# AI verification proposal

A proposal built with the Proposal Explorer of the AI Verification Tech Map (https://trustbutveri.fyi/), from its records of 2026-10-08. Interactive version: https://trustbutveri.fyi/explorer/?mechanisms=M-0010,M-0008&implementations=M-0008:I-0023

How to read it: a claim is something one party wants to verify about another's AI hardware or software. A mechanism is a general technique for verifying claims; it is "aimed at" a claim when that is its direct purpose, and "supporting" when it contributes without being aimed at it. A claim is addressed when a mechanism in the proposal is aimed at it and is not excluded by the filters; addressed does not mean verified, so check that mechanism's readiness and open flaws. Readiness levels R0 to R4 describe one record's public evidence for its assessed use and are never combined. Definitions: https://trustbutveri.fyi/about/methodology/ (roles, properties and flaws) and https://trustbutveri.fyi/about/readiness/ (readiness levels).

## Filters

Filters apply to mechanisms only and describe the setting the proposal is for.

None set. Every mechanism on the map was available.

## Overview

One row per mechanism, read from its record. Open flaws: critical / significant / minor. The last three columns are the editors' reading of what the verifier sees.

| Mechanism | Readiness | Prover | Attack testing | Hardware | Open flaws | Weights | Inputs and outputs | Training data |
| --- | --- | --- | --- | --- | --- | --- | --- | --- |
| On-chip telemetry from timing, memory and performance counters | R2 | Semi-trusted | Red-teamed | Existing features | 1 / 3 / 1 | depends | depends | depends |
| TEE remote attestation for AI workloads / Cove | R2 | Semi-trusted | Analysis | Existing features | 0 / 1 / 1 | unspecified | unspecified | unspecified |

## Claims

No claims chosen.

## Mechanisms

### On-chip telemetry from timing, memory and performance counters

Uses timing, memory-residency and performance-counter signals measured on AI accelerators as evidence about which workloads they are running. ([On-chip telemetry from timing, memory and performance counters](https://trustbutveri.fyi/mechanisms/on-chip-telemetry/))

- Assessment: mechanism family.
- Readiness: R2 Demonstrated, assessed for workload evidence from GPU counters and timing, assuming authentic measurements.
- Claims in this proposal: none of them.
- Threat model: semi-trusted prover. Hardware: existing features. Prover cooperation: partial. Attack testing: red-teamed. Category: On-chip & hardware-enabled.
- What the verifier sees: model weights depends; inputs and outputs depends; training data depends. Counters do not read weights or data, but richer counters can leak secrets through side channels.

### TEE remote attestation for AI workloads

Composes attested confidential workflow stages, with owner-approved input release and certificates linking each stage to its inputs, outputs and dependencies. ([TEE remote attestation for AI workloads](https://trustbutveri.fyi/mechanisms/tee-remote-attestation/))

- Assessment: selected implementation [Cove](https://trustbutveri.fyi/implementations/cove/).
- Readiness: R2 Demonstrated, assessed for composing owner-approved confidential workflow stages on Intel TDX.
- Claims in this proposal: none of them.
- Threat model: semi-trusted prover. Hardware: existing features. Prover cooperation: required. Attack testing: analysis. Category: Cryptographic & computational.
- What the verifier sees: model weights unspecified; inputs and outputs unspecified; training data unspecified. This Explorer has no asset-specific exposure assessment for this implementation. Check its source and deployment assumptions.


## Properties

**No new hardware needed**

- On-chip telemetry from timing, memory and performance counters
- TEE remote attestation for AI workloads


## Attack testing

Published attempts to break a system, including those that found failures. Testing history does not establish that open flaws are resolved.

