// ifstool.c -- portable reimplementation of QNX's mkifs by Pierre-Marie Baty <pm@pmbaty.com>
// TODO: preboot file stripping
// TODO: startup file stripping
// standard C includes
#include <stdint.h>
#include <stdbool.h>
#include <stdlib.h>
#include <stdarg.h>
#include <stdio.h>
#include <string.h>
#include <limits.h>
#include <errno.h>
#include <sys/stat.h>
#include <ctype.h>
#include <time.h>
// platform-specific includes
#ifdef _MSC_VER
#include <sys/utime.h>
#include <process.h>
#else // !_MSC_VER
#include <sys/param.h>
#include <sys/sysmacros.h>
#include <sys/wait.h>
#include <unistd.h>
#include <dirent.h>
#include <utime.h>
#endif // _MSC_VER
// own includes
#include "ucl/ucl.h"
#include "minilzo.h"
#include "buffer.h"
#include "sha512.h"
#include "elffile.h"
#include "ifsfile.h"
#include "utility.h"
// compiler-specific glue
#ifndef _MSC_VER
#define sscanf_s sscanf // WARNING: TRUE FOR THIS FILE ONLY!
#endif // !_MSC_VER
// libasan (Address Sanitizer) options: this is not a daemon, so I don't care about leaks: they will be recovered by the OS at program exit
const char *__asan_default_options () { return ("detect_leaks=0"); }
// placeholder value
#define WILL_BE_FILLED_LATER 0xbaadf00d // urgh
// miscellaneous macros
#define ROUND_TO_UPPER_MULTIPLE(val,multiple) ((((val) + (size_t) (multiple) - 1) / (multiple)) * (multiple)) // note that val is being evaluated once, so it can be the result of a function call
#ifdef _WIN32
#define IS_DIRSEP(c) (((c) == '/') || ((c) == '\\')) // platform-specific directory separator, Win32 variant
#define PATH_SEP ";" // platform-specific PATH element separator (as string), Win32 variant
#else // !_WIN32, thus POSIX
#define IS_DIRSEP(c) ((c) == '/') // platform-specific directory separator, UNIX variant
#define PATH_SEP ":" // platform-specific PATH element separator (as string), UNIX variant
#endif // _WIN32
#define RECORD_SEP "\x1e" // arbitrarily-chosen ASCII record separator, as a C string suitable for e.g. strtok()
// macros for constructing and destructing string arrays
#define STRINGARRAY_INIT(string_array) do { (string_array)->args = NULL; (string_array)->count = 0; } while (0)
#define STRINGARRAY_PUSH(string_array,str) do { \
reallocated_ptr = realloc ((string_array)->args, ((string_array)->count + 1) * sizeof (char *)); \
ASSERT_WITH_ERRNO (reallocated_ptr); \
(string_array)->args = reallocated_ptr; \
(string_array)->args[(string_array)->count] = ((str) != NULL ? strdup ((str)) : NULL); \
if ((str) != NULL) \
ASSERT_WITH_ERRNO ((string_array)->args[(string_array)->count]); \
(string_array)->count++; \
} while (0)
#define STRINGARRAY_FREE(string_array) do { \
if ((string_array)->args != NULL) { \
for (array_index = 0; array_index < (string_array)->count; array_index++) \
if ((string_array)->args[array_index] != NULL) \
free ((string_array)->args[array_index]); \
free ((string_array)->args); \
(string_array)->args = NULL; \
} \
(string_array)->count = 0; \
} while (0)
// string array structure type definition
typedef struct stringarray_s
{
char **args;
size_t count;
} stringarray_t;
// IFS directory entry insertion parameters structure type definition
typedef struct parms_s
{
int dperms; // directory permissions (e.g. 0755)
int perms; // file permissions (e.g. 0644)
int uid; // owner user ID (e.g. 0 = root)
int gid; // owner group ID (e.g. 0 = root)
int st_mode; // entry type (e.g. S_IFREG for files) and permissions
uint32_t mtime; // entry's modification time POSIX timestamp - set to UINT32_MAX to use the concerned files' mtime on the build host
uint32_t mtime_for_inline_files; // same as above but only for files that don't exist on the build host (i.e. files with an explicit content blob)
char *prefix; // [prefix=path] install path (e.g. "proc/boot")
bool should_follow_symlinks; // follow symlinks
bool should_autosymlink_dylib; // dynamic libraries should be written under their official SONAME and a named symlink be created pointing at them
bool should_keep_ld_output; // whether to keep .sym files produced by ld calls, togglable by the [+keeplinked] attribute
bool should_ignore_duplicates; // [+|-dupignore] whether to ignore duplicates
bool should_allow_nonexistent_files; // [+|-optional] whether to continue processing on unexistent files
bool is_bootstrap_file; // entry has the [virtual] attribute
bool is_compiled_bootscript; // entry has [+script] attribute
int extra_ino_flags; // bitmap of extra inode flags (IFS_INO_xxx)
char *search; // [search=path[:path]] binary search path (the default one will be constructed at startup)
buffer_t data; // the resolved file's own data bytes
} parms_t;
// exported globals
int verbose_level = 1; // verbosity level, can be increased with multiple -v[...] flags
// global variables used in this module only
static char line_buffer[4096]; // scrap buffer for the IFS build file parser
static uint32_t image_base = 4 * 1024 * 1024; // default image base, as per QNX docs -- can be changed with the [image=XXXX] attribute in the IFS build file
static uint32_t image_end = UINT32_MAX; // default image end (no limit)
static uint32_t image_maxsize = UINT32_MAX; // default image max size (no limit)
static uint32_t image_totalsize = 0; // image total size, measured once all the blocks have been written to the output IFS file
static uint32_t image_align = 4; // default image alignment, as per QNX docs
static uint32_t image_kernel_ino = 0;
static uint32_t image_bootscript_ino = 0;
static int startup_header_compression_flag = STARTUP_HDR_FLAGS1_COMPRESS_NONE;
#if defined(__x86_64__)
static char *image_processor = "x86_64"; // default CPU type for which this image is built, either "x86_64" or "aarch64le" (will be used to find out the right include paths under $QNX_TARGET)
static char *image_processor_base = "x86_64"; // default base CPU type for which this image is built, either "x86_64" or "aarch64le" (will be used to find out the right include paths under $QNX_TARGET)
static size_t image_pagesize = 4 * 1024; // default page size for the image, depends on the CPU type. Intel has 4kb pages, ARM has 16kb ones.
#elif defined(__aarch64__)
static char *image_processor = "aarch64le"; // default CPU type for which this image is built, either "x86_64" or "aarch64le" (will be used to find out the right include paths under $QNX_TARGET)
static char *image_processor_base = "aarch64"; // default base CPU type for which this image is built, either "x86_64" or "aarch64le" (will be used to find out the right include paths under $QNX_TARGET)
static size_t image_pagesize = 16 * 1024; // default page size for the image, depends on the CPU type. Intel has 4kb pages, ARM has 16kb ones.
#else // unknown platform
#error Please port ifstool to this platform
#endif
static char *buildfile_pathname = NULL; // pathname of IFS build file
static char *current_line = NULL; // copy of current line in IFS build file
static int lineno = 0; // current line number in IFS build file
static char *QNX_TARGET = NULL; // value of the $QNX_TARGET environment variable
static char *SEARCH_PATH = NULL; // mallocated string of search paths, populated by the -r command-line argument
static char **saved_ELF_sections = NULL; // mallocated array of const strings, populated by the -s command-line argument
static size_t saved_ELF_section_count = 0; // number of elements in the saved_ELF_sections array
static char *sym_suffix = ""; // .sym files extra suffix, settable with the -a command-line argument
// bootable IFS support
static char *bootfile_pathname = NULL; // FIXME: HACK: pathname to bootcode binary blob file to put at the start of a bootable IFS
static size_t bootfile_size = 0; // FIXME: HACK: size of the bootcode binary blob file to put at the start of a bootable IFS
static char *startupfile_pathname = NULL; // FIXME: HACK: pathname to precompiled startup file blob to put in the startup header of a bootable IFS
static size_t startupfile_ep_from_imagebase = 0; // FIXME: HACK: startup code entrypoint offset from image base for a bootable IFS
static size_t kernelfile_offset = 0; // kernel file offset in the IFS (first offset rounded at pagesize after the dirents table)
// exported function prototypes
int32_t update_checksum (const void *data, const size_t data_len, const bool is_foreign_endianness); // compute an IFS image or startup checksum to store in the trailer
// prototypes of local functions
static long long read_integer (const char *str); // reads an integer number for a string that may be specified in either hex, octal or decimal base, and may have an optional unit suffix (k, m, g, t)
static char *resolve_envvars (const char *str); // resolves environment variables in str and replaces them with their value, or an empty string if undefined. Returns a mallocated string (caller frees)
static char *resolve_pathname (const char *pathname, const char *search_paths_or_NULL_for_MKIFS_PATH_envvar); // locates pathname among the known search paths and returns a pointer to the resolved pathname (static string)
static elf_section_header_t *elf_get_section_header_by_name (const elf_header_t *elf, const char *section_name); // get a pointer to a named section header in an ELF file
static size_t Buffer_WriteIFSDirectoryEntryAt (buffer_t *ifs_data, const size_t write_offset, const fsentry_t *fsentry); // writes the given filesystem entry (without its contents) to the IFS buffer
static size_t Buffer_AppendIFSFileData (buffer_t *ifs_data, const fsentry_t *fsentry); // writes the given filesystem entry's file data (i.e. its contents) to the IFS buffer
static int Buffer_StripELFFile (buffer_t *file, const char **saved_sections, const size_t saved_section_count, const bool should_align_segsize_with_ramsize, const char *indicative_pathname); // strips an ELF file buffer the way mkifs does it and returns whether it succeeded
static void add_fsentry (fsentry_t **fsentries, size_t *fsentry_count, parms_t *entry_parms, const char *stored_pathname, const char *buildhost_pathname); // stack up a new filesystem entry in the the fsentries array
static void add_directory_contents_recursively (fsentry_t **fsentries, size_t *fsentry_count, const char *dir_pathname, const size_t start_pathname_len, parms_t *default_parms); // adds the contents of the directory pointed to by dir_pathname to the fsentries array, recursively
static int fsentry_compare_pathnames_cb (const void *a, const void *b); // qsort() comparison callback that sorts filesystem entries by pathnames
static void parse_line (FILE *buildfile_fp, char *line_buffer, fsentry_t **fsentries, size_t *fsentry_count, parms_t *default_parms); // parses a line in the build file and make the relevant changes to the fsentries array
// imported function prototypes
extern int dump_ifs_info (const char *ifs_pathname, bool want_everything, bool hide_filename); // [implemented in ifsdump.c] dumps detailed info about a particular IFS file on the standard output, returns 0 on success and >0 on error
extern int dump_ifs_contents (const char *ifs_pathname, const char *outdir); // [implemented in ifsdump.c] dumps the IFS filesystem contents in outdir, returns 0 on success and >0 on error
extern int dump_file_hex (const char *pathname); // [implemented in ifsdump.c] dumps the contents of pathname to stdout in mixed hexadecimal + ASCII (hex editor) format
int32_t update_checksum (const void *data, const size_t data_len, const bool is_foreign_endianness)
{
// computes the checksum of an IFS image or startup section, i.e. from the start of the header to the end of the trailer minus the last 4 bytes where the checksum is stored
uint8_t accumulator[4] = { 0, 0, 0, 0 };
const char *current_char_ptr;
int32_t image_cksum;
size_t i;
image_cksum = 0;
current_char_ptr = data;
for (i = 0; i < data_len; i++)
{
accumulator[i % 4] = *current_char_ptr;
if (i % 4 == 3)
if (is_foreign_endianness)
image_cksum += (accumulator[3] << 0) + (accumulator[2] << 8) + (accumulator[1] << 16) + (accumulator[0] << 24);
else
image_cksum += (accumulator[0] << 0) + (accumulator[1] << 8) + (accumulator[2] << 16) + (accumulator[3] << 24);
current_char_ptr++;
}
return (is_foreign_endianness ? __builtin_bswap32 (-image_cksum) : -image_cksum);
}
static long long read_integer (const char *str)
{
// reads a number for a string that may be specified in either hex, octal or decimal base, and may have an optional unit suffix (k, m, g, t)
char *endptr = NULL;
long long ret = strtoll (str, &endptr, 0); // use strtoll() to handle hexadecimal (0x...), octal (0...) and decimal (...) bases
if (endptr != NULL)
{
if ((*endptr == 'k') || (*endptr == 'K')) ret *= (size_t) 1024;
else if ((*endptr == 'm') || (*endptr == 'M')) ret *= (size_t) 1024 * 1024;
else if ((*endptr == 'g') || (*endptr == 'G')) ret *= (size_t) 1024 * 1024 * 1024;
else if ((*endptr == 't') || (*endptr == 'T')) ret *= (size_t) 1024 * 1024 * 1024 * 1024; // future-proof enough, I suppose?
}
return (ret);
}
static char *resolve_envvars (const char *str)
{
// resolves environment variables in str and replaces them with their value, or an empty string if undefined
// returns a mallocated string (caller frees), or dies with errno
signed int erase_index;
void *reallocated_ptr;
size_t replacement_len;
size_t middlebit_len;
size_t old_str_len;
size_t new_str_len;
size_t endbit_len;
char erased_char;
char *resolved_str;
char *replacement;
char *varname;
char *endbit;
char *token;
resolved_str = strdup (str); // have a working copy of the input string
ASSERT_WITH_ERRNO (resolved_str);
while ((((token
= strstr (resolved_str
, "${")) != NULL
) && ((endbit
= strchr (token
, '}')) != NULL
)) // look for variables in the "${VARNAME}" format *AND* in "$VARNAME" format
|| (((token
= strstr (resolved_str
, "$")) != NULL
) && ((middlebit_len
= strspn (token
, "ABCDEFGHIJKLMNOPQRSTUVWXYZabcdefghijklmnopqrstuvwxyz0123456789_")) != strlen (token
))))
{
if (token[1] == '{') // "${VARNAME}" format
{
endbit++; // locate where the end bit begins
varname = token + 2; // skip the leading two characters: "${"
erase_index = -1; // we shall split the string at the character that's *just before* where the end bit starts
}
else // "$VARNAME" format
{
endbit = &token[middlebit_len]; // locate where the end bit begins
varname = token + 1; // skip the leading '$'
erase_index = 0; // we shall split the string at the character that's *right where* the end bit starts
}
old_str_len
= strlen (resolved_str
); // measure current string length
endbit_len
= strlen (endbit
); // measure the length of the end bit (skip the closing curly brace)
erased_char = endbit[erase_index]; // remember which is the character we're going to erase
endbit[erase_index] = 0; // split the string at the end of the variable name
if (strcmp (varname
, "PFS") == 0)
replacement = PATH_SEP; // special case: if it's the PFS variable, select ":" or ";" based on the host platform
else
replacement
= getenv (varname
); // peek at the environment for its value
if (replacement == NULL)
replacement = ""; // if this variable isn't defined, fallback to an empty string, just like what a UNIX shell does
endbit[erase_index] = erased_char; // put the erased character back
replacement_len
= strlen (replacement
); // measure replacement length
new_str_len = (size_t) token - (size_t) resolved_str + replacement_len + endbit_len; // measure updated string len
if (new_str_len > old_str_len)
{
reallocated_ptr
= realloc (resolved_str
, new_str_len
+ 1); // grow it if necessary
ASSERT_WITH_ERRNO (reallocated_ptr);
token = &((char *) reallocated_ptr)[token - resolved_str]; // fix the pointers that may have moved
endbit = &((char *) reallocated_ptr)[endbit - resolved_str]; // fix the pointers that may have moved
resolved_str = reallocated_ptr;
}
memmove (token
+ replacement_len
, endbit
, endbit_len
+ 1); // move the end bit to its final location (including its nul terminator)
memcpy (token
, replacement
, replacement_len
); // and patch the replacement in between
}
return (resolved_str); // finished, return the mallocated resolved string (caller frees)
}
static char *resolve_pathname (const char *pathname, const char *search_paths_or_NULL_for_MKIFS_PATH_envvar)
{
// locates pathname among search path and returns resolved pathname (static buffer) or NULL.
typedef struct default_path_s { bool uses_processor_base; char *subpath; } default_path_t;
static const default_path_t default_paths[] =
{
{ false, "/sbin" }, // prefix with $PROCESSOR/
{ false, "/usr/sbin" }, // prefix with $PROCESSOR/
{ false, "/boot/sys" }, // prefix with $PROCESSOR/
{ true, "/boot/sys" }, // prefix with $PROCESSOR_BASE/
{ false, "/bin" }, // prefix with $PROCESSOR/
{ false, "/usr/bin" }, // prefix with $PROCESSOR/
{ false, "/lib" }, // prefix with $PROCESSOR/
{ false, "/lib/dll" }, // prefix with $PROCESSOR/
{ false, "/usr/lib" } // prefix with $PROCESSOR/
};
static thread_local char *resolved_pathname = NULL;
char *pathname_without_envvars;
char *resolved_search_path;
size_t defaultpath_index;
struct stat stat_buf;
char *nextsep;
char *token;
// resolve possible environment variables in pathname
pathname_without_envvars = resolve_envvars (pathname);
// NOTE: the QNX documentation states:
// "- If path starts with a slash (/) on a Linux development host, or a disk volume label (i.e., drive letter and a colon) followed by a backslash (\) on a Windows host, the path is absolute and mkifs looks for the file at that exact host location. [...]
// - If path contains a slash or backslash character that's not at the start, the path is relative and mkifs tries to resolve it relative to the current working directory (CWD).
// - If path does not contain a directory separator or the file could not be found relative to the CWD, mkifs tries to resolve it relative to all directories given in the search attribute, in succession."
// is it an absolute pathname (POSIX and Windows variants) ?
if (IS_DIRSEP (pathname_without_envvars[0])
#ifdef _WIN32
|| (isalpha (pathname_without_envvars
[0]) && (pathname_without_envvars
[1] == ':') && IS_DIRSEP
(pathname_without_envvars
[2]))
#endif // _WIN32
)
return (pathname_without_envvars); // in this case, it MUST exist at its designated location
// else is it a relative pathname ?
else if (((strchr (pathname_without_envvars
, '/') != NULL
)
#ifdef _WIN32
|| (strchr (pathname_without_envvars
, '\\') != NULL
)
#endif // _WIN32
) && (stat (pathname_without_envvars, &stat_buf) == 0) && S_ISREG (stat_buf.st_mode))
return (pathname_without_envvars); // in this case, see if it exists relatively to the current working directory, and if it does, return it
// what we've been given is just a basename, so search it among the search paths we have
// QNX docs:
// When searching for host files to be included in the image, search the default paths used for storing binaries within the specified directory before searching the default paths within $QNX_TARGET.
// You can define multiple -r options; each adds a set of paths to search for files.
// The -r options are evaluated from left to right meaning the paths prefixed with the first (leftmost) rootdir are searched first, then those prefixed with the second rootdir, and so on.
// Normally, mkifs searches any paths defined in $MKIFS_PATH when it was called and then the default paths within $QNX_TARGET.
// The default paths are based on the CPU architecture specified by $PROCESSOR and $PROCESSOR_BASE.
// If you specify -r options, mkifs searches the default paths prefixed with each dir variable before searching those within $QNX_TARGET.
// These paths are:
// dir/${PROCESSOR}/sbin
// dir/${PROCESSOR}/usr/sbin
// dir/${PROCESSOR}/boot/sys
// dir/${PROCESSOR_BASE}/boot/sys
// dir/${PROCESSOR}/bin
// dir/${PROCESSOR}/usr/bin
// dir/${PROCESSOR}/lib
// dir/${PROCESSOR}/lib/dll
// dir/${PROCESSOR}/usr/lib
// NOTE: The structure of the directory paths under dir must be identical to that of the default paths under $QNX_TARGET, but the root dir itself may be any path you choose.
// For example, if you wanted to include /scratch/aarch64le/sbin/devb-sata, you would specify a -r option like this:
// -r /scratch
// Note that you don't include $PROCESSOR or $PROCESSOR_BASE in dir.
