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https://github.com/netbirdio/gvisor.git
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545 lines
14 KiB
Go
545 lines
14 KiB
Go
// Copyright 2018 The gVisor Authors.
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//
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// Licensed under the Apache License, Version 2.0 (the "License");
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// you may not use this file except in compliance with the License.
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// You may obtain a copy of the License at
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//
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// http://www.apache.org/licenses/LICENSE-2.0
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//
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// Unless required by applicable law or agreed to in writing, software
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// distributed under the License is distributed on an "AS IS" BASIS,
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// WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
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// See the License for the specific language governing permissions and
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// limitations under the License.
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package linux
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import (
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"gvisor.dev/gvisor/pkg/bits"
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"gvisor.dev/gvisor/pkg/hostarch"
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)
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const (
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// SignalMaximum is the highest valid signal number.
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SignalMaximum = 64
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// FirstStdSignal is the lowest standard signal number.
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FirstStdSignal = 1
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// LastStdSignal is the highest standard signal number.
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LastStdSignal = 31
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// FirstRTSignal is the lowest real-time signal number.
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//
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// 32 (SIGCANCEL) and 33 (SIGSETXID) are used internally by glibc.
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FirstRTSignal = 32
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// LastRTSignal is the highest real-time signal number.
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LastRTSignal = 64
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// NumStdSignals is the number of standard signals.
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NumStdSignals = LastStdSignal - FirstStdSignal + 1
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// NumRTSignals is the number of realtime signals.
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NumRTSignals = LastRTSignal - FirstRTSignal + 1
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)
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// Signal is a signal number.
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type Signal int
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// IsValid returns true if s is a valid standard or realtime signal. (0 is not
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// considered valid; interfaces special-casing signal number 0 should check for
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// 0 first before asserting validity.)
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func (s Signal) IsValid() bool {
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return s > 0 && s <= SignalMaximum
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}
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// IsStandard returns true if s is a standard signal.
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//
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// Preconditions: s.IsValid().
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func (s Signal) IsStandard() bool {
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return s <= LastStdSignal
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}
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// IsRealtime returns true if s is a realtime signal.
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//
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// Preconditions: s.IsValid().
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func (s Signal) IsRealtime() bool {
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return s >= FirstRTSignal
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}
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// Index returns the index for signal s into arrays of both standard and
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// realtime signals (e.g. signal masks).
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//
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// Preconditions: s.IsValid().
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func (s Signal) Index() int {
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return int(s - 1)
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}
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// Signals.
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const (
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SIGABRT = Signal(6)
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SIGALRM = Signal(14)
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SIGBUS = Signal(7)
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SIGCHLD = Signal(17)
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SIGCLD = Signal(17)
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SIGCONT = Signal(18)
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SIGFPE = Signal(8)
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SIGHUP = Signal(1)
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SIGILL = Signal(4)
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SIGINT = Signal(2)
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SIGIO = Signal(29)
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SIGIOT = Signal(6)
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SIGKILL = Signal(9)
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SIGPIPE = Signal(13)
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SIGPOLL = Signal(29)
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SIGPROF = Signal(27)
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SIGPWR = Signal(30)
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SIGQUIT = Signal(3)
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SIGSEGV = Signal(11)
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SIGSTKFLT = Signal(16)
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SIGSTOP = Signal(19)
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SIGSYS = Signal(31)
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SIGTERM = Signal(15)
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SIGTRAP = Signal(5)
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SIGTSTP = Signal(20)
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SIGTTIN = Signal(21)
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SIGTTOU = Signal(22)
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SIGUNUSED = Signal(31)
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SIGURG = Signal(23)
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SIGUSR1 = Signal(10)
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SIGUSR2 = Signal(12)
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SIGVTALRM = Signal(26)
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SIGWINCH = Signal(28)
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SIGXCPU = Signal(24)
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SIGXFSZ = Signal(25)
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)
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// SignalSet is a signal mask with a bit corresponding to each signal.
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//
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// +marshal
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type SignalSet uint64
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// SignalSetSize is the size in bytes of a SignalSet.
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const SignalSetSize = 8
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// MakeSignalSet returns SignalSet with the bit corresponding to each of the
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// given signals set.
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func MakeSignalSet(sigs ...Signal) SignalSet {
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indices := make([]int, len(sigs))
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for i, sig := range sigs {
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indices[i] = sig.Index()
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}
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return SignalSet(bits.Mask64(indices...))
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}
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// SignalSetOf returns a SignalSet with a single signal set.
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func SignalSetOf(sig Signal) SignalSet {
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return SignalSet(bits.MaskOf64(sig.Index()))
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}
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// ForEachSignal invokes f for each signal set in the given mask.
