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Previously, if you wanted anything besides C-string hash keys, you had to specify a custom hashing function to hash_create(). Nearly all such callers were specifying tag_hash or oid_hash; which is tedious, and rather error-prone, since a caller could easily miss the opportunity to optimize by using hash_uint32 when appropriate. Replace this with a design whereby callers using simple binary-data keys just specify HASH_BLOBS and don't need to mess with specific support functions. hash_create() itself will take care of optimizing when the key size is four bytes. This nets out saving a few hundred bytes of code space, and offers a measurable performance improvement in tidbitmap.c (which was not exploiting the opportunity to use hash_uint32 for its 4-byte keys). There might be some wins elsewhere too, I didn't analyze closely. In future we could look into offering a similar optimized hashing function for 8-byte keys. Under this design that could be done in a centralized and machine-independent fashion, whereas getting it right for keys of platform-dependent sizes would've been notationally painful before. For the moment, the old way still works fine, so as not to break source code compatibility for loadable modules. Eventually we might want to remove tag_hash and friends from the exported API altogether, since there's no real need for them to be explicitly referenced from outside dynahash.c. Teodor Sigaev and Tom Lane
534 lines
13 KiB
C
534 lines
13 KiB
C
/*
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* Python procedure manipulation for plpython
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*
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* src/pl/plpython/plpy_procedure.c
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*/
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#include "postgres.h"
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#include "access/htup_details.h"
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#include "access/transam.h"
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#include "funcapi.h"
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#include "catalog/pg_proc.h"
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#include "catalog/pg_type.h"
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#include "utils/builtins.h"
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#include "utils/hsearch.h"
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#include "utils/syscache.h"
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#include "plpython.h"
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#include "plpy_procedure.h"
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#include "plpy_elog.h"
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#include "plpy_main.h"
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static HTAB *PLy_procedure_cache = NULL;
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static PLyProcedure *PLy_procedure_create(HeapTuple procTup, Oid fn_oid, bool is_trigger);
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static bool PLy_procedure_argument_valid(PLyTypeInfo *arg);
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static bool PLy_procedure_valid(PLyProcedure *proc, HeapTuple procTup);
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static char *PLy_procedure_munge_source(const char *name, const char *src);
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void
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init_procedure_caches(void)
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{
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HASHCTL hash_ctl;
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memset(&hash_ctl, 0, sizeof(hash_ctl));
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hash_ctl.keysize = sizeof(PLyProcedureKey);
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hash_ctl.entrysize = sizeof(PLyProcedureEntry);
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PLy_procedure_cache = hash_create("PL/Python procedures", 32, &hash_ctl,
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HASH_ELEM | HASH_BLOBS);
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}
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/*
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* Get the name of the last procedure called by the backend (the
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* innermost, if a plpython procedure call calls the backend and the
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* backend calls another plpython procedure).
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*
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* NB: this returns the SQL name, not the internal Python procedure name
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*/
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char *
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PLy_procedure_name(PLyProcedure *proc)
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{
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if (proc == NULL)
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return "<unknown procedure>";
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return proc->proname;
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}
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/*
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* PLy_procedure_get: returns a cached PLyProcedure, or creates, stores and
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* returns a new PLyProcedure.
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*
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* fn_oid is the OID of the function requested
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* fn_rel is InvalidOid or the relation this function triggers on
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* is_trigger denotes whether the function is a trigger function
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*
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* The reason that both fn_rel and is_trigger need to be passed is that when
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* trigger functions get validated we don't know which relation(s) they'll
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* be used with, so no sensible fn_rel can be passed.
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*/
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PLyProcedure *
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PLy_procedure_get(Oid fn_oid, Oid fn_rel, bool is_trigger)
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{
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bool use_cache = !(is_trigger && fn_rel == InvalidOid);
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HeapTuple procTup;
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PLyProcedureKey key;
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PLyProcedureEntry *volatile entry = NULL;
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PLyProcedure *volatile proc = NULL;
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bool found = false;
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procTup = SearchSysCache1(PROCOID, ObjectIdGetDatum(fn_oid));
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if (!HeapTupleIsValid(procTup))
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elog(ERROR, "cache lookup failed for function %u", fn_oid);
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/*
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* Look for the function in the cache, unless we don't have the necessary
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* information (e.g. during validation). In that case we just don't cache
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* anything.