**Testing history**

- On-chip telemetry from timing, memory and performance counters: Red-teamed
- TEE remote attestation for AI workloads / Cove: Analysis


## Limits

**Open critical flaws**

- Software-read telemetry can be forged by the operator (theoretical argument, in On-chip telemetry from timing, memory and performance counters; https://trustbutveri.fyi/mechanisms/on-chip-telemetry/#flaw-1) [1][3]. NVML-based classification assumes trustworthy telemetry. Without a tamper-resistant read path, an authenticated telemetry channel and secure boot of the monitoring software, an operator who controls the full software stack could forge counter values. Monfared et al. start from the same premise: current GPUs expose little trusted telemetry and can be modified or virtualized.

  Related mechanism: Hardware-enabled guarantees (flexHEG) and guarantee processors (R1, not in the proposal). A guarantee processor on the chip would give the tamper-resistant, authenticated telemetry path the flaw says is missing.

**Open significant flaws**

- Adversarially disguised fine-tuning partly evades classification (demonstrated attack, in On-chip telemetry from timing, memory and performance counters; https://trustbutveri.fyi/mechanisms/on-chip-telemetry/#flaw-2) [3]. Across 20 evasion strategy families in five monitor-evader rounds, the classifier's accuracy against the most challenging disguised workloads held out from training was 43–87%. White-box LoRA fine-tuning was the only evasion family detected less than half the time. The evaluation covered single nodes, PyTorch-level evasion and NVIDIA hardware.
- Timing challenges do not identify the individual chip (theoretical argument, in On-chip telemetry from timing, memory and performance counters; https://trustbutveri.fyi/mechanisms/on-chip-telemetry/#flaw-3) [1]. GEMM and VDF challenges can be answered by identical GPUs elsewhere, and floating-point fingerprints distinguish GPU models, not individual devices. GPU virtualization adds timing leakage that prevents attributing compute use.
- Counters leak information about protected workloads (theoretical argument, in On-chip telemetry from timing, memory and performance counters; https://trustbutveri.fyi/mechanisms/on-chip-telemetry/#flaw-4) [4][5]. Performance counters have been used as a side channel against TEEs, for example in CounterSEVeillance. NVIDIA disables performance counters in full confidential-computing mode, stating that they could provide an avenue for side-channel attacks. Richer counters for verification therefore pull against confidentiality.
- Guest host and container compromise defeat the workflow guarantees (theoretical argument, in Cove; https://trustbutveri.fyi/implementations/cove/#flaw-1) [6]. The developers state that compromise of the Docker daemon, host kernel or trusted TEE stack defeats Cove's guarantees. Owners must also review generated manifests and the provisioning code (S-1505).

**Family finding context**

- Context for Cove; applicability depends on the finding's scope. DDR5 memory-bus interposers forge Intel TDX attestations and break SEV-SNP protections (TEE.fail, DDRop) (demonstrated attack, in TEE remote attestation for AI workloads; https://trustbutveri.fyi/mechanisms/tee-remote-attestation/#flaw-1) [4][7][8][9][10][11][12][13]. Mechanism-class evidence. Critical when the verifier must resist physical access plus host control on the affected DDR5 platforms. The Intel demonstrations defeat attestation; TEE.fail's AMD demonstration extracts a guest key, not an AMD attestation key. These results do not cover every TEE architecture. Independent researchers placed an interposer, built for under $1000, on the DDR5 memory bus of servers running Intel TDX and AMD SEV-SNP. Server TEEs encrypt memory deterministically, without integrity or freshness protection, and the researchers exploited this to recover secrets. The attack needs physical access and root privileges.
  - On Intel, they extracted the provisioning certification key from a machine that Intel's service rated fully up to date. This per-CPU key signs the keys used in SGX and TDX attestation. With it they forged SGX and TDX attestations.
  - On AMD SEV-SNP with ciphertext hiding enabled, they recovered an ECDSA private key used by OpenSSL inside the virtual machine. It was not an AMD attestation key. Other independent attacks did break SEV-SNP attestation. Battering RAM did so with a DDR4 interposer, and RMPocalypse and Fabricked from malicious host software.