// - search all paths in explicit path/[default paths] (if explicit path supplied)
// - search all paths in (-r flags if have some|MKIFS_PATH)/[default paths] (if no explicit path supplied)
// - search all paths in $QNX_TARGET/[default paths]
// initial allocation (per thread)
if (resolved_pathname == NULL)
{
resolved_pathname
= malloc (MAXPATHLEN
);
ASSERT_WITH_ERRNO (resolved_pathname);
}
// if no file-specific explicit search path was supplied, use the path list supplied by the -r command-line arguments, else fallback to MKIFS_PATH if we don't have any
if (search_paths_or_NULL_for_MKIFS_PATH_envvar == NULL)
search_paths_or_NULL_for_MKIFS_PATH_envvar
= (SEARCH_PATH
!= NULL
? SEARCH_PATH
: getenv ("MKIFS_PATH"));
// construct a potential final path using each element of the search path
if (search_paths_or_NULL_for_MKIFS_PATH_envvar != NULL)
{
// the first step is to resolve all environment variables in the search path
resolved_search_path = resolve_envvars (search_paths_or_NULL_for_MKIFS_PATH_envvar);
// now split this search path string into multiple tokens and process them one after the other
token = (*resolved_search_path != 0 ? resolved_search_path : NULL);
nextsep
= (token
!= NULL
? &token
[strcspn (token
, PATH_SEP
)] : NULL
);
while (token != NULL)
{
// look under this search path at each of the known subpaths
for (defaultpath_index = 0; defaultpath_index < sizeof (default_paths) / sizeof (default_paths[0]); defaultpath_index++)
{
sprintf_s (resolved_pathname, MAXPATHLEN, "%.*s/%s/%s/%s", (int) (nextsep - token), token, (default_paths[defaultpath_index].uses_processor_base ? image_processor_base : image_processor), default_paths[defaultpath_index].subpath, pathname_without_envvars);
if ((stat (resolved_pathname, &stat_buf) == 0) && S_ISREG (stat_buf.st_mode))
{
free (pathname_without_envvars
);
return (resolved_pathname); // if a file can indeed be found at this location, stop searching
}
}
token = (*nextsep != 0 ? nextsep + 1 : NULL);
nextsep
= (token
!= NULL
? &token
[strcspn (token
, PATH_SEP
)] : NULL
);
}
}
// file not found in search paths: look under QNX_TARGET at each of the known subpaths
for (defaultpath_index = 0; defaultpath_index < sizeof (default_paths) / sizeof (default_paths[0]); defaultpath_index++)
{
sprintf_s (resolved_pathname, MAXPATHLEN, "%s/%s/%s/%s", QNX_TARGET, (default_paths[defaultpath_index].uses_processor_base ? image_processor_base : image_processor), default_paths[defaultpath_index].subpath, pathname_without_envvars);
if ((stat (resolved_pathname, &stat_buf) == 0) && S_ISREG (stat_buf.st_mode))
{
free (pathname_without_envvars
);
return (resolved_pathname); // if a file can indeed be found at this location, stop searching
}
}
free (pathname_without_envvars
);
errno = ENOENT; // we exhausted all possibilities
return (NULL); // file not found, return with ENOENT
}
static size_t Buffer_WriteIFSDirectoryEntryAt (buffer_t *ifs, const size_t write_offset, const fsentry_t *fsentry)
{
// writes a directory entry in the image filesystem buffer pointed to by ifs at write_offset (or fakes so if ifs is NULL)
// and return the number of bytes written (or that would have been written)
static const uint8_t zeropad_buffer[] = "\0\0\0\0\0\0\0\0\0\0\0\0\0\0\0\0\0\0\0\0\0\0\0\0\0\0\0\0\0\0\0\0";
size_t datalen;
size_t count;
count = 0;
if (ifs != NULL)
ASSERT_WITH_ERRNO (Buffer_WriteAt (ifs, write_offset + count, &fsentry->header, sizeof (fsentry->header))); // write the entry header (PACKED STRUCT)
count += sizeof (fsentry->header);
if (S_ISREG (fsentry->header.mode))
{
if (ifs != NULL)
ASSERT_WITH_ERRNO (Buffer_WriteAt (ifs, write_offset + count, &fsentry->u.file.offset, sizeof (uint32_t))); // write offset
count += sizeof (uint32_t);
if (ifs != NULL)
ASSERT_WITH_ERRNO (Buffer_WriteAt (ifs, write_offset + count, &fsentry->u.file.size, sizeof (uint32_t))); // write size
count += sizeof (uint32_t);
datalen
= strlen (fsentry
->u.
file.
path) + 1;
if (ifs != NULL)
ASSERT_WITH_ERRNO (Buffer_WriteAt (ifs, write_offset + count, fsentry->u.file.path, datalen)); // write null-terminated path (no leading slash)
count += datalen;
}
else if (S_ISDIR (fsentry->header.mode))
{
datalen
= strlen (fsentry
->u.
dir.
path) + 1;
if (ifs != NULL)
ASSERT_WITH_ERRNO (Buffer_WriteAt (ifs, write_offset + count, fsentry->u.dir.path, datalen)); // write null-terminated path (no leading slash)
count += datalen;
}
else if (S_ISLNK (fsentry->header.mode))
{
if (ifs != NULL)
ASSERT_WITH_ERRNO (Buffer_WriteAt (ifs, write_offset + count, &fsentry->u.symlink.sym_offset, sizeof (uint16_t))); // write offset
count += sizeof (uint16_t);
if (ifs != NULL)
ASSERT_WITH_ERRNO (Buffer_WriteAt (ifs, write_offset + count, &fsentry->u.symlink.sym_size, sizeof (uint16_t))); // write size
count += sizeof (uint16_t);
datalen
= strlen (fsentry
->u.
symlink.
path) + 1;
if (ifs != NULL)
ASSERT_WITH_ERRNO (Buffer_WriteAt (ifs, write_offset + count, fsentry->u.symlink.path, datalen)); // write null-terminated path (no leading slash)
count += datalen;
datalen
= strlen (fsentry
->u.
symlink.
contents) + 1;
if (ifs != NULL)
ASSERT_WITH_ERRNO (Buffer_WriteAt (ifs, write_offset + count, fsentry->u.symlink.contents, datalen)); // write null-terminated symlink contents
count += datalen;
}
else
{
if (ifs != NULL)
ASSERT_WITH_ERRNO (Buffer_WriteAt (ifs, write_offset + count, &fsentry->u.device.dev, sizeof (uint32_t))); // write dev number
count += sizeof (uint32_t);
if (ifs != NULL)
ASSERT_WITH_ERRNO (Buffer_WriteAt (ifs, write_offset + count, &fsentry->u.device.rdev, sizeof (uint32_t))); // write rdev number
count += sizeof (uint32_t);
datalen
= strlen (fsentry
->u.
device.
path) + 1;
if (ifs != NULL)
ASSERT_WITH_ERRNO (Buffer_WriteAt (ifs, write_offset + count, fsentry->u.device.path, datalen)); // write null-terminated path (no leading slash)
count += datalen;
}
ASSERT (count <= fsentry->header.size, "attempt to write invalid dirent (claimed size %zd, written size %zd). Aborting.", (size_t) fsentry->header.size, count);
if (count < fsentry->header.size)
{
if (ifs != NULL)
ASSERT_WITH_ERRNO (Buffer_WriteAt (ifs, write_offset + count, zeropad_buffer, fsentry->header.size - count)); // pad as necessary
count += fsentry->header.size - count;
}
return (count);
}
static size_t Buffer_AppendIFSFileData (buffer_t *ifs_data, const fsentry_t *fsentry)
{
// writes the given filesystem entry's file data (i.e. its contents) to the IFS buffer
elf_program_header_t *phdr;
elf_header_t *elf;
size_t fixed_physical_addr;
size_t corrective_offset;
//size_t segment_type;
size_t size_in_memory;
size_t table_index;
size_t table_count;
size_t data_offset;
ASSERT (S_ISREG (fsentry->header.mode), "function called for invalid dirent"); // consistency check
data_offset = ifs_data->size; // see where we are
// is the file we're storing a preprocessed ELF file ?
if (fsentry->header.ino & IFS_INO_PROCESSED_ELF)
{
elf = (elf_header_t *) fsentry->u.file.UNSAVED_databuf; // quick access to ELF header
table_count = ELF_GET_NUMERIC (elf, elf, program_header_table_len); // get the number of program headers
for (table_index = 0; table_index < table_count; table_index++)
{
phdr = (elf_program_header_t *) &fsentry->u.file.UNSAVED_databuf[ELF_GET_NUMERIC (elf, elf, program_header_table_offset) + (size_t) ELF_GET_NUMERIC (elf, elf, program_header_item_size) * table_index]; // quick access to program header
//segment_type = ELF_GET_NUMERIC (elf, phdr, segment_type); // get segment type
//if (!((segment_type >= 2) && (segment_type <= 7) || ((segment_type >= 0x6474e550) && (segment_type <= 0x6474e552)) || (segment_type == 0x70000001)))
// continue; // NOTE: only certain segments types must be corrected
corrective_offset = ELF_GET_NUMERIC (elf, phdr, virtual_addr) - ELF_GET_NUMERIC (elf, phdr, file_offset);
size_in_memory = ELF_GET_NUMERIC (elf, phdr, size_in_memory); // get this ELF segment's occupied size in memory
if (size_in_memory != 0) // only patch the physical address of segments that have an actual size in memory
{
fixed_physical_addr = ELF_GET_NUMERIC (elf, phdr, physical_addr) + image_base + data_offset - corrective_offset;
ELF_SET_NUMERIC (elf, phdr, physical_addr, fixed_physical_addr); // patch the physical address member of the program header table (NOTE: data_offset is the location where the file data is about to be written)
}
}
}
ASSERT_WITH_ERRNO (Buffer_Append (ifs_data, fsentry->u.file.UNSAVED_databuf, fsentry->u.file.size)); // write file data blob
return (ifs_data->size - data_offset); // return the number of bytes written
}
static inline size_t Buffer_LocateOrAppendIfNecessaryAndReturnOffsetOf (buffer_t *buffer, const char *str)
{
// helper function used in add_fsentry(): locates or appends str to buffer and returns its relative offset in the buffer
size_t str_len_including_terminator
= strlen (str
) + 1;
void *occurrence = Buffer_FindFirst (buffer, str, str_len_including_terminator);
if (occurrence == NULL)
{
ASSERT_WITH_ERRNO (Buffer_Append (buffer, str, str_len_including_terminator));
occurrence = Buffer_FindFirst (buffer, str, str_len_including_terminator);
ASSERT_WITH_ERRNO (occurrence);
}
return (Buffer_OffsetOf (buffer, occurrence)); // can't fail
}
static int Buffer_StripELFFile (buffer_t *file, const char **saved_sections, const size_t saved_section_count, const bool should_align_segsize_with_ramsize, const char *indicative_pathname)
{
// NOTE: for each ELF file, mkifs
// -> alters the program header table and offsets each p_addr (physical address) member by <image_base> plus the current file offset (this cannot be done right now, will need to be done once they are known)
// -> throws away and reconstructs the sections table by keeping only the sections that are in the program header, and writes the section table at the start of the first thrown-away section
// FIXME: what if a thrown away section is located between two program segments ? are they collapsed, moving the segments beyond it one slot down ?
// reconstructed ELF:
// ==== START OF FILE ====
// ELF header
// program header table
// (same sections, just p_addr offset changed)
// section data 5 (named ".note.gnu.build-id")
// "............GNU....ZY.....c.o..l"
// PROGRAM
// sections table
// + section 1: ALL ZEROES
// + section 2: fileoffs 0x21a8 size 0xfd --> "QNX_info" --> QNX binary description: "NAME=pci_debug2.so.3.0\nDESCRIPTION=PCI Server System Debug Module\nDATE=2023/11/19-10:01:13-EST\nSTATE=lookup\nHOST=docker-n1.bts.rim.net\nUSER=builder\nVERSION=QNXOS_main\nTAGID=QNXOS_800-135\nPACKAGE=com.qnx.qnx800.target.pci.debug/3.0.0.00135T202311191043L\n"
// + section 3: fileoffs 0x22a5 size 0x1c --> ".gnu_debuglink" --> indicates the debug file and its checksum: "pci_debug2.so.3.0.sym" "\0\0\0" "VX2p"
// + section 4: fileoffs 0x22c1 size 0x2ad --> "QNX_usage" --> HELP TEXT: "\n-------------------------------------------------------------------------------\n%C\n\nThis module implements debug logging for all PCI server modules. It is\nincluded by setting the environment variable PCI_DEBUG_MODULE and uses\nthe slogger2 APIs.\nNOTE:.On systems which support slogger2, you are encouraged to use this module.instead of pci_debug.so...Release History.---------------..3.0 - This module is functionally equivalent to the previous 2.x version. however it is incompatible with all pre v3.x PCI components..2.1 - fixes a bug whereby if slogger2 is not running and the PCI_DEBUG_MODULE. environment variable is set, the client will SIGSEGV..2.0 - initial release.."
// + section 5: fileoffs 0x190 size 0x32 --> ".note.gnu.build-id" --> GNU build ID
// + section 6: fileoffs 0x256e size 0x40 --> ".shstrtab" --> sections names strings table
// section data 2 (named "QNX_info")
// (QNX binary description)
// section data 3 (named ".gnu_debuglink")
// (debug file)
// section data 4 (named "QNX_usage")
// (help text)
// section data 6 (named ".shstrtab")
// "\0"
// ".shstrtab\0"
// "QNX_info\0"
// ".gnu_debuglink\0"
// "QNX_usage\0"
// ".note.gnu.build-id\0"
// ==== END OF FILE ====
#define ELFHDR ((elf_header_t *) file->bytes) // this convenient definition will make sure the ELF header points at the right location, even after entry_parms.data->byte is reallocated
#define ADD_SECTION(section_name,section_ptr) do { \
void *reallocated_ptr = realloc (elf_sections, (elf_section_count + 1) * sizeof (elf_section_t)); \
ASSERT_WITH_ERRNO (reallocated_ptr); \
elf_sections = reallocated_ptr; \
elf_sections[elf_section_count].name = (section_name); \
Buffer_Initialize (&elf_sections[elf_section_count].data); \
*(section_ptr) = &elf_sections[elf_section_count]; \
elf_section_count++; \
} while (0)
typedef struct elf_section_s
{
const char *name;
elf_section_header_t header;
buffer_t data;
} elf_section_t;
const elf_section_header_t *shdr;
elf_program_header_t *phdr;
elf_program_header_t *other_phdr;
elf_section_t *elf_sections = NULL; // mallocated
elf_section_t *elf_section = NULL;
size_t elf_section_count = 0;
size_t new_shdrtable_offset;
size_t new_shdrtable_len;
size_t sectiondata_start;
size_t sectiondata_size;
size_t size_in_memory;
size_t size_in_file;
size_t file_offset;
size_t array_index;
size_t table_index;
size_t table_count;
// if we should align the segment sizes in the ELF file with their occupied memory size (such is the case for e.g. procnto), do that first
table_count = ELF_GET_NUMERIC (ELFHDR, ELFHDR, program_header_table_len); // get the number of program headers
for (table_index = 0; table_index < table_count; table_index++)
{
phdr = (elf_program_header_t *) &file->bytes[ELF_GET_NUMERIC (ELFHDR, ELFHDR, program_header_table_offset) + (size_t) ELF_GET_NUMERIC (ELFHDR, ELFHDR, program_header_item_size) * table_index]; // quick access to program header
file_offset = ELF_GET_NUMERIC (ELFHDR, phdr, file_offset); // get this ELF segment's start offset in the ELF file
size_in_memory = ELF_GET_NUMERIC (ELFHDR, phdr, size_in_memory); // get this ELF segment's occupied size in memory
size_in_file = ELF_GET_NUMERIC (ELFHDR, phdr, size_in_file); // get this ELF segment's occupied size in the ELF file
if (should_align_segsize_with_ramsize && (size_in_memory != size_in_file)) // should we align this segment's file size with its claimed RAM size ? (such is the case for e.g. procnto)
{
if (size_in_memory > size_in_file) // is it bigger ? if so, make sure we won't be overwriting other segments beyond this one
{
for (array_index = 0; array_index < table_count; array_index++)
{
other_phdr = (elf_program_header_t *) &file->bytes[ELF_GET_NUMERIC (ELFHDR, ELFHDR, program_header_table_offset) + (size_t) ELF_GET_NUMERIC (ELFHDR, ELFHDR, program_header_item_size) * array_index]; // quick access to program header
if (other_phdr == phdr)
continue; // skip self
if (ELF_GET_NUMERIC (ELFHDR, other_phdr, file_offset) + ELF_GET_NUMERIC (ELFHDR, other_phdr, size_in_file) < file_offset)
continue; // skip segments that are located before this one
if (ELF_GET_NUMERIC (ELFHDR, other_phdr, file_offset) > file_offset + size_in_memory)
continue; // skip segments that are located after this one, including its corrected size
DIE_WITH_EXITCODE (1, "remapping ELF segment would overwrite segment #%zd in the same file", array_index);
}
// finally, memset() the extra area
Buffer_WriteAt (file, file_offset + size_in_memory, NULL, 0); // reallocate the ELF file data buffer if necessary
phdr = (elf_program_header_t *) &file->bytes[ELF_GET_NUMERIC (ELFHDR, ELFHDR, program_header_table_offset) + (size_t) ELF_GET_NUMERIC (ELFHDR, ELFHDR, program_header_item_size) * table_index]; // restore access to program header (which may have moved)
memset (&file
->bytes
[file_offset
+ size_in_file
], 0, size_in_memory
- size_in_file
); // and write zeroes over the extra space
}
ELF_SET_NUMERIC (ELFHDR, phdr, size_in_file, size_in_memory); // patch this segment's size in the ELF file so that it matches the RAM size
}
}
// now parse the program header table, and measure the farthest offset known by this table where we'll write the reconstructed section headers table
new_shdrtable_offset = 0;
table_count = ELF_GET_NUMERIC (ELFHDR, ELFHDR, program_header_table_len);
for (table_index = 0; table_index < table_count; table_index++)
{
phdr = (elf_program_header_t *) &file->bytes[ELF_GET_NUMERIC (ELFHDR, ELFHDR, program_header_table_offset) + (size_t) ELF_GET_NUMERIC (ELFHDR, ELFHDR, program_header_item_size) * table_index]; // quick access to program header
if (ELF_GET_NUMERIC (ELFHDR, phdr, file_offset) + ELF_GET_NUMERIC (ELFHDR, phdr, size_in_file) > new_shdrtable_offset)
new_shdrtable_offset = ELF_GET_NUMERIC (ELFHDR, phdr, file_offset) + ELF_GET_NUMERIC (ELFHDR, phdr, size_in_file); // keep track of the farthest offset known by the program headers table
}
/*
size_t new_shdrtable_offset_method2 = 0;
for (table_index = 0; table_index < table_count; table_index++)
{
phdr = (elf_program_header_t *) &file->bytes[ELF_GET_NUMERIC (ELFHDR, ELFHDR, program_header_table_offset) + (size_t) ELF_GET_NUMERIC (ELFHDR, ELFHDR, program_header_item_size) * table_index]; // quick access to program header
size_t segment_type = ELF_GET_NUMERIC (ELFHDR, phdr, segment_type); // get segment type
if (!((segment_type >= 2) && (segment_type <= 7)))
continue; // NOTE: only certain segments types must be corrected
if (ELF_GET_NUMERIC (ELFHDR, phdr, file_offset) + ELF_GET_NUMERIC (ELFHDR, phdr, size_in_memory) > new_shdrtable_offset_method2)
new_shdrtable_offset_method2 = ELF_GET_NUMERIC (ELFHDR, phdr, file_offset) + ELF_GET_NUMERIC (ELFHDR, phdr, size_in_memory);
}
if (new_shdrtable_offset_method2 > new_shdrtable_offset)
LOG_DEBUG ("METHOD2: %llx > %llx", new_shdrtable_offset_method2, new_shdrtable_offset);*/
//new_shdrtable_offset = ROUND_TO_UPPER_MULTIPLE (new_shdrtable_offset, image_pagesize); // round to page size
// re-create the section header table
ADD_SECTION (".shstrtab", &elf_section); // the first section will be the section names strings table
ASSERT_WITH_ERRNO (Buffer_InitWithByteArray (&elf_section->data, "\0")); // initialize an empty section headers strings table
ASSERT_WITH_ERRNO (Buffer_AppendByteArray (&elf_section->data, ".shstrtab\0")); // append ".shstrtab" *INCLUDING* its null terminator
// go through the saved sections array and see if such an ELF section is present in the ELF file
for (array_index = 0; array_index < saved_section_count; array_index++)
if ((shdr = elf_get_section_header_by_name (ELFHDR, saved_sections[array_index])) != NULL) // does this ELF have such a section ?
{
ADD_SECTION (saved_sections[array_index], &elf_section); // yes, so save it
sectiondata_start = ELF_GET_NUMERIC (ELFHDR, shdr, file_offset); // identify section data start offset
sectiondata_size = ELF_GET_NUMERIC (ELFHDR, shdr, size); // identify section data length
if (sectiondata_start + sectiondata_size >= new_shdrtable_offset) // should this section be moved ?
ASSERT_WITH_ERRNO (Buffer_InitWithData (&elf_section->data, &file->bytes[sectiondata_start], sectiondata_size)); // have a copy of this section's data
else
Buffer_Initialize (&elf_section->data); // this section is located before the place where we'll write the new section headers table, thus it doesn't need to be moved
//LOG_DEBUG ("%s: section '%s' start 0x%llx len 0x%llx", indicative_pathname, saved_ELF_sections[array_index], (unsigned long long) sectiondata_start, (unsigned long long) sectiondata_size);
// prepare this section's "fixed" header
memcpy (&elf_section
->header
, shdr
, ELF_STRUCT_SIZE
(ELFHDR
, shdr
)); // have a copy of the old section header first
ELF_SET_NUMERIC (ELFHDR, &elf_section->header, name_offset, Buffer_LocateOrAppendIfNecessaryAndReturnOffsetOf (&elf_sections[0].data, elf_section->name)); // make sure this section name is in the ELF sections section header strings table and update the relative offset of the section name
}
// jump over the new section headers table and write the saved sections data after the section headers table
file->size = new_shdrtable_offset + (1 + elf_section_count) * ELF_STRUCT_SIZE (ELFHDR, &elf_sections[0].header); // start by truncating the ELF file: assume there are no sections beyond the section headers table until known otherwise
for (table_index = 1; table_index < elf_section_count; table_index++)
{
elf_section = &elf_sections[table_index]; // quick access to ELF section about to be written
if (elf_section->data.bytes != NULL) // was this section data backed up waiting to be relocated ?
