ident, "bps") == 0) {
    712 			dtype->dtype_bps = val;
    713 			flags |= SUP_BPS;
    714 		} else if (strcmp(ident, "drive_type") == 0) {
    715 			dtype->dtype_dr_type = val;
    716 			flags |= SUP_DRTYPE;
    717 		} else if (strcmp(ident, "cache") == 0) {
    718 			dtype->dtype_cache = val;
    719 			flags |= SUP_CACHE;
    720 		} else if (strcmp(ident, "prefetch") == 0) {
    721 			dtype->dtype_threshold = val;
    722 			flags |= SUP_PREFETCH;
    723 		} else if (strcmp(ident, "read_retries") == 0) {
    724 			dtype->dtype_read_retries = val;
    725 			flags |= SUP_READ_RETRIES;
    726 		} else if (strcmp(ident, "write_retries") == 0) {
    727 			dtype->dtype_write_retries = val;
    728 			flags |= SUP_WRITE_RETRIES;
    729 		} else if (strcmp(ident, "min_prefetch") == 0) {
    730 			dtype->dtype_prefetch_min = val;
    731 			flags |= SUP_CACHE_MIN;
    732 		} else if (strcmp(ident, "max_prefetch") == 0) {
    733 			dtype->dtype_prefetch_max = val;
    734 			flags |= SUP_CACHE_MAX;
    735 		} else if (strcmp(ident, "trks_zone") == 0) {
    736 			dtype->dtype_trks_zone = val;
    737 			flags |= SUP_TRKS_ZONE;
    738 		} else if (strcmp(ident, "atrks") == 0) {
    739 			dtype->dtype_atrks = val;
    740 			flags |= SUP_ATRKS;
    741 		} else if (strcmp(ident, "asect") == 0) {
    742 			dtype->dtype_asect = val;
    743 			flags |= SUP_ASECT;
    744 		} else if (strcmp(ident, "psect") == 0) {
    745 			dtype->dtype_psect = val;
    746 			flags |= SUP_PSECT;
    747 		} else if (strcmp(ident, "phead") == 0) {
    748 			dtype->dtype_phead = val;
    749 			flags |= SUP_PHEAD;
    750 		} else if (strcmp(ident, "fmt_time") == 0) {
    751 			dtype->dtype_fmt_time = val;
    752 			flags |= SUP_FMTTIME;
    753 		} else if (strcmp(ident, "cyl_skew") == 0) {
    754 			dtype->dtype_cyl_skew = val;
    755 			flags |= SUP_CYLSKEW;
    756 		} else if (strcmp(ident, "trk_skew") == 0) {
    757 			dtype->dtype_trk_skew = val;
    758 			flags |= SUP_TRKSKEW;
    759 		} else {
    760 			datafile_error("Unknown keyword '%s'", ident);
    761 		}
    762 	}
    763 	/*
    764 	 * Check to be sure all the necessary attributes have been defined.
    765 	 * If any are missing, it's an error.  Also, log options for later
    766 	 * use by specific driver.
    767 	 */
    768 	dtype->dtype_options = flags;
    769 	if ((flags & SUP_MIN_DRIVE) != SUP_MIN_DRIVE) {
    770 		datafile_error("Incomplete specification", "");
    771 		return;
    772 	}
    773 	if ((!(ctype->ctype_flags & CF_SCSI)) && (!(flags & SUP_BPT)) &&
    774 	    (!(ctype->ctype_flags & CF_NOFORMAT))) {
    775 		datafile_error("Incomplete specification", "");
    776 		return;
    777 	}
    778 	if ((ctype->ctype_flags & CF_SMD_DEFS) && (!(flags & SUP_BPS))) {
    779 		datafile_error("Incomplete specification", "");
    780 		return;
    781 	}
    782 	/*
    783 	 * Add this disk type to the list for the ctlr type
    784 	 */
    785 	assert(flags & SUP_CTLR);
    786 	type = ctype->ctype_dlist;
    787 	if (type == NULL) {
    788 		ctype->ctype_dlist = dtype;
    789 	} else {
    790 		while (type->dtype_next != NULL)
    791 			type = type->dtype_next;
    792 		type->dtype_next = dtype;
    793 	}
    794 }
    795 
    796 
    797 /*
    798  * Parse a SCSI mode page change specification.
    799  *
    800  * Return:
    801  *		0:  not change specification, continue parsing
    802  *		1:  was change specification, it was ok,
    803  *		    or we already handled the error.
    804  */
    805 static int
    806 sup_change_spec(struct disk_type *disk, char *id)
    807 {
    808 	char		*p;
    809 	char		*p2;
    810 	int		pageno;
    811 	int		byteno;
    812 	int		mode;
    813 	int		value;
    814 	TOKEN		token;
    815 	TOKEN		ident;
    816 	struct chg_list	*cp;
    817 	int		tilde;
    818 	int		i;
    819 
    820 	/*
    821 	 * Syntax: p[<nn>|0x<xx>]
    822 	 */
    823 	if (*id != 'p') {
    824 		return (0);
    825 	}
    826 	pageno = (int)strtol(id+1, &p2, 0);
    827 	if (*p2 != 0) {
    828 		return (0);
    829 	}
    830 	/*
    831 	 * Once we get this far, we know we have the
    832 	 * beginnings of a change specification.
    833 	 * If there's a problem now, report the problem,
    834 	 * and return 1, so that the caller can restart
    835 	 * parsing at the next expression.
    836 	 */
    837 	if (!scsi_supported_page(pageno)) {
    838 		datafile_error("Unsupported mode page '%s'", id);
    839 		return (1);
    840 	}
    841 	/*
    842 	 * Next token should be the byte offset
    843 	 */
    844 	if (sup_gettoken(token) != SUP_STRING) {
    845 		datafile_error("Unexpected value '%s'", token);
    846 		return (1);
    847 	}
    848 	clean_token(ident, token);
    849 
    850 	/*
    851 	 * Syntax: b[<nn>|0x<xx>]
    852 	 */
    853 	p = ident;
    854 	if (*p++ != 'b') {
    855 		datafile_error("Unknown keyword '%s'", ident);
    856 		return (1);
    857 	}
    858 	byteno = (int)strtol(p, &p2, 10);
    859 	if (*p2 != 0) {
    860 		datafile_error("Unknown keyword '%s'", ident);
    861 		return (1);
    862 	}
    863 	if (byteno == 0 || byteno == 1) {
    864 		datafile_error("Unsupported byte offset '%s'", ident);
    865 		return (1);
    866 	}
    867 
    868 	/*
    869 	 * Get the operator for this expression
    870 	 */
    871 	mode = CHG_MODE_UNDEFINED;
    872 	switch (sup_gettoken(token)) {
    873 	case SUP_EQL:
    874 		mode = CHG_MODE_ABS;
    875 		break;
    876 	case SUP_OR:
    877 		if (sup_gettoken(token) == SUP_EQL)
    878 			mode = CHG_MODE_SET;
    879 		break;
    880 	case SUP_AND:
    881 		if (sup_gettoken(token) == SUP_EQL)
    882 			mode = CHG_MODE_CLR;
    883 		break;
    884 	}
    885 	if (mode == CHG_MODE_UNDEFINED) {
    886 		datafile_error("Unexpected operator: '%s'", token);
    887 		return (1);
    888 	}
    889 
    890 	/*
    891 	 * Get right-hand of expression - accept optional tilde
    892 	 */
    893 	tilde = 0;
    894 	if ((i = sup_gettoken(token)) == SUP_TILDE) {
    895 		tilde = 1;
    896 		i = sup_gettoken(token);
    897 	}
    898 	if (i != SUP_STRING) {
    899 		datafile_error("Expecting value, found '%s'", token);
    900 		return (1);
    901 	}
    902 	clean_token(ident, token);
    903 	value = (int)strtol(ident, &p, 0);
    904 	if (*p != 0) {
    905 		datafile_error("Expecting value, found '%s'", token);
    906 		return (1);
    907 	}
    908 
    909 	/*
    910 	 * Apply the tilde operator, if found.
    911 	 * Constrain to a byte value.
    912 	 */
    913 	if (tilde) {
    914 		value = ~value;
    915 	}
    916 	value &= 0xff;
    917 
    918 	/*
    919 	 * We parsed a successful change specification expression.
    920 	 * Add it to the list for this disk type.
    921 	 */
    922 	cp = new_chg_list(disk);
    923 	cp->pageno = pageno;
    924 	cp->byteno = byteno;
    925 	cp->mode = mode;
    926 	cp->value = value;
    927 	return (1);
    928 }
    929 
    930 
    931 /*
    932  * This routine processes a 'partition' line in the data file.  It defines
    933  * a known partition map for a particular disk type on a particular
    934  * controller type.
    935  */
    936 static void
    937 sup_setpart()
    938 {
    939 	TOKEN	token, cleaned, disk, ctlr, ident;
    940 	struct	disk_type *dtype = NULL;
    941 	struct	ctlr_type *ctype = NULL;
    942 	struct	partition_info *pinfo, *parts;
    943 	char	*pinfo_name;
    944 	int	i, index, status, flags = 0;
    945 	uint_t	val1, val2;
    946 	ushort_t	vtoc_tag;
    947 	ushort_t	vtoc_flag;
    948 	struct	mctlr_list	*mlp;
    949 
    950 	/*
    951 	 * Pull in some grammar.
    952 	 */
    953 	status = sup_gettoken(token);
    954 	if (status != SUP_EQL) {
    955 		datafile_error("Expecting '=', found '%s'", token);
    956 		return;
    957 	}
    958 	/*
    959 	 * Pull in the name of the map.
    960 	 */
    961 	status = sup_gettoken(token);
    962 	if (status != SUP_STRING) {
    963 		datafile_error("Expecting value, found '%s'", token);
    964 		return;
    965 	}
    966 	clean_token(cleaned, token);
    967 	/*
    968 	 * Allocate space for the partition map and fill in the name.
    969 	 */
    970 	pinfo_name = (char *)zalloc(strlen(cleaned) + 1);
    971 	(void) strcpy(pinfo_name, cleaned);
    972 	pinfo = (struct partition_info *)zalloc(sizeof (struct partition_info));
    973 	pinfo->pinfo_name = pinfo_name;
    974 	/*
    975 	 * Save the filename/linenumber where this partition was defined
    976 	 */
    977 	pinfo->pinfo_filename = file_name;
    978 	pinfo->pinfo_lineno = data_lineno;
    979 
    980 	/*
    981 	 * Install default vtoc information into the new partition table
    982 	 */
    983 	set_vtoc_defaults(pinfo);
    984 
    985 	/*
    986 	 * Loop for each attribute in the line.
    987 	 */
    988 	for (;;) {
    989 		/*
    990 		 * Pull in some grammar.
    991 		 */
    992 		status = sup_gettoken(token);
    993 		/*
    994 		 * If we hit end of line, we're done.
    995 		 */
    996 		if (status == SUP_EOL)
    997 			break;
    998 		if (status != SUP_COLON) {
    999 			datafile_error("Expecting ':', found '%s'", token);
   1000 			return;
   1001 		}
   1002 		/*
   1003 		 * Pull in the attribute.