  A second team, from KU Leuven, ETH Zurich, Durham University and Google, built DDRop, an active DDR5 interposer with a bill of materials of $159. It silently drops memory writes, which memory encryption without freshness protection cannot detect. With brief physical access and control of the host software and BIOS, the researchers forced trust domains into debug mode and forged attestation reports on an up-to-date Intel TDX platform. The same primitive breaks the integrity of Scalable SGX and SEV-SNP, though the authors report no SEV-SNP attestation forgery.

  The TEE.fail authors report that Intel and AMD consider interposer attacks out of scope, which leaves physical security as the only mitigation. The DDRop authors report the same position, and that both vendors issued security advisories on disclosure in September 2026. PAL*M lists this attack class as out of its scope, and Tinfoil's documentation acknowledges it. Gloria Z calls key extraction through bus interposition "relatively low-hanging fruit" in an international treaty scenario.

  Related mechanism: Hardware-enabled guarantees (flexHEG) and guarantee processors (R1, not in the proposal). A tamper-protected enclosure around the chip is the proposed answer when the party that holds the hardware may attack it physically.
- Context for Cove; applicability depends on the finding's scope. DDR4 memory-bus interposers forge SGX and SEV-SNP attestation (Battering RAM, WireTap) (demonstrated attack, in TEE remote attestation for AI workloads; https://trustbutveri.fyi/mechanisms/tee-remote-attestation/#flaw-2) [11][14]. Mechanism-class evidence. Critical for the tested DDR4 SGX and SEV-SNP configurations against a physical host attacker. The authors exclude DDR5 from these demonstrations, including TDX servers; the DDR5 attacks have a separate finding. Two independent teams broke server TEE attestation on DDR4 memory with interposers they built themselves. Both attacks need physical access to install the device and root privileges on the host.
  - Battering RAM, by researchers at KU Leuven and the Universities of Birmingham and Durham, uses an interposer with a bill of materials of $47.62. It creates memory aliases at runtime, which bypasses the boot-time alias checks that AMD and Intel introduced against static aliasing attacks such as BadRAM. On Intel Scalable SGX it gained arbitrary read and write access to enclave plaintext and extracted SGX's platform provisioning key, which lets an attacker forge attestation certificates for arbitrary quoting enclaves. On up-to-date AMD SEV-SNP servers it captured the launch digests of genuine VMs and replayed them into modified VMs, so that backdoored VMs pass attestation.
  - WireTap, by researchers at Purdue University and Georgia Tech, uses an interposer built for under $1000 that records DDR4 bus traffic. On a Xeon Scalable server in fully trusted status it recovered the ECDSA attestation key of SGX's Quoting Enclave in 45 minutes and forged SGX quotes. The authors then showed end-to-end attacks on SGX-based blockchain deployments.

  Both attacks are limited to DDR4 systems. The Battering RAM authors state that all commercial TDX machines use DDR5, and the WireTap authors state that 4th and 5th generation Xeon Scalable processors need DDR5 and are not affected by their current work. According to the Battering RAM authors, Intel and AMD acknowledged the findings but consider physical attacks on DRAM out of scope for their current products. The WireTap authors report that Intel considers their attack outside the SGX threat model, and that there is no mitigation besides running servers in secure physical environments.

  Related mechanism: Hardware-enabled guarantees (flexHEG) and guarantee processors (R1, not in the proposal). A tamper-protected enclosure around the chip is the proposed answer when the party that holds the hardware may attack it physically.
- Context for Cove; applicability depends on the finding's scope. Software-only forgery of SEV-SNP attestation (RMPocalypse, Fabricked) (demonstrated attack, in TEE remote attestation for AI workloads; https://trustbutveri.fyi/mechanisms/tee-remote-attestation/#flaw-3) [12][13][15][16]. Mechanism-class evidence. Critical on affected SEV-SNP platforms before the vendor fixes. These attacks need privileged host software, not physical access. Mitigated records AMD's released updates; it does not establish that a particular deployment installed or enforces them. Researchers at ETH Zurich showed that a malicious hypervisor can corrupt the Reverse Map Table (RMP) while SEV-SNP initialises it. SEV-SNP uses the RMP to store security metadata for every DRAM page, and a single 8-byte overwrite leaves the whole table compromised. The attack needs no physical access. The authors confirmed it on Zen 3, Zen 4 and Zen 5 processors and state that it affects all AMD processors that support SEV-SNP. They demonstrated forged attestation values, debugging enabled on production confidential VMs, reads and writes of encrypted VM memory, and replay of VM register state.

