432 lines
13 KiB
Go
432 lines
13 KiB
Go
// Package firewall speaks the firewall found on an adopted node, in that firewall's own terms
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// (novox/hq ADR 0100).
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//
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// **The found firewall stays in force.** On an adopted node the mesh loads nothing that drops by
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// default or holds an accept; what it needs reachable it converges as openings through what it
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// found, marks each rule as its own, and removes only what it marked. It never resets or flushes:
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// the rules the machine already had are the operator's, and they are what keeps it serving.
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package firewall
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import (
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"context"
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"crypto/sha256"
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"encoding/hex"
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"errors"
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"fmt"
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"os/exec"
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"regexp"
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"strconv"
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"strings"
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"github.com/novox/mesh-host/internal/declaration"
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"github.com/novox/mesh-host/internal/system"
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)
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// Runner executes a command.
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type Runner = system.Runner
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// Kind is what firewall a machine has, as far as the mesh is concerned.
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type Kind string
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const (
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// UFW is an active ufw — the one kind found on the machines measured, and the one spoken.
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UFW Kind = "ufw"
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// None is a machine where nothing refuses anything, which needs no openings.
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None Kind = "none"
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// Unsupported is a firewall no host speaks yet. A machine with one is refused adoption: the
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// mesh could neither open what it needs nor know what it would be closing.
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Unsupported Kind = "unsupported"
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)
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// MeshInterface is the private network's interface, the way an opening from the mesh is known.
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// It must be the controller's overlay interface name.
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const MeshInterface = "mesh0"
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// Detect says which firewall this machine has. For Unsupported the string names it.
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func Detect(ctx context.Context, run Runner) (Kind, string, error) {
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if out, err := run(ctx, "firewall-cmd", "--state"); err == nil && strings.TrimSpace(out) == "running" {
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return Unsupported, "firewalld", nil
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}
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ufwActive := false
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if out, err := run(ctx, "ufw", "status"); err == nil {
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ufwActive = statusActive(out)
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}
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out, err := run(ctx, "nft", "list", "ruleset")
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switch {
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case err == nil:
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if refusing := Refusing(out, ufwActive); len(refusing) > 0 {
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return Unsupported, "nftables rules that refuse traffic, in " + strings.Join(refusing, ", "), nil
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}
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case !missing(err):
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return "", "", fmt.Errorf("cannot read this machine's packet filter to know what it has: %w", err)
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}
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if !ufwActive {
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// iptables with the legacy backend is invisible to nft.
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for _, legacy := range []string{"iptables-legacy", "ip6tables-legacy"} {
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out, err := run(ctx, legacy, "-S")
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if err != nil {
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continue
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}
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if refusing := RefusingLegacy(out); len(refusing) > 0 {
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return Unsupported, legacy + " rules that refuse traffic, in " + strings.Join(refusing, ", "), nil
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}
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}
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}
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if ufwActive {
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return UFW, "ufw", nil
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}
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return None, "", nil
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}
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func missing(err error) bool {
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return errors.Is(err, exec.ErrNotFound)
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}
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func statusActive(out string) bool {
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for _, line := range strings.Split(out, "\n") {
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if strings.HasPrefix(strings.TrimSpace(line), "Status:") {
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return strings.TrimSpace(strings.TrimPrefix(strings.TrimSpace(line), "Status:")) == "active"
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}
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}
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return false
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}
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// Refusing names the tables of an `nft list ruleset` holding something that refuses traffic — a
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// drop or reject, or a base chain whose policy drops — and that is neither the mesh's own nor the
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// container runtime's. With ufw active, the tables iptables-nft manages are ufw's and the runtime's
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// and are not counted.
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func Refusing(ruleset string, ufwActive bool) []string {
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var refusing []string
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managed := map[string]bool{}
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var table, chain string
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counted := map[string]bool{}
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note := func() {
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if !counted[table] {
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counted[table] = true
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refusing = append(refusing, "table "+table)
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}
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}
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for _, raw := range strings.Split(ruleset, "\n") {
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line := strings.TrimSpace(raw)
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switch {
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case strings.HasPrefix(line, "# Warning: table ") && strings.Contains(line, "managed by iptables-nft"):
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name := strings.TrimPrefix(line, "# Warning: table ")
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name, _, _ = strings.Cut(name, " is managed")
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managed[name] = true
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continue
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case strings.HasPrefix(line, "table "):
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table = strings.TrimSuffix(strings.TrimSpace(strings.TrimPrefix(line, "table ")), "{")
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table = strings.TrimSpace(table)
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chain = ""
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continue
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case strings.HasPrefix(line, "chain "):
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chain = strings.TrimSpace(strings.TrimSuffix(strings.TrimPrefix(line, "chain "), "{"))
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continue
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case line == "" || line == "}" || strings.HasPrefix(line, "#") || chain == "":
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continue
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}
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if table == "inet mesh" || table == "inet mesh_guard" {
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continue
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}
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iptables := managed[table] || iptablesTable(table)
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if iptables && ufwActive {
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continue
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}
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if strings.HasPrefix(line, "type ") {
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if strings.Contains(line, "policy drop") && !(iptables && runtimes(table, chain, line)) {
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note()
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}
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continue
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}
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if !verdictRefuses(line) {
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continue
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}
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if iptables && runtimes(table, chain, line) {
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continue
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}
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note()
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}
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return refusing
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}
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// iptablesTable is whether a table is one iptables-nft writes. Named rather than read from the
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// warning nft prints above it, because nft does not print that for every such table: a captured
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// ruleset carried it on ip filter and not on ip raw, where the runtime keeps its drops.