   1004 		 */
   1005 		status = sup_gettoken(token);
   1006 		/*
   1007 		 * If we hit end of line, we're done.
   1008 		 */
   1009 		if (status == SUP_EOL)
   1010 			break;
   1011 		if (status != SUP_STRING) {
   1012 			datafile_error("Expecting keyword, found '%s'", token);
   1013 			return;
   1014 		}
   1015 		clean_token(ident, token);
   1016 		/*
   1017 		 * Pull in more grammar.
   1018 		 */
   1019 		status = sup_gettoken(token);
   1020 		if (status != SUP_EQL) {
   1021 			datafile_error("Expecting '=', found '%s'", token);
   1022 			return;
   1023 		}
   1024 		/*
   1025 		 * Pull in the value of the attribute.
   1026 		 */
   1027 		status = sup_gettoken(token);
   1028 		/*
   1029 		 * If we hit a key character, it's an error.
   1030 		 */
   1031 		if (status != SUP_STRING) {
   1032 			datafile_error("Expecting value, found '%s'", token);
   1033 			return;
   1034 		}
   1035 		clean_token(cleaned, token);
   1036 		/*
   1037 		 * If the attribute is the ctlr, save the ctlr name and
   1038 		 * mark it defined.
   1039 		 */
   1040 		if (strcmp(ident, "ctlr") == 0) {
   1041 			(void) strcpy(ctlr, cleaned);
   1042 			flags |= SUP_CTLR;
   1043 			continue;
   1044 		/*
   1045 		 * If the attribute is the disk, save the disk name and
   1046 		 * mark it defined.
   1047 		 */
   1048 		} else if (strcmp(ident, "disk") == 0) {
   1049 			(void) strcpy(disk, cleaned);
   1050 			flags |= SUP_DISK;
   1051 			continue;
   1052 		}
   1053 		/*
   1054 		 * If we now know both the controller name and the
   1055 		 * disk name, let's see if we can find the controller
   1056 		 * and disk type.  This will give us the geometry,
   1057 		 * which can permit us to accept partitions specs
   1058 		 * in cylinders or blocks.
   1059 		 */
   1060 		if (((flags & (SUP_DISK|SUP_CTLR)) == (SUP_DISK|SUP_CTLR)) &&
   1061 		    dtype == NULL && ctype == NULL) {
   1062 			/*
   1063 			 * Attempt to match the specified ctlr to a known type.
   1064 			 */
   1065 			mlp = controlp;
   1066 
   1067 			while (mlp != NULL) {
   1068 				if (strcmp(mlp->ctlr_type->ctype_name,
   1069 				    ctlr) == 0)
   1070 					break;
   1071 				mlp = mlp->next;
   1072 			}
   1073 			/*
   1074 			 * If no match is found, it's an error.
   1075 			 */
   1076 			if (mlp == NULL) {
   1077 				for (i = 0; i < OTHER_CTLRS; i++) {
   1078 					if (strcmp(other_ctlrs[i], ctlr) == 0) {
   1079 						datafile_error(NULL, NULL);
   1080 						return;
   1081 					}
   1082 				}
   1083 				if (i == OTHER_CTLRS) {
   1084 					datafile_error(
   1085 					    "Unknown controller '%s'", ctlr);
   1086 					return;
   1087 				}
   1088 			}
   1089 			ctype = mlp->ctlr_type;
   1090 			/*
   1091 			 * Attempt to match the specified disk to a known type.
   1092 			 */
   1093 			for (dtype = ctype->ctype_dlist; dtype != NULL;
   1094 			    dtype = dtype->dtype_next) {
   1095 				if (strcmp(dtype->dtype_asciilabel, disk) == 0)
   1096 					break;
   1097 			}
   1098 			/*
   1099 			 * If no match is found, it's an error.
   1100 			 */
   1101 			if (dtype == NULL) {
   1102 				datafile_error("Unknown disk '%s'", disk);
   1103 				return;
   1104 			}
   1105 			/*
   1106 			 * Now that we know the disk type, set up the
   1107 			 * globals that let that magic macro "spc()"
   1108 			 * do it's thing.  Sorry that this is glued
   1109 			 * together so poorly...
   1110 			 */
   1111 			nhead = dtype->dtype_nhead;
   1112 			nsect = dtype->dtype_nsect;
   1113 			acyl = dtype->dtype_acyl;
   1114 			ncyl = dtype->dtype_ncyl;
   1115 		}
   1116 		/*
   1117 		 * By now, the disk and controller type must be defined
   1118 		 */
   1119 		if (dtype == NULL || ctype == NULL) {
   1120 			datafile_error("Incomplete specification", "");
   1121 			return;
   1122 		}
   1123 		/*
   1124 		 * The rest of the attributes are all single letters.
   1125 		 * Make sure the specified attribute is a single letter.
   1126 		 */
   1127 		if (strlen(ident) != 1) {
   1128 			datafile_error("Unknown keyword '%s'", ident);
   1129 			return;
   1130 		}
   1131 		/*
   1132 		 * Also make sure it is within the legal range of letters.
   1133 		 */
   1134 		if (ident[0] < PARTITION_BASE || ident[0] > PARTITION_BASE+9) {
   1135 			datafile_error("Unknown keyword '%s'", ident);
   1136 			return;
   1137 		}
   1138 		/*
   1139 		 * Here's the index of the partition we're dealing with
   1140 		 */
   1141 		index = ident[0] - PARTITION_BASE;
   1142 		/*
   1143 		 * For SunOS 5.0, we support the additional syntax:
   1144 		 *	[<tag>, ] [<flag>, ] <start>, <end>
   1145 		 * instead of:
   1146 		 *	<start>, <end>
   1147 		 *
   1148 		 * <tag> may be one of: boot, root, swap, etc.
   1149 		 * <flag> consists of two characters:
   1150 		 *	W (writable) or R (read-only)
   1151 		 *	M (mountable) or U (unmountable)
   1152 		 *
   1153 		 * Start with the defaults assigned above:
   1154 		 */
   1155 		vtoc_tag = pinfo->vtoc.v_part[index].p_tag;
   1156 		vtoc_flag = pinfo->vtoc.v_part[index].p_flag;
   1157 
   1158 		/*
   1159 		 * First try to match token against possible tag values
   1160 		 */
   1161 		if (find_value(ptag_choices, cleaned, &i) == 1) {
   1162 			/*
   1163 			 * Found valid tag. Use it and advance parser
   1164 			 */
   1165 			vtoc_tag = (ushort_t)i;
   1166 			status = sup_gettoken(token);
   1167 			if (status != SUP_COMMA) {
   1168 				datafile_error(
   1169 				    "Expecting ', ', found '%s'", token);
   1170 				return;
   1171 			}
   1172 			status = sup_gettoken(token);
   1173 			if (status != SUP_STRING) {
   1174 				datafile_error("Expecting value, found '%s'",
   1175 				    token);
   1176 				return;
   1177 			}
   1178 			clean_token(cleaned, token);
   1179 		}
   1180 
   1181 		/*
   1182 		 * Try to match token against possible flag values
   1183 		 */
   1184 		if (find_value(pflag_choices, cleaned, &i) == 1) {
   1185 			/*
   1186 			 * Found valid flag. Use it and advance parser
   1187 			 */
   1188 			vtoc_flag = (ushort_t)i;
   1189 			status = sup_gettoken(token);
   1190 			if (status != SUP_COMMA) {
   1191 				datafile_error("Expecting ', ', found '%s'",
   1192 				    token);
   1193 				return;
   1194 			}
   1195 			status = sup_gettoken(token);
   1196 			if (status != SUP_STRING) {
   1197 				datafile_error("Expecting value, found '%s'",
   1198 				    token);
   1199 				return;
   1200 			}
   1201 			clean_token(cleaned, token);
   1202 		}
   1203 		/*
   1204 		 * All other attributes have a pair of numeric values.
   1205 		 * Convert the first value to a number.  This value
   1206 		 * is the starting cylinder number of the partition.
   1207 		 */
   1208 		val1 = str2cyls(cleaned);
   1209 		if (val1 == (uint_t)(-1)) {
   1210 			datafile_error("Expecting an integer, found '%s'",
   1211 			    cleaned);
   1212 			return;
   1213 		}
   1214 		/*
   1215 		 * Pull in some grammar.
   1216 		 */
   1217 		status = sup_gettoken(token);
   1218 		if (status != SUP_COMMA) {
   1219 			datafile_error("Expecting ', ', found '%s'", token);
   1220 			return;
   1221 		}
   1222 		/*
   1223 		 * Pull in the second value.
   1224 		 */
   1225 		status = sup_gettoken(token);
   1226 		if (status != SUP_STRING) {
   1227 			datafile_error("Expecting value, found '%s'", token);
   1228 			return;
   1229 		}
   1230 		clean_token(cleaned, token);
   1231 		/*
   1232 		 * Convert the second value to a number.  This value
   1233 		 * is the number of blocks composing the partition.
   1234 		 * If the token is terminated with a 'c', the units
   1235 		 * are cylinders, not blocks.  Also accept a 'b', if
   1236 		 * they choose to be so specific.
   1237 		 */
   1238 		val2 = str2blks(cleaned);
   1239 		if (val2 == (uint_t)(-1)) {
   1240 			datafile_error("Expecting an integer, found '%s'",
   1241 			    cleaned);
   1242 			return;
   1243 		}
   1244 		/*
   1245 		 * Fill in the appropriate map entry with the values.
   1246 		 */
   1247 		pinfo->pinfo_map[index].dkl_cylno = val1;
   1248 		pinfo->pinfo_map[index].dkl_nblk = val2;
   1249 		pinfo->vtoc.v_part[index].p_tag = vtoc_tag;
   1250 		pinfo->vtoc.v_part[index].p_flag = vtoc_flag;
   1251 
   1252 #if defined(_SUNOS_VTOC_16)
   1253 		pinfo->vtoc.v_part[index].p_start = val1 * (nhead * nsect);
   1254 		pinfo->vtoc.v_part[index].p_size = val2;
   1255 
   1256 		if (val2 == 0) {
   1257 			pinfo->vtoc.v_part[index].p_tag = 0;
   1258 			pinfo->vtoc.v_part[index].p_flag = 0;
   1259 			pinfo->vtoc.v_part[index].p_start = 0;
   1260 			pinfo->pinfo_map[index].dkl_cylno = 0;
   1261 		}
   1262 #endif /* defined(_SUNOS_VTOC_16) */
   1263 
   1264 	}
   1265 	/*
   1266 	 * Check to be sure that all necessary attributes were defined.
   1267 	 */
   1268 	if ((flags & SUP_MIN_PART) != SUP_MIN_PART) {
   1269 		datafile_error("Incomplete specification", "");
   1270 		return;
   1271 	}
   1272 	/*
   1273 	 * Add this partition map to the list of known maps for the
   1274 	 * specified disk/ctlr.
   1275 	 */
   1276 	parts = dtype->dtype_plist;
   1277 	if (parts == NULL)
   1278 		dtype->dtype_plist = pinfo;
   1279 	else {
   1280 		while (parts->pinfo_next != NULL)
   1281 			parts = parts->pinfo_next;
   1282 		parts->pinfo_next = pinfo;
   1283 	}
   1284 }
   1285 
   1286 /*
   1287  * Open the disk device - just a wrapper for open.
