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author | Nick Alcock <nick.alcock@oracle.com> | 2020-11-20 13:34:04 +0000 |
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committer | Nick Alcock <nick.alcock@oracle.com> | 2020-11-20 13:34:08 +0000 |
commit | 1136c379718cb9f6a82e71029f86cd8cf70fa6be (patch) | |
tree | cf8b731e9ac18ffe88e28d7aedf87cbd9ea24ce6 /libctf/ctf-impl.h | |
parent | 3d16b64e28ab2cd7e69c0b31bc3ab1601891c969 (diff) | |
download | gdb-1136c379718cb9f6a82e71029f86cd8cf70fa6be.zip gdb-1136c379718cb9f6a82e71029f86cd8cf70fa6be.tar.gz gdb-1136c379718cb9f6a82e71029f86cd8cf70fa6be.tar.bz2 |
libctf: symbol type linking support
This adds facilities to write out the function info and data object
sections, which efficiently map from entries in the symbol table to
types. The write-side code is entirely new: the read-side code was
merely significantly changed and support for indexed tables added
(pointed to by the no-longer-unused cth_objtidxoff and cth_funcidxoff
header fields).
With this in place, you can use ctf_lookup_by_symbol to look up the
types of symbols of function and object type (and, as before, you can
use ctf_lookup_variable to look up types of file-scope variables not
present in the symbol table, as long as you know their name: but
variables that are also data objects are now found in the data object
section instead.)
(Compatible) file format change:
The CTF spec has always said that the function info section looks much
like the CTF_K_FUNCTIONs in the type section: an info word (including an
argument count) followed by a return type and N argument types. This
format is suboptimal: it means function symbols cannot be deduplicated
and it causes a lot of ugly code duplication in libctf. But
conveniently the compiler has never emitted this! Because it has always
emitted a rather different format that libctf has never accepted, we can
be sure that there are no instances of this function info section in the
wild, and can freely change its format without compatibility concerns or
a file format version bump. (And since it has never been emitted in any
code that generated any older file format version, either, we need keep
no code to read the format as specified at all!)
So the function info section is now specified as an array of uint32_t,
exactly like the object data section: each entry is a type ID in the
type section which must be of kind CTF_K_FUNCTION, the prototype of
this function.
This allows function types to be deduplicated and also correctly encodes
the fact that all functions declared in C really are types available to
the program: so they should be stored in the type section like all other
types. (In format v4, we will be able to represent the types of static
functions as well, but that really does require a file format change.)
We introduce a new header flag, CTF_F_NEWFUNCINFO, which is set if the
new function info format is in use. A sufficiently new compiler will
always set this flag. New libctf will always set this flag: old libctf
will refuse to open any CTF dicts that have this flag set. If the flag
is not set on a dict being read in, new libctf will disregard the
function info section. Format v4 will remove this flag (or, rather, the
flag has no meaning there and the bit position may be recycled for some
other purpose).
New API:
Symbol addition:
ctf_add_func_sym: Add a symbol with a given name and type. The
type must be of kind CTF_K_FUNCTION (a function
pointer). Internally this adds a name -> type
mapping to the ctf_funchash in the ctf_dict.
ctf_add_objt_sym: Add a symbol with a given name and type. The type
kind can be anything, including function pointers.
This adds to ctf_objthash.
These both treat symbols as name -> type mappings: the linker associates
symbol names with symbol indexes via the ctf_link_shuffle_syms callback,
which sets up the ctf_dynsyms/ctf_dynsymidx/ctf_dynsymmax fields in the
ctf_dict. Repeated relinks can add more symbols.
Variables that are also exposed as symbols are removed from the variable
section at serialization time.
CTF symbol type sections which have enough pads, defined by
CTF_INDEX_PAD_THRESHOLD (whether because they are in dicts with symbols
where most types are unknown, or in archive where most types are defined
in some child or parent dict, not in this specific dict) are sorted by
name rather than symidx and accompanied by an index which associates
each symbol type entry with a name: the existing ctf_lookup_by_symbol
will map symbol indexes to symbol names and look the names up in the
index automatically. (This is currently ELF-symbol-table-dependent, but
there is almost nothing specific to ELF in here and we can add support
for other symbol table formats easily).
