Search arXivSearch

arXiv · 2511.09861

Lit Silicon: A Case Where Thermal Imbalance Couples Concurrent Execution in Multiple GPUs

Abstract

GPU systems are increasingly powering modern datacenters at scale. Despite being highly performant, GPU systems can exhibit performance variation at the node and cluster levels. Such performance variation can significantly impact both high-performance computing and artificial intelligence workloads, such as cutting-edge large language models (LLMs). In this work, we analyze the performance of a single-node multi-GPU system running LLM training, and observe that the kernel-level performance variation is highly correlated with concurrent computation and communication (C3), a technique to overlap computation and communication across GPUs for performance gains. We then take a further step to reason that thermally induced straggling coupled with C3 impacts performance variation, which we coin the Lit Silicon effect. More specifically, Lit Silicon describes that in a multi-GPU node, thermal imbalance across GPUs can introduce node-level straggler GPUs (hotter and slower), which in turn slow down the leader GPUs (cooler and faster). Lit Silicon can lead to node-level performance variation and inefficiency, potentially impacting the entire datacenter. We propose analytical performance and power models for Lit Silicon, to understand the potential system-level gains. We further design simple detection and mitigation techniques to effectively address the Lit Silicon problem, and evaluate three different power management solutions, including (1) power optimization under GPU thermal design power, (2) performance optimization under node-level GPU power capping, and (3) performance optimization under node-level CPU power sloshing. We conduct experiments on two workloads on two AMD InstinctTM MI300X GPU systems under two LLM training frameworks, and observe up to 6% performance and 4% power improvements, potentially saving several tens of millions of dollars in electricity costs in datacenters.

Explore related subjects

Keep this discovery

Explore connections, maps & timelines

BibTeXRIS

Marco Kurzynski, Shaizeen Aga, Di Wu. 2026-05-12. Lit Silicon: A Case Where Thermal Imbalance Couples Concurrent Execution in Multiple GPUs. https://arxiv.org/abs/2511.09861

Cite the original work for its findings. Save a collection to share your selection of sources.

KEEP EXPLORING

Related papers

Profiling Concurrent Vision Inference Workloads on NVIDIA Jetson -- Extended

The proliferation of IoT devices and advancements in network technologies have intensified the demand for real-time data processing at the network edge. To address these demands, low-power AI accelerators, particularly GPUs, are increasingly deployed for inference tasks, enabling efficient computation while mitigating the latency and bandwidth limitations of cloud-based systems. Despite their growing deployment, GPUs remain underutilised even in computationally intensive workloads. This underutilisation stems from the limited understanding of GPU resource sharing, particularly in edge computing scenarios. In this work, we conduct a detailed analysis of both high- and low-level metrics, including GPU utilisation, memory usage, streaming multiprocessor (SM) utilisation, and tensor core usage, to identify bottlenecks and guide hardware-aware optimisations. By integrating traces from multiple profiling tools, we provide a comprehensive view of resource behaviour on NVIDIA Jetson edge devices under concurrent vision inference workloads. Our findings indicate that while GPU utilisation can reach $100\%$ with specific optimisations, critical low-level resources, such as SMs and tensor cores, often operate at only $15\%$ to $30\%$ utilisation. Moreover, we observe that certain CPU-side events, such as thread scheduling and context switching, frequently become bottlenecks, further constraining overall GPU performance. We provide several key observations for users of vision inference workloads on NVIDIA edge devices.

cs.DC

Mask-Aware Execution for Efficient JEPA Training

Joint Embedding Predictive Architectures (JEPAs) are becoming a core representation-learning primitive and a building block for latent world models across vision, video, audio, brain dynamics, and time series. Despite (potential of) wide deployment, current JEPA training pipelines are inefficient: each input is executed through multiple mask-specific branches, with redundant target-side work, and memory-bound token routing. These costs grow with the number of masks and limit GPU efficiency. We present M-JEPA, a mask-aware execution architecture that restructures JEPA training without changing the learning objective. M-JEPA separates mask-independent computation from mask-dependent routing, enabling shared context encoder execution, fused token routing and slicing with backward support, sparse target encoder execution over the union of target tokens, and masked patch embedding for sparse inputs. The resulting pipeline preserves training semantics while reducing computation, memory traffic, and synchronization overhead. We implement M-JEPA for five JEPA variants and evaluate it on NVIDIA A100 GPUs. Compared against the state-of-the-art baselines, M-JEPA achieves up to 1.7x end-to-end training speedup for 2-10 masks. Separately, with masked patch embedding, 4.75x patch-embedding speedup at high sparsity. These results show that execution restructuring, rather than changes to the JEPA objective, is a key lever for efficient JEPA training.

cs.DC

Multimmit: Extending Blocks for Faster Finality

To meet the throughput demands of modern blockchain systems, protocols for State Machine Replication (SMR) increasingly have many processors disseminate blocks of transactions in parallel, with consensus then establishing a total ordering on the blocks of all producers. Such designs face a choice as to when a block may enter the ordering. Certified approaches wait for a quorum to attest a block's availability, which is robust but adds message delays to every transaction. Uncertified approaches let proposals reference blocks immediately, which is fast but degrades rapidly when referenced data must be fetched on the critical path. Raptr, the state of the art, takes a middle course, finalising the longest prefix of the leader's proposal that a quorum holds, so that no processor ever blocks or fetches. The remaining weakness is sensitivity to order: if the data behind a single early batch is withheld, the proposal finalises little or nothing, so individual faulty producers can still deny the system its optimistic path. We present Multimmit, a protocol for $n \ge 5f+1$ processors combining a consensus layer requiring one round of voting per view with multi-chain data dissemination. Votes are cast relative to the leader's proposal, reporting per chain how far the voter can support it, and may themselves attest fresh blocks beyond it. A transaction block disseminated at time $t$ is ordered by $t+3δ$ in expectation and $t+2δ$ at best, measured from the block's dissemination rather than the leader's proposal. Degradation under faults is graceful: a faulty producer delays only its own chain's blocks, costing other chains at most a one-view wait for placement. No leader can both finalise its leader block and exclude a fresh, well-circulated block of an honest chain. Consensus traffic is tens of kilobytes per view, independent of transaction volume.

cs.DC