Now that we're past the sensational headline, let's be real. This is the first post in a series about using AI/LLMs to do security work. I know, I know. Everybody and their grandma is using AI for this nowadays. Every time I'm opening up any kind of social media, I feel like this graph still holds true up to now:

Also, this blog series will not be about "AI will replace us" (at least not yet) nor about "prompt engineering tips" (albeit an overlap will be there). What this post in particular will be about is some kind of retrospective combined with what it actually looks like when you put a capable model down in front of a real target and ask it to do the whole job. I want to take that apart and rebuild it into something that isn't a party trick. So who knows, maybe the further we get along in this series, the closer you're going to get to witnessing me putting my name in the above graph as well 😎.
I started experimenting with "AI-powered" solutions around the beginning of 2023 at an earlier company (the same time Google came out of the closet with their first public findings). If I recall correctly, when I started, it was still the "GPT-3" era. Asking an LLM about automated security work often resulted in major hallucination backed by a strong sense of confidence (from the LLM). If I had to visualize using AI for security work a few years back, this would come to mind:

The above may be explained with what everybody was trying to do at the time: 0-shot prompting for a 0-day. This was largely due to the tiny context window of 2048, then 8192, and later a very much welcomed 128000 tokens. Tiny by today's standards. A lot has changed since then, and I hope we're catching up to the current developments, as the development speed at which not just AI security works but also AI advances is scarily fast in my humble opinion.
Anyhow, to do all of this properly, I have to start where everyone started. So this post is deliberately the 2023/2024 version of the idea: one agent, one (big) context window, one repository, and a prompt that basically says, "Here, go find me something." No framework, no orchestration, no pipeline. Just me giving a model a multifaceted job that would normally take a person a couple of days to weeks. I ran the experiment against a public Qualcomm source. It found bugs. The bugs are not good (as expected). That combination is the whole point, so let me walk you through it in detail before I explain why.
Note If you are here for a dramatic 0-day, this is not that post. It is the post that explains why it wasn't, and I think the "why" is worth more than a CVE would have been.
I had this blog post series idea on my pile of side projects for ages, but life kept me busy. However, recently I finished my secure-boot writeup. If you have not read it, it was about how a cryptographically flawless signature check can still leave the parsers behind it exposed. So my headspace was still kind of stuck in that whole "embedded security" world when I (finally) started writing this one. So this blog will overlap with the discussed targets from the aforementioned write-up. I figured Qualcomm's Android Boot Loader would be a good place to start because it is one of the few pieces of this stack that is actually public. It is proper C, and it is full of parsers that need to handle attacker-influenced data: sparse images, boot image headers, partition tables, and device trees. When looking at a typical Qualcomm Android boot chain it roughly looks like this:
PBL on-die mask ROM
|
v
XBL Qualcomm's UEFI core: edk2-based, but
| PROPRIETARY and closed (xbl.elf)
v
ABL a UEFI application launched by XBL (abl.elf)
| \
| `--> QcomModulePkg [ OUR TARGET ]
| from CodeLinaro clo/le/abl/tianocore/edk2
| LinuxLoaderEntry (the app entry), BootLib,
| FastbootLib, AVB, boot.img / slot / DTB-DTBO
v
Linux / AndroidSo what I set out to do was fuzz the Android Boot Loader, in particular the QcomModulePkg. To the best of my knowledge, this public tree lives on CodeLinaro. The clo/main branch appears to have been frozen since June 2022. However, there are per-BSP tags (LA.UM mobile, LE.UM embedded, LY.AU automotive). There are two I looked at closer, which we will talk about in more detail in a bit:
LU.UM.3.5.1.r1-00700-QCS6490.0, last commit was February 2023.LE.UM.3.2.3.c17-10200-SA2150p, last commit was April 2026One more reason I chose this codebase is the moderate complexity due to the number of files and total lines of code:
# edk2 on LE.UM.3.2.3.c17-10200-SA2150p
$ tokei QcomModulePkg
━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━
Language Files Lines Code Comments Blanks
━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━
GNU Style Assembly 1 224 140 67 17
C 59 31111 23768 3957 3386
C Header 97 21959 7471 12428 2060
Lauterbach PRACTI| 7 430 167 211 52
Python 2 599 367 154 78
━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━
Total 166 54323 31913 16817 5593
━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━If I were to manually hunt for bugs, I'd would clone the tree, spend a few evenings reading, pick a couple of functions, hand-write harnesses, and grind. Instead, I handed the entire thing to an agent and stayed mostly out of the way. I gave it a Linux box with clang and AFL++, pointed it at those two tags, and said, roughly,
"Analyze this repository, find what's worth fuzzing. Requirement: Build up to five harnesses, run them, monitor them and save the results. You have access to a Linux sandbox via <CREDENTIALS>. Make use of libfuzzer or AFL++, both are available. Use a single TMUX session for running. Lift code as is when necessary, don't ever change it. Keep going until the requirement is fullfilled, don't stop and don't prompt me for input."
This was done with a single model, which was responsible for understanding the repo, the attack-surface reasoning, the harness code, the build system, and the triage all at once. Not very efficient in times of overcomplicated, distributed, multi-agent harnesses. Especially considering we're "competing" not even just with random startups but with those companies that build the LLM capabilities. They claim thousands and thousands of (high severity) bugs. Just to link a few:
You get the idea. When doing the research for this series, the longer I kept digging, the more I felt like cybersecurity is a solved problem, and I really need to advance my plans for buying some farmland and planting some mango trees and coffee plants in some remote rural off-the-grid place. While I don't think all those headlines are fake, and I seriously feel like job security is on the line for those that are adamant about becoming an AI plumber, I think the bubble in which this all happens is insane. The money in it and the pace in which people claim they found another breakthrough are mental. So let's join this gold rush and dig up some dirt.
Note This full experiment that follows has been conducted using Claude Code 2.1.234 usingclaude-opus-4.8onxHigheffort.
I truly haven't done one of these 0-shot attempts in a while with newer models, as based on that, everybody, including myself, was shitting on a model's capabilities. We were optimizing for this by building a modular framework with split workloads. That said, the first thing worth judging for us is not any potential bugs but whether the requested harnesses are decent. Obviously, as LLMs are by design non-deterministic, your mileage may vary here when you attempt to reproduce any of the following.
ABL is UEFI code. Typically you wouldn't be able to compile a function out of it and call it, as it depends on boot services, protocols, allocation pools, debug macros, and an entire environment. So when looking at the generated harnesses, I found that the LLM settled for lifting the picked fuzzing entrypoint verbatim, byte-for-byte. It even created a thin shim in front for missing types and macros. Only those calls that are touching an outside environment were stubbed. Any targeted parsing routine was left unmodified. This is something that 100% did not work back in the day. Even when pointing an old LLM at a source file, it would come up with a different function name, wrong function arguments, or other random nonsense. So the "quantity" of code produced that ended up making the harness compile and run is already on a way different level.
Let's take a look at the created shim. From my understanding this was rather small. The LLM did not have to "re-invent" the wheel here. This is not a creative type of work in a sense, such as creating a harness would, where one would need to think of what APIs to call, in which order, basically creating something from scratch. The lifting "just" requires understanding of which types were missing and where they are located in the original source. So without more rambling, here is the shim:
// file: edk2_shim.h
/*
* Minimal EDK2 / UEFI shim: just enough for the lifted QcomModulePkg sparse
* code to compile and run on a host libFuzzer/ASan build. Every macro/type
* here mirrors the real EDK2 semantics the lifted code relies on.
*/
#ifndef EDK2_SHIM_H
#define EDK2_SHIM_H
#include <stdint.h>
#include <stddef.h>
#include <stdlib.h>
#include <string.h>
/* --- EDK2 source annotations (no-ops on host) ------------------------- */
#ifndef IN
#define IN
#endif
#ifndef OUT
#define OUT
#endif
#ifndef OPTIONAL
#define OPTIONAL
#endif
#ifndef CONST
#define CONST const
#endif
#ifndef STATIC
#define STATIC static
#endif
/* --- base types ------------------------------------------------------- */
typedef uint8_t UINT8;
typedef uint16_t UINT16;
typedef uint32_t UINT32;
typedef uint64_t UINT64;
typedef int8_t INT8;
typedef int16_t INT16;
typedef int32_t INT32;
typedef int64_t INT64;
typedef uintptr_t UINTN;
typedef intptr_t INTN;
typedef unsigned char BOOLEAN;
typedef void VOID;
typedef char CHAR8;
typedef uint16_t CHAR16;
typedef UINTN EFI_STATUS;
typedef VOID *EFI_HANDLE;
#ifndef TRUE
#define TRUE ((BOOLEAN)1)
#endif
#ifndef FALSE
#define FALSE ((BOOLEAN)0)
#endif
#define MAX_UINT32 ((UINT32)0xFFFFFFFFU)
#define MAX_UINT64 ((UINT64)0xFFFFFFFFFFFFFFFFULL)
/* --- EFI_STATUS (high bit = error, matches EDK2 ENCODE_ERROR) ---------- */
#define ENCODE_ERROR(a) ((EFI_STATUS)(((UINTN)1 << (sizeof(UINTN) * 8 - 1)) | (a)))
#define EFI_ERROR(s) (((INTN)(UINTN)(s)) < 0)
#define EFI_SUCCESS ((EFI_STATUS)0)
#define EFI_INVALID_PARAMETER ENCODE_ERROR(2)
#define EFI_BAD_BUFFER_SIZE ENCODE_ERROR(4)
#define EFI_OUT_OF_RESOURCES ENCODE_ERROR(9)
#define EFI_DEVICE_ERROR ENCODE_ERROR(7)
#define EFI_NO_MEDIA ENCODE_ERROR(12)
#define EFI_VOLUME_CORRUPTED ENCODE_ERROR(10)
#define EFI_VOLUME_FULL ENCODE_ERROR(11)
#define EFI_NOT_FOUND ENCODE_ERROR(14)
#define EFI_UNSUPPORTED ENCODE_ERROR(3)
#define MAX_GPT_NAME_SIZE 72
/* --- DEBUG(): single-arg no-op that swallows the (LEVEL, fmt, ...) tuple */
#define EFI_D_ERROR 0
#define EFI_D_INFO 0
#define EFI_D_VERBOSE 0
#define DEBUG(Expression)
/* --- overflow guard the lifted code calls ----------------------------- */
#define CHECK_ADD64(a, b) (((UINT64)(a) + (UINT64)(b)) < (UINT64)(a))
/* --- fake BlockIo protocol -------------------------------------------- */
/* sparse/META read only Media->BlockSize (positional init { BlockSize });
* the GPT path also needs Media->MediaId and a WriteBlocks() stub. New
* fields are APPENDED so the existing positional initializers stay valid. */
typedef UINT64 EFI_LBA;
typedef struct { UINT32 BlockSize; UINT32 MediaId; } EFI_BLOCK_IO_MEDIA;
struct EFI_BLOCK_IO_PROTOCOL_s;
typedef EFI_STATUS (*EFI_BLOCK_WRITE_BLOCKS) (
struct EFI_BLOCK_IO_PROTOCOL_s *This, UINT32 MediaId, EFI_LBA Lba,
UINTN BufferSize, VOID *Buffer);
typedef struct EFI_BLOCK_IO_PROTOCOL_s {
EFI_BLOCK_IO_MEDIA *Media;
EFI_BLOCK_WRITE_BLOCKS WriteBlocks;
} EFI_BLOCK_IO_PROTOCOL;
/* --- pool allocators -------------------------------------------------- */
static inline VOID *AllocateZeroPool(UINTN Size) { return calloc(1, (size_t)Size); }
static inline VOID FreePool(VOID *P) { free(P); }
#ifndef ARRAY_SIZE
#define ARRAY_SIZE(a) (sizeof(a) / sizeof((a)[0]))
#endif
#endif /* EDK2_SHIM_H */It is types, a DEBUG that expands to nothing and pool allocators that are just calloc/free, so the lifted code compiles and runs, but its logic is exactly as shipped. Every harness in this post includes it...