   1288  */
   1289 int
   1290 open_disk(char *diskname, int flags)
   1291 {
   1292 	return (open(diskname, flags));
   1293 }
   1294 
   1295 /*
   1296  * This routine performs the disk search during startup.  It looks for
   1297  * all the disks in the search path, and creates a list of those that
   1298  * are found.
   1299  */
   1300 void
   1301 do_search(char *arglist[])
   1302 {
   1303 	char			**sp;
   1304 	DIR			*dir;
   1305 	struct dirent		*dp;
   1306 	char			s[MAXPATHLEN];
   1307 	char			path[MAXPATHLEN];
   1308 	char			curdir[MAXPATHLEN];
   1309 	char			*directory = "/dev/rdsk";
   1310 	struct disk_info	*disk;
   1311 	int			i;
   1312 
   1313 	/*
   1314 	 * Change directory to the device directory.  This
   1315 	 * gives us the most efficient access to that directory.
   1316 	 * Remember where we were, and return there when finished.
   1317 	 */
   1318 	if (getcwd(curdir, sizeof (curdir)) == NULL) {
   1319 		err_print("Cannot get current directory - %s\n",
   1320 		    strerror(errno));
   1321 		fullabort();
   1322 	}
   1323 	if (chdir(directory) == -1) {
   1324 		err_print("Cannot set directory to %s - %s\n",
   1325 		    directory, strerror(errno));
   1326 		fullabort();
   1327 	}
   1328 
   1329 	/*
   1330 	 * If there were disks specified on the command line,
   1331 	 * use those disks, and nothing but those disks.
   1332 	 */
   1333 	if (arglist != NULL) {
   1334 		check_for_duplicate_disknames(arglist);
   1335 		for (; *arglist != NULL; arglist++) {
   1336 			search_for_logical_dev(*arglist);
   1337 		}
   1338 	} else {
   1339 		/*
   1340 		 * If there were no disks specified on the command line,
   1341 		 * search for all disks attached to the system.
   1342 		 */
   1343 		fmt_print("Searching for disks...");
   1344 		(void) fflush(stdout);
   1345 		need_newline = 1;
   1346 
   1347 		/*
   1348 		 * Find all disks specified in search_path definitions
   1349 		 * in whatever format.dat files were processed.
   1350 		 */
   1351 		sp = search_path;
   1352 		if (sp != NULL) {
   1353 			while (*sp != NULL) {
   1354 				search_for_logical_dev(*sp++);
   1355 			}
   1356 		}
   1357 
   1358 		/*
   1359 		 * Open the device directory
   1360 		 */
   1361 		if ((dir = opendir(".")) == NULL) {
   1362 			err_print("Cannot open %s - %s\n",
   1363 			    directory, strerror(errno));
   1364 			fullabort();
   1365 		}
   1366 
   1367 		/*
   1368 		 * Now find all usable nodes in /dev/rdsk (or /dev, if 4.x)
   1369 		 * First find all nodes which do not conform to
   1370 		 * standard disk naming conventions.  This permits
   1371 		 * all user-defined names to override the default names.
   1372 		 */
   1373 		while ((dp = readdir(dir)) != NULL) {
   1374 			if (strcmp(dp->d_name, ".") == 0 ||
   1375 			    strcmp(dp->d_name, "..") == 0)
   1376 				continue;
   1377 			if (!conventional_name(dp->d_name)) {
   1378 				if (!fdisk_physical_name(dp->d_name)) {
   1379 					/*
   1380 					 * If non-conventional name represents
   1381 					 * a link to non-s2 slice , ignore it.
   1382 					 */
   1383 					if (!name_represents_wholedisk
   1384 					    (dp->d_name)) {
   1385 						(void) strcpy(path, directory);
   1386 						(void) strcat(path, "/");
   1387 						(void) strcat(path, dp->d_name);
   1388 						add_device_to_disklist(
   1389 						    dp->d_name, path);
   1390 					}
   1391 				}
   1392 			}
   1393 		}
   1394 		rewinddir(dir);
   1395 
   1396 
   1397 		/*
   1398 		 * Now find all nodes corresponding to the standard
   1399 		 * device naming conventions.
   1400 		 */
   1401 		while ((dp = readdir(dir)) != NULL) {
   1402 			if (strcmp(dp->d_name, ".") == 0 ||
   1403 			    strcmp(dp->d_name, "..") == 0)
   1404 				continue;
   1405 			if (whole_disk_name(dp->d_name)) {
   1406 				(void) strcpy(path, directory);
   1407 				(void) strcat(path, "/");
   1408 				(void) strcat(path, dp->d_name);
   1409 				canonicalize_name(s, dp->d_name);
   1410 				add_device_to_disklist(s, path);
   1411 			}
   1412 		}
   1413 		/*
   1414 		 * Close the directory
   1415 		 */
   1416 		if (closedir(dir) == -1) {
   1417 			err_print("Cannot close directory %s - %s\n",
   1418 			    directory, strerror(errno));
   1419 			fullabort();
   1420 		}
   1421 
   1422 		need_newline = 0;
   1423 		fmt_print("done\n");
   1424 	}
   1425 
   1426 	/*
   1427 	 * Return to whence we came
   1428 	 */
   1429 	if (chdir(curdir) == -1) {
   1430 		err_print("Cannot set directory to %s - %s\n",
   1431 		    curdir, strerror(errno));
   1432 		fullabort();
   1433 	}
   1434 
   1435 	/*
   1436 	 * If we didn't find any disks, give up.
   1437 	 */
   1438 	if (disk_list == NULL) {
   1439 		if (geteuid() == 0) {
   1440 			err_print("No disks found!\n");
   1441 		} else {
   1442 			err_print("No permission (or no disks found)!\n");
   1443 		}
   1444 		(void) fflush(stdout);
   1445 		fullabort();
   1446 	}
   1447 
   1448 	sort_disk_list();
   1449 
   1450 	/*
   1451 	 * Tell user the results of the auto-configure process
   1452 	 */
   1453 	i = 0;
   1454 	for (disk = disk_list; disk != NULL; disk = disk->disk_next) {
   1455 		float			scaled;
   1456 		diskaddr_t		nblks;
   1457 		struct disk_type	*type;
   1458 		if (disk->disk_flags & DSK_AUTO_CONFIG) {
   1459 			if (i++ == 0) {
   1460 				fmt_print("\n");
   1461 			}
   1462 			fmt_print("%s: ", disk->disk_name);
   1463 			if (disk->disk_flags & DSK_LABEL_DIRTY) {
   1464 				fmt_print("configured ");
   1465 			} else {
   1466 				fmt_print("configured and labeled ");
   1467 			}
   1468 			type = disk->disk_type;
   1469 			nblks = type->dtype_ncyl * type->dtype_nhead *
   1470 			    type->dtype_nsect;
   1471 			if (disk->label_type == L_TYPE_SOLARIS)
   1472 				scaled = bn2mb(nblks);
   1473 			else
   1474 				scaled = bn2mb(type->capacity);
   1475 			fmt_print("with capacity of ");
   1476 			if (scaled > 1024.0) {
   1477 				fmt_print("%1.2fGB\n", scaled/1024.0);
   1478 			} else {
   1479 				fmt_print("%1.2fMB\n", scaled);
   1480 			}
   1481 		}
   1482 	}
   1483 }
   1484 
   1485 
   1486 /*
   1487  * For a given "logical" disk name as specified in a format.dat
   1488  * search path, try to find the device it actually refers to.
   1489  * Since we are trying to maintain 4.x naming convention
   1490  * compatibility in 5.0, this involves a little bit of work.
   1491  * We also want to be able to function under 4.x, if needed.
   1492  *
   1493  * canonical:	standard name reference.  append a partition
   1494  *	reference, and open that file in the device directory.
   1495  *	examples:	SVR4:	c0t0d0
   1496  *			4.x:	sd0
   1497  *
   1498  * absolute:	begins with a '/', and is assumed to be an
   1499  *	absolute pathname to some node.
   1500  *
   1501  * relative:	non-canonical, doesn't begin with a '/'.
   1502  *	assumed to be the name of a file in the appropriate
   1503  *	device directory.
   1504  */
   1505 static void
   1506 search_for_logical_dev(char *devname)
   1507 {
   1508 	char		path[MAXPATHLEN];
   1509 	char		*directory = "/dev/rdsk/";
   1510 	char		*partition = "s2";
   1511 
   1512 	/*
   1513 	 * If the name is an absolute path name, accept it as is
   1514 	 */
   1515 	if (*devname == '/') {
   1516 		(void) strcpy(path, devname);
   1517 	} else if (canonical_name(devname)) {
   1518 		/*
   1519 		 * If canonical name, construct a standard path name.
   1520 		 */
   1521 		(void) strcpy(path, directory);
   1522 		(void) strcat(path, devname);
   1523 		(void) strcat(path, partition);
   1524 	} else if (canonical4x_name(devname)) {
   1525 		/*
   1526 		 * Check to see if it's a 4.x file name in the /dev
   1527 		 * directory on 5.0.  Here, we only accept the
   1528 		 * canonicalized form: sd0.
   1529 		 */
   1530 		(void) strcpy(path, "/dev/r");
   1531 		(void) strcat(path, devname);
   1532 		(void) strcat(path, "c");
   1533 	} else {
   1534 		/*
   1535 		 * If it's not a canonical name, then it may be a
   1536 		 * reference to an actual file name in the device
   1537 		 * directory itself.
   1538 		 */
   1539 		(void) strcpy(path, directory);
   1540 		(void) strcat(path, devname);
   1541 	}
   1542 
   1543 	/* now add the device */
   1544 	add_device_to_disklist(devname, path);
   1545 }
   1546 
   1547 
   1548 /*
   1549  * Add a device to the disk list, if it appears to be a disk,
   1550  * and we haven't already found it under some other name.
   1551  */
   1552 static void
   1553 add_device_to_disklist(char *devname, char *devpath)
   1554 {
   1555 	struct disk_info	*search_disk;
   1556 	struct ctlr_info	*search_ctlr;
   1557 	struct disk_type	*search_dtype, *efi_disk;
   1558 	struct partition_info	*search_parts;
   1559 	struct disk_info	*dptr;
   1560 	struct ctlr_info	*cptr;
   1561 	struct disk_type	*type;
   1562 	struct partition_info	*parts;
   1563 	struct dk_label		search_label;
   1564 	struct dk_cinfo		dkinfo;
   1565 	struct stat		stbuf;
   1566 	struct ctlr_type	*ctlr, *tctlr;
   1567 	struct	mctlr_list	*mlp;
   1568 	struct	efi_info	efi_info;
   1569 	struct dk_minfo		mediainfo;
   1570 	int			search_file;
   1571 	int			status;
   1572 	int			i;
   1573 	int			access_flags = 0;
   1574 
   1575 	/*
   1576 	 * Attempt to open the disk.  If it fails, skip it.
