6c92f85d10
Bring the Nexus/Praxis/Hexis integration in line with MAVEN_ECOSYSTEM_ARCHITECTURE.md: - Praxis over HTTP: drop the in-process praxis.db open (praxisstore/ praxistools) and call praxisd's /api/v1/tools/* API via a new praxisClient. Honors the "no component reads another's DB" invariant (AC#12). PraxisConfig.DBPath -> URL. - Hexis confirmation gate: mutating capabilities (ReadOnly=false) now park a bound pendingHexis confirmation and require a spoken "да" before executing; read-only run immediately (AC#7, no auto attention->action). - Capability safety: >1 verb match is ambiguous -> ask instead of firing the first; ambiguous Nexus resolution asks for clarification (AC#2). - Correlation IDs on Hexis execute, recorded in the cross-service trace. - Bug: importance arrives as JSON float64 over HTTP, not int. - Tests: confirm-gate, decline, read-only, and ambiguity paths. Build: vendor/ bakes in the hexis client (replace-directed at a sibling repo outside the Docker context); Dockerfile builds from vendor and no longer `go mod download`s the unreachable replace paths. Co-Authored-By: Claude Opus 4.8 <noreply@anthropic.com>
175 lines
3.7 KiB
Go
175 lines
3.7 KiB
Go
// Copyright 2021 The Libc Authors. All rights reserved.
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// Use of this source code is governed by a BSD-style
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// license that can be found in the LICENSE file.
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//go:build !libc.membrk && !libc.memgrind && !(linux && (amd64 || arm64 || loong64 || ppc64le || s390x || riscv64 || 386 || arm))
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package libc // import "modernc.org/libc"
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import (
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"math"
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"math/bits"
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"modernc.org/libc/errno"
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"modernc.org/libc/sys/types"
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"modernc.org/memory"
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)
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const memgrind = false
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var (
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allocator memory.Allocator
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)
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// void *malloc(size_t size);
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func Xmalloc(t *TLS, n types.Size_t) uintptr {
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if __ccgo_strace {
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trc("t=%v n=%v, (%v:)", t, n, origin(2))
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}
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if n == 0 {
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// malloc(0) should return unique pointers
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// (often expected and gnulib replaces malloc if malloc(0) returns 0)
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n = 1
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}
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allocMu.Lock()
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defer allocMu.Unlock()
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p, err := allocator.UintptrMalloc(int(n))
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if err != nil {
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t.setErrno(errno.ENOMEM)
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return 0
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}
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return p
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}
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// void *calloc(size_t nmemb, size_t size);
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func Xcalloc(t *TLS, n, size types.Size_t) uintptr {
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if __ccgo_strace {
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trc("t=%v n=%v size=%v, (%v:)", t, n, size, origin(2))
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}
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hi, rq0 := bits.Mul(uint(n), uint(size))
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if hi != 0 || rq0 > math.MaxInt {
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t.setErrno(errno.ENOMEM)
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return 0
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}
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rq := int(rq0)
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if rq == 0 {
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rq = 1
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}
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allocMu.Lock()
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defer allocMu.Unlock()
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p, err := allocator.UintptrCalloc(rq)
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if err != nil {
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t.setErrno(errno.ENOMEM)
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return 0
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}
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return p
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}
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// void *realloc(void *ptr, size_t size);
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func Xrealloc(t *TLS, ptr uintptr, size types.Size_t) uintptr {
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if __ccgo_strace {
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trc("t=%v ptr=%v size=%v, (%v:)", t, ptr, size, origin(2))
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}
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allocMu.Lock()
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defer allocMu.Unlock()
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p, err := allocator.UintptrRealloc(ptr, int(size))
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if err != nil {
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t.setErrno(errno.ENOMEM)
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return 0
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}
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return p
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}
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// void free(void *ptr);
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func Xfree(t *TLS, p uintptr) {
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if __ccgo_strace {
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trc("t=%v p=%v, (%v:)", t, p, origin(2))
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}
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if p == 0 {
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return
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}
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allocMu.Lock()
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defer allocMu.Unlock()
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allocator.UintptrFree(p)
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}
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func Xmalloc_usable_size(tls *TLS, p uintptr) (r types.Size_t) {
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if __ccgo_strace {
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trc("tls=%v p=%v, (%v:)", tls, p, origin(2))
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defer func() { trc("-> %v", r) }()
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}
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if p == 0 {
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return 0
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}
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allocMu.Lock()
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defer allocMu.Unlock()
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return types.Size_t(memory.UintptrUsableSize(p))
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}
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func UsableSize(p uintptr) types.Size_t {
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allocMu.Lock()
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defer allocMu.Unlock()
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return types.Size_t(memory.UintptrUsableSize(p))
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}
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type MemAllocatorStat struct {
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Allocs int
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Bytes int
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Mmaps int
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}
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// MemStat returns the global memory allocator statistics.
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// should be compiled with the memory.counters build tag for the data to be available.
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func MemStat() MemAllocatorStat {
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allocMu.Lock()
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defer allocMu.Unlock()
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return MemAllocatorStat{
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Allocs: allocator.Allocs,
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Bytes: allocator.Bytes,
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Mmaps: allocator.Mmaps,
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}
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}
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// MemAuditStart locks the memory allocator, initializes and enables memory
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// auditing. Finaly it unlocks the memory allocator.
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//
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// Some memory handling errors, like double free or freeing of unallocated
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// memory, will panic when memory auditing is enabled.
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//
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// This memory auditing functionality has to be enabled using the libc.memgrind
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// build tag.
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//
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// It is intended only for debug/test builds. It slows down memory allocation
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// routines and it has additional memory costs.
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func MemAuditStart() {}
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// MemAuditReport locks the memory allocator, reports memory leaks, if any.
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// Finally it disables memory auditing and unlocks the memory allocator.
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//
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// This memory auditing functionality has to be enabled using the libc.memgrind
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// build tag.
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//
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// It is intended only for debug/test builds. It slows down memory allocation
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// routines and it has additional memory costs.
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func MemAuditReport() error { return nil }
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