  AMD assigned CVE-2025-0033. Its bulletin rates the issue medium severity and reports SEV firmware, microcode or platform firmware updates for every affected EPYC server and embedded series, with release dates from June 2025 to February 2026.

  In Fabricked, researchers from the same ETH Zurich group showed that a host controlling the hypervisor and UEFI firmware can misconfigure the Infinity Fabric interconnect so that the AMD Secure Processor initialises SEV-SNP incorrectly. On a Zen 5 EPYC processor this gave arbitrary reads and writes in the victim VM and forged attestation reports. AMD assigned CVE-2025-54510, rates it medium severity and reports platform firmware updates for its EPYC 7003, 8004, 9004 and 9005 server series, released in November and December 2025.
- Context for Cove; applicability depends on the finding's scope. H100 attestation not bound to a specific confidential VM (demonstrated attack, in TEE remote attestation for AI workloads; https://trustbutveri.fyi/mechanisms/tee-remote-attestation/#flaw-4) [7]. Mechanism-class evidence. The demonstration combines a genuine H100 report with forged Intel TDX evidence. It depends on the CPU attestation already being defeated; a GPU report alone does not demonstrate that an intact CPU-to-GPU trust chain was bypassed. The TEE.fail authors fetched genuine H100 confidential-computing attestations from a rented server running their TDX VM. They combined these with forged TDX quotes. A proxy running outside any TEE then passed both the TDX and the GPU attestation checks. The authors attribute this to NVIDIA not binding the H100 to the identities of specific VMs. Their site states more generally that NVIDIA's attestation reports are not bound to a specific confidential VM or CPU. Intel, AMD, NVIDIA and the affected deployments acknowledged the findings, according to the authors, and the affected deployments were working on mitigations. The attack does not target NVIDIA's confidential-computing components directly, so the authors state that there are no mitigations on the NVIDIA side.
- Context for Cove; applicability depends on the finding's scope. Side channels and other attacks by the host on CPU and GPU TEEs (demonstrated attack, in TEE remote attestation for AI workloads; https://trustbutveri.fyi/mechanisms/tee-remote-attestation/#flaw-5) [4][9][17][18][19]. Mechanism-class evidence. The cited studies concern particular CPU and GPU platforms and attack prerequisites. StackWarp has AMD microcode patches; the open class-level entry does not mean every cited defect is unmitigated or applies to every TEE-backed implementation. PAL*M and Attestable Audits cite published side-channel, single-stepping, interrupt-injection and memory-aliasing attacks on Intel TDX and AMD SEV, including T-Time, TDXploit, CIPHER-LEAKS, Heckler and BadRAM. PAL*M treats them as out of scope. Attestable Audits proposes revoking vulnerable enclave images. Gloria Z notes that performance counters have themselves been used as a side channel, for example in CounterSEVeillance. New attacks of this kind continue to appear. In StackWarp, researchers at CISPA showed that a malicious hypervisor can shift the stack pointer of an SEV-SNP guest on AMD Zen 1 to Zen 5 processors with simultaneous multithreading enabled, which fully breaks the guest's integrity. AMD released microcode patches. On the GPU side, an independent analysis of NVIDIA's confidential computing by IBM Research and Ohio State University found that bulk command and data transfers are protected, but some metadata, timing behaviour and coordination signals remain in unprotected shared memory. The authors report that these can reveal computational behaviour and in some cases allow manipulation of operations. They disclosed the findings to NVIDIA.
- Context for Cove; applicability depends on the finding's scope. Attestation covers launch state, and measurements can be incomplete (theoretical argument, in TEE remote attestation for AI workloads; https://trustbutveri.fyi/mechanisms/tee-remote-attestation/#flaw-6) [4][20][21][22][23]. Mechanism-class evidence. A general measurement-boundary limitation. The concrete WhatsApp configuration findings were fixed before launch; Apple's research-environment configuration flaw was also fixed. Their fixes do not remove the need to bind each deployment's runtime inputs. Attestation measures launch state, not runtime state. Data loaded later, such as model weights, must be bound separately. Gloria Z argues that gaps in measuring feature flags, environment variables and invocation arguments are "perhaps the most likely failure mode". She also warns that a badly designed hashing scheme could let two models with significantly different properties share a hash "without breaking the hash function itself". Independent reviews of production systems have found such gaps. In WhatsApp's deployment, Trail of Bits found environment variables and ACPI tables loaded outside the measurement, and rated both high severity. Meta fixed them. On an Apple PCC node running in Apple's research environment, a researcher reports that tampered configuration files left the attestation unchanged.
- Context for Cove; applicability depends on the finding's scope. Deployment-level attestation does not cover the whole chip (theoretical argument, in TEE remote attestation for AI workloads; https://trustbutveri.fyi/mechanisms/tee-remote-attestation/#flaw-7) [4]. Mechanism-class evidence. A limitation of deployment-level evidence when the claim concerns all activity on a chip. It does not defeat a narrower claim about which software served one attested request. An attestation shows what one confidential VM runs. It does not show what else the hypervisor runs on the same hardware. Gloria Z calls the difference between deployment-level attestation and chip-wide monitoring "the gaping hole in this plan". This matters most for negative claims such as the absence of training.