   1577 	 */
   1578 	if ((search_file = open_disk(devpath, O_RDWR | O_NDELAY)) < 0) {
   1579 		return;
   1580 	}
   1581 	/*
   1582 	 * Must be a character device
   1583 	 */
   1584 	if (fstat(search_file, &stbuf) == -1 || !S_ISCHR(stbuf.st_mode)) {
   1585 		(void) close(search_file);
   1586 		return;
   1587 	}
   1588 	/*
   1589 	 * Attempt to read the configuration info on the disk.
   1590 	 * Again, if it fails, we assume the disk's not there.
   1591 	 * Note we must close the file for the disk before we
   1592 	 * continue.
   1593 	 */
   1594 	if (ioctl(search_file, DKIOCINFO, &dkinfo) < 0) {
   1595 		(void) close(search_file);
   1596 		return;
   1597 	}
   1598 
   1599 	/* If it is a removable media, skip it. */
   1600 
   1601 	if (!expert_mode) {
   1602 		int isremovable, ret;
   1603 		ret = ioctl(search_file, DKIOCREMOVABLE, &isremovable);
   1604 		if ((ret >= 0) && (isremovable != 0)) {
   1605 			(void) close(search_file);
   1606 			return;
   1607 		}
   1608 	}
   1609 
   1610 	if (ioctl(search_file, DKIOCGMEDIAINFO, &mediainfo) == -1) {
   1611 		cur_blksz = DEV_BSIZE;
   1612 	} else {
   1613 		cur_blksz = mediainfo.dki_lbsize;
   1614 	}
   1615 
   1616 	/*
   1617 	 * If the type of disk is one we don't know about,
   1618 	 * add it to the list.
   1619 	 */
   1620 	mlp = controlp;
   1621 
   1622 	while (mlp != NULL) {
   1623 		if (mlp->ctlr_type->ctype_ctype == dkinfo.dki_ctype &&
   1624 		    strcmp(mlp->ctlr_type->ctype_name, dkinfo.dki_cname) == 0) {
   1625 			break;
   1626 		}
   1627 		mlp = mlp->next;
   1628 	}
   1629 
   1630 	if (mlp == NULL) {
   1631 		if (dkinfo.dki_ctype == DKC_CDROM) {
   1632 			if (ioctl(search_file, DKIOCGMEDIAINFO,
   1633 			    &mediainfo) < 0) {
   1634 				mediainfo.dki_media_type = DK_UNKNOWN;
   1635 			}
   1636 		}
   1637 		/*
   1638 		 * Skip CDROM devices, they are read only.
   1639 		 * But not devices like Iomega Rev Drive which
   1640 		 * identifies itself as a CDROM, but has a removable
   1641 		 * disk.
   1642 		 * Also skip PCMCIA memory card device since
   1643 		 * it is used as a pseudo floppy disk drive
   1644 		 * at the present time (BugID 1201473)
   1645 		 */
   1646 		if (((dkinfo.dki_ctype == DKC_CDROM) &&
   1647 		    (mediainfo.dki_media_type != DK_REMOVABLE_DISK)) ||
   1648 		    (dkinfo.dki_ctype == DKC_PCMCIA_MEM)) {
   1649 			(void) close(search_file);
   1650 			return;
   1651 		}
   1652 		/*
   1653 		 * create the new ctlr_type structure and fill it in.
   1654 		 */
   1655 		tctlr = zalloc(sizeof (struct ctlr_type));
   1656 		tctlr->ctype_ctype = dkinfo.dki_ctype;
   1657 		tctlr->ctype_name = zalloc(DK_DEVLEN);
   1658 		if (strlcpy(tctlr->ctype_name, dkinfo.dki_cname,
   1659 		    DK_DEVLEN) > DK_DEVLEN) {
   1660 			/*
   1661 			 * DKIOCINFO returned a controller name longer
   1662 			 * than DK_DEVLEN bytes, which means more of the
   1663 			 * dk_cinfo structure may be corrupt.  We don't
   1664 			 * allow the user to perform any operations on
   1665 			 * the device in this case
   1666 			 */
   1667 			err_print("\nError: Device %s: controller "
   1668 			    "name (%s)\nis invalid.  Device will not "
   1669 			    "be displayed.\n", devname, dkinfo.dki_cname);
   1670 			(void) close(search_file);
   1671 			destroy_data(tctlr->ctype_name);
   1672 			destroy_data((char *)tctlr);
   1673 			return;
   1674 		} else {
   1675 			tctlr->ctype_ops = zalloc(sizeof (struct ctlr_ops));
   1676 
   1677 			/*
   1678 			 * copy the generic disk ops structure into local copy.
   1679 			 */
   1680 			*(tctlr->ctype_ops) = genericops;
   1681 
   1682 			tctlr->ctype_flags = CF_WLIST;
   1683 
   1684 			mlp = controlp;
   1685 
   1686 			while (mlp->next != NULL) {
   1687 				mlp = mlp->next;
   1688 			}
   1689 
   1690 			mlp->next = zalloc(sizeof (struct mctlr_list));
   1691 			mlp->next->ctlr_type = tctlr;
   1692 		}
   1693 	}
   1694 
   1695 	/*
   1696 	 * Search through all disks known at this time, to
   1697 	 * determine if we're already identified this disk.
   1698 	 * If so, then there's no need to include it a
   1699 	 * second time.  This permits the user-defined names
   1700 	 * to supercede the standard conventional names.
   1701 	 */
   1702 	if (disk_is_known(&dkinfo)) {
   1703 		(void) close(search_file);
   1704 		return;
   1705 	}
   1706 #if defined(sparc)
   1707 	/*
   1708 	 * Because opening id with FNDELAY always succeeds,
   1709 	 * read the label early on to see whether the device
   1710 	 * really exists.  A result of DSK_RESERVED
   1711 	 * means the disk may be reserved.
   1712 	 * In the future, it will be good
   1713 	 * to move these into controller specific files and have a common
   1714 	 * generic check for reserved disks here, including intel disks.
   1715 	 */
   1716 	if (dkinfo.dki_ctype == DKC_SCSI_CCS) {
   1717 		char	*first_sector;
   1718 
   1719 		first_sector = zalloc(cur_blksz);
   1720 		i = scsi_rdwr(DIR_READ, search_file, (diskaddr_t)0,
   1721 		    1, first_sector, F_SILENT, NULL);
   1722 		switch (i) {
   1723 		case DSK_RESERVED:
   1724 			access_flags |= DSK_RESERVED;
   1725 			break;
   1726 		case DSK_UNAVAILABLE:
   1727 			access_flags |= DSK_UNAVAILABLE;
   1728 			break;
   1729 		default:
   1730 			break;
   1731 		}
   1732 		free(first_sector);
   1733 	}
   1734 #endif /* defined(sparc) */
   1735 
   1736 	/*
   1737 	 * The disk appears to be present.  Allocate space for the
   1738 	 * disk structure and add it to the list of found disks.
   1739 	 */
   1740 	search_disk = (struct disk_info *)zalloc(sizeof (struct disk_info));
   1741 	if (disk_list == NULL)
   1742 		disk_list = search_disk;
   1743 	else {
   1744 		for (dptr = disk_list; dptr->disk_next != NULL;
   1745 		    dptr = dptr->disk_next)
   1746 			;
   1747 		dptr->disk_next = search_disk;
   1748 	}
   1749 	/*
   1750 	 * Fill in some info from the ioctls.
   1751 	 */
   1752 	search_disk->disk_dkinfo = dkinfo;
   1753 	if (is_efi_type(search_file)) {
   1754 		search_disk->label_type = L_TYPE_EFI;
   1755 	} else {
   1756 		search_disk->label_type = L_TYPE_SOLARIS;
   1757 	}
   1758 	/*
   1759 	 * Remember the names of the disk
   1760 	 */
   1761 	search_disk->disk_name = alloc_string(devname);
   1762 	search_disk->disk_path = alloc_string(devpath);
   1763 
   1764 	/*
   1765 	 * Remember the lba size of the disk
   1766 	 */
   1767 	search_disk->disk_lbasize = cur_blksz;
   1768 
   1769 	(void) strcpy(x86_devname, devname);
   1770 
   1771 	/*
   1772 	 * Determine if this device is linked to a physical name.
   1773 	 */
   1774 	search_disk->devfs_name = get_physical_name(devpath);
   1775 
   1776 	/*
   1777 	 * Try to match the ctlr for this disk with a ctlr we
   1778 	 * have already found.  A match is assumed if the ctlrs
   1779 	 * are at the same address && ctypes agree
   1780 	 */
   1781 	for (search_ctlr = ctlr_list; search_ctlr != NULL;
   1782 	    search_ctlr = search_ctlr->ctlr_next)
   1783 		if (search_ctlr->ctlr_addr == dkinfo.dki_addr &&
   1784 		    search_ctlr->ctlr_space == dkinfo.dki_space &&
   1785 		    search_ctlr->ctlr_ctype->ctype_ctype ==
   1786 		    dkinfo.dki_ctype)
   1787 			break;
   1788 	/*
   1789 	 * If no match was found, we need to identify this ctlr.
   1790 	 */
   1791 	if (search_ctlr == NULL) {
   1792 		/*
   1793 		 * Match the type of the ctlr to a known type.
   1794 		 */
   1795 		mlp = controlp;
   1796 
   1797 		while (mlp != NULL) {
   1798 			if (mlp->ctlr_type->ctype_ctype == dkinfo.dki_ctype)
   1799 				break;
   1800 			mlp = mlp->next;
   1801 		}
   1802 		/*
   1803 		 * If no match was found, it's an error.
   1804 		 * Close the disk and report the error.
   1805 		 */
   1806 		if (mlp == NULL) {
   1807 			err_print("\nError: found disk attached to ");
   1808 			err_print("unsupported controller type '%d'.\n",
   1809 			    dkinfo.dki_ctype);
   1810 			(void) close(search_file);
   1811 			return;
   1812 		}
   1813 		/*
   1814 		 * Allocate space for the ctlr structure and add it
   1815 		 * to the list of found ctlrs.
   1816 		 */
   1817 		search_ctlr = (struct ctlr_info *)
   1818 		    zalloc(sizeof (struct ctlr_info));
   1819 		search_ctlr->ctlr_ctype = mlp->ctlr_type;
   1820 		if (ctlr_list == NULL)
   1821 			ctlr_list = search_ctlr;
   1822 		else {
   1823 			for (cptr = ctlr_list; cptr->ctlr_next != NULL;
   1824 			    cptr = cptr->ctlr_next)
   1825 				;
   1826 			cptr->ctlr_next = search_ctlr;
   1827 		}
   1828 		/*
   1829 		 * Fill in info from the ioctl.
   1830 		 */
   1831 		for (i = 0; i < DK_DEVLEN; i++) {
   1832 			search_ctlr->ctlr_cname[i] = dkinfo.dki_cname[i];
   1833 			search_ctlr->ctlr_dname[i] = dkinfo.dki_dname[i];
   1834 		}
   1835 		/*
   1836 		 * Make sure these can be used as simple strings
   1837 		 */
   1838 		search_ctlr->ctlr_cname[i] = 0;
   1839 		search_ctlr->ctlr_dname[i] = 0;
   1840 
   1841 		search_ctlr->ctlr_flags = dkinfo.dki_flags;
   1842 		search_ctlr->ctlr_num = dkinfo.dki_cnum;
   1843 		search_ctlr->ctlr_addr = dkinfo.dki_addr;
   1844 		search_ctlr->ctlr_space = dkinfo.dki_space;
   1845 		search_ctlr->ctlr_prio = dkinfo.dki_prio;
   1846 		search_ctlr->ctlr_vec = dkinfo.dki_vec;
   1847 	}
   1848 	/*
   1849 	 * By this point, we have a known ctlr.  Link the disk
   1850 	 * to the ctlr.