{
ELF_SET_NUMERIC (ELFHDR, &elf_section->header, file_offset, file->size); // fix section offset
Buffer_AppendBuffer (file, &elf_section->data); // append this section's data to the ELF file
}
}
// write the section header strings table as the last section
elf_section = &elf_sections[0]; // quick access to ELF section about to be written
ELF_SET_NUMERIC (ELFHDR, &elf_section->header, name_offset, Buffer_LocateOrAppendIfNecessaryAndReturnOffsetOf (&elf_sections[0].data, elf_section->name)); // update the relative offset of the section name
ELF_SET_NUMERIC (ELFHDR, &elf_section->header, type, ELF_SECTIONTYPE_STRINGTABLE); // section type (SHT_STRTAB)
ELF_SET_NUMERIC (ELFHDR, &elf_section->header, flags, 0); // section flags (we could set SHF_STRINGS i.e. 0x20 here, but mkifs does not, so mimic that)
ELF_SET_NUMERIC (ELFHDR, &elf_section->header, virtual_addr, 0); // this section does not need to be mapped
ELF_SET_NUMERIC (ELFHDR, &elf_section->header, file_offset, file->size); // fix section offset
ELF_SET_NUMERIC (ELFHDR, &elf_section->header, size, elf_sections[0].data.size); // section size
ELF_SET_NUMERIC (ELFHDR, &elf_section->header, linked_index, 0); // this section is not linked to any other
ELF_SET_NUMERIC (ELFHDR, &elf_section->header, info, 0); // this section has no additional info
ELF_SET_NUMERIC (ELFHDR, &elf_section->header, alignment, 1); // this section is byte-aligned
ELF_SET_NUMERIC (ELFHDR, &elf_section->header, entry_size, 0); // this section is not a table, so entry_size is zero
Buffer_AppendBuffer (file, &elf_section->data); // append section headers strings table section data to ELF file
// now write the section headers table
memset (&file
->bytes
[new_shdrtable_offset
], 0, ELF_STRUCT_SIZE
(ELFHDR
, &elf_sections
[0].
header)); // the first section header is always zerofilled
for (table_index = 1; table_index < elf_section_count; table_index++)
Buffer_WriteAt (file, new_shdrtable_offset + table_index * ELF_STRUCT_SIZE (ELFHDR, &elf_sections[table_index].header), &elf_sections[table_index].header, ELF_STRUCT_SIZE (ELFHDR, &elf_sections[table_index].header)); // write each section header
Buffer_WriteAt (file, new_shdrtable_offset + table_index * ELF_STRUCT_SIZE (ELFHDR, &elf_sections[table_index].header), &elf_sections[0].header, ELF_STRUCT_SIZE (ELFHDR, &elf_sections[0].header)); // write the section header names section header last
// and finally fix the ELF master header
new_shdrtable_len = 1 + elf_section_count; // take in account that the first entry in the section headers table is empty
ELF_SET_NUMERIC (ELFHDR, ELFHDR, section_header_table_offset, new_shdrtable_offset);
ELF_SET_NUMERIC (ELFHDR, ELFHDR, section_header_table_len, new_shdrtable_len);
ELF_SET_NUMERIC (ELFHDR, ELFHDR, section_header_names_idx, elf_section_count); // the section headers strings table is the last section
// align size with page size (4096 on x86, 16k on ARM), zerofilling the extra space
ASSERT_WITH_ERRNO (Buffer_PadWithZeroesTo (file, ROUND_TO_UPPER_MULTIPLE (file->size, image_pagesize)));
// cleanup
for (table_index = 0; table_index < elf_section_count; table_index++)
Buffer_Forget (&elf_sections[table_index].data); // free all sections' backing buffers
#undef ELFHDR // undefine the macro that used to always point to the ELF header at the beginning of the file
return (1); // success
}
static void add_fsentry (fsentry_t **fsentries, size_t *fsentry_count, parms_t *entry_parms, const char *stored_pathname, const char *buildhost_pathname)
{
static thread_local char *candidate_pathname = NULL;
static thread_local parms_t default_parms = { 0 };
static thread_local stringarray_t global_envp = { NULL, 0 };
static thread_local stringarray_t aps_partnames = { NULL, 0 };
static int inode_count = 0; // will be preincremented each time this function is called
typedef struct scriptcmd_s
{
char *argv0;
int cpu_number;
bool is_external;
int priority;
int sched_policy;
int aps_partindex;
bool is_session_leader;
bool is_background_task;
bool has_debug_flag;
} scriptcmd_t;
scriptcmd_t default_scriptcmd_params = { NULL, -1, false, -1, -1, -1, false, false, false };
scriptcmd_t current_scriptcmd_params = { 0 };
stringarray_t global_argv = { NULL, 0 };
stringarray_t line_argv = { NULL, 0 };
stringarray_t line_envp = { NULL, 0 };
stringarray_t startup_argv = { NULL, 0 };
stringarray_t startup_envp = { NULL, 0 };
stringarray_t procnto_argv = { NULL, 0 };
stringarray_t procnto_envp = { NULL, 0 };
stringarray_t linker_argv = { NULL, 0 };
const char *stored_pathname_without_leading_slash;
const char *original_stored_pathname = NULL;
buffer_t current_line;
buffer_t compiled_script;
buffer_t compiled_scriptline;
buffer_t *shstrtab = NULL;
const char *canonical_dylib_name;
const char *dynamic_strings; // strings table of the ".dynamic" section
const char *last_dirsep;
size_t array_index;
size_t line_index;
size_t fsentry_index;
size_t wait_time;
char *resolved_pathname;
char *linebit_start;
char *write_ptr;
char *read_ptr;
char *token;
char *value;
char *ctx;
void *reallocated_ptr;
void *old_data;
bool is_quoted_context;
bool is_end_of_line;
struct stat stat_buf;
fsentry_t *fsentry;
int retval;
// initial allocation (per thread)
if (candidate_pathname == NULL)
{
candidate_pathname
= malloc (MAXPATHLEN
);
ASSERT_WITH_ERRNO (candidate_pathname);
}
if (S_ISDIR (entry_parms->st_mode)) // are we storing a directory ?
{
if ((buildhost_pathname != NULL) && (buildhost_pathname[0] != 0)) // was a source file pathname supplied ?
{
memcpy (&default_parms
, entry_parms
, sizeof (parms_t
)); // apply current entry parameters when including a directory recursively
add_directory_contents_recursively
(fsentries
, fsentry_count
, buildhost_pathname
, strlen (buildhost_pathname
), &default_parms
); // if so, add this diretory contents recursively
}
LOG_INFO ("directory: ino 0x%x uid %d gid %d mode 0%o path \"%s\"", inode_count + 1, entry_parms->uid, entry_parms->gid, entry_parms->st_mode, stored_pathname);
}
else if (S_ISLNK (entry_parms->st_mode)) // else are we storing a symbolic link ?
{
// do we already know the data for this data blob ?
if (entry_parms->data.bytes != NULL)
{
entry_parms->mtime = entry_parms->mtime_for_inline_files; // if so, set it a mtime equal to the mtime to use for inline files
LOG_INFO ("symlink: ino 0x%x uid %d gid %d mode 0%o path \"%s\" -> \"%s\"", inode_count + 1, entry_parms->uid, entry_parms->gid, entry_parms->st_mode, stored_pathname, entry_parms->data.bytes);
}
else if (buildhost_pathname != NULL) // else was a source file pathname supplied ?
{
entry_parms
->data.
bytes = malloc (MAXPATHLEN
); // allocate enough space for symlink data
ASSERT_WITH_ERRNO (entry_parms->data.bytes);
retval = readlink (buildhost_pathname, entry_parms->data.bytes, MAXPATHLEN); // read symlink contents
ASSERT_WITH_ERRNO (retval > 0);
entry_parms->data.size = retval; // save symlink target length
}
else
DIE_WITH_EXITCODE (1, "unexpected code path: can't store a symlink without neither explicit contents nor a host pathname. This is a bug in the program. Please contact the author.");
}
else if (S_ISFIFO (entry_parms->st_mode)) // else are we storing a FIFO ?
{
if ((entry_parms
->data.
bytes == NULL
) || (strchr (entry_parms
->data.
bytes, ':') == NULL
))
DIE_WITH_EXITCODE (1, "device entry \"%s\" malformed (no 'dev:rdev' pair)", stored_pathname);
LOG_INFO ("fifo: ino 0x%x uid %d gid %d mode 0%o path \"%s\" dev:rdev %s)", inode_count + 1, entry_parms->uid, entry_parms->gid, entry_parms->st_mode, stored_pathname, entry_parms->data.bytes);
}
else // necessarily a regular file (either S_IFREG is specified, or st_mode is zero)
{
entry_parms->st_mode |= S_IFREG; // make this explicit
if (entry_parms->is_bootstrap_file) // is it the bootstrap file ?
{
// parse each line of contents
ASSERT (entry_parms->data.size > 0, "kernel specification without inline contents");
// parse buffer (non-destructively) line after line
Buffer_Initialize (¤t_line);
for (line_index = 0; Buffer_GetNthLine (&entry_parms->data, line_index, ¤t_line); line_index++)
{
read_ptr = current_line.bytes;
read_ptr++; // skip leading spaces
if ((*read_ptr == '#') || (*read_ptr == 0))
continue; // skip comments and empty lines
// format of a line: [attributes] [env assignation] [...] [executable] [arg] [...] [comment]
// example: "[uid=0 gid=0 perms=0700] CONFIG_PATH=/proc/boot:/etc procnto-smp-instr -v -mr -d 0777 -u 0777"
LOG_DEBUG ("parsing line: %s", read_ptr);
// does this line start with an attribute block ?
if (*read_ptr == '[')
{
read_ptr++; // skip the leading square bracket
linebit_start = read_ptr; // remember where it starts
is_quoted_context = false; // reach the next unescaped closing square bracket that is not between quotes
while ((*read_ptr != 0) && !((*read_ptr == ']') && (read_ptr[-1] != '\\') && !is_quoted_context))
{
if (*read_ptr == '"')
is_quoted_context ^= true; // remember when we're between quotes
else if (!is_quoted_context && (*read_ptr == ' '))
*read_ptr = RECORD_SEP[0]; // turn all spaces outside quoted contexts into an ASCII record separator to ease token splitting
read_ptr++; // reach the next unescaped closing square bracket
}
if (*read_ptr != ']')
{
LOG ("warning", 0, "syntax error in \"%s\" line %zd of inline document '%s': unterminated attributes block (skipping)", buildfile_pathname, 1 + line_index, stored_pathname);
continue; // invalid attribute block, skip line
}
is_end_of_line = (*read_ptr == 0); // see if we're at the end of line already
*read_ptr = 0; // end the attribute block in all cases so that it is a parsable C string
// now parse the attribute tokens (NOTE: THE LIST OF ALLOWED ATTRIBUTES HERE IS NOT DOCUMENTED)
token = strtok_r (linebit_start, RECORD_SEP, &ctx);
while (token != NULL)
{
#define REACH_TOKEN_VALUE() do { value = strchr (token, '=') + 1; if (*value == '"') value++; } while (0)
if (false) {}
else if (strncmp (token
, "prefix=", 7) == 0) { REACH_TOKEN_VALUE
(); entry_parms
->prefix
= (*value
== '/' ? value
+ 1 : value
); } // skip possible leading slash in prefix (NOTE: stolen pointer. Do not free.)
else if (strncmp (token
, "uid=", 4) == 0) { REACH_TOKEN_VALUE
(); entry_parms
->uid
= (int) read_integer
(value
); }
else if (strncmp (token
, "gid=", 4) == 0) { REACH_TOKEN_VALUE
(); entry_parms
->gid
= (int) read_integer
(value
); }
else if (strncmp (token
, "perms=", 6) == 0) { REACH_TOKEN_VALUE
(); entry_parms
->perms
= (int) read_integer
(value
); }
else if (strcmp (token
, "+followlink") == 0) entry_parms
->should_follow_symlinks
= true;
else if (strcmp (token
, "-followlink") == 0) entry_parms
->should_follow_symlinks
= false;
else if (strcmp (token
, "+keeplinked") == 0) entry_parms
->should_keep_ld_output
= true;
else if (strcmp (token
, "-keeplinked") == 0) entry_parms
->should_keep_ld_output
= false;
else LOG_WARNING ("unimplemented bootstrap executable attribute in \"%s\" line %zd of inline document '%s': '%s'", buildfile_pathname, 1 + line_index, stored_pathname, token);
#undef REACH_TOKEN_VALUE
token = strtok_r (NULL, RECORD_SEP, &ctx); // proceed to next attribute token
}
if (is_end_of_line)
continue; // if end of line was reached, proceed to the next line
else
read_ptr++; // else reach the next character (after the NUL split) and continue processing the same line
} // end of "this line starts with an attributes block"
// at this point we are past the attributes block
// reset contextual argv/envp arrays
line_argv.args = NULL;
line_argv.count = 0;
line_envp.args = NULL;
line_envp.count = 0;
// now read each word (or quoted group of words), unescaping escaped characters
while (*read_ptr != 0)
{
while ((*read_ptr
!= 0) && isspace (*read_ptr
))
read_ptr++; // skip intermediate spaces and reach the next word
if (*read_ptr == '#')
break; // if the rest of the line is commented out, stop parsing it and proceed to the next line
linebit_start = read_ptr; // remember the word (or quoted group of words) starts here
write_ptr = read_ptr;
is_quoted_context = (*read_ptr == '"'); // see if we're entering a quoted context or not
if (is_quoted_context)
read_ptr++; // skip a possible initial quote in the word
while ((*read_ptr
!= 0) && ((!is_quoted_context
&& !isspace (*read_ptr
)) || (is_quoted_context
&& (*read_ptr
!= '"'))))
{
if (*read_ptr == '\\')
read_ptr++; // unescape characters that are escaped with '\' by advancing the read pointer
*write_ptr++ = *read_ptr++; // recopy characters as we read them
}
is_end_of_line = (*read_ptr == 0); // see if we're at the end of line already
*write_ptr = 0; // stop the rewritten string here
// end of word, i.e. we reached either a closing quote or a space. The string bit has been rewritted at linebit_start without quotes and with characters unescaped.
if ((strchr (linebit_start
, '=') != NULL
) && (line_argv.
count == 0)) // is it an assignation AND have we not started constructing argv yet?
{
STRINGARRAY_PUSH (&line_envp, linebit_start); // linebit_start is of the form "NAME=VALUE": it's an environment variable assignation
LOG_DEBUG ("collected envp: [%s]", linebit_start);
}
else // it's an executable argument (argv)
{
STRINGARRAY_PUSH (&line_argv, linebit_start); // linebit_start is either NOT of the form "NAME=VALUE" OR we started constructing argv: it's a command-line argument
LOG_DEBUG ("collected argv: [%s]", linebit_start);
}
if (!is_end_of_line)
read_ptr++; // if we haven't reach the end of the line yet, advance to the next character (after the NUL split)
} // end while (*read_ptr != 0)
// we finished parsing the line
// did we fill an executable argv? As per QNX docs, the first executable must be startup-*, the last executable must be procnto.
if (line_argv.count > 0)
{
if (startup_argv.args == NULL)
{
startup_argv.args = line_argv.args; // relocate these pointers to the right place
startup_argv.count = line_argv.count;
startup_envp.args = line_envp.args; // relocate these pointers to the right place
startup_envp.count = line_envp.count;
}
else
{
STRINGARRAY_FREE (&procnto_argv); // if procnto's argv was already assigned, free the previous array as we'll be replacing it with a new one
procnto_argv.args = line_argv.args; // relocate these pointers to the right place
procnto_argv.count = line_argv.count;
STRINGARRAY_FREE (&procnto_envp); // if procnto's envp was already assigned, free the previous array as we'll be replacing it with a new one
procnto_envp.args = line_envp.args; // relocate these pointers to the right place
procnto_envp.count = line_envp.count;
}
line_argv.args = NULL; // void the line_argv array so as to not free it as we stole its args pointers
line_argv.count = 0;
line_envp.args = NULL; // void the line_envp array so as to not free it as we stole its args pointers
line_envp.count = 0;
}
else // this line contained no executable invokation, so stack up its envp assignations into the global envp array
for (array_index = 0; array_index < line_envp.count; array_index++)
STRINGARRAY_PUSH (&global_envp, line_envp.args[array_index]);
// release the contextual argv/envp arrays
STRINGARRAY_FREE (&line_argv);
STRINGARRAY_FREE (&line_envp);
} // end for (line_index = 0; Buffer_GetNthLine (&entry_parms->data, line_index, ¤t_line); line_index++)
Buffer_Forget (&entry_parms->data); // free the inline specification once it's parsed
ASSERT (startup_argv.args && startup_argv.args[0] && *startup_argv.args[0], "the QNX startup executable (startup-*) is missing in this bootstrap inline specification");
ASSERT (procnto_argv.args && procnto_argv.args[0] && *procnto_argv.args[0], "the QNX kernel (procnto-*) is missing in this bootstrap inline specification");
// now we know which startup and procnto executables to use
LOG_DEBUG ("Startup: %s", startup_argv.args[0]);
LOG_DEBUG ("Kernel: %s", procnto_argv.args[0]);
static thread_local char linker_pathname[MAXPATHLEN] = "";
static thread_local char linker_sysroot_arg[MAXPATHLEN] = "";
static thread_local char linker_script_pathname_arg[MAXPATHLEN] = "";
static thread_local char procnto_buildhost_pathname[MAXPATHLEN] = "";
static thread_local char procnto_sym_filename[MAXPATHLEN] = "";
buffer_t bootargs_buffer = { 0 };
char *bootargs_location;
// construct the arguments that are based on environment variables (infer QNX_HOST from QNX_TARGET)
#if defined(_WIN32)
sprintf_s
(linker_pathname
, sizeof (linker_pathname
), "%s/../../host/win64/x86_64/usr/bin/%s-ld" /*"-2.41.0"*/ ".exe", QNX_TARGET
, (strcmp (image_processor
, "x86_64") == 0 ? "x86_64-pc-nto-qnx8.0.0" : "aarch64-unknown-nto-qnx8.0.0")); // Win32: note the .exe extension
#elif defined(__linux__)
sprintf_s
(linker_pathname
, sizeof (linker_pathname
), "%s/../../host/linux/x86_64/usr/bin/%s-ld" /*"-2.41.0"*/, QNX_TARGET
, (strcmp (image_processor
, "x86_64") == 0 ? "x86_64-pc-nto-qnx8.0.0" : "aarch64-unknown-nto-qnx8.0.0"));
#elif defined(__QNXNTO__)
sprintf_s
(linker_pathname
, sizeof (linker_pathname
), "%s/../../host/qnx8/x86_64/usr/bin/%s-ld" /*"-2.41.0"*/, QNX_TARGET
, (strcmp (image_processor
, "x86_64") == 0 ? "x86_64-pc-nto-qnx8.0.0" : "aarch64-unknown-nto-qnx8.0.0"));
#else // wtf are you building this on?
#error Please port the GNU linker x86_64-pc-nto-qnx8.0.0-ld and aarch64-unknown-nto-qnx8.0.0-ld to your host architecture first before compiling ifstool.