In my initial prompt I was strict about one thing. The lifted function stays exactly as shipped. Around that premise, to my surprise, a core driver was built that shapes fuzzer bytes into something the parser will accept, the device-side calls are stubbed, and an oracle is watching the write operations. Two properties make the result trustworthy-ish, and I checked both when inspecting what has been delivered:
Ultimately what I observed when I gave the LLM the task is that the agent was running a small loop without me having ever prompted it to do so.
lift verbatim -> plant canary -> build (libFuzzer or AFL++) -> seeds
-> run -> triage -> guard-and-refuzz ---+
^ |
+---------------------------+This is beyond anything that would have happened a few years ago. Again, I'm repeating myself here, but if we were lucky back in the day (gosh, that sounds weird), an LLM maybe got as far as to create a LLVMFuzzerTestOneInput-style libfuzzer harness (when explicitly prompted) that makes a single API call with hopefully correctly typed arguments and then attempts to compile it. It was often dumbfounded when any of this wouldn't have worked. So yes, seeing the progress here is actually very nice. That said, I'm not going into much detail now about why this single agent loop it produced may not be very efficient or cost-effective. We're getting to that eventually. With the method that was used repeatedly by the LLM explained, the rest of the post is a mini technical deep dive, one harness at a time.
Before I start throwing coverage percentages around, two things have to hold: the fuzzer has to actually reach the code (it targeted), and I have to be able to prove it did. Skipping either and a run really doesn't mean much. So looking at this from a fuzzing point of view, we could say that if we point a mutator at raw random bytes, it will burn a lot of budget just to bypass some magic constants or size constraint checks. It will likely only by chance (if even) touch the core logic we care about and could potentially break. So obviously one way to analyze this is coverage information, and the LLM decided on its own accord that analyzing coverage metrics is the way to go to determine whether a fuzzing harness is making legit progress or whether it just compiles and runs. Every target ships a small generator that hands the fuzzer a structurally valid input to start from.
random bytes -> [ magic + size gate ] -> rejected (0% of the parser)
a seed (valid header) -> [ magic + size gate ] -> real logic (the part that breaks)
^
the generator writes that valid header, so run #1 lands
past the gate instead of grinding toward itObviously the specifics on how that looks like differ per target and I'll talk about them later when we discuss the harnesses itself. The point here being, raw byte mutations and coverage tracking are one half of the equation that the LLM attempted to solve. The other half are good seeds. For the LLM those were not "nice-to-have things", it went ahead and made sure every harness gets kickstarted with some. So the "thought process" if you want to call it that, of the LLM I used must have reached a state that said, "Having no crashes from a fuzzer that never arrived where it was supposed to arrive is worthless. I cannot trust a harness without a coverage number sitting next to it". So, for each harness, it self-reviewed the coverage information by building the harness target like this:
build: clang -fprofile-instr-generate -fcoverage-mapping
|
v run over the corpus
default.profraw
|
v llvm-profdata merge
app.profdata
|
v llvm-cov report over *_extract.c
lines / functions / branches actually reachedThat in itself was again interesting, as my prompt I provided was not necessarily guiding it towards this approach. I kept it vague on purpose to see how far we've actually come. With that introduced, let's check the harnesses and their performance.
So as stated before, I requested up to five harnesses. I was kind of pushing it with that, but I wanted to see just how much a 2026 LLM can achieve without looking at cost, tokens spent, and time taken to finish the request. Those are all metrics for another part in this series. That said, me specifically mentioning "up to" was a test from my side to see if the LLM was taking this upper limit into consideration or if it just tunnel visioned hard on the five. It did the latter. It produced five harnesses. Three out of those five found nothing. They built correctly, and they were exercising real code, not just dummies or shim sections, and they produced coverage, just no crashes. I'd argue these are still worth a section to explore what has been fuzzed.
So in good academic fashion, first some stats. The fuzzers have been running close to 44 hours (whoops, I wanted to let them run for a few, but then life happened). These three harnesses I'll quickly walk through logged like 80 billion executions in total (about 5B on sparse, 36B on META, and 42B on the boot header), each pinned to a single core of a 14-core box (laptop with Intel(R) Core(TM) Ultra 7 155U) at anywhere from ~10k to ~70k executions per second. So the bottom line here is: They were running for a considerable amount of time and at excellent speeds. However, a shallow fuzzer with nothing to exercise will always be excellent in speed...
This one is interesting. Sparse image flashing (HandleSparseImgFlash, plus HandleChunkTypeRaw/HandleChunkTypeFill and ValidateChunkDataAndFlash, in FastbootCmds.c) is a textbook target: an attacker could supply a flashed image, and the loader needs to parse it before it can trust it. I assume this target was chosen for this exact reason, with the premise that a loader parsing potentially untrusted data could be worth a look.
To give some technical background on this one. An Android sparse image is a small header followed by a run of chunks. The sparse_header carries the block size, the total block count, and how many chunks follow. Each chunk_header then announces what kind of chunk it is (raw, fill, don't-care, or CRC) and how big it is. HandleSparseImgFlash walks them in order, and for every chunk, it multiplies the chunk's block count by the block size to work out how many bytes to move, accumulating an offset as it goes. That multiply-and-accumulate over attacker-controlled counts is the whole reason this is worth a look (I assume). Putting this into some structural diagram:
Android sparse image
====================
+---------------------------------------------------------+
| sparse_header : magic 0xed26ff3a, blk_sz, total_blks, |
| total_chunks |
+---------------------------------------------------------+
| chunk_header : chunk_type, chunk_sz (blocks), total_sz |
| payload : RAW = chunk_sz*blk_sz bytes, FILL = 4, |
| DONT_CARE / CRC = 0 / 4 |
+---------------------------------------------------------+
| ... repeated total_chunks times ... |
+---------------------------------------------------------+
the walk (HandleSparseImgFlash):
for chunk in 0 .. total_chunks:
bytes = blk_sz * chunk_sz <-- attacker-controlled multiply
RAW -> WriteToDisk(payload, bytes)
FILL -> WriteToDisk(fill, bytes)
DONT_CARE -> advance the offset, no write
CRC32 -> checksum onlySo this walking the structure and calculating offsets and the total bytes is an arithmetic. Arithmetic operations are often prone to overflows. So it definitely kind of checks out that this could be worth fuzzing. The harness built around this follows exactly that logic. A lifted HandleSparseImgFlash and its chunk handlers stay as the core logic, WriteToDisk becomes a memcpy into a 64MiB buffer, the partition lookups are stubbed, and the driver keeps the header valid on every iteration so the fuzzer stays down in the chunk loop instead of dying on the magic number.
// file: sparse_harness.c
#include <stdint.h>
#include <stddef.h>
#include <string.h>
#include <stdlib.h>
#include "edk2_shim.h"
#include "sparse_format.h"
/* Defined in FastbootCmds_extract.c: sets up the stub partition and
* calls the lifted HandleSparseImgFlash(). */
extern EFI_STATUS SparseFuzzEntry(VOID *Image, UINT64 sz);
int LLVMFuzzerTestOneInput(const uint8_t *Data, size_t Size)
{
if (Size < sizeof(sparse_header_t))
return 0;
/* The parser writes into the buffer in place, so hand it a private,
* exactly-sized allocation and let ASan police the bounds. */
uint8_t *Image = (uint8_t *)malloc(Size);
if (!Image)
return 0;
memcpy(Image, Data, Size);
#ifdef NORMALIZE_HEADER
/* AFL++ build: it does not call LLVMFuzzerCustomMutator, so keep the
* sparse header valid here so the bytes still reach the chunk loop. */
{
sparse_header_t *h = (sparse_header_t *)Image;
h->magic = SPARSE_HEADER_MAGIC;
h->major_version = 1;
h->file_hdr_sz = (uint16_t)sizeof(sparse_header_t);
h->chunk_hdr_sz = (uint16_t)sizeof(chunk_header_t);
h->blk_sz = 512u * (1u + (h->blk_sz & 7u));
}
#endif
SparseFuzzEntry(Image, (UINT64)Size); /* -> lifted HandleSparseImgFlash */
free(Image);
return 0;
}
#ifndef AFL_BUILD
/* libFuzzer build: keep the sparse header valid after each mutation so inputs
* reach the chunk loop instead of dying at the magic / size gates. The chunk
* stream is left free to mutate, because that is the target. */
size_t LLVMFuzzerMutate(uint8_t *Data, size_t Size, size_t MaxSize);
size_t LLVMFuzzerCustomMutator(uint8_t *Data, size_t Size, size_t MaxSize,
unsigned int Seed)
{
(void)Seed;
size_t n = LLVMFuzzerMutate(Data, Size, MaxSize);
if (n >= sizeof(sparse_header_t)) {
sparse_header_t *h = (sparse_header_t *)Data;
h->magic = SPARSE_HEADER_MAGIC;
h->major_version = 1;
h->file_hdr_sz = (uint16_t)sizeof(sparse_header_t); /* 28 */
h->chunk_hdr_sz = (uint16_t)sizeof(chunk_header_t); /* 12 */
h->blk_sz = 512u * (1u + (h->blk_sz & 7u));
}
return n;
}
#endifWith the harness, the LLM created a header file as well:
// file: sparse_format.h
/*
* Verbatim from QcomModulePkg/Library/FastbootLib/SparseFormat.h
* (CodeLinaro tag LU.UM.3.5.1.r1-00700-QCS6490.0). Original AOSP/Qualcomm
* license headers apply. Kept byte-identical so struct layout matches the
* lifted parser exactly.