   1851 	 */
   1852 	search_disk->disk_ctlr = search_ctlr;
   1853 	if (access_flags & (DSK_RESERVED | DSK_UNAVAILABLE)) {
   1854 		if (access_flags & DSK_RESERVED)
   1855 			search_disk->disk_flags |= DSK_RESERVED;
   1856 		else
   1857 			search_disk->disk_flags |= DSK_UNAVAILABLE;
   1858 		(void) close(search_file);
   1859 		return;
   1860 	} else {
   1861 		search_disk->disk_flags &= ~(DSK_RESERVED | DSK_UNAVAILABLE);
   1862 	}
   1863 
   1864 	/*
   1865 	 * Attempt to read the primary label.
   1866 	 * (Note that this is really through the DKIOCGVTOC
   1867 	 * ioctl, then converted from vtoc to label.)
   1868 	 */
   1869 	if (search_disk->label_type == L_TYPE_SOLARIS) {
   1870 		status = read_label(search_file, &search_label);
   1871 	} else {
   1872 		status = read_efi_label(search_file, &efi_info);
   1873 	}
   1874 	/*
   1875 	 * If reading the label failed, and this is a SCSI
   1876 	 * disk, we can attempt to auto-sense the disk
   1877 	 * Configuration.
   1878 	 */
   1879 	ctlr = search_ctlr->ctlr_ctype;
   1880 	if ((status == -1) && (ctlr->ctype_ctype == DKC_SCSI_CCS)) {
   1881 		if (option_msg && diag_msg) {
   1882 			err_print("%s: attempting auto configuration\n",
   1883 			    search_disk->disk_name);
   1884 		}
   1885 
   1886 		switch (search_disk->label_type) {
   1887 		case (L_TYPE_SOLARIS):
   1888 			if (auto_sense(search_file, 0, &search_label) != NULL) {
   1889 			/*
   1890 			 * Auto config worked, so we now have
   1891 			 * a valid label for the disk.  Mark
   1892 			 * the disk as needing the label flushed.
   1893 			 */
   1894 				status = 0;
   1895 				search_disk->disk_flags |=
   1896 				    (DSK_LABEL_DIRTY | DSK_AUTO_CONFIG);
   1897 			}
   1898 			break;
   1899 		case (L_TYPE_EFI):
   1900 			efi_disk = auto_efi_sense(search_file, &efi_info);
   1901 			if (efi_disk != NULL) {
   1902 				/*
   1903 				 * Auto config worked, so we now have
   1904 				 * a valid label for the disk.
   1905 				 */
   1906 				status = 0;
   1907 				search_disk->disk_flags |=
   1908 				    (DSK_LABEL_DIRTY | DSK_AUTO_CONFIG);
   1909 			}
   1910 			break;
   1911 		default:
   1912 			/* Should never happen */
   1913 			break;
   1914 		}
   1915 	}
   1916 	/*
   1917 	 * Close the file for this disk.
   1918 	 */
   1919 	(void) close(search_file);
   1920 	/*
   1921 	 * If we didn't successfully read the label, or the label
   1922 	 * appears corrupt, just leave the disk as an unknown type.
   1923 	 */
   1924 	if (status == -1) {
   1925 		return;
   1926 	}
   1927 
   1928 	if (search_disk->label_type == L_TYPE_SOLARIS) {
   1929 		if (!checklabel(&search_label)) {
   1930 			return;
   1931 		}
   1932 		if (trim_id(search_label.dkl_asciilabel)) {
   1933 			return;
   1934 		}
   1935 	}
   1936 	/*
   1937 	 * The label looks ok.  Mark the disk as labeled.
   1938 	 */
   1939 	search_disk->disk_flags |= DSK_LABEL;
   1940 
   1941 	if (search_disk->label_type == L_TYPE_EFI) {
   1942 		search_dtype = (struct disk_type *)
   1943 		    zalloc(sizeof (struct disk_type));
   1944 		type = search_ctlr->ctlr_ctype->ctype_dlist;
   1945 		if (type == NULL) {
   1946 			search_ctlr->ctlr_ctype->ctype_dlist =
   1947 			    search_dtype;
   1948 		} else {
   1949 			while (type->dtype_next != NULL) {
   1950 				type = type->dtype_next;
   1951 			}
   1952 			type->dtype_next = search_dtype;
   1953 		}
   1954 		search_dtype->dtype_next = NULL;
   1955 
   1956 		(void) strlcpy(search_dtype->vendor, efi_info.vendor, 9);
   1957 		(void) strlcpy(search_dtype->product, efi_info.product, 17);
   1958 		(void) strlcpy(search_dtype->revision, efi_info.revision, 5);
   1959 		search_dtype->capacity = efi_info.capacity;
   1960 		search_disk->disk_type = search_dtype;
   1961 
   1962 		search_parts = (struct partition_info *)
   1963 		    zalloc(sizeof (struct partition_info));
   1964 		search_dtype->dtype_plist = search_parts;
   1965 
   1966 		search_parts->pinfo_name = alloc_string("original");
   1967 		search_parts->pinfo_next = NULL;
   1968 		search_parts->etoc = efi_info.e_parts;
   1969 		search_disk->disk_parts = search_parts;
   1970 
   1971 		/*
   1972 		 * Copy the volume name, if present
   1973 		 */
   1974 		for (i = 0; i < search_parts->etoc->efi_nparts; i++) {
   1975 			if (search_parts->etoc->efi_parts[i].p_tag ==
   1976 			    V_RESERVED) {
   1977 				if (search_parts->etoc->efi_parts[i].p_name) {
   1978 					bcopy(search_parts->etoc->efi_parts[i]
   1979 					    .p_name, search_disk->v_volume,
   1980 					    LEN_DKL_VVOL);
   1981 				} else {
   1982 					bzero(search_disk->v_volume,
   1983 					    LEN_DKL_VVOL);
   1984 				}
   1985 				break;
   1986 			}
   1987 		}
   1988 		return;
   1989 	}
   1990 
   1991 	/*
   1992 	 * Attempt to match the disk type in the label with a
   1993 	 * known disk type.
   1994 	 */
   1995 	for (search_dtype = search_ctlr->ctlr_ctype->ctype_dlist;
   1996 	    search_dtype != NULL;
   1997 	    search_dtype = search_dtype->dtype_next)
   1998 		if (dtype_match(&search_label, search_dtype))
   1999 			break;
   2000 	/*
   2001 	 * If no match was found, we need to create a disk type
   2002 	 * for this disk.
   2003 	 */
   2004 	if (search_dtype == NULL) {
   2005 		/*
   2006 		 * Allocate space for the disk type and add it
   2007 		 * to the list of disk types for this ctlr type.
   2008 		 */
   2009 		search_dtype = (struct disk_type *)
   2010 		    zalloc(sizeof (struct disk_type));
   2011 		type = search_ctlr->ctlr_ctype->ctype_dlist;
   2012 		if (type == NULL)
   2013 			search_ctlr->ctlr_ctype->ctype_dlist =
   2014 			    search_dtype;
   2015 		else {
   2016 			while (type->dtype_next != NULL)
   2017 				type = type->dtype_next;
   2018 			type->dtype_next = search_dtype;
   2019 		}
   2020 		/*
   2021 		 * Fill in the drive info from the disk label.
   2022 		 */
   2023 		search_dtype->dtype_next = NULL;
   2024 		search_dtype->dtype_asciilabel = (char *)
   2025 		    zalloc(strlen(search_label.dkl_asciilabel) + 1);
   2026 		(void) strcpy(search_dtype->dtype_asciilabel,
   2027 		    search_label.dkl_asciilabel);
   2028 		search_dtype->dtype_pcyl = search_label.dkl_pcyl;
   2029 		search_dtype->dtype_ncyl = search_label.dkl_ncyl;
   2030 		search_dtype->dtype_acyl = search_label.dkl_acyl;
   2031 		search_dtype->dtype_nhead = search_label.dkl_nhead;
   2032 		search_dtype->dtype_nsect = search_label.dkl_nsect;
   2033 		search_dtype->dtype_rpm = search_label.dkl_rpm;
   2034 		/*
   2035 		 * Mark the disk as needing specification of
   2036 		 * ctlr specific attributes.  This is necessary
   2037 		 * because the label doesn't contain these attributes,
   2038 		 * and they aren't known at this point.  They will
   2039 		 * be asked for if this disk is ever selected by
   2040 		 * the user.
   2041 		 * Note: for SCSI, we believe the label.
   2042 		 */
   2043 		if ((search_ctlr->ctlr_ctype->ctype_ctype != DKC_SCSI_CCS) &&
   2044 		    (search_ctlr->ctlr_ctype->ctype_ctype != DKC_DIRECT) &&
   2045 		    (search_ctlr->ctlr_ctype->ctype_ctype != DKC_VBD) &&
   2046 		    (search_ctlr->ctlr_ctype->ctype_ctype != DKC_PCMCIA_ATA)) {
   2047 			search_dtype->dtype_flags |= DT_NEED_SPEFS;
   2048 		}
   2049 	}
   2050 	/*
   2051 	 * By this time we have a known disk type.  Link the disk
   2052 	 * to the disk type.
   2053 	 */
   2054 	search_disk->disk_type = search_dtype;
   2055 	/*
   2056 	 * Attempt to match the partition map in the label with
   2057 	 * a known partition map for this disk type.
   2058 	 */
   2059 	for (search_parts = search_dtype->dtype_plist;
   2060 	    search_parts != NULL;
   2061 	    search_parts = search_parts->pinfo_next)
   2062 		if (parts_match(&search_label, search_parts)) {
   2063 			break;
   2064 		}
   2065 	/*
   2066 	 * If no match was made, we need to create a partition
   2067 	 * map for this disk.
   2068 	 */
   2069 	if (search_parts == NULL) {
   2070 		/*
   2071 		 * Allocate space for the partition map and add
   2072 		 * it to the list of maps for this disk type.
   2073 		 */
   2074 		search_parts = (struct partition_info *)
   2075 		    zalloc(sizeof (struct partition_info));
   2076 		parts = search_dtype->dtype_plist;
   2077 		if (parts == NULL)
   2078 			search_dtype->dtype_plist = search_parts;
   2079 		else {
   2080 			while (parts->pinfo_next != NULL)
   2081 				parts = parts->pinfo_next;
   2082 			parts->pinfo_next = search_parts;
   2083 		}
   2084 		search_parts->pinfo_next = NULL;
   2085 		/*
   2086 		 * Fill in the name of the map with a name derived
   2087 		 * from the name of this disk.  This is necessary
   2088 		 * because the label contains no name for the
   2089 		 * partition map.