#endif
ASSERT (access (linker_pathname, 0) == 0, "host cross-linker for QNX8 \"%s\" not found", linker_pathname);
sprintf_s (linker_sysroot_arg, sizeof (linker_sysroot_arg), "--sysroot=%s/%s/", QNX_TARGET, image_processor);
sprintf_s (linker_script_pathname_arg, sizeof (linker_script_pathname_arg), "-T%s/%s/lib/nto.link", QNX_TARGET, image_processor);
resolved_pathname = resolve_pathname (procnto_argv.args[0], entry_parms->search); // locate the procnto kernel location
ASSERT (resolved_pathname, "QNX kernel \"%s\" not found in search path", procnto_argv.args[0]);
strcpy_s (procnto_buildhost_pathname, sizeof (procnto_buildhost_pathname), resolved_pathname);
sprintf_s (procnto_sym_filename, sizeof (procnto_sym_filename), "%s.sym%s", procnto_argv.args[0], sym_suffix);
// construct the linker invokation command-line arguments array (argv)
STRINGARRAY_INIT (&linker_argv);
STRINGARRAY_PUSH
(&linker_argv
, strrchr (linker_pathname
, '/') + 1); // "${TARGET_TRIPLE}-ld"
STRINGARRAY_PUSH (&linker_argv, linker_sysroot_arg); // "--sysroot=${QNX_TARGET}/${TARGET_CPU}/"
STRINGARRAY_PUSH (&linker_argv, linker_script_pathname_arg); // "-T${QNX_TARGET}/${TARGET_CPU}/lib/nto.link"
STRINGARRAY_PUSH (&linker_argv, "--section-start");
STRINGARRAY_PUSH (&linker_argv, ".text=0xffff800000001000");
STRINGARRAY_PUSH (&linker_argv, "--no-relax");
STRINGARRAY_PUSH (&linker_argv, procnto_buildhost_pathname); // "${QNX_TARGET}/${TARGET_CPU}/boot/sys/procnto-smp-instr"
STRINGARRAY_PUSH (&linker_argv, "-o");
STRINGARRAY_PUSH (&linker_argv, procnto_sym_filename); // "procnto-smp-instr.sym"
#ifdef __GNUC__
#pragma GCC diagnostic push
#pragma GCC diagnostic ignored "-Wnonnull" // the GCC linter is wrong here: I *do* check for NULL before calling strdup()
#endif // __GNUC__
STRINGARRAY_PUSH (&linker_argv, NULL); // don't forget to terminate the argv array with a NULL pointer
#ifdef __GNUC__
#pragma GCC diagnostic pop
#endif // __GNUC__
if (verbose_level > 2)
{
fprintf (stderr
, "ifstool: calling:");
for (array_index = 0; array_index < linker_argv.count - 1; array_index++)
fprintf (stderr
, " '%s'", linker_argv.
args[array_index
]);
}
#ifdef _WIN32
_spawnv (_P_WAIT, linker_pathname, linker_argv.args); // spawn the linker and produce a stripped procnto (wait for completion)
#else // !_WIN32, thus POSIX
do {
int status;
pid_t pid = fork (); // duplicate ourselves so as to create a new process
ASSERT_WITH_ERRNO (pid != -1);
if (pid == 0) // we are the child
{
execv (linker_pathname, linker_argv.args); // execute the linker and produce a stripped procnto (wait for completion)
DIE_WITH_EXITCODE (1, "execve() failed"); // exec never returns
}
else // we are the parent
waitpid (pid, &status, 0); // wait for the child to finish
} while (0);
#endif // _WIN32
STRINGARRAY_FREE (&linker_argv);
if (!Buffer_ReadFromFile (&entry_parms->data, procnto_sym_filename)) // load the output file
DIE_WITH_EXITCODE
(1, "the host cross-linker failed to produce a readable stripped \"%s\" kernel: %s", procnto_sym_filename
, strerror (errno
));
if (!entry_parms->should_keep_ld_output)
unlink (procnto_sym_filename); // remove the linker output file if we want to
// save the boot arguments. The magic to look for is "ddpvbskr" -- whatever that means
if ((bootargs_location = Buffer_FindFirstByteArray (&entry_parms->data, "ddpvbskr")) == NULL)
DIE_WITH_EXITCODE (1, "unable to find boot args location in the stripped \"%s\" kernel", stored_pathname);
Buffer_InitWithSize (&bootargs_buffer, sizeof (bootargs_entry_t)); // prepare a boot args entry
((bootargs_entry_t *) bootargs_buffer.bytes)->argc = (uint8_t) procnto_argv.count;
((bootargs_entry_t *) bootargs_buffer.bytes)->envc = (uint8_t) (global_envp.count + procnto_envp.count);
((bootargs_entry_t *) bootargs_buffer.bytes)->shdr_addr = (uint32_t) (image_base + bootfile_size); // same value as startup_header.image_paddr (which is not set yet) (TODO: support 64-bit shdr_addr offsets -- see comment in bootargs_entry_t struct)
for (array_index = 0; array_index < procnto_argv.count; array_index++)
ASSERT_WITH_ERRNO
(Buffer_Append
(&bootargs_buffer
, procnto_argv.
args[array_index
], strlen (procnto_argv.
args[array_index
]) + 1)); // append string including NUL terminator
for (array_index = 0; array_index < global_envp.count; array_index++)
ASSERT_WITH_ERRNO
(Buffer_Append
(&bootargs_buffer
, global_envp.
args[array_index
], strlen (global_envp.
args[array_index
]) + 1)); // append string including NUL terminator
for (array_index = 0; array_index < procnto_envp.count; array_index++)
ASSERT_WITH_ERRNO
(Buffer_Append
(&bootargs_buffer
, procnto_envp.
args[array_index
], strlen (procnto_envp.
args[array_index
]) + 1)); // append string including NUL terminator
((bootargs_entry_t *) bootargs_buffer.bytes)->size_hi = (uint8_t) ((bootargs_buffer.size >> 8) & 0xff);
((bootargs_entry_t *) bootargs_buffer.bytes)->size_lo = (uint8_t) ((bootargs_buffer.size >> 0) & 0xff);
ASSERT_WITH_ERRNO (Buffer_WriteBufferAt (&entry_parms->data, (size_t) bootargs_location - (size_t) entry_parms->data.bytes, &bootargs_buffer));
Buffer_Forget (&bootargs_buffer); // release the boot args buffer once it's written
// now strip this prelinked ELF kernel file
ASSERT_WITH_ERRNO (Buffer_StripELFFile (&entry_parms->data, (const char **) saved_ELF_sections, 1, true, stored_pathname)); // strip the ELF file as per QNX docs (only keep ONE section, which is "QNX_info", and align the segment size in file with the size it occupies in memory)
sprintf_s (candidate_pathname, MAXPATHLEN, "%s/%s", (entry_parms->prefix != NULL ? entry_parms->prefix : ""), procnto_argv.args[0]); // fix the entry name
stored_pathname = candidate_pathname;
entry_parms->extra_ino_flags |= IFS_INO_PROCESSED_ELF | IFS_INO_BOOTSTRAP_EXE; // mark this inode as a preprocessed *bootstrap* ELF file
entry_parms->st_mode = S_IFREG | entry_parms->perms; // procnto is a regular file
image_kernel_ino = entry_parms->extra_ino_flags | (inode_count + 1);
STRINGARRAY_FREE (&procnto_argv); // release procnto's argv array
STRINGARRAY_FREE (&procnto_envp); // release procnto's envp array
//STRINGARRAY_FREE (&global_envp); // DO NOT release the global envp array. It is inherited by the boot scripts.
} // end of "is bootstrap file"
else if (entry_parms->is_compiled_bootscript) // else is it a startup script that we need to compile ?
{
image_bootscript_ino = inode_count + 1; // save boot script inode number for image header
Buffer_Initialize (&compiled_script);
// parse buffer (non-destructively) line after line
Buffer_Initialize (¤t_line);
for (line_index = 0; Buffer_GetNthLine (&entry_parms->data, line_index, ¤t_line); line_index++)
{
read_ptr = current_line.bytes;
read_ptr++; // skip leading spaces
if ((*read_ptr == '#') || (*read_ptr == 0))
continue; // skip comments and empty lines
// format of a line: [attributes] [env assignation] [...] [executable] [arg] [...] [&] [comment]
// example: "[pri=20f] devc-con -n9 &"
LOG_DEBUG ("parsing line: %s", read_ptr);
Buffer_Initialize (&compiled_scriptline);
memcpy (¤t_scriptcmd_params
, &default_scriptcmd_params
, sizeof (default_scriptcmd_params
));
// does this line start with an attribute block ?
if (*read_ptr == '[')
{
read_ptr++; // skip the leading square bracket
linebit_start = read_ptr; // remember where it starts
is_quoted_context = false; // reach the next unescaped closing square bracket that is not between quotes
while ((*read_ptr != 0) && !((*read_ptr == ']') && (read_ptr[-1] != '\\') && !is_quoted_context))
{
if (*read_ptr == '"')
is_quoted_context ^= true; // remember when we're between quotes
else if (!is_quoted_context && (*read_ptr == ' '))
*read_ptr = RECORD_SEP[0]; // turn all spaces outside quoted contexts into an ASCII record separator to ease token splitting
read_ptr++; // reach the next unescaped closing square bracket
}
if (*read_ptr != ']')
{
LOG ("warning", 0, "syntax error in \"%s\" line %zd of inline document '%s': unterminated attributes block (skipping)", buildfile_pathname, 1 + line_index, stored_pathname);
continue; // invalid attribute block, skip line
}
is_end_of_line = (*read_ptr == 0); // see if we're at the end of line already
*read_ptr = 0; // end the attribute block in all cases so that it is a parsable C string
// now parse the attribute tokens
token = strtok_r (linebit_start, RECORD_SEP, &ctx);
while (token != NULL)
{
#define REACH_TOKEN_VALUE() do { value = strchr (token, '=') + 1; if (*value == '"') value++; } while (0)
if (false) {}
else if (strncmp (token
, "argv0=", 6) == 0) { REACH_TOKEN_VALUE
(); current_scriptcmd_params.
argv0 = value
; } // NOTE: stolen pointer. Do not free.
else if (strncmp (token
, "cpu=", 4) == 0) { REACH_TOKEN_VALUE
(); current_scriptcmd_params.
cpu_number = (int) atoi (value
); }
else if (strncmp (token
, "pri=", 4) == 0) { REACH_TOKEN_VALUE
(); current_scriptcmd_params.
priority = (int) strtol (value
, &ctx
, 0); if (ctx
!= NULL
) current_scriptcmd_params.
sched_policy = (*ctx
== 'f' ? SCRIPTCMD_SCHEDULERPOLICY_FIFO
: SCRIPTCMD_SCHEDULERPOLICY_RR
); }
else if (strncmp (token
, "sched_aps=", 10) == 0) { REACH_TOKEN_VALUE
();
for (array_index
= 0; array_index
< aps_partnames.
count; array_index
++) if (strcmp (aps_partnames.
args[array_index
], value
) == 0) break;
if (array_index == aps_partnames.count)
DIE_WITH_EXITCODE (1, "syntax error in \"%s\" line %zd of inline document '%s': APS partition name '%s' not found: please declare it first", buildfile_pathname, 1 + line_index, stored_pathname, value); // consistency check (TODO: check that the sum of all budgets don't exceed 100%)
current_scriptcmd_params.aps_partindex = (int) array_index;
}
else if (strcmp (token
, "+external") == 0) current_scriptcmd_params.
is_external = true;
else if (strcmp (token
, "-external") == 0) current_scriptcmd_params.
is_external = false;
else if (strcmp (token
, "+session") == 0) current_scriptcmd_params.
is_session_leader = true;
else if (strcmp (token
, "-session") == 0) current_scriptcmd_params.
is_session_leader = false;
else if (strcmp (token
, "+debug") == 0) current_scriptcmd_params.
has_debug_flag = true;
else if (strcmp (token
, "-debug") == 0) current_scriptcmd_params.
has_debug_flag = false;
else LOG_WARNING ("unimplemented boot script modifier in \"%s\" line %zd of inline document '%s': '%s'", buildfile_pathname, 1 + line_index, stored_pathname, token);
#undef REACH_TOKEN_VALUE
token = strtok_r (NULL, RECORD_SEP, &ctx); // proceed to next attribute token
}
if (is_end_of_line)
continue; // if end of line was reached, proceed to the next line
else
read_ptr++; // else reach the next character (after the NUL split) and continue processing the same line
} // end of "this line starts with an attributes block"
// at this point we are past the attributes block
// reset contextual argv/envp arrays
line_argv.args = NULL;
line_argv.count = 0;
line_envp.args = NULL;
line_envp.count = 0;
// now read each word (or quoted group of words), unescaping escaped characters
while (*read_ptr != 0)
{
while ((*read_ptr
!= 0) && isspace (*read_ptr
))
read_ptr++; // skip intermediate spaces and reach the next word
if (*read_ptr == '#')
break; // if the rest of the line is commented out, stop parsing it and proceed to the next line
linebit_start = read_ptr; // remember the word (or quoted group of words) starts here
write_ptr = read_ptr;
is_quoted_context = (*read_ptr == '"'); // see if we're entering a quoted context or not
if (is_quoted_context)
read_ptr++; // skip a possible initial quote in the word
while ((*read_ptr
!= 0) && ((!is_quoted_context
&& !isspace (*read_ptr
)) || (is_quoted_context
&& (*read_ptr
!= '"'))))
{
if (*read_ptr == '\\')
read_ptr++; // unescape characters that are escaped with '\' by advancing the read pointer
*write_ptr++ = *read_ptr++; // recopy characters as we read them
}
is_end_of_line = (*read_ptr == 0); // see if we're at the end of line already
*write_ptr = 0; // stop the rewritten string here
// end of word, i.e. we reached either a closing quote or a space. The string bit has been rewritted at linebit_start without quotes and with characters unescaped.
STRINGARRAY_PUSH (&line_argv, linebit_start);
LOG_DEBUG ("collected bootscript argv: [%s]", linebit_start);
if (!is_end_of_line)
read_ptr++; // if we haven't reach the end of the line yet, advance to the next character (after the NUL split)
} // end while (*read_ptr != 0)
// we finished parsing the line
// did we fill an executable argv? As per QNX docs, the first executable must be startup-*, the last executable must be procnto.
if (line_argv.count > 0)
{
// is it one of the few builtin commands ?
if (!current_scriptcmd_params.
is_external && (strcmp (line_argv.
args[0], "waitfor") == 0))
{
if (line_argv.count < 2)
DIE_WITH_EXITCODE (1, "syntax error in \"%s\" line %zd of inline document '%s': waitfor requires 1 or 2 arguments", buildfile_pathname, 1 + line_index, stored_pathname);
ASSERT_WITH_ERRNO (Buffer_InitWithData (&compiled_scriptline, "##" SCRIPTCMD_TYPE_WAITFOR "\x00", 4)); // size as u16LE, type, spare
wait_time
= (line_argv.
count > 2 ? (size_t) (10.0 * atof (line_argv.
args[2])) : 50); // convert dotted number to tenths of seconds. Default to 5 seconds (50 tenths)
if (wait_time > 0xffff)
wait_time = 0xffff;
ASSERT_WITH_ERRNO (Buffer_WriteInt8At (&compiled_scriptline, 4, (wait_time >> 0) & 0xff)); // wait time lo
ASSERT_WITH_ERRNO (Buffer_WriteInt8At (&compiled_scriptline, 5, (wait_time >> 8) & 0xff)); // wait time hi
ASSERT_WITH_ERRNO
(Buffer_Append
(&compiled_scriptline
, line_argv.
args[1], strlen (line_argv.
args[1]) + 1));
}
else if (!current_scriptcmd_params.
is_external && (strcmp (line_argv.
args[0], "reopen") == 0))
{
ASSERT_WITH_ERRNO (Buffer_InitWithData (&compiled_scriptline, "##" SCRIPTCMD_TYPE_REOPEN "\x00", 4)); // size as u16LE, type, spare
wait_time
= (line_argv.
count > 2 ? (size_t) (10.0 * atof (line_argv.
args[2])) : 50); // convert dotted number to tenths of seconds. Default to 5 seconds (50 tenths)
if (wait_time > 0xffff)
wait_time = 0xffff;
ASSERT_WITH_ERRNO (Buffer_WriteInt8At (&compiled_scriptline, 4, (wait_time >> 0) & 0xff)); // wait time lo
ASSERT_WITH_ERRNO (Buffer_WriteInt8At (&compiled_scriptline, 5, (wait_time >> 8) & 0xff)); // wait time hi
ASSERT_WITH_ERRNO
(Buffer_Append
(&compiled_scriptline
, (line_argv.
count > 1 ? line_argv.
args[1] : "/dev/console"), strlen (line_argv.
count > 1 ? line_argv.
args[1] : "/dev/console") + 1));
}
else if (!current_scriptcmd_params.
is_external && (strcmp (line_argv.
args[0], "display_msg") == 0))
{
ASSERT_WITH_ERRNO (Buffer_InitWithData (&compiled_scriptline, "##" SCRIPTCMD_TYPE_DISPLAY_MSG "\x00", 4)); // size as u16LE, type, spare
for (array_index = 1; array_index < line_argv.count; array_index++)
{
if (array_index > 1)
ASSERT_WITH_ERRNO (Buffer_AppendByteArray (&compiled_scriptline, " ")); // separate each arg with a space
ASSERT_WITH_ERRNO
(Buffer_Append
(&compiled_scriptline
, line_argv.
args[array_index
], strlen (line_argv.
args[array_index
])));
}
ASSERT_WITH_ERRNO (Buffer_AppendByteArray (&compiled_scriptline, "\n\0")); // don't forget to append a newline to the message printed
}
else if (!current_scriptcmd_params.
is_external && (strcmp (line_argv.
args[0], "procmgr_symlink") == 0))
{
if (line_argv.count < 3)
DIE_WITH_EXITCODE (1, "syntax error in \"%s\" line %zd of inline document '%s': procmgr_symlink requires 2 arguments", buildfile_pathname, 1 + line_index, stored_pathname);
ASSERT_WITH_ERRNO (Buffer_InitWithData (&compiled_scriptline, "##" SCRIPTCMD_TYPE_PROCMGR_SYMLINK "\x00", 4)); // size as u16LE, type, spare
ASSERT_WITH_ERRNO
(Buffer_Append
(&compiled_scriptline
, line_argv.
args[1], strlen (line_argv.
args[1]) + 1));
ASSERT_WITH_ERRNO
(Buffer_Append
(&compiled_scriptline
, line_argv.
args[2], strlen (line_argv.
args[2]) + 1));
}
else if (!current_scriptcmd_params.
is_external && (strcmp (line_argv.
args[0], "sched_aps") == 0))
{
token = (line_argv.count > 1 ? line_argv.args[1] : "System");
DIE_WITH_EXITCODE (1, "syntax error in \"%s\" line %zd of inline document '%s': APS partition names must be less than 16 characters long and not contain a '/' separator", buildfile_pathname, 1 + line_index, stored_pathname); // consistency check (TODO: check that the sum of all budgets don't exceed 100%)
for (array_index = 0; array_index < aps_partnames.count; array_index++)
if (strcmp (aps_partnames.
args[array_index
], token
) == 0)
break; // find the APS partition ID in the global APS partition names table
if (array_index == aps_partnames.count)
STRINGARRAY_PUSH (&aps_partnames, token); // if not found, add a new partition name to the table
ASSERT_WITH_ERRNO (Buffer_InitWithData (&compiled_scriptline, "##" SCRIPTCMD_TYPE_EXTSCHED_APS "\x00", 4)); // size as u16LE, type, spare
ASSERT_WITH_ERRNO (Buffer_WriteInt8At (&compiled_scriptline, 4, 0)); // parent (system partition)
ASSERT_WITH_ERRNO
(Buffer_WriteInt8At
(&compiled_scriptline
, 5, (line_argv.
count > 2 ? (uint8_t) atoi (line_argv.
args[2]) : 0))); // budget
ASSERT_WITH_ERRNO
(Buffer_WriteInt8At
(&compiled_scriptline
, 6, ((line_argv.
count > 3 ? (uint8_t) atoi (line_argv.
args[3]) : 0) >> 0) & 0xff)); // critical lo
ASSERT_WITH_ERRNO
(Buffer_WriteInt8At
(&compiled_scriptline
, 7, ((line_argv.
count > 3 ? (uint8_t) atoi (line_argv.
args[3]) : 0) >> 8) & 0xff)); // critical hi
ASSERT_WITH_ERRNO (Buffer_WriteInt8At (&compiled_scriptline, 8, (uint8_t) array_index)); // APS partition ID
ASSERT_WITH_ERRNO
(Buffer_Append
(&compiled_scriptline
, token
, strlen (token
) + 1)); // partition name
}
else // not a builtin, which means it is an external command
{
if (strcmp (line_argv.
args[line_argv.
count - 1], "&") == 0) // is the last argument an ampersand (fork sign) on its own ? (variant 1)
{
current_scriptcmd_params.is_background_task = true; // remember this is a background task
free (line_argv.
args[line_argv.
count - 1]); // prevent leaking the last arg
line_argv.count--; // and adjust the arg count
}
else if (((token
= strrchr (line_argv.
args[line_argv.
count - 1], '&')) != NULL
) && (token
[1] == 0)) // else does the last argument END with a fork sign ? (variant 2)
{
current_scriptcmd_params.is_background_task = true; // remember this is a background task
*token = 0; // and chop off the ampersand from that arg
}
ASSERT_WITH_ERRNO (Buffer_InitWithData (&compiled_scriptline, "##" SCRIPTCMD_TYPE_EXTERNAL "\x00", 4)); // size as u16LE, type, spare
ASSERT_WITH_ERRNO (Buffer_WriteInt8At (&compiled_scriptline, 4, (current_scriptcmd_params.cpu_number != -1 ? (uint8_t) current_scriptcmd_params.cpu_number : 0))); // CPU
ASSERT_WITH_ERRNO (Buffer_WriteInt8At (&compiled_scriptline, 5, (current_scriptcmd_params.aps_partindex != -1 ? SCRIPTCMD_FLAG_EXTSCHED : 0)
| (current_scriptcmd_params.is_session_leader ? SCRIPTCMD_FLAG_SESSION : 0)
| (current_scriptcmd_params.sched_policy != -1 ? SCRIPTCMD_FLAG_SCHED_SET : 0)
| (current_scriptcmd_params.cpu_number != -1 ? SCRIPTCMD_FLAG_CPU_SET : 0)
| (current_scriptcmd_params.is_background_task ? SCRIPTCMD_FLAG_BACKGROUND : 0)
| (current_scriptcmd_params.has_debug_flag ? SCRIPTCMD_FLAG_KDEBUG : 0))); // flags
ASSERT_WITH_ERRNO (Buffer_WriteInt8At (&compiled_scriptline, 6, (current_scriptcmd_params.aps_partindex != -1 ? (uint8_t) current_scriptcmd_params.aps_partindex : 0))); // adaptative partitioning ID
ASSERT_WITH_ERRNO (Buffer_WriteInt8At (&compiled_scriptline, 7, 0)); // reserved
ASSERT_WITH_ERRNO (Buffer_WriteInt8At (&compiled_scriptline, 8, (current_scriptcmd_params.sched_policy != -1 ? current_scriptcmd_params.sched_policy : 0))); // scheduling policy
ASSERT_WITH_ERRNO (Buffer_WriteInt8At (&compiled_scriptline, 9, (current_scriptcmd_params.priority != -1 ? current_scriptcmd_params.priority : 0))); // scheduling priority
ASSERT_WITH_ERRNO (Buffer_WriteInt8At (&compiled_scriptline, 10, (uint8_t) line_argv.count)); // argc
ASSERT_WITH_ERRNO (Buffer_WriteInt8At (&compiled_scriptline, 11, (uint8_t) global_envp.count)); // envc
ASSERT_WITH_ERRNO
(Buffer_Append
(&compiled_scriptline
, line_argv.
