Alert button
Picture for Hanqing Zhu

Hanqing Zhu

Alert button

Integrated multi-operand optical neurons for scalable and hardware-efficient deep learning

Add code
Bookmark button
Alert button
May 31, 2023
Chenghao Feng, Jiaqi Gu, Hanqing Zhu, Rongxing Tang, Shupeng Ning, May Hlaing, Jason Midkiff, Sourabh Jain, David Z. Pan, Ray T. Chen

Figure 1 for Integrated multi-operand optical neurons for scalable and hardware-efficient deep learning
Figure 2 for Integrated multi-operand optical neurons for scalable and hardware-efficient deep learning
Figure 3 for Integrated multi-operand optical neurons for scalable and hardware-efficient deep learning
Figure 4 for Integrated multi-operand optical neurons for scalable and hardware-efficient deep learning
Viaarxiv icon

M3ICRO: Machine Learning-Enabled Compact Photonic Tensor Core based on PRogrammable Multi-Operand Multimode Interference

Add code
Bookmark button
Alert button
May 31, 2023
Jiaqi Gu, Hanqing Zhu, Chenghao Feng, Zixuan Jiang, Ray T. Chen, David Z. Pan

Figure 1 for M3ICRO: Machine Learning-Enabled Compact Photonic Tensor Core based on PRogrammable Multi-Operand Multimode Interference
Figure 2 for M3ICRO: Machine Learning-Enabled Compact Photonic Tensor Core based on PRogrammable Multi-Operand Multimode Interference
Figure 3 for M3ICRO: Machine Learning-Enabled Compact Photonic Tensor Core based on PRogrammable Multi-Operand Multimode Interference
Figure 4 for M3ICRO: Machine Learning-Enabled Compact Photonic Tensor Core based on PRogrammable Multi-Operand Multimode Interference
Viaarxiv icon

Pre-RMSNorm and Pre-CRMSNorm Transformers: Equivalent and Efficient Pre-LN Transformers

Add code
Bookmark button
Alert button
May 24, 2023
Zixuan Jiang, Jiaqi Gu, Hanqing Zhu, David Z. Pan

Figure 1 for Pre-RMSNorm and Pre-CRMSNorm Transformers: Equivalent and Efficient Pre-LN Transformers
Figure 2 for Pre-RMSNorm and Pre-CRMSNorm Transformers: Equivalent and Efficient Pre-LN Transformers
Figure 3 for Pre-RMSNorm and Pre-CRMSNorm Transformers: Equivalent and Efficient Pre-LN Transformers
Figure 4 for Pre-RMSNorm and Pre-CRMSNorm Transformers: Equivalent and Efficient Pre-LN Transformers
Viaarxiv icon

NeurOLight: A Physics-Agnostic Neural Operator Enabling Parametric Photonic Device Simulation

Add code
Bookmark button
Alert button
Sep 19, 2022
Jiaqi Gu, Zhengqi Gao, Chenghao Feng, Hanqing Zhu, Ray T. Chen, Duane S. Boning, David Z. Pan

Figure 1 for NeurOLight: A Physics-Agnostic Neural Operator Enabling Parametric Photonic Device Simulation
Figure 2 for NeurOLight: A Physics-Agnostic Neural Operator Enabling Parametric Photonic Device Simulation
Figure 3 for NeurOLight: A Physics-Agnostic Neural Operator Enabling Parametric Photonic Device Simulation
Figure 4 for NeurOLight: A Physics-Agnostic Neural Operator Enabling Parametric Photonic Device Simulation
Viaarxiv icon

Uni-Retriever: Towards Learning The Unified Embedding Based Retriever in Bing Sponsored Search

Add code
Bookmark button
Alert button
Feb 13, 2022
Jianjin Zhang, Zheng Liu, Weihao Han, Shitao Xiao, Ruicheng Zheng, Yingxia Shao, Hao Sun, Hanqing Zhu, Premkumar Srinivasan, Denvy Deng, Qi Zhang, Xing Xie

Figure 1 for Uni-Retriever: Towards Learning The Unified Embedding Based Retriever in Bing Sponsored Search
Figure 2 for Uni-Retriever: Towards Learning The Unified Embedding Based Retriever in Bing Sponsored Search
Figure 3 for Uni-Retriever: Towards Learning The Unified Embedding Based Retriever in Bing Sponsored Search
Figure 4 for Uni-Retriever: Towards Learning The Unified Embedding Based Retriever in Bing Sponsored Search
Viaarxiv icon

ELight: Enabling Efficient Photonic In-Memory Neurocomputing with Life Enhancement

Add code
Bookmark button
Alert button
Dec 15, 2021
Hanqing Zhu, Jiaqi Gu, Chenghao Feng, Mingjie Liu, Zixuan Jiang, Ray T. Chen, David Z. Pan

Figure 1 for ELight: Enabling Efficient Photonic In-Memory Neurocomputing with Life Enhancement
Figure 2 for ELight: Enabling Efficient Photonic In-Memory Neurocomputing with Life Enhancement
Figure 3 for ELight: Enabling Efficient Photonic In-Memory Neurocomputing with Life Enhancement
Figure 4 for ELight: Enabling Efficient Photonic In-Memory Neurocomputing with Life Enhancement
Viaarxiv icon

Silicon photonic subspace neural chip for hardware-efficient deep learning

Add code
Bookmark button
Alert button
Nov 11, 2021
Chenghao Feng, Jiaqi Gu, Hanqing Zhu, Zhoufeng Ying, Zheng Zhao, David Z. Pan, Ray T. Chen

Figure 1 for Silicon photonic subspace neural chip for hardware-efficient deep learning
Figure 2 for Silicon photonic subspace neural chip for hardware-efficient deep learning
Figure 3 for Silicon photonic subspace neural chip for hardware-efficient deep learning
Viaarxiv icon

L2ight: Enabling On-Chip Learning for Optical Neural Networks via Efficient in-situ Subspace Optimization

Add code
Bookmark button
Alert button
Oct 27, 2021
Jiaqi Gu, Hanqing Zhu, Chenghao Feng, Zixuan Jiang, Ray T. Chen, David Z. Pan

Figure 1 for L2ight: Enabling On-Chip Learning for Optical Neural Networks via Efficient in-situ Subspace Optimization
Figure 2 for L2ight: Enabling On-Chip Learning for Optical Neural Networks via Efficient in-situ Subspace Optimization
Figure 3 for L2ight: Enabling On-Chip Learning for Optical Neural Networks via Efficient in-situ Subspace Optimization
Figure 4 for L2ight: Enabling On-Chip Learning for Optical Neural Networks via Efficient in-situ Subspace Optimization
Viaarxiv icon

Towards Memory-Efficient Neural Networks via Multi-Level in situ Generation

Add code
Bookmark button
Alert button
Sep 05, 2021
Jiaqi Gu, Hanqing Zhu, Chenghao Feng, Mingjie Liu, Zixuan Jiang, Ray T. Chen, David Z. Pan

Figure 1 for Towards Memory-Efficient Neural Networks via Multi-Level in situ Generation
Figure 2 for Towards Memory-Efficient Neural Networks via Multi-Level in situ Generation
Figure 3 for Towards Memory-Efficient Neural Networks via Multi-Level in situ Generation
Figure 4 for Towards Memory-Efficient Neural Networks via Multi-Level in situ Generation
Viaarxiv icon