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func ForEachSignal(mask SignalSet, f func(sig Signal)) {
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bits.ForEachSetBit64(uint64(mask), func(i int) {
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f(Signal(i + 1))
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})
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}
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// 'how' values for rt_sigprocmask(2).
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const (
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// SIG_BLOCK blocks the signals in the set.
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SIG_BLOCK = 0
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// SIG_UNBLOCK blocks the signals in the set.
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SIG_UNBLOCK = 1
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// SIG_SETMASK sets the signal mask to set.
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SIG_SETMASK = 2
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)
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// Signal actions for rt_sigaction(2), from uapi/asm-generic/signal-defs.h.
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const (
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// SIG_DFL performs the default action.
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SIG_DFL = 0
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// SIG_IGN ignores the signal.
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SIG_IGN = 1
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)
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// Signal action flags for rt_sigaction(2), from uapi/asm-generic/signal.h.
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const (
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SA_NOCLDSTOP = 0x00000001
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SA_NOCLDWAIT = 0x00000002
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SA_SIGINFO = 0x00000004
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SA_RESTORER = 0x04000000
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SA_ONSTACK = 0x08000000
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SA_RESTART = 0x10000000
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SA_NODEFER = 0x40000000
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SA_RESETHAND = 0x80000000
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SA_NOMASK = SA_NODEFER
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SA_ONESHOT = SA_RESETHAND
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)
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// Signal stack flags for signalstack(2), from include/uapi/linux/signal.h.
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const (
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SS_ONSTACK = 1
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SS_DISABLE = 2
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)
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// SIGPOLL si_codes.
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const (
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// SI_POLL is defined as __SI_POLL in Linux 2.6.
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SI_POLL = 2 << 16
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// POLL_IN indicates that data input available.
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POLL_IN = SI_POLL | 1
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// POLL_OUT indicates that output buffers available.
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POLL_OUT = SI_POLL | 2
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// POLL_MSG indicates that an input message available.
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POLL_MSG = SI_POLL | 3
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// POLL_ERR indicates that there was an i/o error.
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POLL_ERR = SI_POLL | 4
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// POLL_PRI indicates that a high priority input available.
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POLL_PRI = SI_POLL | 5
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// POLL_HUP indicates that a device disconnected.
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POLL_HUP = SI_POLL | 6
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)
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// Possible values for si_code.
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const (
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// SI_USER is sent by kill, sigsend, raise.
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SI_USER = 0
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// SI_KERNEL is sent by the kernel from somewhere.
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SI_KERNEL = 0x80
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// SI_QUEUE is sent by sigqueue.
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SI_QUEUE = -1
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// SI_TIMER is sent by timer expiration.
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SI_TIMER = -2
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// SI_MESGQ is sent by real time mesq state change.
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SI_MESGQ = -3
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// SI_ASYNCIO is sent by AIO completion.
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SI_ASYNCIO = -4
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// SI_SIGIO is sent by queued SIGIO.
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SI_SIGIO = -5
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// SI_TKILL is sent by tkill system call.
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SI_TKILL = -6
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// SI_DETHREAD is sent by execve() killing subsidiary threads.
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SI_DETHREAD = -7
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// SI_ASYNCNL is sent by glibc async name lookup completion.
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SI_ASYNCNL = -60
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)
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// CLD_* codes are only meaningful for SIGCHLD.
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const (
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// CLD_EXITED indicates that a task exited.
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CLD_EXITED = 1
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// CLD_KILLED indicates that a task was killed by a signal.
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CLD_KILLED = 2
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// CLD_DUMPED indicates that a task was killed by a signal and then dumped
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// core.
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CLD_DUMPED = 3
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// CLD_TRAPPED indicates that a task was stopped by ptrace.
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CLD_TRAPPED = 4
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// CLD_STOPPED indicates that a thread group completed a group stop.
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CLD_STOPPED = 5
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// CLD_CONTINUED indicates that a group-stopped thread group was continued.
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CLD_CONTINUED = 6
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)
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// SYS_* codes are only meaningful for SIGSYS.
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const (
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// SYS_SECCOMP indicates that a signal originates from seccomp.
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SYS_SECCOMP = 1
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)
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// Possible values for Sigevent.Notify, aka struct sigevent::sigev_notify.
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const (
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SIGEV_SIGNAL = 0
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SIGEV_NONE = 1
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SIGEV_THREAD = 2
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SIGEV_THREAD_ID = 4
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)
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// Sigevent represents struct sigevent.
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//
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// +marshal
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type Sigevent struct {
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Value uint64 // union sigval {int, void*}
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Signo int32
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Notify int32
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// struct sigevent here contains 48-byte union _sigev_un. However, only
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// member _tid is significant to the kernel.