args[0], strlen (line_argv.
args[0]) + 1)); // executable
ASSERT_WITH_ERRNO
(Buffer_Append
(&compiled_scriptline
, (current_scriptcmd_params.
argv0 != NULL
? current_scriptcmd_params.
argv0 : line_argv.
args[0]), strlen (current_scriptcmd_params.
argv0 != NULL
? current_scriptcmd_params.
argv0 : line_argv.
args[0]) + 1)); // argv[0]
for (array_index = 1; array_index < line_argv.count; array_index++)
ASSERT_WITH_ERRNO
(Buffer_Append
(&compiled_scriptline
, line_argv.
args[array_index
], strlen (line_argv.
args[array_index
]) + 1)); // argv[n]
for (array_index = 0; array_index < global_envp.count; array_index++)
ASSERT_WITH_ERRNO
(Buffer_Append
(&compiled_scriptline
, global_envp.
args[array_index
], strlen (global_envp.
args[array_index
]) + 1)); // envp[n]
}
ASSERT_WITH_ERRNO (Buffer_PadWithZeroesTo (&compiled_scriptline, ROUND_TO_UPPER_MULTIPLE (compiled_scriptline.size, 4))); // pad compiled command buffer to upper 32-bit multiple
// fix the size of this compiled boot script command
ASSERT_WITH_ERRNO (Buffer_WriteInt8At (&compiled_scriptline, 0, (compiled_scriptline.size >> 0) & 0xff)); // size lo
ASSERT_WITH_ERRNO (Buffer_WriteInt8At (&compiled_scriptline, 1, (compiled_scriptline.size >> 8) & 0xff)); // size hi
// now concatenate this newly compiled boot script line to the compiled boot script buffer
ASSERT_WITH_ERRNO (Buffer_AppendBuffer (&compiled_script, &compiled_scriptline));
Buffer_Forget (&compiled_scriptline);
}
else // this line contained no executable invokation, so make the parameters that changed the default ones
{
#define APPLY_DEFAULT_ATTR_NUM(attr,descr,fmt) do { if (current_scriptcmd_params.attr != default_scriptcmd_params.attr) { \
LOG_INFO ("changing default " descr " from " fmt " to " fmt " by attribute at \"%s\" line %zd of inline document '%s'", default_scriptcmd_params.attr, current_scriptcmd_params.attr, buildfile_pathname, 1 + line_index, stored_pathname); \
default_scriptcmd_params.attr = current_scriptcmd_params.attr; \
} } while (0)
#define APPLY_DEFAULT_ATTR_STR(attr,descr,fmt) do { if (((default_scriptcmd_params.attr == NULL) && (current_scriptcmd_params.attr != NULL)) || ((default_scriptcmd_params.attr != NULL) && (current_scriptcmd_params.attr == NULL)) || ((default_scriptcmd_params.attr != NULL) && (current_scriptcmd_params.attr != NULL) && (strcmp (current_scriptcmd_params.attr, default_scriptcmd_params.attr) != 0))) { \
LOG_INFO ("changing default " descr " from " fmt " to " fmt " by attribute at \"%s\" line %zd of inline document '%s'", (default_scriptcmd_params.attr != NULL ? default_scriptcmd_params.attr : "none"), current_scriptcmd_params.attr, buildfile_pathname, 1 + line_index, stored_pathname); \
if (default_scriptcmd_params.attr != NULL) free (default_scriptcmd_params.attr); \
default_scriptcmd_params.attr = strdup (current_scriptcmd_params.attr); \
ASSERT_WITH_ERRNO (default_scriptcmd_params.attr != NULL); \
default_scriptcmd_params.attr = current_scriptcmd_params.attr; \
} } while (0)
APPLY_DEFAULT_ATTR_STR (argv0, "executable name", "\"%s\"");
APPLY_DEFAULT_ATTR_NUM (cpu_number, "CPU mask", "0%o");
APPLY_DEFAULT_ATTR_NUM (is_external, "external command flag", "0%o");
APPLY_DEFAULT_ATTR_NUM (priority, "scheduling priority", "0%o");
APPLY_DEFAULT_ATTR_NUM (sched_policy, "scheduling policy", "0%o");
APPLY_DEFAULT_ATTR_NUM (aps_partindex, "APS partition index", "0%o");
APPLY_DEFAULT_ATTR_NUM (is_session_leader, "session leader flag", "0%o");
APPLY_DEFAULT_ATTR_NUM (is_background_task, "background task flag", "0%o");
APPLY_DEFAULT_ATTR_NUM (has_debug_flag, "debug flag", "0%o");
#undef APPLY_DEFAULT_ATTR_STR
#undef APPLY_DEFAULT_ATTR_NUM
}
// release the contextual argv/envp arrays
STRINGARRAY_FREE (&line_argv);
STRINGARRAY_FREE (&line_envp);
} // end for (line_index = 0; Buffer_GetNthLine (&entry_parms->data, line_index, ¤t_line); line_index++)
Buffer_Forget (&entry_parms->data); // free the inline specification once it's parsed
ASSERT_WITH_ERRNO (Buffer_AppendByteArray (&compiled_script, "\x00\x00\x00\x00")); // terminate the compiled boot script with a 4-byte trailer
entry_parms->data.bytes = compiled_script.bytes; // and steal the compiled boot script buffer
entry_parms->data.size = compiled_script.size;
} // end of "is compiled bootscript"
// do we already know the data for this data blob ?
if (entry_parms->data.bytes != NULL)
{
entry_parms->mtime = entry_parms->mtime_for_inline_files; // if so, set it a mtime equal to the mtime to use for inline files
LOG_INFO ("file: ino 0x%x uid %d gid %d mode 0%o path \"%s\" blob (len %zd)", entry_parms->extra_ino_flags | (inode_count + 1), entry_parms->uid, entry_parms->gid, entry_parms->st_mode, stored_pathname, entry_parms->data.size);
}
else if (buildhost_pathname != NULL) // else was a source file pathname supplied ?
{
resolved_pathname = resolve_pathname (buildhost_pathname, entry_parms->search); // locate the file
if (resolved_pathname == NULL)
{
if (entry_parms->should_allow_nonexistent_files)
{
LOG_WARNING ("filesystem entry \"%s\" specified in \"%s\" line %d not found on build host: ignoring", buildhost_pathname, buildfile_pathname, lineno);
return; // if we're allowed to continue when a file to add doesn't exist, do so, else die with an error message
}
DIE_WITH_EXITCODE
(1, "filesystem entry \"%s\" specified in \"%s\" line %d not found on build host: %s", buildhost_pathname
, buildfile_pathname
, lineno
, strerror (errno
));
}
if (!Buffer_ReadFromFile (&entry_parms->data, resolved_pathname))
DIE_WITH_EXITCODE
(1, "filesystem entry \"%s\" specified in \"%s\" line %d can't be read from \"%s\": %s", buildhost_pathname
, buildfile_pathname
, lineno
, resolved_pathname
, strerror (errno
));
stat (resolved_pathname, &stat_buf); // can't fail, since we could read it
if (entry_parms->mtime == UINT32_MAX)
entry_parms->mtime = (uint32_t) stat_buf.st_mtime;
LOG_INFO ("file: ino 0x%x uid %d gid %d mode 0%o path \"%s\" buildhost_file \"%s\" (len %zd)", inode_count + 1, entry_parms->uid, entry_parms->gid, entry_parms->st_mode, stored_pathname, buildhost_pathname, entry_parms->data.size);
}
else
DIE_WITH_EXITCODE (1, "unexpected code path: can't store a file without neither explicit contents nor a host pathname. This is a bug in the program. Please contact the author.");
// is the file we're storing an ELF file ?
#define ELFHDR ((elf_header_t *) entry_parms->data.bytes) // this convenient definition will make sure the ELF header points at the right location, even after entry_parms.data->byte is reallocated
if ((entry_parms->data.size > 52) // file is big enough to contain an ELF header
&& (memcmp (ELF_GET_STRING
(ELFHDR
, ELFHDR
, magic
), ELF_MAGIC_STR
, 4) == 0)) // file starts with the ELF magic
{
// is the file we're storing a relocatable executable (i.e. a dynamic library) and should we check for its canonical name ?
if ((ELF_GET_NUMERIC (ELFHDR, ELFHDR, type) == ELF_TYPE_DYNAMICLIB) && entry_parms->should_autosymlink_dylib)
{
// locate the sections we need (the dynamic section and its strings table)
const elf_section_header_t *shdr_dynamic = elf_get_section_header_by_name (ELFHDR, ".dynamic");
const elf_section_header_t *shdr_dynstr = elf_get_section_header_by_name (ELFHDR, ".dynstr");
// make sure we have both the dynamic section header and its own strings table header
if ((shdr_dynamic != NULL) && (shdr_dynstr != NULL))
{
dynamic_strings = (char *) &entry_parms->data.bytes[ELF_GET_NUMERIC (ELFHDR, shdr_dynstr, file_offset)]; // quick access to dynamic sections strings table
// walk through the dynamic section, look for the DT_SONAME entry
canonical_dylib_name = NULL; // assume none until told otherwise
for (elf_dynamic_section_entry_t *dynamic_entry = (elf_dynamic_section_entry_t *) &entry_parms->data.bytes[ELF_GET_NUMERIC (ELFHDR, shdr_dynamic, file_offset)];
(ELF_GET_NUMERIC (ELFHDR, dynamic_entry, tag) != ELF_DT_NULL);
dynamic_entry = (elf_dynamic_section_entry_t *) ((uint8_t *) dynamic_entry + ELF_STRUCT_SIZE (ELFHDR, dynamic_entry)))
if (ELF_GET_NUMERIC (ELFHDR, dynamic_entry, tag) == ELF_DT_SONAME)
{
canonical_dylib_name = dynamic_strings + ELF_GET_NUMERIC (ELFHDR, dynamic_entry, value);
break;
}
// do we have it ?
if ((canonical_dylib_name != NULL) && (canonical_dylib_name[0] != 0))
{
sprintf_s (candidate_pathname, MAXPATHLEN, "%s/%s", (entry_parms->prefix != NULL ? entry_parms->prefix : ""), canonical_dylib_name);
if (strcmp (candidate_pathname
, stored_pathname
) != 0) // claimed dylib name differs from passed name ?
{
original_stored_pathname = stored_pathname; // if so, remember to create a symlink here
stored_pathname = candidate_pathname;
}
}
}
} // end if the file we're storing is a dylib
// now strip this ELF file if necessary
if (!(entry_parms->extra_ino_flags & IFS_INO_PROCESSED_ELF))
{
Buffer_StripELFFile (&entry_parms->data, (const char **) saved_ELF_sections, saved_ELF_section_count, false, stored_pathname); // strip the ELF file à la mkifs
entry_parms->extra_ino_flags |= IFS_INO_PROCESSED_ELF; // mark this inode as a preprocessed ELF file
} // end if the file is not yet a processed ELF
} // end if the file we're storing is an ELF file
#undef ELFHDR // undefine the macro that used to always point to the ELF header at the beginning of the file
}
// have a pointer to where the stored pathname actually starts, without the leading slash
stored_pathname_without_leading_slash = stored_pathname[0] == '/' ? &stored_pathname[1] : stored_pathname;
// see if this item already has an entry in the current list of filesystem entries
for (fsentry_index = 0; fsentry_index < *fsentry_count; fsentry_index++)
{
fsentry = &(*fsentries)[fsentry_index]; // quick access to fs entry slot
if ( (S_ISDIR
(fsentry
->header.
mode) && (strcmp (fsentry
->u.
dir.
path, stored_pathname_without_leading_slash
) == 0))
|| (S_ISREG
(fsentry
->header.
mode) && (strcmp (fsentry
->u.
file.
path, stored_pathname_without_leading_slash
) == 0))
|| (S_ISLNK
(fsentry
->header.
mode) && (strcmp (fsentry
->u.
symlink.
path, stored_pathname_without_leading_slash
) == 0))
|| (S_ISFIFO
(fsentry
->header.
mode) && (strcmp (fsentry
->u.
symlink.
path, stored_pathname_without_leading_slash
) == 0)))
break; // stop searching as soon as we find a duplicate
}
// is there already an entry for this item ?
if (fsentry_index < *fsentry_count)
{
// if we should NOT ignore duplicates, bomb out, else just reuse that entry
if (!entry_parms->should_ignore_duplicates)
DIE_WITH_EXITCODE (1, "duplicate detected: entry \"%s\" specified in \"%s\" line %d already exists in IFS file", stored_pathname, buildfile_pathname, lineno);
}
else // this is a new entry: grow filesystem entries array to hold one more slot
{
reallocated_ptr
= realloc (*fsentries
, (*fsentry_count
+ 1) * sizeof (fsentry_t
)); // attempt to reallocate
ASSERT_WITH_ERRNO (reallocated_ptr); // verify
*fsentries = reallocated_ptr; // save reallocated pointer
fsentry = &(*fsentries)[*fsentry_count]; // quick access to fs entry slot
(*fsentry_count)++; // remember there's one entry more in the array
}
// save (or update) this entry's parameters
fsentry->header.extattr_offset = 0;
fsentry->header.ino = entry_parms->extra_ino_flags | (++inode_count);
fsentry->header.mode = entry_parms->st_mode;
fsentry->header.gid = entry_parms->gid;
fsentry->header.uid = entry_parms->uid;
fsentry
->header.
mtime = (entry_parms
->mtime
== UINT32_MAX
? (uint32_t) time (NULL
) : entry_parms
->mtime
);
if (S_ISDIR (entry_parms->st_mode))
{
fsentry->u.dir.path = strdup (stored_pathname_without_leading_slash);
fsentry
->header.
size = (uint16_t) ROUND_TO_UPPER_MULTIPLE
(sizeof (fsentry
->header
) + strlen (fsentry
->u.
dir.
path) + 1, image_align
); // now we can set the size
fsentry->UNSAVED_was_data_written = true; // no data to save
}
else if (S_ISREG (entry_parms->st_mode))
{
fsentry->u.file.offset = WILL_BE_FILLED_LATER; // will be filled later in main() when the file's data blob will be written to the output file
fsentry->u.file.size = (uint32_t) entry_parms->data.size;
fsentry->u.file.path = strdup (stored_pathname_without_leading_slash);
fsentry
->u.
file.
UNSAVED_databuf = malloc (entry_parms
->data.
size);
ASSERT_WITH_ERRNO (fsentry->u.file.UNSAVED_databuf);
memcpy (fsentry
->u.
file.
UNSAVED_databuf, entry_parms
->data.
bytes, entry_parms
->data.
size);
fsentry
->header.
size = (uint16_t) ROUND_TO_UPPER_MULTIPLE
(sizeof (fsentry
->header
) + sizeof (uint32_t) + sizeof (uint32_t) + strlen (fsentry
->u.
file.
path) + 1, image_align
); // now we can set the size
fsentry->UNSAVED_was_data_written = false; // there *IS* data to save
}
else if (S_ISLNK (entry_parms->st_mode))
{
fsentry
->u.
symlink.
sym_offset = (uint16_t) (strlen (stored_pathname_without_leading_slash
) + 1);
fsentry->u.symlink.sym_size = (uint16_t) entry_parms->data.size;
fsentry->u.symlink.path = strdup (stored_pathname_without_leading_slash);
fsentry->u.symlink.contents = strdup (entry_parms->data.bytes);
ASSERT_WITH_ERRNO (fsentry->u.symlink.contents);
fsentry->header.size = (uint16_t) ROUND_TO_UPPER_MULTIPLE (sizeof (fsentry->header) + sizeof (uint16_t) + sizeof (uint16_t) + (size_t) fsentry->u.symlink.sym_offset + fsentry->u.symlink.sym_size + 1, image_align); // now we can set the size
fsentry->UNSAVED_was_data_written = true; // no data to save
}
else // necessarily a device node
{
fsentry
->u.
device.
dev = strtol (entry_parms
->data.
bytes, NULL
, 0); // use strtol() to parse decimal (...), hexadecimal (0x...) and octal (0...) numbers
fsentry
->u.
device.
rdev = strtol (strchr (entry_parms
->data.
bytes, ':') + 1, NULL
, 0); // use strtol() to parse decimal (...), hexadecimal (0x...) and octal (0...) numbers
fsentry->u.device.path = strdup (stored_pathname_without_leading_slash);
fsentry
->header.
size = (uint16_t) ROUND_TO_UPPER_MULTIPLE
(sizeof (fsentry
->header
) + sizeof (uint32_t) + sizeof (uint32_t) + strlen (fsentry
->u.
device.
path), image_align
); // now we can set the size
fsentry->UNSAVED_was_data_written = true; // no data to save
}
// should we also add a symlink to this entry ? (in case we stored a dylib file under its canonical name)
if (original_stored_pathname != NULL)
{
entry_parms->is_compiled_bootscript = false;
entry_parms->should_autosymlink_dylib = false;
entry_parms->should_follow_symlinks = false;
entry_parms->st_mode = S_IFLNK | 0777; // NOTE: mkifs stores symlink permissions as rwxrwxrwx !
entry_parms->extra_ino_flags = (fsentry->header.ino & (IFS_INO_PROCESSED_ELF | IFS_INO_RUNONCE_ELF | IFS_INO_BOOTSTRAP_EXE)); // preserve target's inode flags
last_dirsep
= strrchr (stored_pathname
, '/');
old_data = entry_parms->data.bytes; // backup previous data pointer
entry_parms->data.bytes = (uint8_t *) (last_dirsep == NULL ? stored_pathname : last_dirsep + 1); // store symlink target in dirent data
entry_parms
->data.
size = strlen (entry_parms
->data.
bytes);
add_fsentry (fsentries, fsentry_count, entry_parms, original_stored_pathname, NULL);
entry_parms->data.bytes = old_data; // restore previous data pointer so that it can be freed normally
}
return; // finished, return to our caller
}
static void add_directory_contents_recursively (fsentry_t **fsentries, size_t *fsentry_count, const char *dir_pathname, const size_t start_pathname_len, parms_t *default_parms)
{
// adds the contents of the directory pointed to by dir_pathname to the fsentries array, recursively
// start_pathname_len is initialized to the length of dir_pathname by the top caller, and passed down unchanged,
// so that each sublevel of the recursion knows the depth of the relative path in which it is.
thread_local static char item_pathname[MAXPATHLEN] = "";
thread_local static parms_t entry_parms = { 0 };
thread_local static struct stat stat_buf = { 0 };
thread_local static char major_minor[64];
DIR *dirp;
struct dirent *dp;
// open the directory
dirp = opendir (dir_pathname);
if (dirp == NULL)
DIE_WITH_EXITCODE (1, "unable to open directory \"%s\" for recursive inclusion", dir_pathname);
// enumerate its contents
while ((dp = readdir (dirp)) != NULL)
{
if ((strcmp (dp
->d_name
, ".") == 0) || (strcmp (dp
->d_name
, "..") == 0))
continue; // skip self and parent
memcpy (&entry_parms
, default_parms
, sizeof (parms_t
));
sprintf_s (item_pathname, sizeof (item_pathname), "%s/%s", dir_pathname, dp->d_name); // construct item's pathname
ASSERT_WITH_ERRNO (stat (item_pathname, &stat_buf) == 0); // peek info about this entry (or die trying)
if (S_ISDIR (stat_buf.st_mode))
{
entry_parms.st_mode |= entry_parms.dperms; // apply DIRECTORY default permissions
add_fsentry (fsentries, fsentry_count, &entry_parms, &item_pathname[start_pathname_len], NULL); // add a filesystem entry of type "directory"
add_directory_contents_recursively (fsentries, fsentry_count, item_pathname, start_pathname_len, default_parms); // dwell into this directory and add its children recursively
}
else if (S_ISLNK (stat_buf.st_mode))
{
entry_parms.st_mode |= 0777; // NOTE: mkifs sets symlink permissions to rwxrwxrwx !?