*/
#ifndef SPARSE_FORMAT_H
#define SPARSE_FORMAT_H
#include "edk2_shim.h"
typedef struct sparse_header {
UINT32 magic; /* 0xed26ff3a */
UINT16 major_version; /* (0x1) - reject images with higher major versions */
UINT16 minor_version; /* (0x0) - allow images with higer minor versions */
UINT16 file_hdr_sz; /* 28 bytes for first revision of the file format */
UINT16 chunk_hdr_sz; /* 12 bytes for first revision of the file format */
UINT32 blk_sz; /* block size in bytes, must be a multiple of 4 (4096) */
UINT32 total_blks; /* total blocks in the non-sparse output image */
UINT32 total_chunks; /* total chunks in the sparse input image */
UINT32
image_checksum; /* CRC32 checksum of the original data, counting "don't
care" */
} sparse_header_t;
#define SPARSE_HEADER_MAGIC 0xed26ff3a
#define CHUNK_TYPE_RAW 0xCAC1
#define CHUNK_TYPE_FILL 0xCAC2
#define CHUNK_TYPE_DONT_CARE 0xCAC3
#define CHUNK_TYPE_CRC 0xCAC4
typedef struct chunk_header {
UINT16 chunk_type; /* 0xCAC1 -> raw; 0xCAC2 -> fill; 0xCAC3 -> don't care */
UINT16 reserved1;
UINT32 chunk_sz; /* in blocks in output image */
UINT32 total_sz; /* in bytes of chunk input file including chunk header and
data */
} chunk_header_t;
typedef struct SparseImgParams {
UINT32 Chunk;
UINT32 TotalBlocks;
UINT64 ChunkDataSz;
UINT64 ImageEnd;
UINT64 WrittenBlockCount;
UINT64 BlockCountFactor;
UINT64 PartitionSize;
EFI_BLOCK_IO_PROTOCOL *BlockIo;
EFI_HANDLE *Handle;
} SparseImgParam;
#endif /* SPARSE_FORMAT_H */There's one thing we haven't touched yet. The sparse_harness.c shows a call to SparseFuzzEntry but never defines it in the harness. That function symbol got placed in the lifted code:
// file: FastbootCmds_extract.c
EFI_STATUS
SparseFuzzEntry (VOID *Image, UINT64 sz)
{
/* PartitionName is only touched by the (stubbed) partition lookup. */
return HandleSparseImgFlash ((CHAR16 *)u"system", 6u, Image, sz);
}HandleSparseImgFlash in that same file is a byte-identical copy of the repository code. It wants a real partition to flash to, so the extract fakes precisely that and nothing more: a 64 MiB heap buffer stands in for the system partition, GetPartitionSize returns its size, and WriteToDisk is replaced by a bounds-checked copy into that buffer. This is what the fuzzing harness that got created targets. The created flow looks like this:
fuzzer bytes
-> sparse_harness.c : LLVMFuzzerTestOneInput
-> SparseFuzzEntry (adapter, in the harness)
-> HandleSparseImgFlash <- verbatim Qualcomm code
-> HandleChunkTypeRaw / Fill <- verbatim Qualcomm code
-> WriteToDisk <- the ONLY stub in the chain (the oracle)Everything above WriteToDisk is Qualcomm's unmodified code. That was more to discuss about the created structure than I had anticipated, so let's leave it at that, and I'll shorten it for the other examples. The takeaway is that the created setup around the harness is far from naive. The LLM tried to achieve a lot. Whether that was the correct choice is a discussion for another day.
Ultimately, what we care about is the following: Did the fuzzer reach that arithmetic we discussed, or just bounce off the header? I did analyze the coverage, which says it got all the way in: over 75% of lines and 100% of functions, and all four chunk types were covered. The fuzzer managed to run the whole chunk loop and reached the size math many, many times.
$ llvm-cov report ./sparse_fuzz -instr-profile=sparse.profdata FastbootCmds_extract.c
Filename Regions Miss Cover Funcs Miss Cover Lines Miss Cover Branch Miss Cover
-------------------------------------------------------------------------------------------------------------------
FastbootCmds_extract.c 268 60 77.61% 8 0 100.00% 322 68 78.88% 116 32 72.41%This resulted in zero crashes, and one thing that stands out as why that is seems to be the CHECK_ADD64 routine that guards every one of those add operations:
/* Return True if integer overflow will occur */
#define CHECK_ADD64(a, b) ((MAX_UINT64 - b < a) ? TRUE : FALSE)
This is something a human reviewer likely would have caught. Source code that's littered with safe-math checks. Even if the macro is defined in a different file, a modern IDE makes this a one-shortcut jump. It was a good effort. How good is this harness, really? Structurally, better than I went in expecting. The parser is lifted byte-for-byte, so I'm fuzzing Qualcomm's code here. Having this end-to-end harness + stub + shim + libfuzzer and AFL++ support in a single query would not have worked before. This makes this blog/research worthwhile.
This brings us to the end of harness one. For the other two that produced no crashes, I'll shorten some of the background story and focus on the what has been fuzzed, and reason about why that was the case. I'll spare you the full walkthrough as with the sparse_harness.c whenever the produced artifact(s) are nearly identical. Without further ado, let's go for the next one.
META flashing (HandleMetaImgFlash, the same file and tag as the sparse one). This looks like another fastboot flash path. Instead of a single image, this takes a blob that packs several sub-images together and flashes them in one shot. The header also has some magic bytes (0xce1ad63c) and is followed by a table of entries. One entry per included image. Each entry contains a partition name and some start_offset and size values that point into the actual payload. Again, we have a loader that walks the structure, and when doing so, each section gets handed to a single image flasher: HandleRawImgFlash. This looks very similar to our sparse case. I can see why an LLM would pick this after the earlier harness.
META image
==========
+---------------------------------------------------------+
| meta_header : magic 0xce1ad63c, meta_hdr_sz, img_hdr_sz |
+---------------------------------------------------------+
| img_header_entry[0] : ptn_name[72], start_offset, size |
| img_header_entry[1] : ... |
| ... up to MAX_IMAGES_IN_METAIMG (32) entries ... |
+---------------------------------------------------------+
| payload : sub-image bytes, addressed by each entry's |
| (start_offset, size) into this region |
+---------------------------------------------------------+As before, this path is interesting for fuzzing, as it would contain potentially attacker-controlled offset and size values. These are used in the loader to access the image structure and, from a naive first thought, could potentially be used to access out-of-bounds addresses. So yes, this is similar to sparse. When looking at the produced artifacts, the LLM used the same formula for this one too. As promised I will spare you with the details here. The LLM lifted the function HandleMetaImgFlash and wrote a similar-style harness with an adapter function:
// file: meta_harness.c
#include <stdint.h>
#include <stddef.h>
#include <string.h>
#include <stdlib.h>
#include "edk2_shim.h"
#include "meta_format.h"
extern EFI_STATUS MetaFuzzEntry(VOID *Image, UINT64 Size);
int LLVMFuzzerTestOneInput(const uint8_t *Data, size_t Size)
{
if (Size < sizeof(meta_header_t))
return 0;
uint8_t *Image = (uint8_t *)malloc(Size);
if (!Image)
return 0;
memcpy(Image, Data, Size);
MetaFuzzEntry(Image, (UINT64)Size);
free(Image);
return 0;
}Checking the coverage information shows it ran and covered what it set out to do:
$ llvm-cov report ./meta_fuzz -instr-profile=meta.profdata MetaImg_extract.c -show-functions
Name Regions Miss Cover Lines Miss Cover Branch Miss Cover
-----------------------------------------------------------------------------------------
HandleMetaImgFlash 80 18 77.50% 89 25 71.91% 36 10 72.22%
HandleRawImgFlash 5 0 100.00% 9 0 100.00% 2 0 100.00%
TOTAL 100 21 79.00% 111 27 75.68% 42 10 76.19%HandleMetaImgFlash sits at 71.9% coverage, with HandleRawImgFlash fully exercised. Again, we still found zero crashes. Yes, I know coverage doesn't guarantee crashes, but at least having it covered would have given us a chance... Doing some quick root-cause analysis on why no crashes have been spotted, it's sadly the same shape and form as with the sparse harness: Before a single byte is copied, each entry runs through our known CHECK_ADD64 on its offset arithmetic and then is followed by a hard range check, ImageEnd < Image + start_offset + size, that rejects the entry with EFI_INVALID_PARAMETER. Where the first harnesses fully relied on CHECK_ADD64 around its-size math, META adds an explicit end-of-buffer bound on top of it. Fair enough. The bottom line here is that there's not much to say about the shape and quality. It's almost an identical copy from start (why it was picked) to finish (how it was fuzzed) compared to before. Now for the third harness... sadly, it doesn't shake things up yet.