The compiler also uses index sections to communicate the contents of
object file symbol tables without relying on any specific ordering of
symbols: it doesn't need to sort them, and libctf will detect an
unsorted index section via the absence of the new CTF_F_IDXSORTED header
flag, and sort it if needed.
Iteration:
ctf_symbol_next: Iterator which returns the types and names of symbols
one by one, either for function or data symbols.
This does not require any sorting: the ctf_link machinery uses it to
pull in all the compiler-provided symbols cheaply, but it is not
restricted to that use.
(Compatible) changes in API:
ctf_lookup_by_symbol: can now be called for object and function
symbols: never returns ECTF_NOTDATA (which is
now not thrown by anything, but is kept for
compatibility and because it is a plausible
error that we might start throwing again at some
later date).
Internally we also have changes to the ctf-string functionality so that
"external" strings (those where we track a string -> offset mapping, but
only write out an offset) can be consulted via the usual means
(ctf_strptr) before the strtab is written out. This is important
because ctf_link_add_linker_symbol can now be handed symbols named via
strtab offsets, and ctf_link_shuffle_syms must figure out their actual
names by looking in the external symtab we have just been fed by the
ctf_link_add_strtab callback, long before that strtab is written out.
include/ChangeLog
2020-11-20 Nick Alcock <nick.alcock@oracle.com>
* ctf-api.h (ctf_symbol_next): New.
(ctf_add_objt_sym): Likewise.
(ctf_add_func_sym): Likewise.
* ctf.h: Document new function info section format.
(CTF_F_NEWFUNCINFO): New.
(CTF_F_IDXSORTED): New.
(CTF_F_MAX): Adjust accordingly.
libctf/ChangeLog
2020-11-20 Nick Alcock <nick.alcock@oracle.com>
* ctf-impl.h (CTF_INDEX_PAD_THRESHOLD): New.
(_libctf_nonnull_): Likewise.
(ctf_in_flight_dynsym_t): New.
(ctf_dict_t) <ctf_funcidx_names>: Likewise.
<ctf_objtidx_names>: Likewise.
<ctf_nfuncidx>: Likewise.
<ctf_nobjtidx>: Likewise.
<ctf_funcidx_sxlate>: Likewise.
<ctf_objtidx_sxlate>: Likewise.
<ctf_objthash>: Likewise.
<ctf_funchash>: Likewise.
<ctf_dynsyms>: Likewise.
<ctf_dynsymidx>: Likewise.
<ctf_dynsymmax>: Likewise.
<ctf_in_flight_dynsym>: Likewise.
(struct ctf_next) <u.ctn_next>: Likewise.
(ctf_symtab_skippable): New prototype.
(ctf_add_funcobjt_sym): Likewise.
(ctf_dynhash_sort_by_name): Likewise.
(ctf_sym_to_elf64): Rename to...
(ctf_elf32_to_link_sym): ... this, and...
(ctf_elf64_to_link_sym): ... this.
* ctf-open.c (init_symtab): Check for lack of CTF_F_NEWFUNCINFO
flag, and presence of index sections. Refactor out
ctf_symtab_skippable and ctf_elf*_to_link_sym, and use them. Use
ctf_link_sym_t, not Elf64_Sym. Skip initializing objt or func
sxlate sections if corresponding index section is present. Adjust
for new func info section format.
(ctf_bufopen_internal): Add ctf_err_warn to corrupt-file error
handling. Report incorrect-length index sections. Always do an
init_symtab, even if there is no symtab section (there may be index
sections still).
(flip_objts): Adjust comment: func and objt sections are actually
identical in structure now, no need to caveat.
(ctf_dict_close): Free newly-added data structures.
* ctf-create.c (ctf_create): Initialize them.
(ctf_symtab_skippable): New, refactored out of
init_symtab, with st_nameidx_set check added.
(ctf_add_funcobjt_sym): New, add a function or object symbol to the
ctf_objthash or ctf_funchash, by name.