add_fsentry (fsentries, fsentry_count, &entry_parms, &item_pathname[start_pathname_len], item_pathname); // add a filesystem entry of type "link"
}
else if (S_ISREG (stat_buf.st_mode))
{
entry_parms.st_mode |= entry_parms.perms; // apply FILE default permissions
add_fsentry (fsentries, fsentry_count, &entry_parms, &item_pathname[start_pathname_len], item_pathname); // add a filesystem entry of type "regular file"
}
else if (S_ISFIFO (stat_buf.st_mode))
{
entry_parms.st_mode |= entry_parms.perms; // apply FILE default permissions
sprintf_s (major_minor, sizeof (major_minor), "%u:%u", (unsigned int) major (stat_buf.st_rdev), (unsigned int) minor (stat_buf.st_rdev));
entry_parms.data.bytes = major_minor;
add_fsentry (fsentries, fsentry_count, &entry_parms, &item_pathname[start_pathname_len], NULL); // add a filesystem entry of type "FIFO"
}
else
LOG_WARNING ("ignoring unsupported directory entry: \"%s\" (type 0%o)", item_pathname, stat_buf.st_mode & S_IFMT);
}
closedir (dirp); // finished parsing this level, close the directory handle
return; // and return to our caller
}
static int fsentry_compare_pathnames_cb (const void *a, const void *b)
{
// qsort() callback that compares two imagefs filesystem entries and sort them alphabetically by pathname
const fsentry_t *entry_a = (const fsentry_t *) a;
const fsentry_t *entry_b = (const fsentry_t *) b;
const char *pathname_a = (S_ISDIR (entry_a->header.mode) ? entry_a->u.dir.path : (S_ISREG (entry_a->header.mode) ? entry_a->u.file.path : (S_ISLNK (entry_a->header.mode) ? entry_a->u.symlink.path : entry_a->u.device.path)));
const char *pathname_b = (S_ISDIR (entry_b->header.mode) ? entry_b->u.dir.path : (S_ISREG (entry_b->header.mode) ? entry_b->u.file.path : (S_ISLNK (entry_b->header.mode) ? entry_b->u.symlink.path : entry_b->u.device.path)));
return (strcmp (pathname_a
, pathname_b
));
}
static void parse_line (FILE *buildfile_fp, char *line_buffer, fsentry_t **fsentries, size_t *fsentry_count, parms_t *default_parms)
{
thread_local static char path_on_buildhost[MAXPATHLEN] = "";
thread_local static char path_in_ifs[MAXPATHLEN] = "";
thread_local static parms_t entry_parms = { 0 }; // current parameters for a filesystem entry (will be initialized to default_parms each time a new entry is parsed in the build file)
bool should_discard_inline_contents;
bool is_quoted_context;
bool is_escaped_char;
struct stat stat_buf;
struct tm utc_time;
void *reallocated_ptr;
size_t allocated_size;
size_t string_len;
char *specifiedpathname_start;
char *attrblock_start;
char *write_ptr;
char *line_ptr;
char *value;
char *token;
char *sep;
char *ctx;
int read_char;
line_ptr = line_buffer;
while ((*line_ptr
!= 0) && isspace (*line_ptr
))
line_ptr++; // skip leading spaces
if ((*line_ptr == 0) || (*line_ptr == '#'))
return; // don't process empty lines and comments
string_len
= (int) strlen (line_buffer
);
if ((string_len > 0) && (line_buffer[string_len - 1] == '\n'))
line_buffer[string_len - 1] = 0; // chop off newline for easier debug output
// reset entry values
memcpy (&entry_parms
, default_parms
, sizeof (parms_t
));
path_in_ifs[0] = 0;
path_on_buildhost[0] = 0;
should_discard_inline_contents = false;
// does this line start with an attribute block ?
if (*line_ptr == '[')
{
line_ptr++; // skip the leading square bracket
attrblock_start = line_ptr; // remember where it starts
is_quoted_context = false;
while ((*line_ptr != 0) && !((*line_ptr == ']') && (line_ptr[-1] != '\\') && !is_quoted_context))
{
if (*line_ptr == '"')
is_quoted_context ^= true; // remember when we're between quotes
else if (!is_quoted_context && (*line_ptr == ' '))
*line_ptr = RECORD_SEP[0]; // turn all spaces outside quoted contexts into an ASCII record separator to ease token splitting
line_ptr++; // reach the next unescaped closing square bracket
}
if (*line_ptr != ']')
{
LOG ("warning", 0, "syntax error in \"%s\" line %d: unterminated attributes block (skipping)", buildfile_pathname, lineno);
return; // invalid attribute block, skip line
}
*line_ptr = 0; // end the attribute block so that it is a parsable C string
// now parse the attribute tokens
// DOCUMENTATION: https://www.qnx.com/developers/docs/8.0/com.qnx.doc.neutrino.utilities/topic/m/mkifs.html#mkifs__description
token = strtok_r (attrblock_start, RECORD_SEP, &ctx);
while (token != NULL)
{
// evaluate attribute token
#define REACH_TOKEN_VALUE() do { value = strchr (token, '=') + 1; if (*value == '"') value++; } while (0)
if (false) {}
else if (strncmp (token
, "prefix=", 7) == 0) { REACH_TOKEN_VALUE
(); entry_parms.
prefix = (*value
== '/' ? value
+ 1 : value
); } // skip possible leading slash in prefix (NOTE: stolen pointer. Do not free.)
else if (strncmp (token
, "uid=", 4) == 0) { REACH_TOKEN_VALUE
(); entry_parms.
uid = (int) read_integer
(value
); }
else if (strncmp (token
, "gid=", 4) == 0) { REACH_TOKEN_VALUE
(); entry_parms.
gid = (int) read_integer
(value
); }
else if (strncmp (token
, "dperms=", 7) == 0) { REACH_TOKEN_VALUE
(); entry_parms.
dperms = (int) read_integer
(value
); }
else if (strncmp (token
, "perms=", 6) == 0) { REACH_TOKEN_VALUE
(); entry_parms.
perms = (int) read_integer
(value
); }
else if (strncmp (token
, "type=", 5) == 0) { REACH_TOKEN_VALUE
();
if (strcmp (value
, "dir") == 0) entry_parms.
st_mode = S_IFDIR
;
else if (strcmp (value
, "file") == 0) entry_parms.
st_mode = S_IFREG
;
else if (strcmp (value
, "link") == 0) entry_parms.
st_mode = S_IFLNK
;
else if (strcmp (value
, "fifo") == 0) entry_parms.
st_mode = S_IFIFO
;
else DIE_WITH_EXITCODE (1, "invalid 'type' attribute in \"%s\" line %d: '%s'", buildfile_pathname, lineno, value);
}
else if (strncmp (token
, "image=", 6) == 0) { REACH_TOKEN_VALUE
();
image_base = (uint32_t) read_integer (value); // read image base address
if ((sep
= strchr (value
, '-')) != NULL
) image_end
= (uint32_t) read_integer
(sep
+ 1); // if we have a dash, read optional image end (TODO: check this value and produce an error in the relevant case. Not important.)
if ((sep
= strchr (value
, ',')) != NULL
) image_maxsize
= (uint32_t) read_integer
(sep
+ 1); // if we have a comma, read optional image max size
if ((sep
= strchr (value
, '=')) != NULL
) image_totalsize
= (uint32_t) read_integer
(sep
+ 1); // if we have an equal sign, read optional image padding size
if ((sep
= strchr (value
, '%')) != NULL
) image_align
= (uint32_t) read_integer
(sep
+ 1); // if we have a modulo sign, read optional image aligmnent
LOG_INFO ("image 0x%x-0x%x maxsize %d totalsize %d align %d", image_base, image_end, image_maxsize, image_totalsize, image_align);
}
else if (strncmp (token
, "virtual=", 8) == 0) { REACH_TOKEN_VALUE
();
if ((bootfile_pathname == NULL) || (startupfile_pathname == NULL)) // FIXME: HACK until I figure out how to re-create them
DIE_WITH_EXITCODE (1, "creating bootable images require the --bootfile and --startupfile command-line options in \"%s\" line %d", buildfile_pathname, lineno);
if ((sep
= strchr (value
, ',')) != NULL
) // do we have a comma separating (optional) processor and boot file name ?
{
*sep = 0;
if (strcmp (value
, "x86_64") == 0)
{
image_processor = "x86_64"; // save processor
image_processor_base = "x86_64"; // save processor base
image_pagesize = 4 * 1024; // Intel processors use 4 Kb pages
}
else if (strcmp (value
, "aarch64le") == 0)
{
image_processor = "aarch64le"; // save processor
image_processor_base = "aarch64"; // save processor base
image_pagesize = 16 * 1024; // ARM processors use 16 Kb pages
}
else
DIE_WITH_EXITCODE (1, "unrecognized processor type in 'virtual' attribute in \"%s\" line %d: '%s'", buildfile_pathname, lineno, value);
value = sep + 1;
}
if (stat (bootfile_pathname, &stat_buf) != 0)
DIE_WITH_EXITCODE
(1, "unable to stat the boot file \"%s\" specified in \"%s\" line %d: %s", bootfile_pathname
, buildfile_pathname
, lineno
, strerror (errno
));
bootfile_size = stat_buf.st_size; // save preboot file size
LOG_INFO ("processor \"%s\" bootfile \"%s\"\n", image_processor, bootfile_pathname);
entry_parms.is_bootstrap_file = true;
}
else if (strncmp (token
, "mtime=", 6) == 0) { REACH_TOKEN_VALUE
(); if (strcmp (value
, "*") == 0) entry_parms.
mtime = UINT32_MAX
; else {
// value *must* be "YYYY-MM-DD-HH:MM:SS" by specification
memset (&utc_time
, 0, sizeof (utc_time
));
if (sscanf_s (value, "%u-%u-%u-%u:%u:%u", &utc_time.tm_year, &utc_time.tm_mon, &utc_time.tm_mday, &utc_time.tm_hour, &utc_time.tm_min, &utc_time.tm_sec) != 6)
{
LOG_WARNING ("syntax error in \"%s\" line %d: mtime specification not in YYYY-MM-DD-HH:MM:SS format (skipping)", buildfile_pathname, lineno);
continue; // invalid attribute block, skip line
}
utc_time.tm_mon--; // convert month from [1-12] to [0-11]
entry_parms.
mtime = (uint32_t) mktime (&utc_time
);
}
}
else if (strncmp (token
, "compress=", 9) == 0) { REACH_TOKEN_VALUE
(); startup_header_compression_flag
= (strcmp (value
, "1") == 0 ? STARTUP_HDR_FLAGS1_COMPRESS_ZLIB
: (strcmp (value
, "2") == 0 ? STARTUP_HDR_FLAGS1_COMPRESS_LZO
: STARTUP_HDR_FLAGS1_COMPRESS_UCL
)); }
else if (strcmp (token
, "+compress") == 0) startup_header_compression_flag
= STARTUP_HDR_FLAGS1_COMPRESS_UCL
;
else if (strcmp (token
, "-compress") == 0) startup_header_compression_flag
= STARTUP_HDR_FLAGS1_COMPRESS_NONE
;
else if (strcmp (token
, "+script") == 0) entry_parms.
is_compiled_bootscript = true;
else if (strcmp (token
, "-script") == 0) entry_parms.
is_compiled_bootscript = false;
else if (strcmp (token
, "+followlink") == 0) entry_parms.
should_follow_symlinks = true;
else if (strcmp (token
, "-followlink") == 0) entry_parms.
should_follow_symlinks = false;
else if (strcmp (token
, "+autolink") == 0) entry_parms.
should_autosymlink_dylib = true;
else if (strcmp (token
, "-autolink") == 0) entry_parms.
should_autosymlink_dylib = false;
else if (strcmp (token
, "+keeplinked") == 0) entry_parms.
should_keep_ld_output = true;
else if (strcmp (token
, "-keeplinked") == 0) entry_parms.
should_keep_ld_output = false;
else if (strcmp (token
, "+dupignore") == 0) entry_parms.
should_ignore_duplicates = true;
else if (strcmp (token
, "-dupignore") == 0) entry_parms.
should_ignore_duplicates = false;
else if (strcmp (token
, "+optional") == 0) entry_parms.
should_allow_nonexistent_files = true;
else if (strcmp (token
, "-optional") == 0) entry_parms.
should_allow_nonexistent_files = false;
else LOG_WARNING ("unimplemented attribute in \"%s\" line %d: '%s'", buildfile_pathname, lineno, token);
#undef REACH_TOKEN_VALUE
token = strtok_r (NULL, RECORD_SEP, &ctx); // proceed to next attribute token
}
line_ptr++; // reach the next character
while ((*line_ptr
!= 0) && isspace (*line_ptr
))
line_ptr++; // skip leading spaces
// are we at the end of the line ? if so, it means the attribute values that are set should become the default
if ((*line_ptr == 0) || (*line_ptr == '#'))
{
#define APPLY_DEFAULT_ATTR_NUM(attr,descr,fmt) do { if (entry_parms.attr != default_parms->attr) { \
LOG_INFO ("changing default " descr " from " fmt " to " fmt " by attribute at \"%s\" line %d", default_parms->attr, entry_parms.attr, buildfile_pathname, lineno); \
default_parms->attr = entry_parms.attr; \
} } while (0)
#define APPLY_DEFAULT_ATTR_STR(attr,descr,fmt) do { if (((default_parms->attr == NULL) && (entry_parms.attr != NULL)) || ((default_parms->attr != NULL) && (entry_parms.attr == NULL)) || ((default_parms->attr != NULL) && (entry_parms.attr != NULL) && (strcmp (entry_parms.attr, default_parms->attr) != 0))) { \
LOG_INFO ("changing default " descr " from " fmt " to " fmt " by attribute at \"%s\" line %d", (default_parms->attr != NULL ? default_parms->attr : "none"), entry_parms.attr, buildfile_pathname, lineno); \
if (default_parms->attr != NULL) free (default_parms->attr); \
default_parms->attr = strdup (entry_parms.attr); \
ASSERT_WITH_ERRNO (default_parms->attr != NULL); \
} } while (0)
//APPLY_DEFAULT_ATTR_STR (new_cwd, "current working directory", "\"%s\"");
APPLY_DEFAULT_ATTR_STR (search, "search path list", "\"%s\"");
APPLY_DEFAULT_ATTR_STR (prefix, "prefix", "\"%s\"");
APPLY_DEFAULT_ATTR_NUM (dperms, "directory permissions", "0%o");
APPLY_DEFAULT_ATTR_NUM (perms, "file permissions", "0%o");
APPLY_DEFAULT_ATTR_NUM (uid, "owner ID", "%d");
APPLY_DEFAULT_ATTR_NUM (gid, "group ID", "%d");
APPLY_DEFAULT_ATTR_NUM (st_mode, "inode type", "0%o");
APPLY_DEFAULT_ATTR_NUM (is_compiled_bootscript, "compiled script state", "%d");
APPLY_DEFAULT_ATTR_NUM (should_follow_symlinks, "symlink resolution flag", "%d");
APPLY_DEFAULT_ATTR_NUM (should_autosymlink_dylib, "dylib canonical name symlinking", "%d");
APPLY_DEFAULT_ATTR_NUM (should_keep_ld_output, "linker output preservation flag", "%d");
APPLY_DEFAULT_ATTR_NUM (should_ignore_duplicates, "ignore duplicates flag", "%d");
APPLY_DEFAULT_ATTR_NUM (should_allow_nonexistent_files, "ignore nonexistent files flag", "%d");
#undef APPLY_DEFAULT_ATTR_STR
#undef APPLY_DEFAULT_ATTR_NUM
return; // end of line reached, proceed to the next line
}
// end of attributes parsing
} // end of "this line starts with an attributes block"
// there's data in this line. We expect a filename in the IFS. Read it and unescape escaped characters
string_len = sprintf_s (path_in_ifs, sizeof (path_in_ifs), "%s", (entry_parms.prefix != NULL ? entry_parms.prefix : ""));
while ((string_len > 0) && (path_in_ifs[string_len - 1] == '/'))
string_len--; // chop off any trailing slashes from prefix
write_ptr = &path_in_ifs[string_len];
*write_ptr++ = '/'; // add ONE trailing slash
specifiedpathname_start = write_ptr; // remember the specified pathname will start here
is_quoted_context = (*line_ptr == '"');
if (is_quoted_context)
line_ptr++; // skip a possible initial quote
if (*line_ptr == '/')
{
LOG_WARNING ("paths in the IFS file should not begin with a leading '/' in \"%s\" line %d", buildfile_pathname, lineno);
line_ptr++; // consistency check: paths in the IFS should not begin with a '/'
}
while ((*line_ptr
!= 0) && ((!is_quoted_context
&& (*line_ptr
!= '=') && !isspace (*line_ptr
)) || (is_quoted_context
&& (*line_ptr
!= '"'))))
{
if (*line_ptr == '\\')
{
line_ptr++;
*write_ptr++ = *line_ptr; // unescape characters that are escaped with '\'
}
else
*write_ptr++ = *line_ptr;
line_ptr++;
}
*write_ptr = 0; // terminate the string
if (is_quoted_context && (*line_ptr == '"'))
line_ptr++; // skip a possible final quote
// we reached a space OR an equal sign
while ((*line_ptr
!= 0) && isspace (*line_ptr
))
line_ptr++; // skip optional spaces after the filename in the IFS
// do we have an equal sign ?
if (*line_ptr == '=') // we must be creating either a directory or a file, do we have an equal sign ?
{
line_ptr++; // skip the equal sign
while ((*line_ptr
!= 0) && isspace (*line_ptr
))
line_ptr++; // skip optional spaces after the equal sign
if (*line_ptr == 0)
{
LOG_WARNING ("syntax error in \"%s\" line %d: missing data specification after equal sign (skipping)", buildfile_pathname, lineno);
return; // invalid symlink specification, skip line
}
// read the host system's path, it may be either a path or a contents definition. Is it a content definition ?
if (*line_ptr == '{')
{
allocated_size = 0;
line_ptr++; // skip the leading content definition
is_escaped_char = false;
for (;;)
{
read_char
= fgetc (buildfile_fp
);
if (read_char == EOF)
DIE_WITH_EXITCODE (1, "syntax error in \"%s\" line %d: unterminated contents block (end of file reached)", buildfile_pathname, lineno); // invalid contents block
else if ((read_char == '\\') && !is_escaped_char)
is_escaped_char = true; // remember the next char is escaped
else if ((read_char == '}') && !is_escaped_char)
break; // found an unescaped closing bracked, stop parsing
else
{
is_escaped_char = false; // any other char, meaning the next one will not be escaped
if (!should_discard_inline_contents) // only store the contents if we do NOT know the data yet
{
if (entry_parms.data.size == allocated_size) // reallocate in 16k blocks
{
reallocated_ptr
= realloc (entry_parms.
data.
bytes, allocated_size
+ 16384);
ASSERT_WITH_ERRNO (reallocated_ptr);
entry_parms.data.bytes = reallocated_ptr;
allocated_size += 16384;
}
entry_parms.data.bytes[entry_parms.data.size++] = read_char;
}
if (read_char == '\n')
lineno++; // update line counter as we parse the inline content
}
} // end for
}
else // not a content definition between { brackets }, must be either a pathname on the build host, or the target of a symlink
{
is_quoted_context = (*line_ptr == '"');
if (is_quoted_context)
line_ptr++; // skip a possible initial quote
specifiedpathname_start = line_ptr; // remember where the specified pathname starts
write_ptr = line_ptr; // now unescape all characters
while ((*line_ptr
!= 0) && ((!is_quoted_context
&& !isspace (*line_ptr
)) || (is_quoted_context
&& (*line_ptr
!= '"'))))
{
if (*line_ptr == '\\')
{
line_ptr++;
*write_ptr++ = *line_ptr; // unescape characters that are escaped with '\'
}
else
*write_ptr++ = *line_ptr;
line_ptr++;
}
*write_ptr = 0; // terminate the string
if (is_quoted_context && (*line_ptr == '"'))
line_ptr++; // skip a possible final quote
if (S_ISLNK (entry_parms.st_mode)) // are we storing a symlink ?