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func iptablesTable(table string) bool {
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family, name, _ := strings.Cut(table, " ")
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if family != "ip" && family != "ip6" {
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return false
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}
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switch name {
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case "filter", "nat", "raw", "mangle", "security":
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return true
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}
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return false
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}
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// runtimes is whether a refusal in an iptables-nft table is the container runtime's own: in its
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// DOCKER chains, its forward policy, or its guard against reaching a container's address directly
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// from outside its bridge, in the raw table.
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func runtimes(table, chain, line string) bool {
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_, name, _ := strings.Cut(table, " ")
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switch {
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case strings.HasPrefix(chain, "DOCKER"):
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return true
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case name == "filter" && chain == "FORWARD" && strings.HasPrefix(line, "type "):
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return true
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case name == "raw" && chain == "PREROUTING":
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return strings.Contains(line, "daddr") && strings.Contains(line, "iifname !=")
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}
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return false
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}
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var verdict = regexp.MustCompile(`(^|\s)(drop|reject)(\s|$)`)
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func verdictRefuses(line string) bool {
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return verdict.MatchString(line)
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}
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// RefusingLegacy names the chains of an `iptables-legacy -S` that refuse traffic outside the
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// container runtime's own.
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func RefusingLegacy(rules string) []string {
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var refusing []string
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seen := map[string]bool{}
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for _, line := range strings.Split(rules, "\n") {
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fields := strings.Fields(line)
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if len(fields) < 3 {
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continue
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}
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chain := fields[1]
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refuses := false
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switch fields[0] {
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case "-P":
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refuses = fields[2] == "DROP" && chain != "FORWARD"
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case "-A":
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for i, f := range fields {
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if f == "-j" && i+1 < len(fields) && (fields[i+1] == "DROP" || fields[i+1] == "REJECT") {
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refuses = !strings.HasPrefix(chain, "DOCKER")
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}
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}
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}
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if refuses && !seen[chain] {
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seen[chain] = true
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refusing = append(refusing, "chain "+chain)
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}
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}
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return refusing
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}
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// --- ufw ---------------------------------------------------------------------------------------
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// Mark is the comment every rule the mesh adds carries: whose it is, which opening, and a digest
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// of the rule itself, so a rule the opening no longer describes is recognised as stale without the
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// host having to know how ufw prints a rule back.
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func Mark(o *declaration.Opening) string {
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sum := sha256.Sum256([]byte(strings.Join(Rule(o), " ")))
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return marker(o.ID) + " " + hex.EncodeToString(sum[:])[:8]
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}
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func marker(id string) string { return "mesh-host " + id }
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// markedFor is whether a comment is the mesh's, for this opening.
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func markedFor(comment, id string) bool {
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return comment == marker(id) || strings.HasPrefix(comment, marker(id)+" ")
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}
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// Rule is the ufw rule an opening becomes, without its comment.
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//
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// incoming from everywhere allow proto tcp to any port P
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// incoming from the mesh allow in on mesh0 proto tcp to any port P
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// forwarded route allow [in on mesh0] proto tcp to any port <container port>
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//
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// A forwarded opening names the container's port because ufw's route rules are matched after the
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// runtime's destination translation.
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func Rule(o *declaration.Opening) []string {
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var rule []string
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port := o.Port
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if o.Path == declaration.PathForwarded {
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rule = append(rule, "route")
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port = o.To
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}
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rule = append(rule, "allow")
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if o.From == declaration.FromMesh {
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rule = append(rule, "in", "on", MeshInterface)
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}
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return append(rule, "proto", o.Protocol, "to", "any", "port", strconv.Itoa(port))
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}
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var commentOf = regexp.MustCompile(`comment '([^']*)'`)
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// added is every rule `ufw show added` lists, each without its leading "ufw".