(ctf_add_objt_sym): Call it.
(ctf_add_func_sym): Likewise.
(symtypetab_delete_nonstatic_vars): New, delete vars also present as
data objects.
(CTF_SYMTYPETAB_EMIT_FUNCTION): New flag to symtypetab emitters:
this is a function emission, not a data object emission.
(CTF_SYMTYPETAB_EMIT_PAD): New flag to symtypetab emitters: emit
pads for symbols with no type (only set for unindexed sections).
(CTF_SYMTYPETAB_FORCE_INDEXED): New flag to symtypetab emitters:
always emit indexed.
(symtypetab_density): New, figure out section sizes.
(emit_symtypetab): New, emit a symtypetab.
(emit_symtypetab_index): New, emit a symtypetab index.
(ctf_serialize): Call them, emitting suitably sorted symtypetab
sections and indexes. Set suitable header flags. Copy over new
fields.
* ctf-hash.c (ctf_dynhash_sort_by_name): New, used to impose an
order on symtypetab index sections.
* ctf-link.c (ctf_add_type_mapping): Delete erroneous comment
relating to code that was never committed.
(ctf_link_one_variable): Improve variable name.
(check_sym): New, symtypetab analogue of check_variable.
(ctf_link_deduplicating_one_symtypetab): New.
(ctf_link_deduplicating_syms): Likewise.
(ctf_link_deduplicating): Call them.
(ctf_link_deduplicating_per_cu): Note that we don't call them in
this case (yet).
(ctf_link_add_strtab): Set the error on the fp correctly.
(ctf_link_add_linker_symbol): New (no longer a do-nothing stub), add
a linker symbol to the in-flight list.
(ctf_link_shuffle_syms): New (no longer a do-nothing stub), turn the
in-flight list into a mapping we can use, now its names are
resolvable in the external strtab.
* ctf-string.c (ctf_str_rollback_atom): Don't roll back atoms with
external strtab offsets.
(ctf_str_rollback): Adjust comment.
(ctf_str_write_strtab): Migrate ctf_syn_ext_strtab population from
writeout time...
(ctf_str_add_external): ... to string addition time.
* ctf-lookup.c (ctf_lookup_var_key_t): Rename to...
(ctf_lookup_idx_key_t): ... this, now we use it for syms too.
<clik_names>: New member, a name table.
(ctf_lookup_var): Adjust accordingly.
(ctf_lookup_variable): Likewise.
(ctf_lookup_by_id): Shuffle further up in the file.
(ctf_symidx_sort_arg_cb): New, callback for...
(sort_symidx_by_name): ... this new function to sort a symidx
found to be unsorted (likely originating from the compiler).
(ctf_symidx_sort): New, sort a symidx.
(ctf_lookup_symbol_name): Support dynamic symbols with indexes
provided by the linker. Use ctf_link_sym_t, not Elf64_Sym.
Check the parent if a child lookup fails.
(ctf_lookup_by_symbol): Likewise. Work for function symbols too.
(ctf_symbol_next): New, iterate over symbols with types (without
sorting).
(ctf_lookup_idx_name): New, bsearch for symbol names in indexes.
(ctf_try_lookup_indexed): New, attempt an indexed lookup.
(ctf_func_info): Reimplement in terms of ctf_lookup_by_symbol.
(ctf_func_args): Likewise.
(ctf_get_dict): Move...
* ctf-types.c (ctf_get_dict): ... here.
* ctf-util.c (ctf_sym_to_elf64): Re-express as...
(ctf_elf64_to_link_sym): ... this. Add new st_symidx field, and
st_nameidx_set (always 0, so st_nameidx can be ignored). Look in
the ELF strtab for names.
(ctf_elf32_to_link_sym): Likewise, for Elf32_Sym.
(ctf_next_destroy): Destroy ctf_next_t.u.ctn_next if need be.
* libctf.ver: Add ctf_symbol_next, ctf_add_objt_sym and
ctf_add_func_sym.