The third harness targets the boot image header validator in the function CheckImageHeader. This function is responsible for validating a boot.img header before the kernel is unpacked. Different things are getting computed, like kernel size, ramdisk, and dtb. These all go through macros like ROUND_TO_PAGE or ADD_OF. These are designed to prevent overflows:
/* ADD_OF: BootLib/LinuxLoaderLib.h
* ROUND_TO_PAGE: Include/Library/BootLinux.h
*/
#define ADD_OF(a, b) ((MAX_UINT32 - (b) > (a)) ? ((a) + (b)) : ZERO)
#define ROUND_TO_PAGE(x, y) ((ADD_OF ((x), (y))) & (~(y)))The fuzzed codebase has three types of header versions it checks: v0, v1, and v2. The harness exercised all three versions, plus the recovery DTBO branch. The harness is the same lift-and-stub recipe as sparse and META, so I will omit the "analysis" for brevity. Here's the generated harness:
// file: bootimg_harness.c
#include <stdint.h>
#include <stddef.h>
#include <string.h>
#include <stdlib.h>
#include "edk2_shim.h"
#include "bootimg_format.h"
extern EFI_STATUS BootImgFuzzEntry(VOID *Buf, UINT32 Sz, BOOLEAN Recovery);
#define HDRBUF 4096 /* a boot header page; >= v0(1632)+v1(16)+v2(12) */
int LLVMFuzzerTestOneInput(const uint8_t *Data, size_t Size)
{
uint8_t *buf = (uint8_t *)calloc(1, HDRBUF); /* zero-padded page buffer */
if (!buf)
return 0;
memcpy(buf, Data, Size < HDRBUF ? Size : HDRBUF);
memcpy(buf, BOOT_MAGIC, BOOT_MAGIC_SIZE); /* pass the magic gate */
BootImgFuzzEntry(buf, HDRBUF, FALSE); /* non-recovery path */
BootImgFuzzEntry(buf, HDRBUF, TRUE); /* recovery (v1/v2 dtbo) path */
free(buf);
return 0;
}Checking the coverage, if that were our only metric to go by, we'd be happy:
$ llvm-cov report ./bootimg_fuzz -instr-profile=bootimg.profdata BootImg_extract.c
Filename Regions Miss Cover Funcs Miss Cover Lines Miss Cover Branch Miss Cover
---------------------------------------------------------------------------------------------------------
BootImg_extract.c 152 7 95.39% 3 0 100.00% 140 7 95.00% 62 3 95.16%95% of lines and every function were entered, with a handful of missed lines sitting in a branch, which was gated behind something the harness did not model: DTBO_MAX_SIZE_ALLOWED. Again, we have seen no crashes. The constant use of ADD_OF returns ZERO instead of wrapping, and CheckImageHeader reads a zero result as "integer overflow" and bails out with EFI_BAD_BUFFER_SIZE. As soon as the fuzzer triggers a 32-bit wraparound, the fuzzed code exits early.
This brings me to the end of the third harness. This harness again re-used the same formula of lifting, shimming, and targeting a single API. What the LLM failed to grasp, for a third time in a row now, is that the function is "gated" behind overflow-safe math macros. The LLM targeted the function for the right reasons: attacker-controlled input data and potentially unsafe size and offset math, but it stopped there with the "analysis" of "is this worth fuzzing". Let's take a look at the remaining two. They at least bring something new to the table.
This is the first harness that, when looking at the results, surprised me. The GPT writer (PatchGpt, WriteGpt, ParseGptHeader) could lead to a partition table being rewritten from an attacker-supplied image, using header-driven pointer arithmetic.
GPT flash image (attacker-supplied, in the download buffer)
==========================================================
LBA 0 +-------------------------------------------------+
| Protective MBR |
LBA 1 +-------------------------------------------------+
| Primary GPT header : "EFI PART", HeaderCRC, | <- ParseGptHeader
| PartEntrySz = 128, MaxPtCnt (<= 128) | validates (CRC-32)
LBA 2+ +-------------------------------------------------+
| Partition entry array : MaxPtCnt slots x 128 B | <- PatchGpt walks it,
| [entry 0][entry 1] ... [entry MaxPtCnt-1] | counting populated
+-------------------------------------------------+
| ... data ... backup array ... backup header |
+-------------------------------------------------+ At first glance it looks like the LLM used the same "winning recipe" (for creating the harness, not for finding 0-days) once more. It found a parser. The parser is doing some arithmetic operations. Those, based on historic knowledge, have a tendency to be prone to over- or underflows. A quick read shows a partition-entry walk that computes (count - 1) * entry_size with no guard on count being zero. I assume this was as well yet another reason a harness was built around this section of the code. The harness itself follows the same recipe once more:PatchGpt, WriteGpt, and ParseGptHeader are lifted verbatim. The on-storage device I/O is stubbed.
// file: harness_gpt.c
#include <stdint.h>
#include <stddef.h>
#include <string.h>
#include <stdlib.h>
#include "edk2_shim.h"
#include "gpt_format.h"
extern EFI_STATUS GptFuzzEntry (VOID *Buf, UINT32 Sz);
static void put_u32 (uint8_t *p, uint32_t v)
{
p[0] = v; p[1] = v >> 8; p[2] = v >> 16; p[3] = v >> 24;
}
static void put_u64 (uint8_t *p, uint64_t v)
{
for (int i = 0; i < 8; i++) p[i] = (v >> (8 * i)) & 0xff;
}
static uint32_t get_u32 (const uint8_t *p)
{
return (uint32_t)p[0] | ((uint32_t)p[1] << 8) |
((uint32_t)p[2] << 16) | ((uint32_t)p[3] << 24);
}
/* Make one GPT header pass ParseGptHeader while leaving MaxPtCnt and the LBAs
* fuzzer-derived (clamped into the accepted range). Primary headers must carry
* CurrentLba == GPT_LBA; secondary headers skip that check. */
static void repair_header (uint8_t *h, int primary)
{
put_u32 (h + 0, GPT_SIGNATURE_2);
put_u32 (h + 4, GPT_SIGNATURE_1);
put_u32 (h + HEADER_SIZE_OFFSET, GPT_HEADER_SIZE); /* 92 */
put_u32 (h + PENTRY_SIZE_OFFSET, GPT_PART_ENTRY_SIZE); /* 128 */
if (primary)
put_u64 (h + PRIMARY_HEADER_OFFSET, GPT_LBA); /* CurrentLba == 1 */
/* keep LBAs within DeviceDensity/BlkSz so the capacity checks pass */
put_u64 (h + FIRST_USABLE_LBA_OFFSET, get_u32 (h + FIRST_USABLE_LBA_OFFSET) & 0xffff);
put_u64 (h + LAST_USABLE_LBA_OFFSET, get_u32 (h + LAST_USABLE_LBA_OFFSET) & 0xffff);
/* clamp MaxPtCnt into [0,128] (0 is accepted by the real validation) */
put_u32 (h + PARTITION_COUNT_OFFSET,
get_u32 (h + PARTITION_COUNT_OFFSET) % (MAX_NUM_PARTITIONS + 1));
/* recompute header CRC over HeaderSz bytes with the CRC field zeroed */
put_u32 (h + HEADER_CRC_OFFSET, 0);
uint32_t crc = 0;
ShimCalculateCrc32 (h, GPT_HEADER_SIZE, &crc);
put_u32 (h + HEADER_CRC_OFFSET, crc);
}
int LLVMFuzzerTestOneInput (const uint8_t *Data, size_t Size)
{
uint8_t *buf = (uint8_t *)calloc (1, GPT_SCRATCH);
if (!buf)
return 0;
memcpy (buf, Data, Size < GPT_SCRATCH ? Size : GPT_SCRATCH);
/* protective MBR at LBA0 -> route PartitionGetType to the GPT branch */
buf[MBR_SIGNATURE] = MBR_SIGNATURE_BYTE_0;
buf[MBR_SIGNATURE + 1] = MBR_SIGNATURE_BYTE_1;
buf[MBR_PARTITION_RECORD + OS_TYPE] = GPT_PROTECTIVE;
/* PartEntrySz==128 & MaxPtCnt<=128 pin PartEntryArrSz to MIN_PARTITION_ARRAY_SIZE,
* so WriteGpt places the backup header at:
* SecondaryGptHdr = Gpt + 2*BlkSz + 2*PartEntryArrSz
* (PrimaryGptHdr = Gpt + BlkSz, then Offset=2*PartEntryArrSz + BlkSz on top). */
repair_header (buf + GPT_BLKSZ, 1); /* primary */
repair_header (buf + 2 * GPT_BLKSZ + 2 * MIN_PARTITION_ARRAY_SIZE, 0); /* backup */
/* Sz models the download size; keep the trailing SetMem(PrimaryGptHdr, Sz)
* inside the scratch region (buf + BlkSz + Sz <= GPT_SCRATCH). */
GptFuzzEntry (buf, GPT_SCRATCH - GPT_BLKSZ);
free (buf);
return 0;
}The GptFuzzEntry stub looks like this:
EFI_STATUS
GptFuzzEntry (VOID *Buf, UINT32 Sz)
{
FlashingGpt = FALSE;
ParseSecondaryGpt = FALSE;
return UpdatePartitionTable ((UINT8 *)Buf, Sz, 0, (struct StoragePartInfo *)0);
}
Two choices the LLM made here are specific to this target:
ShimCalculateCrc32 is a real CRC calculation. It's not just a stub that returns "OK". This in turn should mean the GPT image has a valid shape.To reach the aforementioned arithmetic at all, ParseGptHeader has to accept the image twice, once for the primary header and once for the backup that sits after the entry array. Additionally, it requires a valid EFI PART signature, a header size between 92 and the block size, a correct CRC32, first and last usable LBAs inside the device capacity, a partition-entry size of exactly 128, and a partition count no larger than 128. These constraints were fully identified by the LLM and put inside the harness in the repair_header function. The discussed double parsing can be seen in the WriteGpt function:
// file: PartitionTableUpdate.c
STATIC UINT32
WriteGpt (INT32 Lun, UINT32 Sz, UINT8 *Gpt)
{
// <SNIP>
/* Verity that passed block has valid GPT primary header */
PrimaryGptHdr = (Gpt + BlkSz);
Ret = ParseGptHeader (&GptHeader, PrimaryGptHdr, DeviceDensity, BlkSz);
if (Ret) {
DEBUG ((EFI_D_ERROR, "GPT: Error processing primary GPT header\n"));
return Ret;
}
/* Check if a valid back up GPT is present */
PartEntryArrSz = GptHeader.PartEntrySz * GptHeader.MaxPtCnt;
if (PartEntryArrSz < MIN_PARTITION_ARRAY_SIZE)
PartEntryArrSz = MIN_PARTITION_ARRAY_SIZE;
/* Back up partition is stored in the reverse order with back GPT, followed by
* part entries, find the offset to back up GPT */
Offset = (2 * PartEntryArrSz);
SecondaryGptHdr = Offset + BlkSz + PrimaryGptHdr;
Ret = ParseGptHeader (&GptHeader, SecondaryGptHdr, DeviceDensity, BlkSz);
if (Ret) {
DEBUG ((EFI_D_ERROR, "GPT: Error processing backup GPT header\n"));
return Ret;
}
Ret = PatchGpt (Gpt, DeviceDensity, PartEntryArrSz, &GptHeader, BlkSz);
// <SNIP>
}The backup header is located 2 * PartEntryArrSz + BlkSz past the primary, so it sits after the entry array, and both calls have to return zero before control ever reaches PatchGpt. The LLM seems to kind of understood the difficulty for a fuzzer to reach deep here and added the header repairs accordingly. The fuzzer was left on autopilot for two things specifically: the partition count and the entry-array bytes. And surprisingly, the fuzzer found something:
$ ./gpt_fuzz findings/gpt_underflow_repro_maxptcnt0.bin
INFO: Running with entropic power schedule (0xFF, 100).
