Coverage Report

Created: 2025-06-10 06:58

/src/ghostpdl/psi/ireclaim.c
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Source (jump to first uncovered line)
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/* Copyright (C) 2001-2023 Artifex Software, Inc.
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   All Rights Reserved.
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   This software is provided AS-IS with no warranty, either express or
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   implied.
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   This software is distributed under license and may not be copied,
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   modified or distributed except as expressly authorized under the terms
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   of the license contained in the file LICENSE in this distribution.
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   Refer to licensing information at http://www.artifex.com or contact
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   Artifex Software, Inc.,  39 Mesa Street, Suite 108A, San Francisco,
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   CA 94129, USA, for further information.
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*/
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/* Interpreter's interface to garbage collector */
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#include "ghost.h"
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#include "ierrors.h"
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#include "gsstruct.h"
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#include "iastate.h"
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#include "icontext.h"
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#include "interp.h"
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#include "isave.h"    /* for isstate.h */
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#include "isstate.h"    /* for mem->saved->state */
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#include "dstack.h"   /* for dsbot, dsp, dict_set_top */
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#include "estack.h"   /* for esbot, esp */
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#include "ostack.h"   /* for osbot, osp */
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#include "opdef.h"    /* for defining init procedure */
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#include "store.h"    /* for make_array */
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/* Import preparation and cleanup routines. */
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extern void ialloc_gc_prepare(gs_ref_memory_t *);
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/* Forward references */
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static int gs_vmreclaim(gs_dual_memory_t *, bool);
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/* Initialize the GC hook in the allocator. */
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static int ireclaim(gs_dual_memory_t *, int);
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static int
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ireclaim_init(i_ctx_t *i_ctx_p)
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8.88k
{
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8.88k
    gs_imemory.reclaim = ireclaim;
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    return 0;
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}
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/* GC hook called when the allocator signals a GC is needed (space = -1), */
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/* or for vmreclaim (space = the space to collect). */
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static int
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ireclaim(gs_dual_memory_t * dmem, int space)
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17.9k
{
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    bool global;
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    gs_ref_memory_t *mem = NULL;
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    int code;
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    if (space < 0) {
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        /* Determine which allocator exceeded the limit. */
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143
        int i;
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        for (i = 0; i < countof(dmem->spaces_indexed); i++) {
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            mem = dmem->spaces_indexed[i];
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            if (mem == 0)
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                continue;
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            if (mem->gc_status.requested > 0 ||
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                ((gs_ref_memory_t *)mem->stable_memory)->gc_status.requested > 0
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                )
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                break;
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        }
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        if (!mem) {
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0
            mem = dmem->space_global; /* just in case */
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0
        }
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17.7k
    } else {
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17.7k
        mem = dmem->spaces_indexed[space >> r_space_shift];
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    }
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    if_debug3m('0', (gs_memory_t *)mem, "[0]GC called, space=%d, requestor=%d, requested=%ld\n",
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               space, mem->space, (long)mem->gc_status.requested);
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17.9k
    global = mem->space != avm_local;
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    /* Since dmem may move, reset the request now. */
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    ialloc_reset_requested(dmem);
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    code = gs_vmreclaim(dmem, global);
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    if (code < 0)
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0
        return code;
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    ialloc_set_limit(mem);
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    if (space < 0) {
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        gs_memory_status_t stats;
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        size_t allocated;
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        /* If the ammount still allocated after the GC is complete */
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        /* exceeds the max_vm setting, then return a VMerror       */
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        gs_memory_status((gs_memory_t *) mem, &stats);
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        allocated = stats.allocated;
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        if (mem->stable_memory != (gs_memory_t *)mem) {
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            gs_memory_status(mem->stable_memory, &stats);
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            allocated += stats.allocated;
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        }
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        if (allocated >= mem->gc_status.max_vm) {
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            /* We can't satisfy this request within max_vm. */
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0
            return_error(gs_error_VMerror);
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0
        }
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    }
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17.9k
    return 0;
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}
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/* Interpreter entry to garbage collector. */
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static int
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gs_vmreclaim(gs_dual_memory_t *dmem, bool global)
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{
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    /* HACK: we know the gs_dual_memory_t is embedded in a context state. */
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    i_ctx_t *i_ctx_p =
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        (i_ctx_t *)((char *)dmem - offset_of(i_ctx_t, memory));
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    gs_ref_memory_t *lmem = dmem->space_local;
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    int code = context_state_store(i_ctx_p);
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    gs_ref_memory_t *memories[5];
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    gs_ref_memory_t *mem;
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    int nmem, i;
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    if (code < 0)
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0
        return code;
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    memories[0] = dmem->space_system;
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    memories[1] = mem = dmem->space_global;
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    nmem = 2;
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    if (lmem != dmem->space_global)
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        memories[nmem++] = lmem;
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71.6k
    for (i = nmem; --i >= 0;) {
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        mem = memories[i];
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        if (mem->stable_memory != (gs_memory_t *)mem)
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            memories[nmem++] = (gs_ref_memory_t *)mem->stable_memory;
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    }
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    /****** ABORT IF code < 0 ******/
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    for (i = nmem; --i >= 0; )
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        alloc_close_clump(memories[i]);
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    /* Prune the file list so it won't retain potentially collectible */
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    /* files. */
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    for (i = (global ? i_vm_system : i_vm_local);
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71.3k
         i < countof(dmem->spaces_indexed);
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         ++i
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         ) {
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        gs_ref_memory_t *mem = dmem->spaces_indexed[i];
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        /* Always safe to substract 1 from i here, as i is always at
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         * least i_vm_system (1) or i_vm_local (2). */
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        if (mem == 0 || (mem == dmem->spaces_indexed[i - 1]))
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0
            continue;
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        if (mem->stable_memory != (gs_memory_t *)mem)
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            ialloc_gc_prepare((gs_ref_memory_t *)mem->stable_memory);
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71.8k
        for (;; mem = &mem->saved->state) {
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71.8k
            ialloc_gc_prepare(mem);
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71.8k
            if (mem->saved == 0)
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53.4k
                break;
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71.8k
        }
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53.4k
    }
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    /* Do the actual collection. */
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17.9k
    {
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        void *ctxp = i_ctx_p;
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17.9k
        gs_gc_root_t context_root, *r = &context_root;
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17.9k
        gs_register_struct_root((gs_memory_t *)lmem, &r,
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                                &ctxp, "i_ctx_p root");
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        GS_RECLAIM(&dmem->spaces, global);
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17.9k
        gs_unregister_root((gs_memory_t *)lmem, r, "i_ctx_p root");
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17.9k
        i_ctx_p = ctxp;
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        dmem = &i_ctx_p->memory;
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    }
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    /* Update caches not handled by context_state_load. */
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    *systemdict = *ref_stack_index(&d_stack, ref_stack_count(&d_stack) - 1);
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    /* Update the cached value pointers in names. */
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17.9k
    dicts_gc_cleanup();
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    /* Reopen the active clumps. */
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107k
    for (i = 0; i < nmem; ++i)
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89.5k
        alloc_open_clump(memories[i]);
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    /* Reload the context state.  Note this should be done
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       AFTER the clumps are reopened, since the context state
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       load could do allocations that must remain.
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       If it were done while the clumps were still closed,
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       we would lose those allocations when the clumps were opened */
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17.9k
    code = context_state_load(i_ctx_p);
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17.9k
    return code;
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}
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/* ------ Initialization procedure ------ */
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const op_def ireclaim_l2_op_defs[] =
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{
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    op_def_end(ireclaim_init)
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};