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*/
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if (use_cache)
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{
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key.fn_oid = fn_oid;
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key.fn_rel = fn_rel;
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entry = hash_search(PLy_procedure_cache, &key, HASH_ENTER, &found);
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proc = entry->proc;
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}
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PG_TRY();
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{
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if (!found)
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{
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/* Haven't found it, create a new procedure */
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proc = PLy_procedure_create(procTup, fn_oid, is_trigger);
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if (use_cache)
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entry->proc = proc;
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}
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else if (!PLy_procedure_valid(proc, procTup))
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{
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/* Found it, but it's invalid, free and reuse the cache entry */
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PLy_procedure_delete(proc);
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PLy_free(proc);
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proc = PLy_procedure_create(procTup, fn_oid, is_trigger);
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entry->proc = proc;
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}
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/* Found it and it's valid, it's fine to use it */
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}
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PG_CATCH();
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{
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/* Do not leave an uninitialised entry in the cache */
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if (use_cache)
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hash_search(PLy_procedure_cache, &key, HASH_REMOVE, NULL);
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PG_RE_THROW();
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}
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PG_END_TRY();
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ReleaseSysCache(procTup);
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return proc;
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}
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/*
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* Create a new PLyProcedure structure
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*/
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static PLyProcedure *
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PLy_procedure_create(HeapTuple procTup, Oid fn_oid, bool is_trigger)
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{
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char procName[NAMEDATALEN + 256];
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Form_pg_proc procStruct;
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PLyProcedure *volatile proc;
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char *volatile procSource = NULL;
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Datum prosrcdatum;
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bool isnull;
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int i,
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rv;
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procStruct = (Form_pg_proc) GETSTRUCT(procTup);
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rv = snprintf(procName, sizeof(procName),
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"__plpython_procedure_%s_%u",
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NameStr(procStruct->proname),
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fn_oid);
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if (rv >= sizeof(procName) || rv < 0)
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elog(ERROR, "procedure name would overrun buffer");
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proc = PLy_malloc(sizeof(PLyProcedure));
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proc->proname = PLy_strdup(NameStr(procStruct->proname));
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proc->pyname = PLy_strdup(procName);
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proc->fn_xmin = HeapTupleHeaderGetRawXmin(procTup->t_data);
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proc->fn_tid = procTup->t_self;
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/* Remember if function is STABLE/IMMUTABLE */
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proc->fn_readonly =
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(procStruct->provolatile != PROVOLATILE_VOLATILE);
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PLy_typeinfo_init(&proc->result);
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for (i = 0; i < FUNC_MAX_ARGS; i++)
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PLy_typeinfo_init(&proc->args[i]);
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proc->nargs = 0;
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proc->code = proc->statics = NULL;
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proc->globals = NULL;
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proc->is_setof = procStruct->proretset;
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proc->setof = NULL;
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proc->src = NULL;
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proc->argnames = NULL;
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PG_TRY();
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{
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/*
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* get information required for output conversion of the return value,
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* but only if this isn't a trigger.
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*/
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if (!is_trigger)
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{
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HeapTuple rvTypeTup;
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Form_pg_type rvTypeStruct;
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rvTypeTup = SearchSysCache1(TYPEOID,
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ObjectIdGetDatum(procStruct->prorettype));
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if (!HeapTupleIsValid(rvTypeTup))
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elog(ERROR, "cache lookup failed for type %u",
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procStruct->prorettype);
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rvTypeStruct = (Form_pg_type) GETSTRUCT(rvTypeTup);
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/* Disallow pseudotype result, except for void or record */
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if (rvTypeStruct->typtype == TYPTYPE_PSEUDO)
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{
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if (procStruct->prorettype == TRIGGEROID)
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ereport(ERROR,
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(errcode(ERRCODE_FEATURE_NOT_SUPPORTED),
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errmsg("trigger functions can only be called as triggers")));
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else if (procStruct->prorettype != VOIDOID &&
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procStruct->prorettype != RECORDOID)
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ereport(ERROR,
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(errcode(ERRCODE_FEATURE_NOT_SUPPORTED),
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errmsg("PL/Python functions cannot return type %s",
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format_type_be(procStruct->prorettype))));
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}
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if (rvTypeStruct->typtype == TYPTYPE_COMPOSITE ||
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procStruct->prorettype == RECORDOID)
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{
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/*
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* Tuple: set up later, during first call to
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* PLy_function_handler
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*/
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proc->result.out.d.typoid = procStruct->prorettype;
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proc->result.out.d.typmod = -1;
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proc->result.is_rowtype = 2;
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}
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else
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{
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/* do the real work */
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PLy_output_datum_func(&proc->result, rvTypeTup);
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}
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ReleaseSysCache(rvTypeTup);
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}
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/*
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* Now get information required for input conversion of the
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* procedure's arguments. Note that we ignore output arguments here.
