摘要
A customized RISC-V ISA with integrated digital accelerators offers a promising solution to improve energy efficiency in neural network inference. However, it often requires multiple instructions per accelerator operation, which limits computational efficiency during deep neural network inference. To overcome the instruction overhead, this design introduces a dedicated instruction set that enables scalable and fine-grained accelerator control. By incorporating the pattern-driven instruction mode, this design exploits the neural layer regularity to support efficient instruction iteration. Furthermore, this digital accelerator leverages hardware reuse for logic operations, forming a fusion-style architecture that integrates reconfigurable components. Experimental results demonstrate that the custom RISC-V ISA achieves an average runtime speedup of 8.26× and reduces the instruction count by 14.71×. This design also yields an average 8.73× reduction in cycles per instruction across MobileNetV2, ResNet50, VGG19, EfficientNet, and DenseNet-BC, validating its effectiveness across representative benchmarks. Additionally, it improves average energy efficiency by 1.74×, outperforming state-of-the-art designs.
| 源语言 | 英语 |
|---|---|
| 主期刊名 | Proceedings of the 22nd ACM International Conference on Computing Frontiers 2025, CF 2025 |
| 出版商 | Association for Computing Machinery, Inc |
| 页 | 212-215 |
| 页数 | 4 |
| ISBN(电子版) | 9798400715280 |
| DOI | |
| 出版状态 | 已出版 - 4 7月 2025 |
| 活动 | 22nd ACM International Conference on Computing Frontiers 2025, CF 2025 - Cagliari, 意大利 期限: 28 5月 2025 → 30 5月 2025 |
出版系列
| 姓名 | Proceedings of the 22nd ACM International Conference on Computing Frontiers 2025, CF 2025 |
|---|---|
| 卷 | 1 |
会议
| 会议 | 22nd ACM International Conference on Computing Frontiers 2025, CF 2025 |
|---|---|
| 国家/地区 | 意大利 |
| 市 | Cagliari |
| 时期 | 28/05/25 → 30/05/25 |
联合国可持续发展目标
此成果有助于实现下列可持续发展目标:
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可持续发展目标 7 经济适用的清洁能源
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