283 lines
8.6 KiB
Go
283 lines
8.6 KiB
Go
// SPDX-License-Identifier: GPL-3.0-or-later
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// Package agent owns the parallel Go sweep loop. It emits JSON-compatible
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// records but does not write Python daemon state or replace the production
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// service during migration.
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package agent
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import (
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"context"
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"fmt"
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"os"
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"sync"
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"time"
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"codeberg.org/anassaeneroi/enodia-sentinal/go-agent/internal/baseline"
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"codeberg.org/anassaeneroi/enodia-sentinal/go-agent/internal/config"
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"codeberg.org/anassaeneroi/enodia-sentinal/go-agent/internal/detectors"
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"codeberg.org/anassaeneroi/enodia-sentinal/go-agent/internal/model"
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"codeberg.org/anassaeneroi/enodia-sentinal/go-agent/internal/schema"
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)
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const Version = "0.7.0"
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// CaptureFunc returns one injectable SystemState-equivalent sweep.
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type CaptureFunc func() (model.State, error)
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// EmitFunc receives one enodia.event.v1-compatible record.
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type EmitFunc func(map[string]any) error
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// Agent is the migration sidecar sweep loop.
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type Agent struct {
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Config config.Config
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Capture CaptureFunc
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Host func() (string, error)
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Now func() time.Time
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// Lifecycle is nil for deterministic fixtures. Live sidecars attach a
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// baseline manager so startup grace and durable first-seen state match the
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// Python oracle without contaminating parity inputs.
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Lifecycle *baseline.Manager
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cooldownMu sync.Mutex
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cooldowns map[string]time.Time
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probeMu sync.RWMutex
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ebpf string
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ebpfExec string
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ebpfSyscall string
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initializeMu sync.Mutex
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initialized bool
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initializeErr error
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}
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// New builds an agent with production clock and hostname providers.
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func New(cfg config.Config, capture CaptureFunc) *Agent {
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return &Agent{
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Config: cfg,
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Capture: capture,
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Host: os.Hostname,
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Now: time.Now,
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ebpf: "unknown",
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ebpfExec: "unknown",
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ebpfSyscall: "unknown",
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}
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}
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// Sweep captures state once and returns alert events followed by one status
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// event. The executable replaces the zero-value retention fields after its
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// optional snapshot sink has durably processed the preceding alert records.
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func (a *Agent) Sweep() ([]map[string]any, error) {
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state, err := a.Capture()
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if err != nil {
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return nil, err
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}
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now := a.Now()
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if a.Lifecycle != nil {
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if err := a.Lifecycle.Prepare(&state, now); err != nil {
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return nil, err
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}
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}
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host, err := a.Host()
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if err != nil {
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return nil, err
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}
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timestamp := now.Local().Format(time.RFC3339Nano)
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alerts := make([]model.Alert, 0)
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// Preserve the relative order of Python detectors.REGISTRY. Snapshot and
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// parity consumers rely on stable alert ordering even while unported slots
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// are temporarily absent from the Go implementation.
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if a.Config.Enabled("reverse_shell") {
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alerts = append(alerts, detectors.ReverseShell(state, a.Config)...)
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}
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if a.Config.Enabled("ld_preload") {
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alerts = append(alerts, detectors.LDPreload(state)...)
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}
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if a.Config.Enabled("deleted_exe") {
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alerts = append(alerts, detectors.DeletedExe(state)...)
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}
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if a.Config.Enabled("input_snooper") {
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alerts = append(alerts, detectors.InputSnooper(state, a.Config)...)
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}
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if a.Config.Enabled("credential_access") {
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alerts = append(alerts, detectors.CredentialAccess(state, a.Config)...)
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}
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if a.Config.Enabled("stealth_network") {
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alerts = append(alerts, detectors.StealthNetwork(state, a.Config)...)
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}
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if a.Config.Enabled("memory_obfuscation") {
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alerts = append(alerts, detectors.MemoryObfuscation(state, a.Config)...)
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}
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if a.Config.Enabled("egress") {
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alerts = append(alerts, detectors.Egress(state, a.Config)...)
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}
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// Python's registry uses listener_baseline as one shared arming gate for
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// all four baseline-diff detectors, including first_seen and persistence.
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if state.ListenerBaseline != nil {
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if a.Config.Enabled("first_seen") {
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alerts = append(alerts, detectors.FirstSeen(state, a.Config)...)
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}
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if a.Config.Enabled("new_listener") {
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alerts = append(alerts, detectors.NewListener(state, a.Config)...)
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}
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if a.Config.Enabled("persistence") {
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alerts = append(alerts, detectors.Persistence(state, a.Config)...)
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}
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if a.Config.Enabled("new_suid") {
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alerts = append(alerts, detectors.NewSUID(state, a.Config)...)