INFO: Seed: 3122206987
INFO: Loaded 1 modules (959 inline 8-bit counters): 959 [0x55d047914318, 0x55d0479146d7),
INFO: Loaded 1 PC tables (959 PCs): 959 [0x55d0479146d8,0x55d0479182c8),
./gpt_fuzz: Running 1 inputs 1 time(s) each.
Running: findings/gpt_underflow_repro_maxptcnt0.bin
AddressSanitizer:DEADLYSIGNAL
=================================================================
==1553839==ERROR: AddressSanitizer: SEGV on unknown address 0x7f0c83679ba8 (pc 0x55d047892639 bp 0x7ffe36738380 sp 0x7ffe36738160 T0)
==1553839==The signal is caused by a WRITE memory access.
#0 0x55d047892639 in PatchGpt /home/pwn/abl-sparse-fuzz/PartitionTable_extract.c:290:3
#1 0x55d047892639 in WriteGpt /home/pwn/abl-sparse-fuzz/PartitionTable_extract.c:396:9
#2 0x55d0478913e7 in UpdatePartitionTable /home/pwn/abl-sparse-fuzz/PartitionTable_extract.c:489:11
#3 0x55d04788f9d4 in LLVMFuzzerTestOneInput /home/pwn/abl-sparse-fuzz/harness_gpt.c:89:3
#4 0x55d0475fcefb in fuzzer::Fuzzer::ExecuteCallback(unsigned char const*, unsigned long) fuzzer.o
#5 0x55d0475e2338 in fuzzer::RunOneTest(fuzzer::Fuzzer*, char const*, unsigned long) fuzzer.o
#6 0x55d0475eb644 in fuzzer::FuzzerDriver(int*, char***, int (*)(unsigned char const*, unsigned long)) fuzzer.o
#7 0x55d0475d0bd7 in main (/home/pwn/abl-sparse-fuzz/gpt_fuzz+0x46bd7) (BuildId: 0129ff498bbb865459d0fc684e4591092aafebb0)
#8 0x7f0b83427c8d (/usr/lib/libc.so.6+0x27c8d) (BuildId: da90c940060d13f3bc8a337f9c591b40ca12815e)
#9 0x7f0b83427dca in __libc_start_main (/usr/lib/libc.so.6+0x27dca) (BuildId: da90c940060d13f3bc8a337f9c591b40ca12815e)
#10 0x55d0475d0ca4 in _start (/home/pwn/abl-sparse-fuzz/gpt_fuzz+0x46ca4) (BuildId: 0129ff498bbb865459d0fc684e4591092aafebb0)
==1553839==Register values:
rax = 0x0000000000000000 rbx = 0x00007ffe36738160 rcx = 0x0000000000000200 rdx = 0x0000000007ffffde
rdi = 0x0000000000000002 rsi = 0x00007f0b83679a00 rbp = 0x00007ffe36738380 rsp = 0x00007ffe36738160
r8 = 0x0000000000000021 r9 = 0x0000000000000000 r10 = 0x0000000000000000 r11 = 0x0000000000000000
r12 = 0x00000000ffffffa8 r13 = 0x00007f0c83679ba8 r14 = 0x00007f0b83679c00 r15 = 0x0000000000004000
AddressSanitizer can not provide additional info.
SUMMARY: AddressSanitizer: SEGV /home/pwn/abl-sparse-fuzz/PartitionTable_extract.c:290:3 in PatchGpt
==1553839==ABORTINGThe bug sits in PatchGpt, here is the relevant section:
while ((TotalPart < GptHeader->MaxPtCnt) &&
((*LastPartitionEntry != 0) || (*(LastPartitionEntry + 1) != 0))) {
TotalPart++;
LastPartitionEntry = (UINT64 *)
(PrimaryGptHeader + BlkSz + TotalPart * PARTITION_ENTRY_SIZE);
}
LastPartOffset = (TotalPart - 1) * PARTITION_ENTRY_SIZE + PARTITION_ENTRY_LAST_LBA;
PUT_LONG_LONG (PrimaryGptHeader + BlkSz + LastPartOffset, (UINT64)(NumSectors - 34));If the entry array is empty, the loop never runs, TotalPart stays zero, and (TotalPart - 1) underflows the UINT32. LastPartOffset resolves to 0xFFFFFFA8, so PUT_LONG_LONG writes eight bytes about four gigabytes past the buffer. The saved reproducer literally contains nothing but zeros:
$ xxd findings/gpt_underflow_repro_maxptcnt0.bin
00000000: 0000 0000 0000 0000 0000 0000 0000 0000 ................
<...>
000085f0: 0000 0000 0000 0000 0000 0000 0000 0000 ................The thing that makes this an awkward bug to talk about is the fact that the required input to trigger this bug in particular is just the empty input as well as minimized/found by libfuzzer:
$ xxd crash-da39a3ee5e6b4b0d3255bfef95601890afd80709
ls -lh ./crash-da39a3ee5e6b4b0d3255bfef95601890afd80709
-rw-r--r-- 1 pwn pwn 0 Aug 22 17:58 ./crash-da39a3ee5e6b4b0d3255bfef95601890afd80709
$ ./gpt_fuzz ./crash-da39a3ee5e6b4b0d3255bfef95601890afd80709
INFO: Running with entropic power schedule (0xFF, 100).
INFO: Seed: 4152867095
INFO: Loaded 1 modules (959 inline 8-bit counters): 959 [0x5618b5018318, 0x5618b50186d7),
INFO: Loaded 1 PC tables (959 PCs): 959 [0x5618b50186d8,0x5618b501c2c8),
./gpt_fuzz: Running 1 inputs 1 time(s) each.
Running: ./crash-da39a3ee5e6b4b0d3255bfef95601890afd80709
AddressSanitizer:DEADLYSIGNAL
=================================================================
==1556384==ERROR: AddressSanitizer: SEGV on unknown address 0x7fdbe83f1ba8 (pc 0x5618b4f96639 bp 0x7ffde6f712e0 sp 0x7ffde6f710c0 T0)
==1556384==The signal is caused by a WRITE memory access.
#0 0x5618b4f96639 in PatchGpt /home/pwn/abl-sparse-fuzz/PartitionTable_extract.c:290:3
<SNIP>It's definitely not a useful bug. Whether it is a bug worth anyone's time is out of scope for now. I did take a look at this when triaging , and it seems to be at best a low severity one:
CmdFlash -> UpdatePartitionTable -> WriteGpt -> ParseGptHeader (primary) -> ParseGptHeader (backup) -> PatchGpt. The input could be a downloaded flash image that needs to be fully attacker-controlled. This seems like it could be somehow pulled off, but the path to trigger the bug itself is more than gated.CmdFlash seems to refuse flashing at all unless the device is unlocked and refuses critical partitions unless unlock-critical is also set. Also, as seen above, the maliciously crafted GPT image needs primary and backup headers, both of which need to pass through ParseGptHeader, with either a declared partition count of zero or a zeroed first entry so the walk ends at TotalPart == 0.So this is not even worth reporting, so I did not. It's just a bug, not a vulnerability as far as I'm concerned. I did not have high hopes to find anything to begin with, so having this at all at this stage is surprising to me as I picked that repo at random. But on the bright side of things, we still got our last harness and, actually, a second bug. One interesting thing with this one is that the LLM picked up on all the conditions that needed to be satisfied. It built the repair_header for that. This is a significantly better understanding about the environment compared to the three earlier harnesses that were "only" gates by some arithmetic-safe math.
Okay, close to the end, last harness, last bugs. Let's get into it right away. This one is by far the most interesting one for multiple reasons. The device-tree glue (UpdateDeviceTree.c) that this resolves around is not a hand-rolled parser as in all cases before. It really is just glue on top of libfdt. libfdt is the standard flattened device tree library. While the library itself has not been fuzzed to death in OSS-FUZZ (as far as I could tell), it's definitely being pulled in by U-Boot and QEMU. Maybe fuzzing libfdt itself could be a nice endeavor, but this here is all about fuzzing the Qualcomm code sitting on top: the parts that take a property libfdt hands back and treat it like a trusted, null-terminated C string with a sane length.
Appended device tree (inside the AVB-verified boot image)
=========================================================
boot.img
+-- kernel
+-- ramdisk
+-- dtb --> flattened device tree, parsed by libfdt
|
+-- /firmware/android/fstab/<x>/dev = "...,/soc/..." <- UpdateFstabNode
+-- /firmware/android/vbmeta parts = "odm,..." <- UpdateVbmetaNodeThe harness that was being built is mostly re-using the same recipe as all others as well. The functions of interest that are the bridge between the Qualcomm code and the libfdt side are lifted verbatim (UpdateFstabNode, UpdateVbmetaNode, QueryMemoryCellSize, and UpdateGranuleInfo). Instead of stubbing the device-tree library, the LLM decided to link the real one that was present on the sandbox I provided (libfdt 1.7.2 dynamically linked via -lfdt, and uninstrumented).
So before we jump into the findings, I noticed that the LLM made a particular decision for the harness that seemed to have made the whole thing work in the first place. The core problem with a byte mutator from a fuzzer is that no amount of random mutations (without guidance) will likely yield a valid device tree (as this is a complex structure). On the other hand, if we provide a semi-malformed blob to the Qualcomm glue code, it gets handed straight to the libfdt side of things. This likely would cause libfdt to crash or, more likely, discard such an input for further processing due to its own internal checks. The goal of this harness was not to fuzz libfdt itself but the Qualcomm-written glue. So what the LLM did now was that every fuzzer-generated input goes through fdt_check_full, a libfdt internal function that checks for malformations. Only those inputs that pass this check are structurally valid and "deemed" good enough to be passed to the lifted Qualcomm code. The harness itself is following the same shape and form as highlighted in the first half of the article, so I'll just dump the DtbFuzzEntry function, which is the actual entry point the LLVMFuzzerTestOneInput harness calls. I'm doing so because this time around it's not a single API but a linear execution of these also-aforementioned multiple API calls.