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* If the function returns record, those I/O functions will be set up
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* when the function is first called.
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*/
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if (procStruct->pronargs)
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{
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Oid *types;
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char **names,
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*modes;
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int i,
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pos,
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total;
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/* extract argument type info from the pg_proc tuple */
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total = get_func_arg_info(procTup, &types, &names, &modes);
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/* count number of in+inout args into proc->nargs */
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if (modes == NULL)
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proc->nargs = total;
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else
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{
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/* proc->nargs was initialized to 0 above */
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for (i = 0; i < total; i++)
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{
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if (modes[i] != PROARGMODE_OUT &&
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modes[i] != PROARGMODE_TABLE)
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(proc->nargs)++;
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}
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}
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proc->argnames = (char **) PLy_malloc0(sizeof(char *) * proc->nargs);
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for (i = pos = 0; i < total; i++)
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{
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HeapTuple argTypeTup;
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Form_pg_type argTypeStruct;
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if (modes &&
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(modes[i] == PROARGMODE_OUT ||
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modes[i] == PROARGMODE_TABLE))
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continue; /* skip OUT arguments */
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Assert(types[i] == procStruct->proargtypes.values[pos]);
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argTypeTup = SearchSysCache1(TYPEOID,
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ObjectIdGetDatum(types[i]));
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if (!HeapTupleIsValid(argTypeTup))
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elog(ERROR, "cache lookup failed for type %u", types[i]);
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argTypeStruct = (Form_pg_type) GETSTRUCT(argTypeTup);
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/* check argument type is OK, set up I/O function info */
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switch (argTypeStruct->typtype)
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{
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case TYPTYPE_PSEUDO:
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/* Disallow pseudotype argument */
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ereport(ERROR,
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(errcode(ERRCODE_FEATURE_NOT_SUPPORTED),
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errmsg("PL/Python functions cannot accept type %s",
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format_type_be(types[i]))));
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break;
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case TYPTYPE_COMPOSITE:
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/* we'll set IO funcs at first call */
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proc->args[pos].is_rowtype = 2;
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break;
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default:
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PLy_input_datum_func(&(proc->args[pos]),
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types[i],
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argTypeTup);
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break;
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}
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/* get argument name */
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proc->argnames[pos] = names ? PLy_strdup(names[i]) : NULL;
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ReleaseSysCache(argTypeTup);
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pos++;
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}
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}
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/*
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* get the text of the function.
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*/
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prosrcdatum = SysCacheGetAttr(PROCOID, procTup,
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Anum_pg_proc_prosrc, &isnull);
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if (isnull)
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elog(ERROR, "null prosrc");
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procSource = TextDatumGetCString(prosrcdatum);
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PLy_procedure_compile(proc, procSource);
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pfree(procSource);
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procSource = NULL;
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}
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PG_CATCH();
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{
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PLy_procedure_delete(proc);
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if (procSource)
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pfree(procSource);
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PG_RE_THROW();
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}
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PG_END_TRY();
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return proc;
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}
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/*
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* Insert the procedure into the Python interpreter
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*/
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void
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PLy_procedure_compile(PLyProcedure *proc, const char *src)
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{
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PyObject *crv = NULL;
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char *msrc;
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proc->globals = PyDict_Copy(PLy_interp_globals);
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/*
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* SD is private preserved data between calls. GD is global data shared by
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* all functions
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*/
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proc->statics = PyDict_New();
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PyDict_SetItemString(proc->globals, "SD", proc->statics);
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/*
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* insert the function code into the interpreter
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*/
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msrc = PLy_procedure_munge_source(proc->pyname, src);
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/* Save the mangled source for later inclusion in tracebacks */
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proc->src = PLy_strdup(msrc);
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crv = PyRun_String(msrc, Py_file_input, proc->globals, NULL);
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pfree(msrc);
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if (crv != NULL)
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{
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int clen;
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char call[NAMEDATALEN + 256];
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Py_DECREF(crv);
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/*
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* compile a call to the function
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*/
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clen = snprintf(call, sizeof(call), "%s()", proc->pyname);
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if (clen < 0 || clen >= sizeof(call))