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}
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}
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if a.Lifecycle != nil {
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if err := a.Lifecycle.Commit(state, now); err != nil {
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return nil, err
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}
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}
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events, err := a.alertEvents(alerts, now, host, timestamp)
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if err != nil {
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return nil, err
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}
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ebpfStatus, ebpfExecStatus, ebpfSyscallStatus := a.probeStatus()
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status := schema.Status{
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Schema: schema.StatusV1,
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Version: Version,
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Running: true,
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TotalAlerts: 0,
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Counts: map[string]int{},
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LastAlert: nil,
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EBPF: ebpfStatus,
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EBPFExec: ebpfExecStatus,
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EBPFSyscall: ebpfSyscallStatus,
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Host: host,
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}
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record, err := schema.Build("status", status, host, timestamp)
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if err != nil {
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return nil, err
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}
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return append(events, record), nil
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}
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// SetExecProbeStatus updates both the compatibility eBPF field and the
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// specific exec-probe field. It is safe to call from a source goroutine after
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// an asynchronous reader failure.
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func (a *Agent) SetExecProbeStatus(status string) {
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a.probeMu.Lock()
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defer a.probeMu.Unlock()
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a.ebpf = status
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a.ebpfExec = status
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}
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// SetSyscallProbeStatus updates the syscall-specific probe field. The legacy
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// eBPF field continues to mirror exec status, matching the Python contract.
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func (a *Agent) SetSyscallProbeStatus(status string) {
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a.probeMu.Lock()
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defer a.probeMu.Unlock()
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a.ebpfSyscall = status
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}
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func (a *Agent) probeStatus() (string, string, string) {
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a.probeMu.RLock()
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defer a.probeMu.RUnlock()
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return a.ebpf, a.ebpfExec, a.ebpfSyscall
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}
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// AlertEvents applies the shared cooldown gate and wraps asynchronous detector
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// results in the same schema used by sweep alerts. Live kernel sources call
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// this method instead of maintaining a second emission path.
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func (a *Agent) AlertEvents(alerts []model.Alert) ([]map[string]any, error) {
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now := a.Now()
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host, err := a.Host()
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if err != nil {
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return nil, err
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}
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return a.alertEvents(alerts, now, host, now.Local().Format(time.RFC3339Nano))
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}
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func (a *Agent) alertEvents(alerts []model.Alert, now time.Time, host, timestamp string) ([]map[string]any, error) {
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alerts = a.freshAlerts(alerts, now)
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records := make([]map[string]any, 0, len(alerts))
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for _, alert := range alerts {
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record, err := schema.Build("alert", alert, host, timestamp)
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if err != nil {
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return nil, err
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}
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records = append(records, record)
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}
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return records, nil
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}
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// Initialize establishes live baselines before asynchronous event sources are
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// started. It is idempotent so an executable can enforce startup ordering and
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// Run can still safely own initialization for library callers.
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func (a *Agent) Initialize() error {
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a.initializeMu.Lock()
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defer a.initializeMu.Unlock()
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if a.initialized {
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return a.initializeErr
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}
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a.initialized = true
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if a.Lifecycle != nil {
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if a.Capture == nil {
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a.initializeErr = fmt.Errorf("capture function is required for baseline initialization")
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return a.initializeErr
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}
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// Use the same injectable clock for lifecycle gates and event timestamps;
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// otherwise fixed-clock tests could arm against wall time by accident.
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a.Lifecycle.Now = a.Now
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a.initializeErr = a.Lifecycle.Initialize(baseline.CaptureFunc(a.Capture))
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}
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return a.initializeErr
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}
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// freshAlerts mirrors Python's per-key cooldown gate. The mutex matters once
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// live event sources join polling: asynchronous kernel alerts and sweep alerts
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// must consume the same cooldown slots instead of racing into duplicates.
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func (a *Agent) freshAlerts(alerts []model.Alert, now time.Time) []model.Alert {
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a.cooldownMu.Lock()
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defer a.cooldownMu.Unlock()
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if a.cooldowns == nil {
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a.cooldowns = make(map[string]time.Time)
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}
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fresh := make([]model.Alert, 0, len(alerts))
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for _, alert := range alerts {
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previous, seen := a.cooldowns[alert.Key]
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if seen && now.Sub(previous) < a.Config.Cooldown {
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continue
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}
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a.cooldowns[alert.Key] = now
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fresh = append(fresh, alert)
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}
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return fresh
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}
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// Run emits one sweep immediately and then waits for each configured interval.
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// once is used by parity checks and operator-visible smoke tests.
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func (a *Agent) Run(ctx context.Context, once bool, emit EmitFunc) error {
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if a.Capture == nil || emit == nil {
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return fmt.Errorf("capture and emit functions are required")
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}
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if err := a.Initialize(); err != nil {
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return err
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}
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for {
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events, err := a.Sweep()
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if err != nil {
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return err
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}
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for _, event := range events {
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if err := emit(event); err != nil {
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return err
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}
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}
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if once {
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return nil
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}
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timer := time.NewTimer(a.Config.SampleInterval)
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select {
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case <-ctx.Done():
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if !timer.Stop() {
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<-timer.C
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}
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return nil
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case <-timer.C:
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}
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}
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}
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