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Tid int32
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UnRemainder [44]byte
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}
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// SigAction represents struct sigaction.
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//
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// +marshal
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// +stateify savable
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type SigAction struct {
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Handler uint64
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Flags uint64
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Restorer uint64
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Mask SignalSet
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}
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// SignalStack represents information about a user stack, and is equivalent to
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// stack_t.
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//
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// +marshal
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// +stateify savable
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type SignalStack struct {
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Addr uint64
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Flags uint32
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_ uint32
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Size uint64
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}
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// Contains checks if the stack pointer is within this stack.
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func (s *SignalStack) Contains(sp hostarch.Addr) bool {
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return hostarch.Addr(s.Addr) < sp && sp <= hostarch.Addr(s.Addr+s.Size)
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}
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// Top returns the stack's top address.
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func (s *SignalStack) Top() hostarch.Addr {
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return hostarch.Addr(s.Addr + s.Size)
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}
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// IsEnabled returns true iff this signal stack is marked as enabled.
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func (s *SignalStack) IsEnabled() bool {
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return s.Flags&SS_DISABLE == 0
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}
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// SignalInfo represents information about a signal being delivered, and is
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// equivalent to struct siginfo in linux kernel(linux/include/uapi/asm-generic/siginfo.h).
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//
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// +marshal
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// +stateify savable
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type SignalInfo struct {
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Signo int32 // Signal number
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Errno int32 // Errno value
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Code int32 // Signal code
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_ uint32
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// struct siginfo::_sifields is a union. In SignalInfo, fields in the union
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// are accessed through methods.
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//
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// For reference, here is the definition of _sifields: (_sigfault._trapno,
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// which does not exist on x86, omitted for clarity)
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//
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// union {
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// int _pad[SI_PAD_SIZE];
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//
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// /* kill() */
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// struct {
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// __kernel_pid_t _pid; /* sender's pid */
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// __ARCH_SI_UID_T _uid; /* sender's uid */
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// } _kill;
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//
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// /* POSIX.1b timers */
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// struct {
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// __kernel_timer_t _tid; /* timer id */
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// int _overrun; /* overrun count */
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// char _pad[sizeof( __ARCH_SI_UID_T) - sizeof(int)];
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// sigval_t _sigval; /* same as below */
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// int _sys_private; /* not to be passed to user */
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// } _timer;
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//
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// /* POSIX.1b signals */
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// struct {
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// __kernel_pid_t _pid; /* sender's pid */
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// __ARCH_SI_UID_T _uid; /* sender's uid */
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// sigval_t _sigval;
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// } _rt;
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//
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// /* SIGCHLD */
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// struct {
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// __kernel_pid_t _pid; /* which child */
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// __ARCH_SI_UID_T _uid; /* sender's uid */
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// int _status; /* exit code */
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// __ARCH_SI_CLOCK_T _utime;
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// __ARCH_SI_CLOCK_T _stime;
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// } _sigchld;
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//
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// /* SIGILL, SIGFPE, SIGSEGV, SIGBUS */
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// struct {
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// void *_addr; /* faulting insn/memory ref. */
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// short _addr_lsb; /* LSB of the reported address */
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// } _sigfault;
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//
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// /* SIGPOLL */
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// struct {
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// __ARCH_SI_BAND_T _band; /* POLL_IN, POLL_OUT, POLL_MSG */
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// int _fd;
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// } _sigpoll;
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//
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// /* SIGSYS */
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// struct {
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// void *_call_addr; /* calling user insn */
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// int _syscall; /* triggering system call number */
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// unsigned int _arch; /* AUDIT_ARCH_* of syscall */
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// } _sigsys;
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// } _sifields;
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//
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// _sifields is padded so that the size of siginfo is SI_MAX_SIZE = 128
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// bytes.
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Fields [128 - 16]byte
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}
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// FixSignalCodeForUser fixes up si_code.
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//
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// The si_code we get from Linux may contain the kernel-specific code in the
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// top 16 bits if it's positive (e.g., from ptrace). Linux's
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// copy_siginfo_to_user does:
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// err |= __put_user((short)from->si_code, &to->si_code);
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// to mask out those bits and we need to do the same.
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func (s *SignalInfo) FixSignalCodeForUser() {
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if s.Code > 0 {
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s.Code &= 0x0000ffff
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}
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}
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// PID returns the si_pid field.
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func (s *SignalInfo) PID() int32 {
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return int32(hostarch.ByteOrder.Uint32(s.Fields[0:4]))
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}
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// SetPID mutates the si_pid field.