  Related mechanism: On-chip telemetry from timing, memory and performance counters (R2, in the proposal). On-chip counters are a proposed route to evidence about everything a chip runs, which attestation of one workload does not give.
- Context for Cove; applicability depends on the finding's scope. Root of trust concentrated in a few hardware vendors (theoretical argument, in TEE remote attestation for AI workloads; https://trustbutveri.fyi/mechanisms/tee-remote-attestation/#flaw-8) [4][17][24][25]. Mechanism-class evidence. Vendor trust is an assumption of the attestation chain. The root-seed extraction study concerns AMD EPYC Milan and firmware downgrade with privileged host and platform-flash access; it is not evidence of the same failure on Intel, NVIDIA or all AMD generations. The root of trust is the certificate authorities of a small number of vendors (AMD, Intel and NVIDIA), which generate the keys and fuse them onto the chips. Gloria Z notes that whoever has access to a hardware key, or can certify one, can in principle produce valid reports for arbitrary measurements without the physical chip. Attestable Audits notes that the approach holds only "as long as the vendor of the secure hardware is trusted". A 2026 preprint reports that a host with root control and the ability to rewrite platform flash can downgrade an AMD EPYC Milan processor to legacy security-processor firmware and extract the hardware root seed from which SEV-SNP attestation keys are derived. The authors state that this lets them forge attestation reports for any firmware version. AMD describes the firmware-loader flaw the attack starts from as a legacy attack mitigated in 2021.

**Open minor flaws**

- No quantified error rates or formal thresholds for timing primitives (open question, in On-chip telemetry from timing, memory and performance counters; https://trustbutveri.fyi/mechanisms/on-chip-telemetry/#flaw-5) [1]. Monfared et al. state that false-positive and false-negative rates are not quantified and leave hardware-specific formal thresholds to future work.
- Workflow bundles lack publisher signatures (open question, in Cove; https://trustbutveri.fyi/implementations/cove/#flaw-2) [6]. The published bundle format is hashed and reviewable but lacks an application-level publisher signature. The developers list a signing layer as missing (S-1505).