// file: UpdateDeviceTree_lifted.c
EFI_STATUS
DtbFuzzEntry (VOID *FdtBuf, UINTN Cap)
{
UINT32 CellLen = 0;
/* gate: only structurally valid device trees get past here */
if (fdt_check_full (FdtBuf, (size_t)Cap) != 0)
return EFI_NOT_FOUND;
if (fdt_open_into (FdtBuf, FdtBuf, (int)Cap) != 0)
return EFI_NOT_FOUND;
/* everything below is lifted QcomModulePkg glue, run on a tree libfdt called valid */
fdt_check_header_ext (FdtBuf);
QueryMemoryCellSize (FdtBuf, &CellLen);
UpdateGranuleInfo (FdtBuf);
UpdateVbmetaNode (FdtBuf, (CHAR8 *)"odm", NULL);
UpdateFstabNode (FdtBuf);
return EFI_SUCCESS;
}To summarize: libfdt vouches for the structure, which I think was a smart move by the LLM, and the glue then trusts whatever content sits inside that structure. So the harness ends up testing the exact thing I care about: does the Qualcomm code hold up when a device tree is well-formed but its property values are hostile?
Limitation The device tree these functions rewrite is not a loose file an attacker can drop on the device. It is baked inside a boot image itself, and on Android the boot image is checked by AVB (Android Verified Boot) before anything in it is used. Tamper with the tree on a locked device and verification fails. The phone stops booting and the modified tree never reaches the bug site.
Therefore, read everything below as post-unlock. Any of the following bugs will only be reached if the device is unlocked or if there's already a separate AVB bypass. Now let's dive into the findings!
UpdateFstabNode has a small job. The device tree ships with an fstab entry, the table that tells Android which storage partition to mount as root, and this function rewrites the boot-device path in that entry before the kernel reads it. To do the rewrite, it takes the existing dev string, finds the /soc/ marker inside it, and then searches for the next / after that marker to find where the old path ends. That linked search is where the bug sits:
// file: UpdateDeviceTree_lifted.c
// <SNIP>
ReplaceStr += AsciiStrLen (Table.DevicePathId);
NextStr = AsciiStrStr ((ReplaceStr + 1), "/");
DevNodeBootDevLen = NextStr - ReplaceStr; // NextStr may be NULL
if (DevNodeBootDevLen >= AsciiStrLen (BootDevBuf)) {
gBS->CopyMem (ReplaceStr, BootDevBuf, AsciiStrLen (BootDevBuf));
PaddingEnd = DevNodeBootDevLen - AsciiStrLen (BootDevBuf);
if (PaddingEnd) {
gBS->CopyMem (ReplaceStr + AsciiStrLen (BootDevBuf), NextStr,
AsciiStrLen (NextStr)); // reads through NULL
for (Index = 0; Index < PaddingEnd; Index++) { // wild write, never reached
ReplaceStr[AsciiStrLen (BootDevBuf) + AsciiStrLen (NextStr) + Index] = ' ';
}
}
}In the above snippet, we can see the relevant code. NextStr is being used in the calculation of DevNodeBootDevLen without ever verifying whether the / was actually found.
Limitation After some investigation I found that this whole branch that was fuzzed only runs on builds where IsDynamicPartitionSupport() is false, so a modern device (e.g. Android 10+) using dynamic partitions never reaches it this bug at all.Given a dev value that has the marker but no trailing / in it, the search returns NULL. NextStr - ReplaceStr is then NULL minus a valid pointer (0 - ReplaceStr), which first underflows into a gigantic length and straight after runs into a call to AsciiStrLen(NextStr) which will cause a NULL-ptr dereference:
$ ./dtb_fuzz findings/dtb_fstab_nullderef_repro.dtb
INFO: Running with entropic power schedule (0xFF, 100).
INFO: Seed: 3038691496
INFO: Loaded 1 modules (243 inline 8-bit counters): 243 [0x55b073317a00, 0x55b073317af3),
INFO: Loaded 1 PC tables (243 PCs): 243 [0x55b073317af8,0x55b073318a28),
./dtb_fuzz: Running 1 inputs 1 time(s) each.
Running: findings/dtb_fstab_nullderef_repro.dtb
dtb_format.h:47:67: runtime error: null pointer passed as argument 1, which is declared to never be null
/usr/include/string.h:440:33: note: nonnull attribute specified here
SUMMARY: UndefinedBehaviorSanitizer: undefined-behavior dtb_format.h:47:67
AddressSanitizer:DEADLYSIGNAL
=================================================================
==1553786==ERROR: AddressSanitizer: SEGV on unknown address 0x000000000000 (pc 0x7f5dda3aeddd bp 0x7ffce9ec7110 sp 0x7ffce9ec68b8 T0)
==1553786==The signal is caused by a READ memory access.
==1553786==Hint: address points to the zero page.
#0 0x7f5dda3aeddd (/usr/lib/libc.so.6+0x1aeddd) (BuildId: da90c940060d13f3bc8a337f9c591b40ca12815e)
#1 0x55b07318a419 in strlen.part.0 asan_interceptors.cpp.o
#2 0x55b07329e753 in AsciiStrLen /home/pwn/abl-sparse-fuzz/./dtb_format.h:47:59
#3 0x55b07329e753 in UpdateFstabNode /home/pwn/abl-sparse-fuzz/UpdateDeviceTree_extract.c:348:25
#4 0x55b07329ee41 in DtbFuzzEntry /home/pwn/abl-sparse-fuzz/UpdateDeviceTree_extract.c:389:3
#5 0x55b07329b99a in LLVMFuzzerTestOneInput /home/pwn/abl-sparse-fuzz/harness_dtb.c:30:3
#6 0x55b073008fbb in fuzzer::Fuzzer::ExecuteCallback(unsigned char const*, unsigned long) fuzzer.o
#7 0x55b072fee3f8 in fuzzer::RunOneTest(fuzzer::Fuzzer*, char const*, unsigned long) fuzzer.o
#8 0x55b072ff7704 in fuzzer::FuzzerDriver(int*, char***, int (*)(unsigned char const*, unsigned long)) fuzzer.o
#9 0x55b072fdcc97 in main (/home/pwn/abl-sparse-fuzz/dtb_fuzz+0x40c97) (BuildId: e8bb876687682f2b52c55a9bc654d4d309e8d47a)
#10 0x7f5dda227c8d (/usr/lib/libc.so.6+0x27c8d) (BuildId: da90c940060d13f3bc8a337f9c591b40ca12815e)
#11 0x7f5dda227dca in __libc_start_main (/usr/lib/libc.so.6+0x27dca) (BuildId: da90c940060d13f3bc8a337f9c591b40ca12815e)
#12 0x55b072fdcd64 in _start (/home/pwn/abl-sparse-fuzz/dtb_fuzz+0x40d64) (BuildId: e8bb876687682f2b52c55a9bc654d4d309e8d47a)
==1553786==Register values:
rax = 0x0000000000000000 rbx = 0x0000000000000000 rcx = 0x0000000000000000 rdx = 0x0000000000000000
rdi = 0x0000000000000000 rsi = 0x0000000000000000 rbp = 0x00007ffce9ec7110 rsp = 0x00007ffce9ec68b8
r8 = 0x00007b5dd7e003d0 r9 = 0x000055b073374b00 r10 = 0x00007ffce9ec7140 r11 = 0x0000000000000202
r12 = 0x00007f5dd9d318b6 r13 = 0xffff80a2262ce74a r14 = 0x00000000e102dbd3 r15 = 0x0000000000000000
AddressSanitizer can not provide additional info.
SUMMARY: AddressSanitizer: SEGV (/usr/lib/libc.so.6+0x1aeddd) (BuildId: da90c940060d13f3bc8a337f9c591b40ca12815e)
==1553786==ABORTINGWe can take a closer look at the reproducer, and we will see at offset 0xa0 the fstab device that got thrown into the parser: /soc/x:
$ xxd findings/dtb_fstab_nullderef_repro.dtb
00000000: d00d feed 0000 0105 0000 0038 0000 00e0 ...........8....
00000010: 0000 0028 0000 0011 0000 0010 0000 0000 ...(............
00000020: 0000 0025 0000 00a8 0000 0000 0000 0000 ...%............
00000030: 0000 0000 0000 0000 0000 0001 0000 0000 ................
00000040: 0000 0003 0000 0004 0000 0000 0000 0002 ................
00000050: 0000 0003 0000 0004 0000 000f 0000 0002 ................
00000060: 0000 0001 6669 726d 7761 7265 0000 0000 ....firmware....
00000070: 0000 0001 616e 6472 6f69 6400 0000 0001 ....android.....
00000080: 6673 7461 6200 0000 0000 0001 7665 6e64 fstab.......vend
00000090: 6f72 0000 0000 0003 0000 0007 0000 001b or..............
000000a0: 2f73 6f63 2f78 0000 0000 0002 0000 0002 /soc/x..........
000000b0: 0000 0001 7662 6d65 7461 0000 0000 0003 ....vbmeta......
000000c0: 0000 0001 0000 001f 0000 0000 0000 0002 ................
000000d0: 0000 0002 0000 0002 0000 0002 0000 0009 ................
000000e0: 2361 6464 7265 7373 2d63 656c 6c73 0023 #address-cells.#
000000f0: 7369 7a65 2d63 656c 6c73 0064 6576 0070 size-cells.dev.p
00000100: 6172 7473 00 arts.A real entry would look something like /dev/block/platform/soc/1d84000.ufshc/by-name/system, where /soc/ is followed by a device node and then another /.
Sadly, yet another boring bug, but let's continue ... we have more!
The next bug is in the same file, in UpdateVbmetaNode, and its job is the mirror image of the last one. Instead of splicing a string in, it takes the vbmeta node's parts property (a comma-separated list of partition names) and removes one entry, odm, from it. To accomplish that, it first copies the entire parts string into a fixed 12800-byte scratch buffer, using the string's own length as the copy size with no upper bound. So if one hands this a parts string longer than 12800 bytes, it will cause a heap buffer overflow.