ASSERT_WITH_ERRNO (Buffer_InitWithCString (&entry_parms.data, specifiedpathname_start)); // if so, store the symlink target as the dirent's blob data
else // it's a build host filesystem path
strcpy_s (path_on_buildhost, sizeof (path_on_buildhost), specifiedpathname_start); // the path on the build host is given after the equal sign
}
}
else // no equal sign, meaning the file will have the same name on the build host filesystem
{
// consistency check: symlinks MUST have an equal sign
if (entry_parms.st_mode == S_IFLNK)
{
LOG_WARNING ("syntax error in \"%s\" line %d: missing equal sign and symlink target (skipping)", buildfile_pathname, lineno);
return; // invalid symlink specification, skip line
}
strcpy_s (path_on_buildhost, sizeof (path_on_buildhost), specifiedpathname_start); // the path on the build host is the one specified
sep
= strrchr (specifiedpathname_start
, '/');
if (sep != NULL)
memmove (specifiedpathname_start
, sep
+ 1, strlen (sep
+ 1) + 1); // the path in the IFS will be the BASENAME of the path specified (after the prefix)
}
// now add this entry to the image filesystem
if (S_ISDIR (entry_parms.st_mode))
entry_parms.st_mode |= entry_parms.dperms;
else if (S_ISLNK (entry_parms.st_mode))
entry_parms.st_mode |= 0777; // NOTE: mkifs sets symlink permissions to rwxrwxrwx !?
else // file or device node
entry_parms.st_mode |= entry_parms.perms;
add_fsentry (fsentries, fsentry_count, &entry_parms, path_in_ifs, path_on_buildhost); // and add filesystem entry
if (entry_parms.data.bytes != NULL)
free (entry_parms.
data.
bytes); // if blob data was allocated, free it
return; // finished parsing that line
}
int main (int argc, char **argv)
{
// program entrypoint
typedef struct ifs_offsets_s
{
size_t startupheader;
size_t startuptrailer;
size_t imageheader;
size_t imagedir;
size_t imagetrailer;
} ifs_offsets_t;
typedef struct ifs_s
{
buffer_t data;
ifs_offsets_t offsets;
size_t final_size; // final size: not known (because not set) until everything has been written
} ifs_t;
startup_header_t startup_header = { 0 }; // output IFS's startup header
startup_trailer_v2_t startup_trailer = { 0 }; // output IFS's startup trailer (version 2, with SHA-512 checksum and int32 checksum)
image_header_t image_header = { 0 }; // output IFS's imagefs header
image_trailer_v2_t image_trailer = { 0 }; // output IFS's imagefs trailer (version 2, with SHA-512 checksum and int32 checksum)
fsentry_t *fsentries = NULL; // output IFS's filesystem entries
size_t fsentry_count = 0; // number of entries in the IFS filesystem
parms_t default_parms = { // default parameters for a filesystem entry
.dperms = 0755,
.perms = 0644,
.mtime = UINT32_MAX,
.mtime_for_inline_files = UINT32_MAX,
.prefix = NULL, // will be initialized to a *mallocated* string: "/proc/boot"
.should_follow_symlinks = true, // [+|-followlink]
.should_autosymlink_dylib = true, // [+|-autolink]
};
parms_t entry_parms = { 0 }; // current parameters for a filesystem entry (will be initialized to default_parms each time a new entry is parsed in the build file)
char path_on_buildhost[MAXPATHLEN] = "";
char path_in_ifs[MAXPATHLEN] = "";
const char *ifs_pathname = NULL;
const char *rootdir_pathname = NULL;
const fsentry_t *fsentry;
void *reallocated_ptr;
buffer_t compressed_imagefs;
uint8_t *compressor_out;
uint8_t *compressor_in;
size_t compressor_outlen;
size_t compressor_inlen;
size_t reallocated_size;
size_t available_space;
size_t fsentry_index;
size_t largest_index;
size_t largest_size;
size_t imgdir_size;
size_t curr_offset;
size_t remaining_len;
ifs_t ifs = { 0 };
int32_t checksum;
char *first_pathname = NULL;
char *second_pathname = NULL;
char *third_pathname = NULL;
char *sep;
int arg_index;
bool is_quoted_context = false;
bool is_escaped_char = false;
bool should_discard_inline_contents = false;
bool want_info = false;
bool want_everything = false;
bool want_help = false;
bool want_dump = false;
bool want_strip = false;
bool want_hexdump = false;
bool hide_filename = false;
bool is_foreign_endianness;
int compressor_ret;
FILE *buildfile_fp;
// initialize stuff
saved_ELF_sections
= (char **) malloc (4 * sizeof (char *));
ASSERT_WITH_ERRNO (saved_ELF_sections);
saved_ELF_sections[0] = "QNX_info"; // NOTE: MUST BE THE FIRST ONE as we artificially shrink down the array to 1 when using it for boot ELF files
saved_ELF_sections[1] = ".gnu_debuglink";
saved_ELF_sections[2] = "QNX_usage";
saved_ELF_sections[3] = ".note.gnu.build-id"; // undocumented by QNX, but nonetheless preserved
saved_ELF_section_count = 4;
default_parms.prefix = strdup ("/proc/boot");
ASSERT_WITH_ERRNO (default_parms.prefix);
// parse arguments
for (arg_index = 1; arg_index < argc; arg_index++)
{
if ((strcmp (argv
[arg_index
], "--bootfile") == 0) && (arg_index
+ 1 < argc
)) // --bootfile path/to/blob.bin
bootfile_pathname = argv[++arg_index];
else if ((strcmp (argv
[arg_index
], "--startupfile") == 0) && (arg_index
+ 1 < argc
)) // --startupfile path/to/blob.bin@0x1030
{
sep
= strchr (argv
[++arg_index
], '@');
if ((sep == NULL) || (sep[1] == 0))
DIE_WITH_EXITCODE (1, "the --startupfile arguments expects <pathname>@<entrypoint_from_image_base>");
*sep = 0;
startupfile_pathname = argv[arg_index];
startupfile_ep_from_imagebase = (size_t) read_integer (sep + 1);
}
else if ((strcmp (argv
[arg_index
], "--kerneloffs") == 0) && (arg_index
+ 1 < argc
)) // --kerneloffs 0x32000 (undocumented)
kernelfile_offset = (size_t) read_integer (argv[++arg_index]);
else if ((strcmp (argv
[arg_index
], "-a") == 0) && (arg_index
+ 1 < argc
)) // -a suffix
sym_suffix = argv[++arg_index];
else if (strcmp (argv
[arg_index
], "-n") == 0)
default_parms.mtime_for_inline_files = 0; // inline files should have a mtime set to zero
else if (strcmp (argv
[arg_index
], "-nn") == 0)
{
default_parms.mtime = 0; // *all* files should have a mtime set to zero
default_parms.mtime_for_inline_files = 0;
}
else if ((strcmp (argv
[arg_index
], "--outdir") == 0) && (arg_index
+ 1 < argc
)) // --outdir path
second_pathname = argv[++arg_index];
else if ((strcmp (argv
[arg_index
], "--outfile") == 0) && (arg_index
+ 1 < argc
)) // --outfile pathname
second_pathname = argv[++arg_index];
else if (strcmp (argv
[arg_index
], "--info") == 0)
want_info = true;
else if (strcmp (argv
[arg_index
], "--dump") == 0)
want_dump = true;
else if (strcmp (argv
[arg_index
], "--hexdump") == 0) // voluntarily undocumented
want_hexdump = true;
else if (strcmp (argv
[arg_index
], "--strip") == 0)
want_strip = true;
else if (strcmp (argv
[arg_index
], "--everything") == 0)
want_everything = true;
else if (strcmp (argv
[arg_index
], "--hide-filename") == 0)
hide_filename = true;
else if (strncmp (argv
[arg_index
], "-v", 2) == 0) // -v[....]
verbose_level
+= (int) strlen (argv
[arg_index
] + 1); // increase verbosity by the number of characters in this flag
else if ((strcmp (argv
[arg_index
], "-l") == 0) && (arg_index
+ 1 < argc
))
arg_index++; // these args will be parsed once the build file is open
else if ((strcmp (argv
[arg_index
], "-r") == 0) && (arg_index
+ 1 < argc
))
{
reallocated_size
= (SEARCH_PATH
!= NULL
? strlen (SEARCH_PATH
) + 1 : 0) + strlen (argv
[arg_index
+ 1]) + 1;
reallocated_ptr
= realloc (SEARCH_PATH
, reallocated_size
); // grow search prefixes array
ASSERT_WITH_ERRNO (reallocated_ptr);
if (SEARCH_PATH != NULL)
strcat_s (reallocated_ptr, reallocated_size, PATH_SEP);
strcat_s (reallocated_ptr, reallocated_size, argv[++arg_index]); // stack up another search prefix
SEARCH_PATH = reallocated_ptr;
}
else if ((strcmp (argv
[arg_index
], "-s") == 0) && (arg_index
+ 1 < argc
))
{
reallocated_ptr
= realloc (saved_ELF_sections
, (saved_ELF_section_count
+ 1) * sizeof (char *)); // grow ELF sections array
ASSERT_WITH_ERRNO (reallocated_ptr);
saved_ELF_sections = reallocated_ptr;
saved_ELF_sections[saved_ELF_section_count++] = argv[++arg_index]; // stack up another ELF section name to preserve
}
else if ((strcmp (argv
[arg_index
], "-?") == 0) || (strcmp (argv
[arg_index
], "--help") == 0))
want_help = true;
else if ((first_pathname == NULL) && (*argv[arg_index] != '-'))
first_pathname = argv[arg_index];
else if ((second_pathname == NULL) && (*argv[arg_index] != '-'))
second_pathname = argv[arg_index];
else if ((third_pathname == NULL) && (*argv[arg_index] != '-'))
third_pathname = argv[arg_index];
else
DIE_WITH_EXITCODE (1, "unrecognized option: '%s'", argv[arg_index]);
}
// do we want to display help ? (TODO: everything that's commented out is pending implementation)
if (want_help)
{
FILE *out = (want_help ? stdout : stderr); // select the right output channel
fprintf (out
, "ifstool - QNX in-kernel filesystem creation utility by Pierre-Marie Baty <pm@pmbaty.com>\n");
fprintf (out
, " version " VERSION_FMT_YYYYMMDD
"\n", VERSION_ARG_YYYYMMDD
);
if (!want_help)
fprintf (out
, "error: missing parameters\n");
fprintf (out
, " ifstool --info [--everything] [--hide-filename] <ifs file>\n");
fprintf (out
, " ifstool --dump [--outdir <path>] <ifs file>\n");
fprintf (out
, " ifstool --strip [--outfile <pathname>] <ELF file>\n");
fprintf (out
, " ifstool [-?|--help]\n");
// mkifs [-?] [-l inputline] [-n[n]] [-o directory] [-p patchfile] [-r rootdir] [-s section] [-v] [buildfile] [directory] [outputfile]
fprintf (out
, " ifstool [--bootfile <pathname>] [--startupfile <pathname>@<EP_from_imgbase>] [--kerneloffs <fileoffs>] [-a suffix] [-l inputline] [-n[n]] [-r rootdir] [-s section] [-v[...]] [buildfile] [directory] [outputfile]\n");
fprintf (out
, "NOTE: the compiler mode requires predigested boot and startup files produced by mkifs.\n");
fprintf (out
, " -? Display some help information.\n");
fprintf (out
, " -a .ext Append a suffix to symbol files generated via [+keeplinked].\n");
fprintf (out
, " -l line Process line before interpreting the buildfile. Input lines given\n");
fprintf (out
, " to mkifs should be quoted to prevent interpretation by the shell\n");
fprintf (out
, " (especially as mkifs input lines often contain spaces). Multiple\n");
fprintf (out
, " -l options are processed in the order specified. No default.\n");
fprintf (out
, " -n[n] Force the modification times of all inline files to be 0. If you\n");
fprintf (out
, " specify -nn, mkifs sets the modification times of all files to 0.\n");
fprintf (out
, " When mkifs adds files to an IFS image, it uses the timestamp info\n");
fprintf (out
, " from the file on the host machine. If mkifs is creating an inline\n");
fprintf (out
, " file (which doesn't exist on the host machine), it must generate\n");
fprintf (out
, " its own timestamp information. By default, it's the time at which\n");
fprintf (out
, " the image is generated. This results in different checksum values\n");
fprintf (out
, " for two identical builds, because the file's times are different.\n");
fprintf (out
, " If you use -n, the checksum value is the same on all identical\n");
fprintf (out
, " builds. The -nn option addresses a quirk in NTFS with daylight\n");
fprintf (out
, " savings time. This forces the modification time for all files in\n");
fprintf (out
, " the IFS image to be set to 0. This ensures that subsequent builds\n");
fprintf (out
, " of the same IFS image have the same checksum.");
// fprintf (out, " -o dir Specify a directory to be used for all permanent build artifacts,\n");
// fprintf (out, " other than the output image itself. The most common example is\n");
// fprintf (out, " the .sym files generated by the [+keeplinked] attribute.\n");
// fprintf (out, " -p file Apply patching instructions from this file.\n");
fprintf (out
, " -r dir When searching for host files to be included in the image, search\n");
fprintf (out
, " the default paths used for storing binaries within the specified\n");
fprintf (out
, " directory before searching the default paths within $QNX_TARGET.\n");
fprintf (out
, " You can define multiple -r options; each adds a set of paths to\n");
fprintf (out
, " search for files. The -r options are evaluated from left to right\n");
fprintf (out
, " meaning the paths prefixed with the first (leftmost) rootdir are\n");
fprintf (out
, " searched first, then those prefixed with the second rootdir, and\n");
fprintf (out
, " Normally, mkifs searches any paths defined in $MKIFS_PATH when\n");
fprintf (out
, " it was called and then the default paths within $QNX_TARGET. The\n");
fprintf (out
, " default paths are based on the CPU architecture specified by\n");
fprintf (out
, " $PROCESSOR and $PROCESSOR_BASE. If you specify -r options, mkifs\n");
fprintf (out
, " searches the default paths prefixed with each dir variable before\n");
fprintf (out
, " searching those within $QNX_TARGET. These paths are:\n");
fprintf (out
, " dir/${PROCESSOR}/sbin\n");
fprintf (out
, " dir/${PROCESSOR}/usr/sbin\n");
fprintf (out
, " dir/${PROCESSOR}/boot/sys\n");
fprintf (out
, " dir/${PROCESSOR_BASE}/boot/sys\n");
fprintf (out
, " dir/${PROCESSOR}/bin\n");
fprintf (out
, " dir/${PROCESSOR}/usr/bin\n");
fprintf (out
, " dir/${PROCESSOR}/lib\n");
fprintf (out
, " dir/${PROCESSOR}/lib/dll\n");
fprintf (out
, " dir/${PROCESSOR}/usr/lib\n");
fprintf (out
, " NOTE: The structure of the directory paths under dir must be\n");
fprintf (out
, " identical to that of the default paths under $QNX_TARGET, but the\n");
fprintf (out
, " root dir itself may be any path you choose. For example, if you\n");
fprintf (out
, " wanted to include /scratch/aarch64le/sbin/devb-sata, you would\n");
fprintf (out
, " specify a -r option like this:\n");
fprintf (out
, " Note that you don't include $PROCESSOR or $PROCESSOR_BASE in dir.\n");
fprintf (out
, " -s name Don't strip the named section from ELF executables when creating\n");
fprintf (out
, " an IFS image. You can use this option more than once to specify\n");
fprintf (out
, " additional sections. By default, mkifs doesn't strip:\n");
fprintf (out
, " .gnu_debuglink - the name and checksum of the debug info file\n");
fprintf (out
, " QNX_info - build properties\n");
fprintf (out
, " QNX_usage - usage message\n");
fprintf (out
, " You can use the keepsection attribute to specify the sections\n");
fprintf (out
, " that are not to be stripped from specific files in the image. For\n");
fprintf (out
, " files in the bootstrap section (like startup or procnto), the\n");
fprintf (out
, " global keepsection list affected by -s does not apply to these\n");
fprintf (out
, " files. For them, only the QNX_info section is kept.\n");
fprintf (out
, " -v[v..] Operate verbosely. Specifying additional v options increases the\n");
exit (want_help
? 0 : 1);
}
// else do we want info about a particular IFS ? if so, dissecate it
else if (want_info)
exit (dump_ifs_info
(first_pathname
, want_everything
, hide_filename
));
// else do we want to dump its contents ? if so, do so
else if (want_dump)
exit (dump_ifs_contents
(first_pathname
, (second_pathname
!= NULL
? second_pathname
: ".")));
// else do we want to hex dump a file ? (this is voluntarily undocumented)
else if (want_hexdump)
exit (dump_file_hex
(first_pathname
));
// else do we want to strip an ELF file ? if so, do so
else if (want_strip)
{
buffer_t file;
ASSERT
(Buffer_ReadFromFile
(&file
, first_pathname
), "can't open \"%s\" for reading: %s", first_pathname
, strerror (errno
));
ASSERT
(Buffer_StripELFFile
(&file
, (const char **) saved_ELF_sections
, saved_ELF_section_count
, false, first_pathname
), "error stripping \"%s\": %s", first_pathname
, strerror (errno
));
ASSERT_WITH_ERRNO (Buffer_WriteToFile (&file, (second_pathname != NULL ? second_pathname : "<stdout>")));
}
// we want to CREATE an IFS file
buildfile_pathname = first_pathname; // assign the pathnames properly
ifs_pathname = (third_pathname != NULL ? third_pathname : second_pathname); // this is some curious handling of cmdline args, but that's the way mkxfs does it
rootdir_pathname = (third_pathname != NULL ? second_pathname : NULL);
// make sure we have ${QNX_TARGET} pointing somewhere
QNX_TARGET
= getenv ("QNX_TARGET");
if (QNX_TARGET == NULL)
DIE_WITH_EXITCODE (1, "the QNX_TARGET environment variable is not set");
else if (access (QNX_TARGET, 0) != 0)
DIE_WITH_EXITCODE (1, "the QNX_TARGET environment variable doesn't point to an existing directory");
// open build file
if ((buildfile_pathname
!= NULL
) && (strcmp (buildfile_pathname
, "-") != 0))
{
fopen_s (&buildfile_fp, buildfile_pathname, "rb"); // open it
if (buildfile_fp == NULL)
DIE_WITH_EXITCODE
(1, "unable to open build file \"%s\" for reading: %s", buildfile_pathname
, strerror (errno
));
}
else // no build file specified: use stdin
{
buildfile_pathname = "<stdin>";
buildfile_fp = stdin;
}
// stack up filesystem entries
memcpy (&entry_parms
, &default_parms
, sizeof (default_parms
));
entry_parms.st_mode = S_IFDIR | default_parms.dperms;
add_fsentry (&fsentries, &fsentry_count, &entry_parms, "", NULL); // add the root dir first
// parse -l arguments before everything else
for (arg_index = 1; arg_index < argc; arg_index++)
if ((strcmp (argv
[arg_index
], "-l") == 0) && (arg_index
+ 1 < argc
))
parse_line (NULL, argv[++arg_index], &fsentries, &fsentry_count, &default_parms);
// parse the IFS build file line per line
while (fgets (line_buffer
, sizeof (line_buffer
), buildfile_fp
) != NULL
)
{
if (current_line != NULL)
current_line = strdup (line_buffer);
ASSERT_WITH_ERRNO (current_line);
lineno++; // keep track of current line number
parse_line (buildfile_fp, line_buffer, &fsentries, &fsentry_count, &default_parms);
}
fclose (buildfile_fp
); // finished parsing the build file
// if a root dir was specified, open it as a directory and recursively add all of its contents to the filesystem
if (rootdir_pathname != NULL)
add_directory_contents_recursively
(&fsentries
, &fsentry_count
, rootdir_pathname
, strlen (rootdir_pathname
), &default_parms
);
//////////////////////////////////
// start constructing the IFS file
Buffer_Initialize (&ifs.data);
// do we have a startup file ? if so, this is a bootable image
if (startupfile_pathname != NULL)
{
// write boot prefix
// ######################################################################################################################################################################################################################################
// # FIXME: figure out how to re-create it
// ######################################################################################################################################################################################################################################
buffer_t file;
if (!Buffer_ReadFromFile (&file, bootfile_pathname))
DIE_WITH_EXITCODE
(1, "failed to open \"%s\" for reading: %s", bootfile_pathname
, strerror (errno
));
ASSERT_WITH_ERRNO (Buffer_AppendBuffer (&ifs.data, &file)); // write boot blob
Buffer_Forget (&file);
ASSERT_WITH_ERRNO (Buffer_PadWithZeroesTo (&ifs.data, ROUND_TO_UPPER_MULTIPLE (ifs.data.size, image_align))); // pad as necessary
ifs.offsets.startupheader = ifs.data.size; // save startup header offset for future use
memset (&startup_header
, 0, sizeof (startup_header
)); // prepare startup header
memcpy (startup_header.
signature, "\xeb\x7e\xff\x00", 4); // startup header signature, i.e. 0xff7eeb
startup_header.version = 1;
startup_header.flags1 = STARTUP_HDR_FLAGS1_VIRTUAL | STARTUP_HDR_FLAGS1_TRAILER_V2 | startup_header_compression_flag; // flags, 0x21 (STARTUP_HDR_FLAGS1_VIRTUAL | STARTUP_HDR_FLAGS1_TRAILER_V2)
startup_header.header_size = sizeof (startup_header); // 256
if (strcmp (image_processor
, "x86_64") == 0)
startup_header.machine = ELF_MACHINE_X86_64; // EM_X86_64
else if (strcmp (image_processor
, "aarch64le") == 0)
startup_header.machine = ELF_MACHINE_AARCH64; // EM_AARCH64
else
DIE_WITH_EXITCODE (1, "unsupported processor type '%s' found in build file \"%s\"", image_processor, buildfile_pathname); // should not happen
startup_header.startup_vaddr = image_base + (uint32_t) startupfile_ep_from_imagebase; // [I ] Virtual Address to transfer to after IPL is done, here 0x01403008 (appears in "Entry" column for "startup.*")
startup_header.image_paddr = image_base + (uint32_t) bootfile_size; // F[IS] Physical address of image, here 0x01400f30 (appears in "Offset" column for "startup-header" which is the first entry/start of file)
startup_header.ram_paddr = startup_header.image_paddr; // [IS] Physical address of RAM to copy image to (startup_size bytes copied), here 0x01400f30 (same as above)
startup_header.ram_size = WILL_BE_FILLED_LATER; // [ S] Amount of RAM used by the startup program and executables contained in the file system, here 0x00cd6128 i.e. 13 459 752 dec. which is 13 Mb. i.e. IFS file size minus 0x9eee (40686)
startup_header.startup_size = WILL_BE_FILLED_LATER; // [I ] Size of startup (never compressed), here 0x02f148 or 192 840 bytes
startup_header.stored_size = WILL_BE_FILLED_LATER; // [I ] Size of entire image file (startup + *optionally compressed* imagefs) without optional boot prefix, here 0x00cd6128
startup_header.imagefs_size = WILL_BE_FILLED_LATER; // [ S] Size of uncompressed imagefs, here 0x00ca6fe0 or 13 266 912 bytes
startup_header.preboot_size = (uint16_t) bootfile_size; // [I ] Size of loaded before header, here 0xf30 or 3888 bytes (size of "bios.boot" file))
ASSERT_WITH_ERRNO (Buffer_Append (&ifs.data, &startup_header, sizeof (startup_header))); // write startup header
ASSERT_WITH_ERRNO (Buffer_PadWithZeroesTo (&ifs.data, ROUND_TO_UPPER_MULTIPLE (ifs.data.size, image_align))); // pad as necessary
// ######################################################################################################################################################################################################################################
// # FIXME: figure out how to re-create it:
// first: open "startup-x86" ELF file,
// lookup section headers table (there is no program headers table in this one)
// FIXME: figure out something in there where the result is 0x1401030 !!!
// then: call the linker: ld --sysroot=${QNX_TARGET}/x86_64/ -T${QNX_TARGET}/x86_64/lib/nto.link --section-start .text=0x1401030 --no-relax ${QNX_TARGET}/x86_64/boot/sys/startup-x86 -o startup.bin.UNSTRIPPED
// then: parse resulting ELF file, take all program segments and concatenate them --> this is the blob (FIXME: wrong?)