## Possible additions

Mechanisms on the map, not in the proposal, that the records connect to an unaddressed or partly addressed claim, an open flaw or a dependency. Pointers, not recommendations: each brings its own readiness level and flaws, and none is claimed to close a flaw.

- **Hardware-enabled guarantees (flexHEG) and guarantee processors** (R1 Proposed, assessed for checking and enforcing training-compute limits on chips, against adversaries up to states)
  - Bears on the open critical flaw "Software-read telemetry can be forged by the operator" in On-chip telemetry from timing, memory and performance counters. A guarantee processor on the chip would give the tamper-resistant, authenticated telemetry path the flaw says is missing.
  - On-chip telemetry from timing, memory and performance counters waits on it: Shipping accelerators need a tamper-resistant, authenticated telemetry path.


## Dependencies

**Blockers**

- On-chip telemetry from timing, memory and performance counters: Shipping accelerators need a tamper-resistant, authenticated telemetry path. (hardware trust; waits on Hardware-enabled guarantees (flexHEG) and guarantee processors) [2][3]
- On-chip telemetry from timing, memory and performance counters: NVIDIA's full confidential-computing mode disables the hardware performance counters its profiling tools use, so telemetry that needs them conflicts with it. (privacy & leakage) [4][5]
- On-chip telemetry from timing, memory and performance counters: Continuous challenge puzzles cost power and throughput on production workloads. (performance & compatibility) [1]
- On-chip telemetry from timing, memory and performance counters: Evaluation has not gone beyond single nodes, framework-level evasion and one vendor's hardware. (adversarial validation) [3]
- TEE remote attestation for AI workloads: Docker policy cannot prove that arbitrary guest workloads cannot generate quotes when quote channels are globally exposed. (evidence binding) [6]
- TEE remote attestation for AI workloads: The production workflow depends on owners reviewing manifests, allow rules and provisioning code. (access & governance) [6]


## What the verifier sees

- Model weights: shown by none; depends on the design for On-chip telemetry from timing, memory and performance counters; hidden by none; not involved in none; unspecified for TEE remote attestation for AI workloads.
- Inputs and outputs: shown by none; depends on the design for On-chip telemetry from timing, memory and performance counters; hidden by none; not involved in none; unspecified for TEE remote attestation for AI workloads.
- Training data: shown by none; depends on the design for On-chip telemetry from timing, memory and performance counters; hidden by none; not involved in none; unspecified for TEE remote attestation for AI workloads.

## Implementations

- On-chip telemetry from timing, memory and performance counters: none on the map
- TEE remote attestation for AI workloads: [Apple Private Cloud Compute](https://trustbutveri.fyi/implementations/apple-private-cloud-compute/) (R3, product); [Attestable Audits](https://trustbutveri.fyi/implementations/attestable-audits/) (R2, research prototype); [Cove](https://trustbutveri.fyi/implementations/cove/) (R2, open-source project); [PAL*M](https://trustbutveri.fyi/implementations/palm/) (R2, research prototype); [Tinfoil model identity (Modelwrap)](https://trustbutveri.fyi/implementations/tinfoil-model-identity/) (R3, product)

