Ecco: Improving Memory Bandwidth and Capacity for LLMs via Entropy-Aware Cache Compression
Feng Cheng, Cong Guo, Chiyue Wei, Junyao Zhang, Changchun Zhou, Edward Hanson, Jiaqi Zhang, Xiaoxiao Liu, Hai Li, Yiran Chen
Abstract
Large language models (LLMs) have demonstrated transformative capabilities across diverse artificial intelligence applications, yet their deployment is hindered by substantial memory and computational demands, especially in resource-constrained environments. Quantization techniques have emerged as a critical solution, reducing data precision to enhance memory and computational efficiency. However, existing methods often suffer from high runtime overheads and potential accuracy degradation. To address these challenges, we propose Ecco, an entropy-based cache compression technique tailored for LLMs. Ecco combines group-wise and nonuniform quantization with pre-defined shared k-means patterns and Huffman coding to exploit the inherent entropy characteristics of LLM cache data. Recognizing the inefficiencies of traditional Huffman coding in terms of parallelism and latency, we introduce a novel parallel Huffman-based decoding process with a multi-stage pipeline design, reducing latency by two orders of magnitude and achieving throughput comparable to GPU L2 caches. Comprehensive evaluations demonstrate that Ecco achieves an up to 2.9× and 1.9× speedup over the state-of-the-art AWQ and SmoothQuant framework, 2.4× over the Olive accelerator, all while increasing memory capacity by nearly 4× and maintaining state-of-the-art LLM accuracy. These results underscore the effectiveness of our
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Install the CLIlune papers fulltext a90c7c87-5d7d-499a-a336-ced1d13d3a5fCited by top-tier papers7
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