// ######################################################################################################################################################################################################################################
#if 0 // nonworking
// <deleted>
#else // working
if (!Buffer_ReadFromFile (&file, startupfile_pathname))
DIE_WITH_EXITCODE
(1, "failed to open \"%s\" for reading: %s", startupfile_pathname
, strerror (errno
));
ASSERT_WITH_ERRNO (Buffer_AppendBuffer (&ifs.data, &file)); // write startup blob
Buffer_Forget (&file);
#endif // working
ASSERT_WITH_ERRNO (Buffer_PadWithZeroesTo (&ifs.data, ROUND_TO_UPPER_MULTIPLE (ifs.data.size, image_align))); // pad as necessary
ifs.offsets.startuptrailer = ifs.data.size; // save startup trailer offset for future use
ASSERT_WITH_ERRNO (Buffer_Append (&ifs.data, &startup_trailer, sizeof (startup_trailer))); // write startup trailer
ASSERT_WITH_ERRNO (Buffer_PadWithZeroesTo (&ifs.data, ROUND_TO_UPPER_MULTIPLE (ifs.data.size, image_align))); // pad as necessary
}
ifs.offsets.imageheader = ifs.data.size; // save image header offset for future use
memset (&image_header
, 0, sizeof (image_header
)); // prepare image header
memcpy (&image_header.
signature, "imagefs", 7); // image filesystem signature, i.e. "imagefs"
image_header.flags = IMAGE_FLAGS_TRAILER_V2 | IMAGE_FLAGS_SORTED | IMAGE_FLAGS_INO_BITS; // endian neutral flags, 0x1c (IMAGE_FLAGS_TRAILER_V2 |Â IMAGE_FLAGS_SORTED |Â IMAGE_FLAGS_INO_BITS)
image_header.image_size = WILL_BE_FILLED_LATER; // size from header to end of trailer (here 0xca6fe0 or 13 266 912)
image_header.hdr_dir_size = WILL_BE_FILLED_LATER; // size from header to last dirent (here 0x12b8 or 4792)
image_header.dir_offset = sizeof (image_header); // offset from header to first dirent (here 0x5c or 92)
image_header.boot_ino[0] = image_kernel_ino; // inode of files for bootstrap p[ro?]g[ra?]ms (here 0xa0000002, 0, 0, 0)
image_header.script_ino = image_bootscript_ino; // inode of file for script (here 3)
image_header.mountpoint[0] = '/'; // default mountpoint for image ("/" + "\0\0\0")
ASSERT_WITH_ERRNO (Buffer_Append (&ifs.data, &image_header, sizeof (image_header))); // write image header
ASSERT_WITH_ERRNO (Buffer_PadWithZeroesTo (&ifs.data, ROUND_TO_UPPER_MULTIPLE (ifs.data.size, image_align))); // pad as necessary
// write image directory (with the wrong file offsets)
ifs.offsets.imagedir = ifs.data.size; // save image directory offset for future use
curr_offset = ifs.offsets.imagedir;
for (fsentry_index = 0; fsentry_index < fsentry_count; fsentry_index++)
{
Buffer_WriteIFSDirectoryEntryAt (&ifs.data, curr_offset, &fsentries[fsentry_index]); // write each dirent (the unknown fields will be fixed later)
curr_offset += fsentries[fsentry_index].header.size; // advance to the next one
}
ASSERT_WITH_ERRNO (Buffer_AppendByteArray (&ifs.data, "\0\0\0\0")); // there seems to be 4 bytes of padding after the image directory
imgdir_size = ifs.data.size - ifs.offsets.imagedir; // measure image dir size and save it for future use
// is it a bootable image with a startup file ?
if (startupfile_pathname != NULL)
{
// compute the kernel offset: address of the first page that comes after the directory entries
kernelfile_offset = ROUND_TO_UPPER_MULTIPLE (ifs.data.size, image_pagesize);
// write the filesystem entries that may fit before the kernel
for (;;)
{
available_space = kernelfile_offset - ifs.data.size; // measure the available space until the kernel
// look for the biggest one that can fit
largest_index = 0;
largest_size = 0;
for (fsentry_index = 1; fsentry_index < fsentry_count; fsentry_index++)
{
if (!S_ISREG (fsentries[fsentry_index].header.mode) || fsentries[fsentry_index].UNSAVED_was_data_written || (fsentries[fsentry_index].u.file.size > available_space))
continue; // skip all entries that don't have a separate data block, those who were written already and those that wouldn't fit
if (fsentries[fsentry_index].u.file.size > largest_size)
{
largest_size = fsentries[fsentry_index].u.file.size;
largest_index = fsentry_index;
}
}
if (largest_size == 0)
break; // found none ? if so, stop searching
fsentry_index = largest_index;
fsentries[fsentry_index].u.file.offset = (uint32_t) (ifs.data.size - ifs.offsets.imageheader); // save file data blob offset in file structure
Buffer_AppendIFSFileData (&ifs.data, &fsentries[fsentry_index]); // write file data
fsentries[fsentry_index].UNSAVED_was_data_written = true; // and remember this file's data was written
}
LOG_INFO ("Last written offset: 0x%zx", ifs.data.size);
LOG_INFO ("Kernel file offset: 0x%zx", kernelfile_offset);
ASSERT_WITH_ERRNO (Buffer_PadWithZeroesTo (&ifs.data, kernelfile_offset)); // reach the kernel offset
// now write the QNX kernel
for (fsentry_index = 1; fsentry_index < fsentry_count; fsentry_index++)
if (fsentries[fsentry_index].header.ino == image_kernel_ino)
break; // locate the kernel directory entry (can't fail)
fsentries[fsentry_index].u.file.offset = (uint32_t) (ifs.data.size - ifs.offsets.imageheader); // save file data blob offset in file structure
Buffer_AppendIFSFileData (&ifs.data, &fsentries[fsentry_index]); // write kernel file data
fsentries[fsentry_index].UNSAVED_was_data_written = true; // and remember this file's data was written
}
// then write all the other files by increasing inode number: ELF files first
for (fsentry_index = 1; fsentry_index < fsentry_count; fsentry_index++)
{
if (!S_ISREG (fsentries[fsentry_index].header.mode) || fsentries[fsentry_index].UNSAVED_was_data_written // filter out anything that's not a file, and anything that's been already written
|| (fsentries
[fsentry_index
].
u.
file.
size < 4) || (memcmp (fsentries
[fsentry_index
].
u.
file.
UNSAVED_databuf, ELF_MAGIC_STR
, 4) != 0)) // filter out anything that's not an ELF file
continue; // skip all entries that don't have a separate data block and those who were written already
fsentries[fsentry_index].u.file.offset = (uint32_t) (ifs.data.size - ifs.offsets.imageheader); // save file data blob offset in file structure
Buffer_AppendIFSFileData (&ifs.data, &fsentries[fsentry_index]); // write file data
fsentries[fsentry_index].UNSAVED_was_data_written = true; // and remember this file's data was written
}
// other files (non-ELF, e.g. scripts and data files) last, in decreasing size order
for (;;)
{
// look for the biggest one that can fit
largest_index = 0;
largest_size = 0;
for (fsentry_index = 1; fsentry_index < fsentry_count; fsentry_index++)
{
if (!S_ISREG (fsentries[fsentry_index].header.mode) || fsentries[fsentry_index].UNSAVED_was_data_written)
continue; // skip all entries that don't have a separate data block, those who were written already and those that wouldn't fit
if (fsentries[fsentry_index].u.file.size > largest_size)
{
largest_size = fsentries[fsentry_index].u.file.size;
largest_index = fsentry_index;
}
}
if (largest_size == 0)
break; // found none ? if so, stop searching
fsentry_index = largest_index;
fsentries[fsentry_index].u.file.offset = (uint32_t) (ifs.data.size - ifs.offsets.imageheader); // save file data blob offset in file structure
Buffer_AppendIFSFileData (&ifs.data, &fsentries[fsentry_index]); // write file data
fsentries[fsentry_index].UNSAVED_was_data_written = true; // and remember this file's data was written
}
ASSERT_WITH_ERRNO (Buffer_PadWithZeroesTo (&ifs.data, ROUND_TO_UPPER_MULTIPLE (ifs.data.size, image_align))); // pad as necessary
// finally, write trailer (including empty checksum)
ifs.offsets.imagetrailer = ifs.data.size; // save image trailer offset for future use
ASSERT_WITH_ERRNO (Buffer_Append (&ifs.data, &image_trailer, sizeof (image_trailer))); // write image trailer
ASSERT_WITH_ERRNO (Buffer_PadWithZeroesTo (&ifs.data, ROUND_TO_UPPER_MULTIPLE (ifs.data.size, image_align))); // pad as necessary
// if we need to pad it to a specific length, do so
ASSERT_WITH_ERRNO (Buffer_PadWithZeroesTo (&ifs.data, image_totalsize));
ifs.final_size = ifs.data.size; // and this is the final size of the IFS
// see if we are past the image max size, in which case it's an error
if (ifs.final_size > image_maxsize)
DIE_WITH_EXITCODE (1, "image file size %zd exceeds max size (%zd)", ifs.final_size, (size_t) image_maxsize);
// do we have a startup file ? if so, this is a bootable image
if (startupfile_pathname != NULL)
{
// patch the startup header with its final values
startup_header.startup_size = (uint32_t) (ifs.offsets.imageheader - ifs.offsets.startupheader); // size of startup header up to image header
startup_header.imagefs_size = (uint32_t) (ifs.final_size - ifs.offsets.imageheader); // size of uncompressed imagefs
startup_header.ram_size = (uint32_t) (ifs.final_size - ifs.offsets.startupheader);
startup_header.stored_size = (uint32_t) (ifs.final_size - ifs.offsets.startupheader);
ASSERT_WITH_ERRNO (Buffer_WriteAt (&ifs.data, ifs.offsets.startupheader, &startup_header, sizeof (startup_header))); // write the final startup header at its right offset
}
// rewrite image header with final values
image_header.image_size = (uint32_t) (ifs.final_size - ifs.offsets.imageheader); // size of uncompressed imagefs
image_header.hdr_dir_size = sizeof (image_header) + (uint32_t) imgdir_size; // size from start of image header to last dirent
ASSERT_WITH_ERRNO (Buffer_WriteAt (&ifs.data, ifs.offsets.imageheader, &image_header, sizeof (image_header))); // write image header
// rewrite image directory with final offset values
if (image_header.flags & IMAGE_FLAGS_SORTED)
qsort (&fsentries
[1], fsentry_count
- 1, sizeof (fsentry_t
), fsentry_compare_pathnames_cb
); // sort the filesystem entries by pathname if necessary
curr_offset = ifs.offsets.imagedir; // position ourselves at the beginning of the image directory
for (fsentry_index = 0; fsentry_index < fsentry_count; fsentry_index++)
{
Buffer_WriteIFSDirectoryEntryAt (&ifs.data, curr_offset, &fsentries[fsentry_index]); // rewrite each dirent
curr_offset += fsentries[fsentry_index].header.size; // advance to the next one
}
// ALL CHECKSUMS AT THE VERY END
// compute SHA-512 checksum and V1 checksum of image block
if ( ( (image_header.flags & IMAGE_FLAGS_BIGENDIAN) && (__BYTE_ORDER__ == __ORDER_LITTLE_ENDIAN__))
|| (!(image_header.flags & IMAGE_FLAGS_BIGENDIAN) && (__BYTE_ORDER__ == __ORDER_BIG_ENDIAN__ )))
is_foreign_endianness = true; // if the header is big endian and we're on a little endian machine, or the other way around, it's a foreign endianness
else
is_foreign_endianness = false; // else this header is for the same endianness as us
if (image_header.flags & IMAGE_FLAGS_TRAILER_V2) // is it a V2 trailer ?
{
SHA512 (&ifs.data.bytes[ifs.offsets.imageheader], ifs.offsets.imagetrailer - ifs.offsets.imageheader, &ifs.data.bytes[ifs.offsets.imagetrailer]); // compute SHA512 checksum and write it in place
checksum = update_checksum (&ifs.data.bytes[ifs.offsets.imageheader], ifs.offsets.imagetrailer + SHA512_DIGEST_LENGTH - ifs.offsets.imageheader, is_foreign_endianness); // compute old checksum
memcpy (&ifs.
data.
bytes[ifs.
offsets.
imagetrailer + SHA512_DIGEST_LENGTH
], &checksum
, 4); // and write it in place
}
else // old V1 trailer
{
checksum = update_checksum (&ifs.data.bytes[ifs.offsets.imageheader], ifs.offsets.imagetrailer - ifs.offsets.imageheader, is_foreign_endianness); // compute old checksum
memcpy (&ifs.
data.
bytes[ifs.
offsets.
imagetrailer], &checksum
, 4); // and write it in place
}
// should we compress the image block ?
if (startup_header_compression_flag != STARTUP_HDR_FLAGS1_COMPRESS_NONE)
{
// it appears mkifs compresses data in blocks, prefixed by 2-byte block size in BIG ENDIAN
Buffer_InitWithSize (&compressed_imagefs, image_header.image_size * 11 / 10); // mallocate and add 10% for safety
compressed_imagefs.size = 0;
compressor_in = &ifs.data.bytes[ifs.offsets.imageheader]; // point at the start of the data to compress
compressor_out = &compressed_imagefs.bytes[2]; // point after the compressed block size word
remaining_len = ifs.data.size - ifs.offsets.imageheader; // see how many bytes there are to compress
if (startup_header_compression_flag == STARTUP_HDR_FLAGS1_COMPRESS_UCL)
ASSERT (ucl_init () == UCL_E_OK, "UCL library initialization failed -- please recompile this tool with less aggressive optimizations");
else if (startup_header_compression_flag == STARTUP_HDR_FLAGS1_COMPRESS_LZO)
ASSERT (ucl_init () == UCL_E_OK, "LZO library initialization failed -- please recompile this tool with less aggressive optimizations");
else if (startup_header_compression_flag == STARTUP_HDR_FLAGS1_COMPRESS_ZLIB)
DIE_WITH_EXITCODE (1, "unimplemented compression scheme: zlib (FIXME)");
else
DIE_WITH_EXITCODE (1, "unsupported compression flags: 0x%2x", startup_header_compression_flag);
// run the compressible payload (the imagefs) through the right compression algorithm
while (remaining_len > 0)
{
compressor_inlen = (ucl_uint) remaining_len; // size the compressor input appropriately
if (compressor_inlen > 65536)
compressor_inlen = 65536; // cap it to a VERY conservative value
if (startup_header_compression_flag == STARTUP_HDR_FLAGS1_COMPRESS_UCL)
{
// UCL compression. NOTE: the decompressor function used in startup-x86 is "ucl_nrv2b_decompress_8". Also compression level is hardcoded at 9 in mkifs, but can range from 1 to 10
static ucl_uint ucl_outlen; // have a different variable because of pointer size mismatch
while (((compressor_ret = ucl_nrv2b_99_compress (compressor_in, (ucl_uint) compressor_inlen, compressor_out, &ucl_outlen, NULL, 10, NULL, NULL)) == UCL_E_OK) && (ucl_outlen > 0xFFFF))
compressor_inlen -= 4096; // as long as we can't produce compressed blocks whose size can fit in 2 bytes, try again with 4 Kb input less (this is hardcoded in mkifs, thus not CPU-specific)
ASSERT (compressor_ret == UCL_E_OK, "UCL compression error: ucl_nrv2b_99_compress() returned %d", compressor_ret); // make sure it's not a compression error
compressor_outlen = ucl_outlen; // cast back to size_t
}
else if (startup_header_compression_flag == STARTUP_HDR_FLAGS1_COMPRESS_LZO)
{
// LZO compression. NOTE: the compressor function used in mkifs is "lzo1x_999_compress" which is from the full LZO package... I use use minilzo, but I have to admit the compression ratio of the full LZO is *much* better.
static lzo_align_t lzo_workmem[(LZO1X_1_MEM_COMPRESS + (sizeof (lzo_align_t) - 1)) / sizeof(lzo_align_t)]; // heap-allocated aligned buffer
static lzo_uint lzo_outlen; // have a different variable because of pointer size mismatch
while (((compressor_ret = lzo1x_1_compress (compressor_in, compressor_inlen, compressor_out, &lzo_outlen, lzo_workmem)) == UCL_E_OK) && (lzo_outlen > 0xFFFF))
compressor_inlen -= 4096; // as long as we can't produce compressed blocks whose size can fit in 2 bytes, try again with 4 Kb input less (this is hardcoded in mkifs, thus not CPU-specific)
ASSERT (compressor_ret == LZO_E_OK, "LZO compression error: lzo1x_1_compress() returned %d", compressor_ret); // make sure it's not a compression error
compressor_outlen = lzo_outlen; // cast back to size_t
}
else if (startup_header_compression_flag == STARTUP_HDR_FLAGS1_COMPRESS_ZLIB)
{
// Zlib (TODO)
}
// the compression produced a block smaller than 65536 bytes
//LOG_DEBUG ("compressed block size %zd", compressor_outlen);
compressed_imagefs.bytes[compressed_imagefs.size + 0] = (uint8_t) (compressor_outlen >> 8); // write compressed block size word (in big endian)
compressed_imagefs.bytes[compressed_imagefs.size + 1] = (uint8_t) (compressor_outlen >> 0);
compressed_imagefs.size += 2 + (size_t) compressor_outlen; // advance in compression buffer by the compressed block size word plus the compressed block size
remaining_len -= compressor_inlen; // see how many bytes remain to compress
compressor_in += compressor_inlen; // advance in input stream
compressor_out += 2 + compressor_outlen; // advance in output stream
}
compressed_imagefs.bytes[compressed_imagefs.size + 0] = 0; // write the end of stream marker (empty block with nil size)
compressed_imagefs.bytes[compressed_imagefs.size + 1] = 0;
compressed_imagefs.size += 2;
LOG_INFO ("compressed %zd bytes into %zd bytes\n", ifs.data.size - ifs.offsets.imageheader, compressed_imagefs.size);
/////////////////////////////////////////////////////////////
// WARNING: ALL IFS OFFSETS BECOME INVALID PAST THIS POINT //
/////////////////////////////////////////////////////////////
// now place the compressed buffer in the payload at the imagefs offset
ASSERT_WITH_ERRNO (Buffer_WriteBufferAt (&ifs.data, ifs.offsets.imageheader, &compressed_imagefs));
ifs.data.size = ifs.offsets.imageheader + compressed_imagefs.size; // update IFS data size
Buffer_Forget (&compressed_imagefs);
// fix the stored size in the startup header
startup_header.stored_size = (uint32_t) (ifs.data.size - ifs.offsets.startupheader);
ASSERT_WITH_ERRNO (Buffer_WriteAt (&ifs.data, ifs.offsets.startupheader, &startup_header, sizeof (startup_header))); // write the final startup header at its right offset
}
// do we have a startup file ? if so, this is a bootable image
if (startupfile_pathname != NULL)
{
// compute SHA-512 checksum and V1 checksum of startup block
if ( ( (startup_header.flags1 & STARTUP_HDR_FLAGS1_BIGENDIAN) && (__BYTE_ORDER__ == __ORDER_LITTLE_ENDIAN__))
|| (!(startup_header.flags1 & STARTUP_HDR_FLAGS1_BIGENDIAN) && (__BYTE_ORDER__ == __ORDER_BIG_ENDIAN__ )))
is_foreign_endianness = true; // if the header is big endian and we're on a little endian machine, or the other way around, it's a foreign endianness
else
is_foreign_endianness = false; // else this header is for the same endianness as us
if (startup_header.flags1 & STARTUP_HDR_FLAGS1_TRAILER_V2) // is it a V2 trailer ?
{
SHA512 (&ifs.data.bytes[ifs.offsets.startupheader], ifs.offsets.startuptrailer - ifs.offsets.startupheader, &ifs.data.bytes[ifs.offsets.startuptrailer]); // compute SHA512 checksum and write it in place
checksum = update_checksum (&ifs.data.bytes[ifs.offsets.startupheader], ifs.offsets.startuptrailer + SHA512_DIGEST_LENGTH - ifs.offsets.startupheader, is_foreign_endianness); // compute old checksum
memcpy (&ifs.
data.
bytes[ifs.
offsets.
startuptrailer + SHA512_DIGEST_LENGTH
], &checksum
, 4); // and write it in place
}
else // old V1 trailer
{
checksum = update_checksum (&ifs.data.bytes[ifs.offsets.startupheader], ifs.offsets.startuptrailer - ifs.offsets.startupheader, is_foreign_endianness); // compute old checksum
memcpy (&ifs.
data.
bytes[ifs.
offsets.
startuptrailer], &checksum
, 4); // and write it in place
}
}
// now rewrite IFS with the correct checksums
ASSERT_WITH_ERRNO (Buffer_WriteToFile (&ifs.data, (ifs_pathname != NULL ? ifs_pathname : "<stdout>")));
// finished, cleanup
for (fsentry_index = 0; fsentry_index < fsentry_count; fsentry_index++)
{
fsentry = &fsentries[fsentry_index]; // quick access to filesystem entry
if (S_ISDIR (fsentry->header.mode))
free (fsentry
->u.
dir.
path);
else if (S_ISLNK (fsentry->header.mode))
{
free (fsentry
->u.
symlink.
path);
free (fsentry
->u.
symlink.
contents);
}
else if (S_ISREG (fsentry->header.mode))
{
free (fsentry
->u.
file.
path);
free (fsentry
->u.
file.
UNSAVED_databuf);
}
else if (S_ISFIFO (fsentry->header.mode))
free (fsentry
->u.
device.
path);
}
// and exit with a success code
LOG_INFO ("Success");
}