   2090 		 */
   2091 		search_parts->pinfo_name = alloc_string("original");
   2092 		/*
   2093 		 * Fill in the partition info from the disk label.
   2094 		 */
   2095 		for (i = 0; i < NDKMAP; i++) {
   2096 
   2097 #if defined(_SUNOS_VTOC_8)
   2098 			search_parts->pinfo_map[i] =
   2099 			    search_label.dkl_map[i];
   2100 
   2101 #elif defined(_SUNOS_VTOC_16)
   2102 			search_parts->pinfo_map[i].dkl_cylno =
   2103 			    search_label.dkl_vtoc.v_part[i].p_start /
   2104 			    ((blkaddr32_t)(search_label.dkl_nhead *
   2105 			    search_label.dkl_nsect));
   2106 			search_parts->pinfo_map[i].dkl_nblk =
   2107 			    search_label.dkl_vtoc.v_part[i].p_size;
   2108 
   2109 #else
   2110 #error No VTOC format defined.
   2111 #endif
   2112 		}
   2113 	}
   2114 	/*
   2115 	 * If the vtoc looks valid, copy the volume name and vtoc
   2116 	 * info from the label.  Otherwise, install a default vtoc.
   2117 	 * This permits vtoc info to automatically appear in the sun
   2118 	 * label, without requiring an upgrade procedure.
   2119 	 */
   2120 	if (search_label.dkl_vtoc.v_version == V_VERSION) {
   2121 		bcopy(search_label.dkl_vtoc.v_volume,
   2122 		    search_disk->v_volume, LEN_DKL_VVOL);
   2123 		search_parts->vtoc = search_label.dkl_vtoc;
   2124 	} else {
   2125 		bzero(search_disk->v_volume, LEN_DKL_VVOL);
   2126 		set_vtoc_defaults(search_parts);
   2127 	}
   2128 	/*
   2129 	 * By this time we have a known partitition map.  Link the
   2130 	 * disk to the partition map.
   2131 	 */
   2132 	search_disk->disk_parts = search_parts;
   2133 }
   2134 
   2135 
   2136 /*
   2137  * Search the disk list for a disk with the identical configuration.
   2138  * Return true if one is found.
   2139  */
   2140 static int
   2141 disk_is_known(struct dk_cinfo *dkinfo)
   2142 {
   2143 	struct disk_info	*dp;
   2144 
   2145 	dp = disk_list;
   2146 	while (dp != NULL) {
   2147 		if (dp->disk_dkinfo.dki_ctype == dkinfo->dki_ctype &&
   2148 		    dp->disk_dkinfo.dki_cnum == dkinfo->dki_cnum &&
   2149 		    dp->disk_dkinfo.dki_unit == dkinfo->dki_unit &&
   2150 		    strcmp(dp->disk_dkinfo.dki_dname, dkinfo->dki_dname) == 0) {
   2151 			return (1);
   2152 		}
   2153 		dp = dp->disk_next;
   2154 	}
   2155 	return (0);
   2156 }
   2157 
   2158 
   2159 /*
   2160  * This routine checks to see if a given disk type matches the type
   2161  * in the disk label.
   2162  */
   2163 int
   2164 dtype_match(label, dtype)
   2165 	register struct dk_label *label;
   2166 	register struct disk_type *dtype;
   2167 {
   2168 
   2169 	if (dtype->dtype_asciilabel == NULL) {
   2170 	    return (0);
   2171 	}
   2172 
   2173 	/*
   2174 	 * If the any of the physical characteristics are different, or
   2175 	 * the name is different, it doesn't match.
   2176 	 */
   2177 	if ((strcmp(label->dkl_asciilabel, dtype->dtype_asciilabel) != 0) ||
   2178 	    (label->dkl_ncyl != dtype->dtype_ncyl) ||
   2179 	    (label->dkl_acyl != dtype->dtype_acyl) ||
   2180 	    (label->dkl_nhead != dtype->dtype_nhead) ||
   2181 	    (label->dkl_nsect != dtype->dtype_nsect)) {
   2182 		return (0);
   2183 	}
   2184 	/*
   2185 	 * If those are all identical, assume it's a match.
   2186 	 */
   2187 	return (1);
   2188 }
   2189 
   2190 /*
   2191  * This routine checks to see if a given partition map matches the map
   2192  * in the disk label.
   2193  */
   2194 int
   2195 parts_match(label, pinfo)
   2196 	register struct dk_label *label;
   2197 	register struct partition_info *pinfo;
   2198 {
   2199 	int i;
   2200 
   2201 	/*
   2202 	 * If any of the partition entries is different, it doesn't match.
   2203 	 */
   2204 	for (i = 0; i < NDKMAP; i++)
   2205 
   2206 #if defined(_SUNOS_VTOC_8)
   2207 		if ((label->dkl_map[i].dkl_cylno !=
   2208 		    pinfo->pinfo_map[i].dkl_cylno) ||
   2209 		    (label->dkl_map[i].dkl_nblk !=
   2210 		    pinfo->pinfo_map[i].dkl_nblk))
   2211 
   2212 #elif defined(_SUNOS_VTOC_16)
   2213 		if ((pinfo->pinfo_map[i].dkl_cylno !=
   2214 		    label->dkl_vtoc.v_part[i].p_start /
   2215 		    (label->dkl_nhead * label->dkl_nsect)) ||
   2216 		    (pinfo->pinfo_map[i].dkl_nblk !=
   2217 		    label->dkl_vtoc.v_part[i].p_size))
   2218 #else
   2219 #error No VTOC format defined.
   2220 #endif
   2221 			return (0);
   2222 	/*
   2223 	 * Compare the vtoc information for a match
   2224 	 * Do not require the volume name to be equal, for a match!
   2225 	 */
   2226 	if (label->dkl_vtoc.v_version != pinfo->vtoc.v_version)
   2227 		return (0);
   2228 	if (label->dkl_vtoc.v_nparts != pinfo->vtoc.v_nparts)
   2229 		return (0);
   2230 	for (i = 0; i < NDKMAP; i++) {
   2231 		if (label->dkl_vtoc.v_part[i].p_tag !=
   2232 				pinfo->vtoc.v_part[i].p_tag)
   2233 			return (0);
   2234 		if (label->dkl_vtoc.v_part[i].p_flag !=
   2235 				pinfo->vtoc.v_part[i].p_flag)
   2236 			return (0);
   2237 	}
   2238 	/*
   2239 	 * If they are all identical, it's a match.
   2240 	 */
   2241 	return (1);
   2242 }
   2243 
   2244 /*
   2245  * This routine checks to see if the given disk name refers to the disk
   2246  * in the given disk structure.
   2247  */
   2248 int
   2249 diskname_match(char *name, struct disk_info *disk)
   2250 {
   2251 	struct dk_cinfo		dkinfo;
   2252 	char			s[MAXPATHLEN];
   2253 	int			fd;
   2254 
   2255 	/*
   2256 	 * Match the name of the disk in the disk_info structure
   2257 	 */
   2258 	if (strcmp(name, disk->disk_name) == 0) {
   2259 		return (1);
   2260 	}
   2261 
   2262 	/*
   2263 	 * Check to see if it's a 4.x file name in the /dev
   2264 	 * directory on 5.0.  Here, we only accept the
   2265 	 * canonicalized form: sd0.
   2266 	 */
   2267 	if (canonical4x_name(name) == 0) {
   2268 		return (0);
   2269 	}
   2270 
   2271 	(void) strcpy(s, "/dev/r");
   2272 	(void) strcat(s, name);
   2273 	(void) strcat(s, "c");
   2274 
   2275 	if ((fd = open_disk(s, O_RDWR | O_NDELAY)) < 0) {
   2276 		return (0);
   2277 	}
   2278 
   2279 	if (ioctl(fd, DKIOCINFO, &dkinfo) < 0) {
   2280 		(void) close(fd);
   2281 		return (0);
   2282 	}
   2283 	(void) close(fd);
   2284 
   2285 	if (disk->disk_dkinfo.dki_ctype == dkinfo.dki_ctype &&
   2286 	    disk->disk_dkinfo.dki_cnum == dkinfo.dki_cnum &&
   2287 	    disk->disk_dkinfo.dki_unit == dkinfo.dki_unit &&
   2288 	    strcmp(disk->disk_dkinfo.dki_dname, dkinfo.dki_dname) == 0) {
   2289 		return (1);
   2290 	}
   2291 	return (0);
   2292 }
   2293 
   2294 
   2295 static void
   2296 datafile_error(char *errmsg, char *token)
   2297 {
   2298 	int	token_type;
   2299 	TOKEN	token_buf;
   2300 
   2301 	/*
   2302 	 * Allow us to get by controllers that the other platforms don't
   2303 	 * know about.
   2304 	 */
   2305 	if (errmsg != NULL) {
   2306 		err_print(errmsg, token);
   2307 		err_print(" - %s (%d)\n", file_name, data_lineno);
   2308 	}
   2309 
   2310 	/*
   2311 	 * Re-sync the parsing at the beginning of the next line
   2312 	 * unless of course we're already there.
   2313 	 */
   2314 	if (last_token_type != SUP_EOF && last_token_type != SUP_EOL) {
   2315 		do {
   2316 			token_type = sup_gettoken(token_buf);
   2317 		} while (token_type != SUP_EOF && token_type != SUP_EOL);
   2318 
   2319 		if (token_type == SUP_EOF) {
   2320 			sup_pushtoken(token_buf, token_type);
   2321 		}
   2322 	}
   2323 }
   2324 
   2325 
   2326 /*
   2327  * Search through all defined disk types for duplicate entries
   2328  * that are inconsistent with each other.  Disks with different
   2329  * characteristics should be named differently.
   2330  * Note that this function only checks for duplicate disks
   2331  * for the same controller.  It's possible to have two disks with
   2332  * the same name, but defined for different controllers.
   2333  * That may or may not be a problem...
   2334  */
   2335 static void
   2336 search_duplicate_dtypes()
   2337 {
   2338 	struct disk_type	*dp1;
   2339 	struct disk_type	*dp2;
   2340 	struct mctlr_list	*mlp;
   2341 
   2342 	mlp = controlp;
   2343 
   2344 	while (mlp != NULL) {
   2345 		dp1 = mlp->ctlr_type->ctype_dlist;
   2346 		while (dp1 != NULL) {
   2347 			dp2 = dp1->dtype_next;
   2348 			while (dp2 != NULL) {
   2349 				check_dtypes_for_inconsistency(dp1, dp2);
   2350 				dp2 = dp2->dtype_next;
   2351 			}
   2352 			dp1 = dp1->dtype_next;
   2353 		}
   2354 	mlp = mlp->next;
   2355 	}
   2356 }
   2357 
   2358 
   2359 /*
   2360  * Search through all defined partition types for duplicate entries
   2361  * that are inconsistent with each other.  Partitions with different
   2362  * characteristics should be named differently.
   2363  * Note that this function only checks for duplicate partitions
   2364  * for the same disk.  It's possible to have two partitions with
   2365  * the same name, but defined for different disks.
   2366  * That may or may not be a problem...