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func (s *SignalInfo) SetPID(val int32) {
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hostarch.ByteOrder.PutUint32(s.Fields[0:4], uint32(val))
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}
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// UID returns the si_uid field.
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func (s *SignalInfo) UID() int32 {
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return int32(hostarch.ByteOrder.Uint32(s.Fields[4:8]))
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}
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// SetUID mutates the si_uid field.
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func (s *SignalInfo) SetUID(val int32) {
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hostarch.ByteOrder.PutUint32(s.Fields[4:8], uint32(val))
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}
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// Sigval returns the sigval field, which is aliased to both si_int and si_ptr.
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func (s *SignalInfo) Sigval() uint64 {
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return hostarch.ByteOrder.Uint64(s.Fields[8:16])
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}
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// SetSigval mutates the sigval field.
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func (s *SignalInfo) SetSigval(val uint64) {
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hostarch.ByteOrder.PutUint64(s.Fields[8:16], val)
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}
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// TimerID returns the si_timerid field.
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func (s *SignalInfo) TimerID() TimerID {
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return TimerID(hostarch.ByteOrder.Uint32(s.Fields[0:4]))
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}
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// SetTimerID sets the si_timerid field.
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func (s *SignalInfo) SetTimerID(val TimerID) {
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hostarch.ByteOrder.PutUint32(s.Fields[0:4], uint32(val))
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}
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// Overrun returns the si_overrun field.
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func (s *SignalInfo) Overrun() int32 {
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return int32(hostarch.ByteOrder.Uint32(s.Fields[4:8]))
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}
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// SetOverrun sets the si_overrun field.
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func (s *SignalInfo) SetOverrun(val int32) {
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hostarch.ByteOrder.PutUint32(s.Fields[4:8], uint32(val))
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}
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// Addr returns the si_addr field.
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func (s *SignalInfo) Addr() uint64 {
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return hostarch.ByteOrder.Uint64(s.Fields[0:8])
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}
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// SetAddr sets the si_addr field.
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func (s *SignalInfo) SetAddr(val uint64) {
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hostarch.ByteOrder.PutUint64(s.Fields[0:8], val)
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}
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// Status returns the si_status field.
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func (s *SignalInfo) Status() int32 {
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return int32(hostarch.ByteOrder.Uint32(s.Fields[8:12]))
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}
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// SetStatus mutates the si_status field.
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func (s *SignalInfo) SetStatus(val int32) {
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hostarch.ByteOrder.PutUint32(s.Fields[8:12], uint32(val))
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}
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// CallAddr returns the si_call_addr field.
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func (s *SignalInfo) CallAddr() uint64 {
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return hostarch.ByteOrder.Uint64(s.Fields[0:8])
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}
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// SetCallAddr mutates the si_call_addr field.
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func (s *SignalInfo) SetCallAddr(val uint64) {
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hostarch.ByteOrder.PutUint64(s.Fields[0:8], val)
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}
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// Syscall returns the si_syscall field.
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func (s *SignalInfo) Syscall() int32 {
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return int32(hostarch.ByteOrder.Uint32(s.Fields[8:12]))
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}
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// SetSyscall mutates the si_syscall field.
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func (s *SignalInfo) SetSyscall(val int32) {
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hostarch.ByteOrder.PutUint32(s.Fields[8:12], uint32(val))
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}
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// Arch returns the si_arch field.
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func (s *SignalInfo) Arch() uint32 {
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return hostarch.ByteOrder.Uint32(s.Fields[12:16])
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}
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// SetArch mutates the si_arch field.
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func (s *SignalInfo) SetArch(val uint32) {
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hostarch.ByteOrder.PutUint32(s.Fields[12:16], val)
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}
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// Band returns the si_band field.
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func (s *SignalInfo) Band() int64 {
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return int64(hostarch.ByteOrder.Uint64(s.Fields[0:8]))
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}
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// SetBand mutates the si_band field.
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func (s *SignalInfo) SetBand(val int64) {
|
|
// Note: this assumes the platform uses `long` as `__ARCH_SI_BAND_T`.
|
|
// On some platforms, which gVisor doesn't support, `__ARCH_SI_BAND_T` is
|
|
// `int`. See siginfo.h.
|
|
hostarch.ByteOrder.PutUint64(s.Fields[0:8], uint64(val))
|
|
}
|
|
|
|
// FD returns the si_fd field.
|
|
func (s *SignalInfo) FD() uint32 {
|
|
return hostarch.ByteOrder.Uint32(s.Fields[8:12])
|
|
}
|
|
|
|
// SetFD mutates the si_fd field.
|
|
func (s *SignalInfo) SetFD(val uint32) {
|
|
hostarch.ByteOrder.PutUint32(s.Fields[8:12], val)
|
|
}
|