## Sources

1. Timing and Memory Telemetry on GPUs for AI Governance, S. K. Monfared et al. (2026). https://arxiv.org/abs/2602.09369
2. Guaranteeable Memory: An HBM-Based Chiplet for Verifiable AI Workloads, J. Petrie (2025). https://openreview.net/forum?id=uc79kOv0MV
3. Detecting Hidden ML Training With Zero-Overhead Telemetry, R. Rahman & S. Tajdari (2026). https://arxiv.org/abs/2606.19262
4. On TEEs for Privacy-Preserving Monitoring in AI Governance, Gloria Z (2026). https://techgov.intelligence.org/blog/on-tees-for-privacy-preserving-monitoring-in-ai-governance
5. NVIDIA Secure AI with Blackwell and Hopper GPUs (White Paper), NVIDIA (2025). https://docs.nvidia.com/nvidia-secure-ai-with-blackwell-and-hopper-gpus-whitepaper.pdf
6. Cove: Compositional Multi-Party Confidential Workflows for Verifiable AI Governance (reference implementation), covehub (2026). https://github.com/covehub/cove
7. TEE.fail: Breaking Trusted Execution Environments via DDR5 Memory Bus Interposition, J. Chuang et al. (2026). https://tee.fail/
8. DDRop: Active Memory Interposer Attacks on Confidential VMs by Dropping DDR5 Writes, J. De Meulemeester et al. (2026). https://ddropattack.eu/
9. PAL*M: Property Attestation for Large Generative Models, P. Chantasantitam et al. (2026). https://arxiv.org/abs/2601.16199
10. A primer on secure enclaves, Tinfoil (2026). https://docs.tinfoil.sh/verification/secure-enclave-primer
11. Battering RAM: Low-Cost Interposer Attacks on Confidential Computing via Dynamic Memory Aliasing, J. De Meulemeester et al. (2026). https://batteringram.eu/
12. RMPocalypse: How a Catch-22 Breaks AMD SEV-SNP, B. Schlüter & S. Shinde (2025). https://rmpocalypse.github.io/
13. Fabricked: Misconfiguring Infinity Fabric to Break AMD SEV-SNP, B. Schlüter et al. (2026). https://www.usenix.org/conference/usenixsecurity26/presentation/schlueter-1
14. WireTap: Breaking Server SGX via DRAM Bus Interposition, A. Seto et al. (2025). https://wiretap.fail/
15. SEV-SNP RMP Initialization Vulnerability (AMD-SB-3020), AMD (2025). https://www.amd.com/en/resources/product-security/bulletin/amd-sb-3020.html
16. SEV-SNP Routing Misconfiguration (AMD-SB-3034), AMD (2026). https://www.amd.com/en/resources/product-security/bulletin/amd-sb-3034.html
17. Attestable Audits: Verifiable AI Safety Benchmarks Using Trusted Execution Environments, C. Schnabl et al. (2025). https://arxiv.org/abs/2506.23706
18. StackWarp: Breaking AMD SEV-SNP Integrity via Deterministic Stack-Pointer Manipulation through the CPU's Stack Engine, R. Zhang et al. (2026). https://www.usenix.org/conference/usenixsecurity26/presentation/zhang-ruiyi
19. Blueprint, Bootstrap, and Bridge: A Security Look at NVIDIA GPU Confidential Computing, Z. Gu et al. (2026). https://arxiv.org/abs/2507.02770
20. How Tinfoil Proves Exactly What Model Is Running, Tinfoil Team (2026). https://tinfoil.sh/blog/2026-02-03-proving-model-identity
21. What we learned about TEE security from auditing WhatsApp's Private Inference, Trail of Bits (2026). https://blog.trailofbits.com/2026/04/07/what-we-learned-about-tee-security-from-auditing-whatsapps-private-inference/
22. Meta WhatsApp Private Processing (security review), Trail of Bits (2025). https://trailofbits.com/library/meta-whatsapp-private-processing/
23. Beyond Prompt Injection: Hacking Apple's Private Cloud Compute, D. Selmanaj (2026). https://blog.sentry.security/beyond-prompt-injection-hacking-apples-private-cloud-compute/
24. Insecure Despite Proven Updated: Extracting the Root VCEK Seed on EPYC Milan via a Software-Only Attack, M. Shen & Y. Qin (2026). https://arxiv.org/abs/2605.12990
25. MilanLaunchy Firmware Loader (AMD-SB-3045), AMD (2026). https://www.amd.com/en/resources/product-security/bulletin/amd-sb-3045.html