   2367  */
   2368 static void
   2369 search_duplicate_pinfo()
   2370 {
   2371 	struct disk_type	*dp;
   2372 	struct partition_info	*pp1;
   2373 	struct partition_info	*pp2;
   2374 	struct mctlr_list	*mlp;
   2375 
   2376 	mlp = controlp;
   2377 
   2378 	while (mlp != NULL) {
   2379 		dp = mlp->ctlr_type->ctype_dlist;
   2380 		while (dp != NULL) {
   2381 			pp1 = dp->dtype_plist;
   2382 			while (pp1 != NULL) {
   2383 				pp2 = pp1->pinfo_next;
   2384 				while (pp2 != NULL) {
   2385 					check_pinfo_for_inconsistency(pp1, pp2);
   2386 					pp2 = pp2->pinfo_next;
   2387 				}
   2388 				pp1 = pp1->pinfo_next;
   2389 			}
   2390 			dp = dp->dtype_next;
   2391 		}
   2392 	mlp = mlp->next;
   2393 	}
   2394 }
   2395 
   2396 
   2397 /*
   2398  * Determine if two particular disk definitions are inconsistent.
   2399  * Ie:  same name, but different characteristics.
   2400  * If so, print an error message and abort.
   2401  */
   2402 static void
   2403 check_dtypes_for_inconsistency(dp1, dp2)
   2404 	struct disk_type	*dp1;
   2405 	struct disk_type	*dp2;
   2406 {
   2407 	int		i;
   2408 	int		result;
   2409 	struct chg_list	*cp1;
   2410 	struct chg_list	*cp2;
   2411 
   2412 
   2413 	/*
   2414 	 * If the name's different, we're ok
   2415 	 */
   2416 	if (strcmp(dp1->dtype_asciilabel, dp2->dtype_asciilabel) != 0) {
   2417 		return;
   2418 	}
   2419 
   2420 	/*
   2421 	 * Compare all the disks' characteristics
   2422 	 */
   2423 	result = 0;
   2424 	result |= (dp1->dtype_flags != dp2->dtype_flags);
   2425 	result |= (dp1->dtype_options != dp2->dtype_options);
   2426 	result |= (dp1->dtype_fmt_time != dp2->dtype_fmt_time);
   2427 	result |= (dp1->dtype_bpt != dp2->dtype_bpt);
   2428 	result |= (dp1->dtype_ncyl != dp2->dtype_ncyl);
   2429 	result |= (dp1->dtype_acyl != dp2->dtype_acyl);
   2430 	result |= (dp1->dtype_pcyl != dp2->dtype_pcyl);
   2431 	result |= (dp1->dtype_nhead != dp2->dtype_nhead);
   2432 	result |= (dp1->dtype_nsect != dp2->dtype_nsect);
   2433 	result |= (dp1->dtype_rpm != dp2->dtype_rpm);
   2434 	result |= (dp1->dtype_cyl_skew != dp2->dtype_cyl_skew);
   2435 	result |= (dp1->dtype_trk_skew != dp2->dtype_trk_skew);
   2436 	result |= (dp1->dtype_trks_zone != dp2->dtype_trks_zone);
   2437 	result |= (dp1->dtype_atrks != dp2->dtype_atrks);
   2438 	result |= (dp1->dtype_asect != dp2->dtype_asect);
   2439 	result |= (dp1->dtype_cache != dp2->dtype_cache);
   2440 	result |= (dp1->dtype_threshold != dp2->dtype_threshold);
   2441 	result |= (dp1->dtype_read_retries != dp2->dtype_read_retries);
   2442 	result |= (dp1->dtype_write_retries != dp2->dtype_write_retries);
   2443 	result |= (dp1->dtype_prefetch_min != dp2->dtype_prefetch_min);
   2444 	result |= (dp1->dtype_prefetch_max != dp2->dtype_prefetch_max);
   2445 	for (i = 0; i < NSPECIFICS; i++) {
   2446 		result |= (dp1->dtype_specifics[i] != dp2->dtype_specifics[i]);
   2447 	}
   2448 
   2449 	cp1 = dp1->dtype_chglist;
   2450 	cp2 = dp2->dtype_chglist;
   2451 	while (cp1 != NULL && cp2 != NULL) {
   2452 		if (cp1 == NULL || cp2 == NULL) {
   2453 			result = 1;
   2454 			break;
   2455 		}
   2456 		result |= (cp1->pageno != cp2->pageno);
   2457 		result |= (cp1->byteno != cp2->byteno);
   2458 		result |= (cp1->mode != cp2->mode);
   2459 		result |= (cp1->value != cp2->value);
   2460 		cp1 = cp1->next;
   2461 		cp2 = cp2->next;
   2462 	}
   2463 
   2464 	if (result) {
   2465 		err_print("Inconsistent definitions for disk type '%s'\n",
   2466 			dp1->dtype_asciilabel);
   2467 		if (dp1->dtype_filename != NULL &&
   2468 					dp2->dtype_filename != NULL) {
   2469 			err_print("%s (%d) - %s (%d)\n",
   2470 				dp1->dtype_filename, dp1->dtype_lineno,
   2471 				dp2->dtype_filename, dp2->dtype_lineno);
   2472 			}
   2473 		fullabort();
   2474 	}
   2475 }
   2476 
   2477 
   2478 /*
   2479  * Determine if two particular partition definitions are inconsistent.
   2480  * Ie:  same name, but different characteristics.
   2481  * If so, print an error message and abort.
   2482  */
   2483 static void
   2484 check_pinfo_for_inconsistency(pp1, pp2)
   2485 	struct partition_info	*pp1;
   2486 	struct partition_info	*pp2;
   2487 {
   2488 	int		i;
   2489 	int		result;
   2490 	struct dk_map32	*map1;
   2491 	struct dk_map32	*map2;
   2492 
   2493 #if defined(_SUNOS_VTOC_8)
   2494 	struct dk_map2	*vp1;
   2495 	struct dk_map2	*vp2;
   2496 
   2497 #elif defined(_SUNOS_VTOC_16)
   2498 	struct dkl_partition    *vp1;
   2499 	struct dkl_partition    *vp2;
   2500 #else
   2501 #error No VTOC layout defined.
   2502 #endif /* defined(_SUNOS_VTOC_8) */
   2503 
   2504 	/*
   2505 	 * If the name's different, we're ok
   2506 	 */
   2507 	if (strcmp(pp1->pinfo_name, pp2->pinfo_name) != 0) {
   2508 		return;
   2509 	}
   2510 
   2511 	/*
   2512 	 * Compare all the partitions' characteristics
   2513 	 */
   2514 	result = 0;
   2515 	map1 = pp1->pinfo_map;
   2516 	map2 = pp2->pinfo_map;
   2517 	for (i = 0; i < NDKMAP; i++, map1++, map2++) {
   2518 		result |= (map1->dkl_cylno != map2->dkl_cylno);
   2519 		result |= (map1->dkl_nblk != map2->dkl_nblk);
   2520 	}
   2521 
   2522 	/*
   2523 	 * Compare the significant portions of the vtoc information
   2524 	 */
   2525 	vp1 = pp1->vtoc.v_part;
   2526 	vp2 = pp2->vtoc.v_part;
   2527 	for (i = 0; i < NDKMAP; i++, vp1++, vp2++) {
   2528 		result |= (vp1->p_tag != vp2->p_tag);
   2529 		result |= (vp1->p_flag != vp2->p_flag);
   2530 	}
   2531 
   2532 	if (result) {
   2533 		err_print("Inconsistent definitions for partition type '%s'\n",
   2534 			pp1->pinfo_name);
   2535 		if (pp1->pinfo_filename != NULL &&
   2536 					pp2->pinfo_filename != NULL) {
   2537 			err_print("%s (%d) - %s (%d)\n",
   2538 				pp1->pinfo_filename, pp1->pinfo_lineno,
   2539 				pp2->pinfo_filename, pp2->pinfo_lineno);
   2540 			}
   2541 		fullabort();
   2542 	}
   2543 }
   2544 
   2545 /*
   2546  * Convert a string of digits into a block number.
   2547  * The digits are assumed to be a block number unless the
   2548  * the string is terminated by 'c', in which case it is
   2549  * assumed to be in units of cylinders.  Accept a 'b'
   2550  * to explictly specify blocks, for consistency.
   2551  *
   2552  * NB: uses the macro spc(), which requires that the
   2553  * globals nhead/nsect/acyl be set up correctly.
   2554  *
   2555  * Returns -1 in the case of an error.
   2556  */
   2557 static uint_t
   2558 str2blks(char *str)
   2559 {
   2560 	int	blks;
   2561 	char	*p;
   2562 
   2563 	blks = (int)strtol(str, &p, 0);
   2564 	/*
   2565 	 * Check what terminated the conversion.
   2566 	 */
   2567 	if (*p != 0) {
   2568 		/*
   2569 		 * Units specifier of 'c': convert cylinders to blocks
   2570 		 */
   2571 		if (*p == 'c') {
   2572 			p++;
   2573 			blks = blks * spc();
   2574 		/*
   2575 		 * Ignore a 'b' specifier.
   2576 		 */
   2577 		} else if (*p == 'b') {
   2578 			p++;
   2579 		}
   2580 		/*
   2581 		 * Anthing left over is an error
   2582 		 */
   2583 		if (*p != 0) {
   2584 			blks = -1;
   2585 		}
   2586 	}
   2587 
   2588 	return (blks);
   2589 }
   2590 /*
   2591  * Convert a string of digits into a cylinder number.
   2592  * Accept a an optional 'c' specifier, for consistency.
   2593  *
   2594  * Returns -1 in the case of an error.
   2595  */
   2596 int
   2597 str2cyls(char *str)
   2598 {
   2599 	int	cyls;
   2600 	char	*p;
   2601 
   2602 	cyls = (int)strtol(str, &p, 0);
   2603 	/*
   2604 	 * Check what terminated the conversion.
   2605 	 */
   2606 	if (*p != 0) {
   2607 		/*
   2608 		 * Units specifier of 'c': accept it.
   2609 		 */
   2610 		if (*p == 'c') {
   2611 			p++;
   2612 		}
   2613 		/*
   2614 		 * Anthing left over is an error
   2615 		 */
   2616 		if (*p != 0) {
   2617 			cyls = -1;
   2618 		}
   2619 	}
   2620 
   2621 	return (cyls);
   2622 }
   2623 
   2624 
   2625 /*
   2626  * Create a new chg_list structure, and append it onto the
   2627  * end of the current chg_list under construction.  By
   2628  * applying changes in the order in which listed in the
   2629  * data file, the changes we make are deterministic.
   2630  * Return a pointer to the new structure, so that the
   2631  * caller can fill in the appropriate information.
   2632  */
   2633 static struct chg_list *
   2634 new_chg_list(struct disk_type *disk)
   2635 {
   2636 	struct chg_list		*cp;
   2637 	struct chg_list		*nc;
   2638 
   2639 	nc = zalloc(sizeof (struct chg_list));
   2640 
   2641 	if (disk->dtype_chglist == NULL) {
   2642 		disk->dtype_chglist = nc;
   2643 	} else {
   2644 		for (cp = disk->dtype_chglist; cp->next; cp = cp->next)
   2645 			;
   2646 		cp->next = nc;
   2647 	}
   2648 	nc->next = NULL;
   2649 	return (nc);
   2650 }
   2651 
   2652 
   2653 /*
   2654  * Follow symbolic links from the logical device name to
   2655  * the /devfs physical device name.  To be complete, we
   2656  * handle the case of multiple links.  This function
   2657  * either returns NULL (no links, or some other error),
   2658  * or the physical device name, alloc'ed on the heap.