That said, there's a catch. The harness created by the LLM mutates the whole DTB. So where's the issue? We recall that a device-tree object is a complex structure. Each property in it records its own length right before its data, and the header records the total size of the tree. To make parts bigger, a fuzzer would have to make the underlying data larger, increase the size field accordingly, and update the header. All in a single mutation pass. That's too complex of a job for a basic mutation strategy. Random byte-flipping never lands that combination, so any mutation large enough to overflow leaves the tree structurally broken, and libfdt's own fdt_check_full discards such a broken tree before any parsing happens. Somehow the LLM caught this and built another second harness (technically we're sitting at six harnesses now) around this specific issue. So it not only disregarded my "build up to 5 harnesses", it even went beyond that. This, let's call it "optimized" harness focuses solely on the parts value and then wraps a minimal valid device tree around by using libfdt:
// file: harness_dtb_vbmeta.c
#include <stdint.h>
#include <stddef.h>
#include <string.h>
#include <stdlib.h>
#include "edk2_shim.h"
#include <libfdt.h>
extern EFI_STATUS UpdateVbmetaNode (VOID *fdt, CHAR8 *OldPartStr, CHAR8 *NewPartStr);
#define VB_CAP (256u * 1024u)
/* Build /firmware/android/vbmeta with parts = data[0..len) (NUL-terminated so
* AsciiStrLen == the fuzzer-controlled length), then run the glue. */
static void run_parts (const uint8_t *data, size_t len)
{
if (len > VB_CAP / 3) /* keep the DTB build well inside VB_CAP */
return;
uint8_t *buf = (uint8_t *)calloc (1, VB_CAP);
char *parts = (char *)malloc (len + 1);
if (!buf || !parts) { free (buf); free (parts); return; }
if (len)
memcpy (parts, data, len);
parts[len] = '\0'; /* AsciiStrLen(parts) == first NUL, else len */
if (fdt_create_empty_tree (buf, VB_CAP) == 0) {
int fw = fdt_add_subnode (buf, 0, "firmware");
int an = fw >= 0 ? fdt_add_subnode (buf, fw, "android") : fw;
int vb = an >= 0 ? fdt_add_subnode (buf, an, "vbmeta") : an;
if (vb >= 0 &&
fdt_setprop (buf, vb, "parts", parts, (int)len + 1) == 0) {
UpdateVbmetaNode (buf, (CHAR8 *)"odm", NULL);
}
}
free (parts);
free (buf);
}
int LLVMFuzzerTestOneInput (const uint8_t *Data, size_t Size)
{
run_parts (Data, Size);
return 0;
}With the fuzzer input going straight in as the parts value. It triggers the CopyMem overflow immediately.
$ ./dtb_vbmeta_fuzz findings/vbmeta_copymem_overflow_repro.bin
INFO: Running with entropic power schedule (0xFF, 100).
INFO: Seed: 1724910399
INFO: Loaded 1 modules (254 inline 8-bit counters): 254 [0x55a8e4fe0a80, 0x55a8e4fe0b7e),
INFO: Loaded 1 PC tables (254 PCs): 254 [0x55a8e4fe0b80,0x55a8e4fe1b60),
./dtb_vbmeta_fuzz: Running 1 inputs 1 time(s) each.
Running: findings/vbmeta_copymem_overflow_repro.bin
=================================================================
==1554415==ERROR: AddressSanitizer: heap-buffer-overflow on address 0x7d6d3c5edb00 at pc 0x55a8e4f03988 bp 0x7ffc8b2cf8f0 sp 0x7ffc8b2cf0b0
WRITE of size 13000 at 0x7d6d3c5edb00 thread T0
#0 0x55a8e4f03987 in __asan_memmove (/home/pwn/abl-sparse-fuzz/dtb_vbmeta_fuzz+0x29e987) (BuildId: 5d41d9df1ba440e50b0522eabcadbec513d43aa4)
#1 0x55a8e4f681f6 in ShimCopyMem /home/pwn/abl-sparse-fuzz/./dtb_format.h:68:55
#2 0x55a8e4f66630 in UpdateVbmetaNode /home/pwn/abl-sparse-fuzz/UpdateDeviceTree_extract.c:177:5
#3 0x55a8e4f64b5b in run_parts /home/pwn/abl-sparse-fuzz/harness_dtb_vbmeta.c:50:7
#4 0x55a8e4f64b5b in LLVMFuzzerTestOneInput /home/pwn/abl-sparse-fuzz/harness_dtb_vbmeta.c:59:3
#5 0x55a8e4cd1fbb in fuzzer::Fuzzer::ExecuteCallback(unsigned char const*, unsigned long) fuzzer.o
#6 0x55a8e4cb73f8 in fuzzer::RunOneTest(fuzzer::Fuzzer*, char const*, unsigned long) fuzzer.o
#7 0x55a8e4cc0704 in fuzzer::FuzzerDriver(int*, char***, int (*)(unsigned char const*, unsigned long)) fuzzer.o
#8 0x55a8e4ca5c97 in main (/home/pwn/abl-sparse-fuzz/dtb_vbmeta_fuzz+0x40c97) (BuildId: 5d41d9df1ba440e50b0522eabcadbec513d43aa4)
#9 0x7efd3d427c8d (/usr/lib/libc.so.6+0x27c8d) (BuildId: da90c940060d13f3bc8a337f9c591b40ca12815e)
#10 0x7efd3d427dca in __libc_start_main (/usr/lib/libc.so.6+0x27dca) (BuildId: da90c940060d13f3bc8a337f9c591b40ca12815e)
#11 0x55a8e4ca5d64 in _start (/home/pwn/abl-sparse-fuzz/dtb_vbmeta_fuzz+0x40d64) (BuildId: 5d41d9df1ba440e50b0522eabcadbec513d43aa4)
0x7d6d3c5edb00 is located 0 bytes after 12800-byte region [0x7d6d3c5ea900,0x7d6d3c5edb00)
allocated by thread T0 here:
#0 0x55a8e4f07869 in calloc (/home/pwn/abl-sparse-fuzz/dtb_vbmeta_fuzz+0x2a2869) (BuildId: 5d41d9df1ba440e50b0522eabcadbec513d43aa4)
#1 0x55a8e4f664bf in AllocateZeroPool /home/pwn/abl-sparse-fuzz/./edk2_shim.h:100:59
#2 0x55a8e4f664bf in UpdateVbmetaNode /home/pwn/abl-sparse-fuzz/UpdateDeviceTree_extract.c:150:21
#3 0x55a8e4f64b5b in run_parts /home/pwn/abl-sparse-fuzz/harness_dtb_vbmeta.c:50:7
#4 0x55a8e4f64b5b in LLVMFuzzerTestOneInput /home/pwn/abl-sparse-fuzz/harness_dtb_vbmeta.c:59:3
#5 0x55a8e4cd1fbb in fuzzer::Fuzzer::ExecuteCallback(unsigned char const*, unsigned long) fuzzer.o
#6 0x55a8e4cb73f8 in fuzzer::RunOneTest(fuzzer::Fuzzer*, char const*, unsigned long) fuzzer.o
#7 0x55a8e4cc0704 in fuzzer::FuzzerDriver(int*, char***, int (*)(unsigned char const*, unsigned long)) fuzzer.o
#8 0x55a8e4ca5c97 in main (/home/pwn/abl-sparse-fuzz/dtb_vbmeta_fuzz+0x40c97) (BuildId: 5d41d9df1ba440e50b0522eabcadbec513d43aa4)
#9 0x7efd3d427c8d (/usr/lib/libc.so.6+0x27c8d) (BuildId: da90c940060d13f3bc8a337f9c591b40ca12815e)
#10 0x7ffc8b2d1c02 (<unknown module>)
SUMMARY: AddressSanitizer: heap-buffer-overflow (/home/pwn/abl-sparse-fuzz/dtb_vbmeta_fuzz+0x29e987) (BuildId: 5d41d9df1ba440e50b0522eabcadbec513d43aa4) in __asan_memmove
Shadow bytes around the buggy address:
0x7d6d3c5ed880: 00 00 00 00 00 00 00 00 00 00 00 00 00 00 00 00
0x7d6d3c5ed900: 00 00 00 00 00 00 00 00 00 00 00 00 00 00 00 00
0x7d6d3c5ed980: 00 00 00 00 00 00 00 00 00 00 00 00 00 00 00 00
0x7d6d3c5eda00: 00 00 00 00 00 00 00 00 00 00 00 00 00 00 00 00
0x7d6d3c5eda80: 00 00 00 00 00 00 00 00 00 00 00 00 00 00 00 00
=>0x7d6d3c5edb00:[fa]fa fa fa fa fa fa fa fa fa fa fa fa fa fa fa
0x7d6d3c5edb80: fa fa fa fa fa fa fa fa fa fa fa fa fa fa fa fa
0x7d6d3c5edc00: fa fa fa fa fa fa fa fa fa fa fa fa fa fa fa fa
0x7d6d3c5edc80: fa fa fa fa fa fa fa fa fa fa fa fa fa fa fa fa
0x7d6d3c5edd00: fa fa fa fa fa fa fa fa fa fa fa fa fa fa fa fa
0x7d6d3c5edd80: fa fa fa fa fa fa fa fa fa fa fa fa fa fa fa fa
Shadow byte legend (one shadow byte represents 8 application bytes):
Addressable: 00
Partially addressable: 01 02 03 04 05 06 07
Heap left redzone: fa
Freed heap region: fd
Stack left redzone: f1
Stack mid redzone: f2
Stack right redzone: f3
Stack after return: f5
Stack use after scope: f8
Global redzone: f9
Global init order: f6
Poisoned by user: f7
Container overflow: fc
Array cookie: ac
Intra object redzone: bb
ASan internal: fe
Left alloca redzone: ca
Right alloca redzone: cb
==1554415==ABORTINGReading that trace top to bottom had me questioning the result at first, as frame 0 is in the harness itself. Frame 1 is inside the shim for ShimCopyMem:
// file: dtb_format.h
// <SNIP>
/* --- gBS subset the glue calls --------------------------------------- */
static VOID ShimCopyMem (VOID *d, VOID *s, UINTN n) { memmove (d, s, (size_t)n); }
static VOID ShimSetMem (VOID *b, UINTN n, UINT8 v) { memset (b, v, (size_t)n); }
typedef struct {
VOID (*CopyMem) (VOID *Dst, VOID *Src, UINTN Len);
VOID (*SetMem) (VOID *Buf, UINTN Len, UINT8 Val);
} SHIM_BOOT_SERVICES;
static SHIM_BOOT_SERVICES ShimBS = { ShimCopyMem, ShimSetMem };
static SHIM_BOOT_SERVICES *gBS = &ShimBS;
// <SNIP>ShimCopyMem is just a memmove, standing in for the real gBS->CopyMem (a length-bounded, overlap-safe copy, which is exactly what memmove is), so it is mostly a truthful stub and not the source of the bug. The part that matters is frame 2: UpdateVbmetaNode calling that copy with AsciiStrLen(Prop->data) as the length and nothing bounding it against the 12800-byte destination (see earlier). Interestingly enough, in the same function, right next to the above bug is a string operation that removes a partition from the list ends with a decrement and a write:
// file: UpdateDeviceTree_extract.c
if (!NewPartStr && !RestParts)
ReplaceStr = ReplaceStr - 1;
*ReplaceStr = '\0'; // one byte before PartitionString[0]UpdateVbmetaNode is called with "odm" as the partition to strip. If parts begins with odm and has no comma after it, RestParts will turn into NULL and ReplaceStr still points at the first byte of the buffer, so ReplaceStr - 1 walks one byte before it and the null-terminator write lands out of bounds:
$ ./dtb_vbmeta_fuzz findings/vbmeta_replacestr_underflow_repro.bin
INFO: Running with entropic power schedule (0xFF, 100).