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func added(ctx context.Context, run Runner) ([]string, error) {
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out, err := run(ctx, "ufw", "show", "added")
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if err != nil {
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return nil, fmt.Errorf("reading ufw's rules: %w", err)
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}
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var rules []string
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for _, line := range strings.Split(out, "\n") {
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line = strings.TrimSpace(line)
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if strings.HasPrefix(line, "ufw ") {
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rules = append(rules, strings.TrimPrefix(line, "ufw "))
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}
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}
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return rules, nil
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}
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func comment(rule string) string {
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m := commentOf.FindStringSubmatch(rule)
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if m == nil {
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return ""
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}
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return m[1]
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}
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// words splits a rule as ufw printed it into arguments, keeping a quoted comment whole.
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func words(rule string) []string {
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var out []string
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var cur strings.Builder
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quoted, any := false, false
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for _, r := range rule {
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switch {
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case r == '\'':
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quoted = !quoted
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any = true
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case r == ' ' && !quoted:
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if any {
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out = append(out, cur.String())
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cur.Reset()
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any = false
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}
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default:
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cur.WriteRune(r)
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any = true
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}
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}
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if any {
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out = append(out, cur.String())
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}
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return out
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}
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// Converge makes one opening true in ufw: its marked rule present, and any rule marked for it that
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// no longer describes it deleted. Nothing unmarked is touched. The outcome is created, updated or
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// unchanged, read back from ufw rather than assumed.
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func Converge(ctx context.Context, run Runner, o *declaration.Opening) (string, error) {
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rules, err := added(ctx, run)
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if err != nil {
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return "", err
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}
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mark := Mark(o)
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present := false
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var stale []string
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for _, rule := range rules {
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c := comment(rule)
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switch {
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case c == mark:
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present = true
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case markedFor(c, o.ID):
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stale = append(stale, rule)
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}
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}
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if present && len(stale) == 0 {
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return "unchanged", nil
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}
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for _, rule := range stale {
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if _, err := run(ctx, "ufw", append([]string{"delete"}, words(rule)...)...); err != nil {
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return "", fmt.Errorf("deleting the mesh's stale ufw rule %q: %w", rule, err)
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}
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}
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if !present {
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args := append(Rule(o), "comment", mark)
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if _, err := run(ctx, "ufw", args...); err != nil {
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return "", fmt.Errorf("adding the ufw rule for %s: %w", o.Target(), err)
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}
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}
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after, err := added(ctx, run)
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if err != nil {
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return "", err
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}
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found, leftover := false, 0
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for _, rule := range after {
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c := comment(rule)
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if c == mark {
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found = true
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} else if markedFor(c, o.ID) {
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leftover++
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}
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}
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if !found {
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return "", fmt.Errorf("ufw was asked for %s and does not list it afterwards", o.Target())
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}
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if leftover > 0 {
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return "", fmt.Errorf("ufw still lists %d stale rule(s) marked for %s after deleting them", leftover, o.ID)
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}
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if len(stale) > 0 {
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return "updated", nil
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}
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return "created", nil
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}
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// Remove deletes the rules marked for one opening, and nothing else.
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func Remove(ctx context.Context, run Runner, id string) (int, error) {
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rules, err := added(ctx, run)
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if err != nil {
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return 0, err
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}
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removed := 0
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for _, rule := range rules {
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if !markedFor(comment(rule), id) {
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continue
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}
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if _, err := run(ctx, "ufw", append([]string{"delete"}, words(rule)...)...); err != nil {
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return removed, fmt.Errorf("deleting the mesh's ufw rule %q: %w", rule, err)
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}
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removed++
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}
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after, err := added(ctx, run)
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if err != nil {
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return removed, err
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}
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for _, rule := range after {
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if markedFor(comment(rule), id) {
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return removed, fmt.Errorf("ufw still lists a rule marked for %s after deleting it", id)
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}
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}
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return removed, nil
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}
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// Enable turns ufw back on, as found, and reads back that it is.
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func Enable(ctx context.Context, run Runner) error {
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if _, err := run(ctx, "ufw", "--force", "enable"); err != nil {
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return fmt.Errorf("enabling ufw again: %w", err)
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}
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return expectActive(ctx, run, true)
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}
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// Disable retires ufw without flushing it: its configuration stays on disk, and the container
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// runtime's rules are not its to remove.
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func Disable(ctx context.Context, run Runner) error {
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if _, err := run(ctx, "ufw", "disable"); err != nil {
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return fmt.Errorf("disabling ufw: %w", err)
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}
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return expectActive(ctx, run, false)
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}
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func expectActive(ctx context.Context, run Runner, want bool) error {
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out, err := run(ctx, "ufw", "status")
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if err != nil {
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return fmt.Errorf("reading ufw's status back: %w", err)
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}
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if statusActive(out) != want {
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state := "inactive"
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if want {
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state = "active"
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}
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return fmt.Errorf("ufw was asked to be %s and says: %s", state, strings.TrimSpace(out))
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}
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return nil
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}
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