   2659  *
   2660  * Note that the standard /devices prefix is stripped from
   2661  * the final pathname, if present.  The trailing options
   2662  * are also removed (":c, raw").
   2663  */
   2664 static char *
   2665 get_physical_name(char *path)
   2666 {
   2667 	struct stat	stbuf;
   2668 	int		i;
   2669 	int		level;
   2670 	char		*p;
   2671 	char		s[MAXPATHLEN];
   2672 	char		buf[MAXPATHLEN];
   2673 	char		dir[MAXPATHLEN];
   2674 	char		savedir[MAXPATHLEN];
   2675 	char		*result = NULL;
   2676 
   2677 	if (getcwd(savedir, sizeof (savedir)) == NULL) {
   2678 		err_print("getcwd() failed - %s\n", strerror(errno));
   2679 		return (NULL);
   2680 	}
   2681 
   2682 	(void) strcpy(s, path);
   2683 	if ((p = strrchr(s, '/')) != NULL) {
   2684 		*p = 0;
   2685 	}
   2686 	if (s[0] == 0) {
   2687 		(void) strcpy(s, "/");
   2688 	}
   2689 	if (chdir(s) == -1) {
   2690 		err_print("cannot chdir() to %s - %s\n",
   2691 		    s, strerror(errno));
   2692 		goto exit;
   2693 	}
   2694 
   2695 	level = 0;
   2696 	(void) strcpy(s, path);
   2697 	for (;;) {
   2698 		/*
   2699 		 * See if there's a real file out there.  If not,
   2700 		 * we have a dangling link and we ignore it.
   2701 		 */
   2702 		if (stat(s, &stbuf) == -1) {
   2703 			goto exit;
   2704 		}
   2705 		if (lstat(s, &stbuf) == -1) {
   2706 			err_print("%s: lstat() failed - %s\n",
   2707 			    s, strerror(errno));
   2708 			goto exit;
   2709 		}
   2710 		/*
   2711 		 * If the file is not a link, we're done one
   2712 		 * way or the other.  If there were links,
   2713 		 * return the full pathname of the resulting
   2714 		 * file.
   2715 		 */
   2716 		if (!S_ISLNK(stbuf.st_mode)) {
   2717 			if (level > 0) {
   2718 				/*
   2719 				 * Strip trailing options from the
   2720 				 * physical device name
   2721 				 */
   2722 				if ((p = strrchr(s, ':')) != NULL) {
   2723 					*p = 0;
   2724 				}
   2725 				/*
   2726 				 * Get the current directory, and
   2727 				 * glue the pieces together.
   2728 				 */
   2729 				if (getcwd(dir, sizeof (dir)) == NULL) {
   2730 					err_print("getcwd() failed - %s\n",
   2731 					    strerror(errno));
   2732 					goto exit;
   2733 				}
   2734 				(void) strcat(dir, "/");
   2735 				(void) strcat(dir, s);
   2736 				/*
   2737 				 * If we have the standard fixed
   2738 				 * /devices prefix, remove it.
   2739 				 */
   2740 				p = (strstr(dir, DEVFS_PREFIX) == dir) ?
   2741 				    dir+strlen(DEVFS_PREFIX) : dir;
   2742 				result = alloc_string(p);
   2743 			}
   2744 			goto exit;
   2745 		}
   2746 		i = readlink(s, buf, sizeof (buf));
   2747 		if (i == -1) {
   2748 			err_print("%s: readlink() failed - %s\n",
   2749 			    s, strerror(errno));
   2750 			goto exit;
   2751 		}
   2752 		level++;
   2753 		buf[i] = 0;
   2754 
   2755 		/*
   2756 		 * Break up the pathname into the directory
   2757 		 * reference, if applicable and simple filename.
   2758 		 * chdir()'ing to the directory allows us to
   2759 		 * handle links with relative pathnames correctly.
   2760 		 */
   2761 		(void) strcpy(dir, buf);
   2762 		if ((p = strrchr(dir, '/')) != NULL) {
   2763 			*p = 0;
   2764 			if (chdir(dir) == -1) {
   2765 				err_print("cannot chdir() to %s - %s\n",
   2766 				    dir, strerror(errno));
   2767 				goto exit;
   2768 			}
   2769 			(void) strcpy(s, p+1);
   2770 		} else {
   2771 			(void) strcpy(s, buf);
   2772 		}
   2773 	}
   2774 
   2775 exit:
   2776 	if (chdir(savedir) == -1) {
   2777 		err_print("cannot chdir() to %s - %s\n",
   2778 		    savedir, strerror(errno));
   2779 	}
   2780 
   2781 	return (result);
   2782 }
   2783 
   2784 
   2785 static void
   2786 sort_disk_list()
   2787 {
   2788 	int			n;
   2789 	struct disk_info	**disks;
   2790 	struct disk_info	*d;
   2791 	struct disk_info	**dp;
   2792 	struct disk_info	**dp2;
   2793 
   2794 	/*
   2795 	 * Count the number of disks in the list
   2796 	 */
   2797 	n = 0;
   2798 	for (d = disk_list; d != NULL; d = d->disk_next) {
   2799 		n++;
   2800 	}
   2801 	if (n == 0) {
   2802 		return;
   2803 	}
   2804 
   2805 	/*
   2806 	 * Allocate a simple disk list array and fill it in
   2807 	 */
   2808 	disks = (struct disk_info **)
   2809 	    zalloc((n+1) * sizeof (struct disk_info *));
   2810 
   2811 	dp = disks;
   2812 	for (d = disk_list; d != NULL; d = d->disk_next) {
   2813 		*dp++ = d;
   2814 	}
   2815 	*dp = NULL;
   2816 
   2817 	/*
   2818 	 * Sort the disk list array
   2819 	 */
   2820 	qsort((void *) disks, n, sizeof (struct disk_info *),
   2821 	    disk_name_compare);
   2822 
   2823 	/*
   2824 	 * Rebuild the linked list disk list structure
   2825 	 */
   2826 	dp = disks;
   2827 	disk_list = *dp;
   2828 	dp2 = dp + 1;
   2829 	do {
   2830 		(*dp++)->disk_next = *dp2++;
   2831 	} while (*dp != NULL);
   2832 
   2833 	/*
   2834 	 * Clean up
   2835 	 */
   2836 	(void) destroy_data((void *)disks);
   2837 }
   2838 
   2839 
   2840 /*
   2841  * Compare two disk names
   2842  */
   2843 static int
   2844 disk_name_compare(
   2845 	const void	*arg1,
   2846 	const void	*arg2)
   2847 {
   2848 	char		*s1;
   2849 	char		*s2;
   2850 	int		n1;
   2851 	int		n2;
   2852 	char		*p1;
   2853 	char		*p2;
   2854 
   2855 	s1 = (*((struct disk_info **)arg1))->disk_name;
   2856 	s2 = (*((struct disk_info **)arg2))->disk_name;
   2857 
   2858 	for (;;) {
   2859 		if (*s1 == 0 || *s2 == 0)
   2860 			break;
   2861 		if (isdigit(*s1) && isdigit(*s2)) {
   2862 			n1 = strtol(s1, &p1, 10);
   2863 			n2 = strtol(s2, &p2, 10);
   2864 			if (n1 != n2) {
   2865 				return (n1 - n2);
   2866 			}
   2867 			s1 = p1;
   2868 			s2 = p2;
   2869 		} else if (*s1 != *s2) {
   2870 			break;
   2871 		} else {
   2872 			s1++;
   2873 			s2++;
   2874 		}
   2875 	}
   2876 
   2877 	return (*s1 - *s2);
   2878 }
   2879 
   2880 static void
   2881 make_controller_list()
   2882 {
   2883 	int	x;
   2884 	struct	mctlr_list	*ctlrp;
   2885 
   2886 	ctlrp = controlp;
   2887 
   2888 	for (x = nctypes; x != 0; x--) {
   2889 		ctlrp = zalloc(sizeof (struct mctlr_list));
   2890 		ctlrp->next = controlp;
   2891 		ctlrp->ctlr_type = &ctlr_types[x - 1];
   2892 		controlp = ctlrp;
   2893 
   2894 	}
   2895 }
   2896 
   2897 static void
   2898 check_for_duplicate_disknames(arglist)
   2899 char *arglist[];
   2900 {
   2901 	char			*directory = "/dev/rdsk/";
   2902 	char			**disklist;
   2903 	int			len;
   2904 	char			s[MAXPATHLEN], t[MAXPATHLEN];
   2905 	int			diskno = 0;
   2906 	int			i;
   2907 
   2908 
   2909 	len = strlen(directory);
   2910 	disklist = arglist;
   2911 	for (; *disklist != NULL; disklist++) {
   2912 		if (strncmp(directory, *disklist, len) == 0) {
   2913 			/* Disk is in conventional format */
   2914 			canonicalize_name(s, *disklist);
   2915 			/*
   2916 			 *  check if the disk is already present in
   2917 			 *  disk list.
   2918 			 */
   2919 			for (i = 0; i < diskno; i++) {
   2920 			    canonicalize_name(t, arglist[i]);
   2921 			    if (strncmp(s, t, strlen(t)) == 0)
   2922 				break;
   2923 			}
   2924 			if (i != diskno)
   2925 				continue;
   2926 		}
   2927 		(void) strcpy(arglist[diskno], *disklist);
   2928 		diskno++;
   2929 	}
   2930 	arglist[diskno] = NULL;
   2931 }
   2932 
   2933 #define	DISK_PREFIX	"/dev/rdsk/"
   2934 
   2935 /*
   2936  * This Function checks if the non-conventional name is a a link to
   2937  * one of the conventional whole disk name.
   2938  */
   2939 static int
   2940 name_represents_wholedisk(name)
   2941 char	*name;
   2942 {
   2943 	char	symname[MAXPATHLEN];
   2944 	char	localname[MAXPATHLEN];
   2945 	char	*nameptr;
   2946 
   2947 
   2948 	(void) memset(symname, 0, MAXPATHLEN);
   2949 	(void) memset(localname, 0, MAXPATHLEN);
   2950 	(void) strcpy(localname, name);
   2951 
   2952 	while (readlink(localname, symname, MAXPATHLEN) != -1) {
   2953 		nameptr = symname;
   2954 		if (strncmp(symname, DISK_PREFIX, strlen(DISK_PREFIX)) == 0)
   2955 			nameptr += strlen(DISK_PREFIX);
   2956 		if (conventional_name(nameptr)) {
   2957 			if (whole_disk_name(nameptr))
   2958 				return (0);
   2959 			else
   2960 				return (1);
   2961 		}
   2962 		(void) strcpy(localname, symname);
   2963 		(void) memset(symname, 0, MAXPATHLEN);
   2964 	}
   2965 	return (0);
   2966 }
   2967