INFO: Seed: 1978897154
INFO: Loaded 1 modules (254 inline 8-bit counters): 254 [0x56216c878a80, 0x56216c878b7e),
INFO: Loaded 1 PC tables (254 PCs): 254 [0x56216c878b80,0x56216c879b60),
./dtb_vbmeta_fuzz: Running 1 inputs 1 time(s) each.
Running: findings/vbmeta_replacestr_underflow_repro.bin
=================================================================
==1554499==ERROR: AddressSanitizer: heap-buffer-overflow on address 0x7e00f75e00ff at pc 0x56216c7feb41 bp 0x7ffcaaa0cdd0 sp 0x7ffcaaa0cdc8
WRITE of size 1 at 0x7e00f75e00ff thread T0
#0 0x56216c7feb40 in UpdateVbmetaNode /home/pwn/abl-sparse-fuzz/UpdateDeviceTree_extract.c:207:17
#1 0x56216c7fcb5b in run_parts /home/pwn/abl-sparse-fuzz/harness_dtb_vbmeta.c:50:7
#2 0x56216c7fcb5b in LLVMFuzzerTestOneInput /home/pwn/abl-sparse-fuzz/harness_dtb_vbmeta.c:59:3
#3 0x56216c569fbb in fuzzer::Fuzzer::ExecuteCallback(unsigned char const*, unsigned long) fuzzer.o
#4 0x56216c54f3f8 in fuzzer::RunOneTest(fuzzer::Fuzzer*, char const*, unsigned long) fuzzer.o
#5 0x56216c558704 in fuzzer::FuzzerDriver(int*, char***, int (*)(unsigned char const*, unsigned long)) fuzzer.o
#6 0x56216c53dc97 in main (/home/pwn/abl-sparse-fuzz/dtb_vbmeta_fuzz+0x40c97) (BuildId: 5d41d9df1ba440e50b0522eabcadbec513d43aa4)
#7 0x7f90f8427c8d (/usr/lib/libc.so.6+0x27c8d) (BuildId: da90c940060d13f3bc8a337f9c591b40ca12815e)
#8 0x7f90f8427dca in __libc_start_main (/usr/lib/libc.so.6+0x27dca) (BuildId: da90c940060d13f3bc8a337f9c591b40ca12815e)
#9 0x56216c53dd64 in _start (/home/pwn/abl-sparse-fuzz/dtb_vbmeta_fuzz+0x40d64) (BuildId: 5d41d9df1ba440e50b0522eabcadbec513d43aa4)
0x7e00f75e00ff is located 1 bytes before 12800-byte region [0x7e00f75e0100,0x7e00f75e3300)
allocated by thread T0 here:
#0 0x56216c79f869 in calloc (/home/pwn/abl-sparse-fuzz/dtb_vbmeta_fuzz+0x2a2869) (BuildId: 5d41d9df1ba440e50b0522eabcadbec513d43aa4)
#1 0x56216c7fe4bf in AllocateZeroPool /home/pwn/abl-sparse-fuzz/./edk2_shim.h:100:59
#2 0x56216c7fe4bf in UpdateVbmetaNode /home/pwn/abl-sparse-fuzz/UpdateDeviceTree_extract.c:150:21
#3 0x56216c7fcb5b in run_parts /home/pwn/abl-sparse-fuzz/harness_dtb_vbmeta.c:50:7
#4 0x56216c7fcb5b in LLVMFuzzerTestOneInput /home/pwn/abl-sparse-fuzz/harness_dtb_vbmeta.c:59:3
#5 0x56216c569fbb in fuzzer::Fuzzer::ExecuteCallback(unsigned char const*, unsigned long) fuzzer.o
#6 0x56216c54f3f8 in fuzzer::RunOneTest(fuzzer::Fuzzer*, char const*, unsigned long) fuzzer.o
#7 0x56216c558704 in fuzzer::FuzzerDriver(int*, char***, int (*)(unsigned char const*, unsigned long)) fuzzer.o
#8 0x56216c53dc97 in main (/home/pwn/abl-sparse-fuzz/dtb_vbmeta_fuzz+0x40c97) (BuildId: 5d41d9df1ba440e50b0522eabcadbec513d43aa4)
#9 0x7f90f8427c8d (/usr/lib/libc.so.6+0x27c8d) (BuildId: da90c940060d13f3bc8a337f9c591b40ca12815e)
#10 0x7ffcaaa0dbfe (<unknown module>)
SUMMARY: AddressSanitizer: heap-buffer-overflow /home/pwn/abl-sparse-fuzz/UpdateDeviceTree_extract.c:207:17 in UpdateVbmetaNode
Shadow bytes around the buggy address:
0x7e00f75dfe00: 00 00 00 00 00 00 00 00 00 00 00 00 00 00 00 00
0x7e00f75dfe80: 00 00 00 00 00 00 00 00 00 00 00 00 00 00 00 00
0x7e00f75dff00: 00 00 00 00 00 00 00 00 00 00 00 00 00 00 00 00
0x7e00f75dff80: 00 00 00 00 00 00 00 00 00 00 00 00 00 00 00 00
0x7e00f75e0000: fa fa fa fa fa fa fa fa fa fa fa fa fa fa fa fa
=>0x7e00f75e0080: fa fa fa fa fa fa fa fa fa fa fa fa fa fa fa[fa]
0x7e00f75e0100: 00 00 00 00 00 00 00 00 00 00 00 00 00 00 00 00
0x7e00f75e0180: 00 00 00 00 00 00 00 00 00 00 00 00 00 00 00 00
0x7e00f75e0200: 00 00 00 00 00 00 00 00 00 00 00 00 00 00 00 00
0x7e00f75e0280: 00 00 00 00 00 00 00 00 00 00 00 00 00 00 00 00
0x7e00f75e0300: 00 00 00 00 00 00 00 00 00 00 00 00 00 00 00 00
Shadow byte legend (one shadow byte represents 8 application bytes):
Addressable: 00
Partially addressable: 01 02 03 04 05 06 07
Heap left redzone: fa
Freed heap region: fd
Stack left redzone: f1
Stack mid redzone: f2
Stack right redzone: f3
Stack after return: f5
Stack use after scope: f8
Global redzone: f9
Global init order: f6
Poisoned by user: f7
Container overflow: fc
Array cookie: ac
Intra object redzone: bb
ASan internal: fe
Left alloca redzone: ca
Right alloca redzone: cb
==1554499==ABORTINGThis one needs no oversized property, just a parts value starting with odm and no comma, so it is reachable through the ordinary full-DTB flow as well, not only through this focused harness.
UpdateVbmetaNode(fdt, "odm", NULL) call is compiled only under ANDROID_PLATFORM_VERSION < 10. Moreover, the overflow needs a parts property longer than 12800 bytes, and the one-byte underflow needs parts to start with odm and carry no comma after it.The overflow is the only somewhat interesting primitive of the four bugs. It's a linear heap overflow with attacker-controlled length and contents, which can corrupt adjacent ABL heap allocations rather than only fault. The underflow writes a single fixed 0x00 one byte before the buffer, enough to clobber the preceding chunk's metadata. That said, all of them are still post-unlock. So exploitability is abysmal. Impact is negligible.
This brings me to the end of the quick and dirty triage and, at the same time, to the end of this first article. I could have gotten in more depth about the Qualcomm codebase itself, but this was not the point. The point was to understand and see what a modern-day LLM (as of the time of writing) is capable of when throwing a multi-step task at it. Can it keep context? How does it handle context switches? What's the quality of the output like? And so forth. Before anyone comes at me for "this was not a very academic benchmark". I fully get that. It was not the point. This was a baseline: one current model, one repository, one broad prompt, and no framework around the run. It was all about getting a feel for what the ceiling is presently (for this particular LLM) and where and how we could improve.
The bottom line is that what I encountered is still a very 2023/2024 era result. On a more serious note, I have to acknowledge that the model did more than I expected. It selected targets, lifted real code, built working harnesses and shims, checked coverage, and found four reproducible bugs without asking me to steer it.
One of the weak points back then is still one of the weak points today: prioritization of tasks and foresight. The targets that were fuzzed were all behind either some checks or conditions that some dataflow/code review should have spotted. Code generation itself was already quite neat a few years ago, just more limited in quantity.
That said, in my initial prompt I did not explicitly ask for the chaining of the identification and ranking of fuzzing candidates before making an educated guess. I just told the LLM to "analyze". Again, this showed me that precisely prompting your intent matters, not that this is any news in 2026. The same applies for splitting a huge workload into isolated subtasks. That's where LLMs excel right now, and we will get to that.
In the next post I'll start building this in public, benchmarked and reproducible so the results can actually be checked. The aim is an orchestrator that focuses on fuzzing and works from source as a first-class citizen. The goal will be to weigh severity and reachability as it goes. One major precondition will be that it's working with a "production-grade" and large codebase without a human holding its hand the whole way. I don't intend to publish yet another "autonomous AI hacking tool that solved JuiceShop".
fdt_check_full() documentation