Diffstat (limited to 'libctf/ctf-impl.h')
-rw-r--r-- | libctf/ctf-impl.h | 62 |
1 files changed, 56 insertions, 6 deletions
diff --git a/libctf/ctf-impl.h b/libctf/ctf-impl.h index 0e09a45..62ea360 100644 --- a/libctf/ctf-impl.h +++ b/libctf/ctf-impl.h @@ -43,6 +43,15 @@ extern "C" { #endif +/* Tuning. */ + +/* The proportion of symtypetab entries which must be pads before we consider it + worthwhile to emit a symtypetab section as an index. Indexes cost time to + look up, but save space all told. Do not set to 1, since this will cause + indexes to be eschewed completely, even in child dicts, at considerable space + cost. */ +#define CTF_INDEX_PAD_THRESHOLD .75 + /* Compiler attributes. */ #if defined (__GNUC__) @@ -61,6 +70,7 @@ extern "C" #define _libctf_unlikely_(x) __builtin_expect ((x), 0) #define _libctf_unused_ __attribute__ ((__unused__)) #define _libctf_malloc_ __attribute__((__malloc__)) +#define _libctf_nonnull_ __attribute__((__nonnull__)) #else @@ -68,6 +78,7 @@ extern "C" #define _libctf_unlikely_(x) (x) #define _libctf_unused_ #define _libctf_malloc_ +#define _libctf_nonnull_ #define __extension__ #endif @@ -232,6 +243,14 @@ typedef struct ctf_str_atom_ref uint32_t *caf_ref; /* A single ref to this string. */ } ctf_str_atom_ref_t; +/* A single linker-provided symbol, during symbol addition, possibly before we + have been given external strtab refs. */ +typedef struct ctf_in_flight_dynsym +{ + ctf_list_t cid_list; /* List forward/back pointers. */ + ctf_link_sym_t cid_sym; /* The linker-known symbol. */ +} ctf_in_flight_dynsym_t; + /* The structure used as the key in a ctf_link_type_mapping. The value is a type index, not a type ID. */ @@ -380,11 +399,28 @@ struct ctf_dict unsigned char *ctf_dynbase; /* Freeable CTF file pointer. */ unsigned char *ctf_buf; /* Uncompressed CTF data buffer. */ size_t ctf_size; /* Size of CTF header + uncompressed data. */ - uint32_t *ctf_sxlate; /* Translation table for symtab entries. */ + uint32_t *ctf_sxlate; /* Translation table for unindexed symtypetab + entries. */ unsigned long ctf_nsyms; /* Number of entries in symtab xlate table. */ uint32_t *ctf_txlate; /* Translation table for type IDs. */ uint32_t *ctf_ptrtab; /* Translation table for pointer-to lookups. */ size_t ctf_ptrtab_len; /* Num types storable in ptrtab currently. */ + uint32_t *ctf_funcidx_names; /* Name of each function symbol in symtypetab + (if indexed). */ + uint32_t *ctf_objtidx_names; /* Likewise, for object symbols. */ + size_t ctf_nfuncidx; /* Number of funcidx entries. */ + uint32_t *ctf_funcidx_sxlate; /* Offsets into funcinfo for a given funcidx. */ + uint32_t *ctf_objtidx_sxlate; /* Likewise, for ctf_objtidx. */ + size_t ctf_nobjtidx; /* Number of objtidx entries. */ + ctf_dynhash_t *ctf_objthash; /* name -> type ID. */ + ctf_dynhash_t *ctf_funchash; /* name -> CTF_K_FUNCTION type ID. */ + + /* The next three are linker-derived state found in ctf_link targets only. */ + + ctf_dynhash_t *ctf_dynsyms; /* Symbol info from ctf_link_shuffle_syms. */ + ctf_link_sym_t **ctf_dynsymidx; /* Indexes ctf_dynsyms by symidx. */ + uint32_t ctf_dynsymmax; /* Maximum ctf_dynsym index. */ + ctf_list_t