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elog(ERROR, "string would overflow buffer");
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proc->code = Py_CompileString(call, "<string>", Py_eval_input);
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if (proc->code != NULL)
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return;
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}
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if (proc->proname)
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PLy_elog(ERROR, "could not compile PL/Python function \"%s\"",
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proc->proname);
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else
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PLy_elog(ERROR, "could not compile anonymous PL/Python code block");
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}
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void
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PLy_procedure_delete(PLyProcedure *proc)
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{
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int i;
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Py_XDECREF(proc->code);
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Py_XDECREF(proc->statics);
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Py_XDECREF(proc->globals);
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if (proc->proname)
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PLy_free(proc->proname);
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if (proc->pyname)
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PLy_free(proc->pyname);
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for (i = 0; i < proc->nargs; i++)
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{
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if (proc->args[i].is_rowtype == 1)
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{
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if (proc->args[i].in.r.atts)
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PLy_free(proc->args[i].in.r.atts);
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if (proc->args[i].out.r.atts)
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PLy_free(proc->args[i].out.r.atts);
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}
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if (proc->argnames && proc->argnames[i])
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PLy_free(proc->argnames[i]);
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}
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if (proc->src)
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PLy_free(proc->src);
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if (proc->argnames)
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PLy_free(proc->argnames);
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}
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/*
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* Check if our cached information about a datatype is still valid
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*/
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static bool
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PLy_procedure_argument_valid(PLyTypeInfo *arg)
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{
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HeapTuple relTup;
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bool valid;
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/* Nothing to cache unless type is composite */
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if (arg->is_rowtype != 1)
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return true;
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/*
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* Zero typ_relid means that we got called on an output argument of a
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* function returning a unnamed record type; the info for it can't change.
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*/
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if (!OidIsValid(arg->typ_relid))
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return true;
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/* Else we should have some cached data */
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Assert(TransactionIdIsValid(arg->typrel_xmin));
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Assert(ItemPointerIsValid(&arg->typrel_tid));
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/* Get the pg_class tuple for the data type */
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relTup = SearchSysCache1(RELOID, ObjectIdGetDatum(arg->typ_relid));
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if (!HeapTupleIsValid(relTup))
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elog(ERROR, "cache lookup failed for relation %u", arg->typ_relid);
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/* If it has changed, the cached data is not valid */
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valid = (arg->typrel_xmin == HeapTupleHeaderGetRawXmin(relTup->t_data) &&
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ItemPointerEquals(&arg->typrel_tid, &relTup->t_self));
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ReleaseSysCache(relTup);
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return valid;
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}
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/*
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* Decide whether a cached PLyProcedure struct is still valid
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*/
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static bool
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PLy_procedure_valid(PLyProcedure *proc, HeapTuple procTup)
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{
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int i;
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bool valid;
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Assert(proc != NULL);
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/* If the pg_proc tuple has changed, it's not valid */
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if (!(proc->fn_xmin == HeapTupleHeaderGetRawXmin(procTup->t_data) &&
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ItemPointerEquals(&proc->fn_tid, &procTup->t_self)))
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return false;
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/* Else check the input argument datatypes */
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valid = true;
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for (i = 0; i < proc->nargs; i++)
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{
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valid = PLy_procedure_argument_valid(&proc->args[i]);
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/* Short-circuit on first changed argument */
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if (!valid)
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break;
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}
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/* if the output type is composite, it might have changed */
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if (valid)
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valid = PLy_procedure_argument_valid(&proc->result);
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return valid;
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}
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static char *
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PLy_procedure_munge_source(const char *name, const char *src)
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{
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char *mrc,
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*mp;
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const char *sp;
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size_t mlen;
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int plen;
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/*
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* room for function source and the def statement
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*/
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mlen = (strlen(src) * 2) + strlen(name) + 16;
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mrc = palloc(mlen);
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plen = snprintf(mrc, mlen, "def %s():\n\t", name);
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Assert(plen >= 0 && plen < mlen);
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sp = src;
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mp = mrc + plen;
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while (*sp != '\0')
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{
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if (*sp == '\r' && *(sp + 1) == '\n')
|
|
sp++;
|
|
|
|
if (*sp == '\n' || *sp == '\r')
|
|
{
|
|
*mp++ = '\n';
|
|
*mp++ = '\t';
|
|
sp++;
|
|
}
|
|
else
|
|
*mp++ = *sp++;
|
|
}
|
|
*mp++ = '\n';
|
|
*mp++ = '\n';
|
|
*mp = '\0';
|
|
|
|
if (mp > (mrc + mlen))
|
|
elog(FATAL, "buffer overrun in PLy_munge_source");
|
|
|
|
return mrc;
|
|
}
|