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Challenges in Deploying Long-Context Transformers: A Theoretical Peak Performance Analysis
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Transformer-based long context generative models power emerging AI applications like hour-long video understanding and project-level coding agent. Deploying long context transformers (e.g., 100K to 10M tokens) is prohibitively expensive compared to short context (e.g., 4K tokens) model variants. Reducing the cost of long-context transformers is becoming a pressing research and engineering challenge starting from the year of 2024. This work describes a concurrent programming framework for quantitatively analyzing the efficiency challenges in serving multiple long-context requests under limited size of GPU high-bandwidth memory (HBM) regime. We give a detailed analysis of how all additional computational costs, compared to 4K context, trace back to \textit{one single source: the large size of the KV cache}. We use a 34B GPT-3.5 level model of 50K context on A100 NVLink as a running example, and describe how its large KV cache causes four types of deployment challenges: (1) prefilling long inputs takes much longer compute time and GPU memory than short inputs; (2) after prefilling, the large KV cache residing on the GPU HBM substantially restricts the number of concurrent users being served; (3) during decoding, repeatedly reading the KV cache from HBM to SM largely increases latency; (4) when KV cache memory overflows, swapping it from HBM to DDR causes significant context switching latency. We use this framework to analyze existing works and identify possibilities of combining them to build end-to-end systems. Overall, this work offers a foundational framework for analyzing long context transformer deployment and identifies directions towards reducing the inference cost of 1M context to be as cheap as 4K.
Forward citations
Cited by 2 Pith papers
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Accelerating Prefilling for Long-Context LLMs via Sparse Pattern Sharing
SharePrefill accelerates long-context LLM prefilling by clustering similar attention heads offline and sharing exact block-sparse attention patterns among them during inference.
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Beyond Homogeneous Attention: Memory-Efficient LLMs via Fourier-Approximated KV Cache
Compressing the less context-sensitive dimensions of the LLM KV cache with a truncated Fourier transform preserves long-context accuracy on LongBench and needle-in-a-haystack tests, while the claimed memory savings ar...
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