ctf_in_flight_dynsyms; /* Dynsyms during accumulation. */ struct ctf_varent *ctf_vars; /* Sorted variable->type mapping. */ unsigned long ctf_nvars; /* Number of variables in ctf_vars. */ unsigned long ctf_typemax; /* Maximum valid type ID number. */ @@ -494,7 +530,10 @@ struct ctf_next /* We can save space on this side of things by noting that a dictionary is either dynamic or not, as a whole, and a given iterator can only iterate over one kind of thing at once: so we can overlap the DTD and non-DTD - members, and the structure, variable and enum members, etc. */ + members, and the structure, variable and enum members, etc. + + Some of the _next iterators actually thunk down to another _next iterator + themselves, so one of the options in here is a _next iterator! */ union { const ctf_member_t *ctn_mp; @@ -502,6 +541,7 @@ struct ctf_next const ctf_dmdef_t *ctn_dmd; const ctf_enum_t *ctn_en; const ctf_dvdef_t *ctn_dvd; + ctf_next_t *ctn_next; ctf_next_hkv_t *ctn_sorted_hkv; void **ctn_hash_slot; } u; @@ -542,9 +582,9 @@ struct ctf_next #define LCTF_VBYTES(fp, kind, size, vlen) \ ((fp)->ctf_dictops->ctfo_get_vbytes(fp, kind, size, vlen)) -#define LCTF_CHILD 0x0001 /* CTF dict is a child */ -#define LCTF_RDWR 0x0002 /* CTF dict is writable */ -#define LCTF_DIRTY 0x0004 /* CTF dict has been modified */ +#define LCTF_CHILD 0x0001 /* CTF dict is a child. */ +#define LCTF_RDWR 0x0002 /* CTF dict is writable. */ +#define LCTF_DIRTY 0x0004 /* CTF dict has been modified. */ extern ctf_names_t *ctf_name_table (ctf_dict_t *, int); extern const ctf_type_t *ctf_lookup_by_id (ctf_dict_t **, ctf_id_t); @@ -552,6 +592,10 @@ extern ctf_id_t ctf_lookup_by_rawname (ctf_dict_t *, int, const char *); extern ctf_id_t ctf_lookup_by_rawhash (ctf_dict_t *, ctf_names_t *, const char *); extern void ctf_set_ctl_hashes (ctf_dict_t *); +extern int ctf_symtab_skippable (ctf_link_sym_t *sym); +extern int ctf_add_funcobjt_sym (ctf_dict_t *, int is_function, + const char *, ctf_id_t); + extern ctf_dict_t *ctf_get_dict (ctf_dict_t *fp, ctf_id_t type); typedef unsigned int (*ctf_hash_fun) (const void *ptr); @@ -598,6 +642,9 @@ extern void ctf_dynhash_iter_remove (ctf_dynhash_t *, ctf_hash_iter_remove_f, void *); extern void *ctf_dynhash_iter_find (ctf_dynhash_t *, ctf_hash_iter_find_f, void *); +extern int ctf_dynhash_sort_by_name (const ctf_next_hkv_t *, + const ctf_next_hkv_t *, + void * _libctf_unused_); extern int ctf_dynhash_next (ctf_dynhash_t *, ctf_next_t **, void **key, void **value); extern int ctf_dynhash_next_sorted (ctf_dynhash_t *, ctf_next_t **, @@ -721,7 +768,10 @@ extern void ctf_assert_fail_internal (ctf_dict_t *, const char *, size_t, const char *); extern const char *ctf_link_input_name (ctf_dict_t *); -extern Elf64_Sym *ctf_sym_to_elf64 (const Elf32_Sym *src, Elf64_Sym *dst); +extern ctf_link_sym_t *ctf_elf32_to_link_sym (ctf_dict_t *fp, ctf_link_sym_t *dst, + const Elf32_Sym *src, uint32_t symidx); +extern ctf_link_sym_t *ctf_elf64_to_link_sym (ctf_dict_t *fp, ctf_link_sym_t *dst, + const Elf64_Sym *src, uint32_t symidx); extern const char *ctf_lookup_symbol_name (ctf_dict_t *fp, unsigned long symidx); /* Variables, all underscore-prepended. */ |