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MixFormer: A Mixed CNN-Transformer Backbone for Medical Image Segmentation
Journal article
Liu, Jun, Li, Kunqi, Huang, Chun, Dong, Hua, Song, Yusheng, Li, Rihui. MixFormer: A Mixed CNN-Transformer Backbone for Medical Image Segmentation[J]. IEEE Transactions on Instrumentation and Measurement, 2024, 74, 5001220.
Authors:
Liu, Jun
;
Li, Kunqi
;
Huang, Chun
;
Dong, Hua
;
Song, Yusheng
; et al.
Favorite
|
TC[WOS]:
0
TC[Scopus]:
1
IF:
5.6
/
5.6
|
Submit date:2024/12/05
Medical Image Segmentation (Seg)
Mixed Convolutional Neural Network (Cnn)–transformer Backbone
Mixed Multibranch Dilated Attention (Mmda)
Multi-scale Spatial-aware Fusion (Msaf)
A 97.8 GOPS/W FPGA-Based Residual-Block-Aware CNN Accelerator Featuring Multi-Clock PW2 Pipeline and Adaptive-Resolution Quantization
Journal article
Li, Jixuan, Li, Ke, Un, Ka Fai, Yu, Wei Han, Martins, Rui P., Mak, Pui In. A 97.8 GOPS/W FPGA-Based Residual-Block-Aware CNN Accelerator Featuring Multi-Clock PW2 Pipeline and Adaptive-Resolution Quantization[J]. IEEE Transactions on Circuits and Systems I: Regular Papers, 2024.
Authors:
Li, Jixuan
;
Li, Ke
;
Un, Ka Fai
;
Yu, Wei Han
;
Martins, Rui P.
; et al.
Favorite
|
TC[WOS]:
0
TC[Scopus]:
0
IF:
5.2
/
4.5
|
Submit date:2024/12/26
Convolutional Neural Network (Cnn)
Digital Signal Processing (Dsp)
Field-programmable Gate Array (Fpga)
Processing Unit (Pe) Utilization
Residual Block
RFID-Based Unobtrusive Pedestrian Identification Using Convolutional Neural Network
Conference paper
ZHAO LINQI, CHEONG PEDRO, CHOI WAI WA. RFID-Based Unobtrusive Pedestrian Identification Using Convolutional Neural Network[C]:Institute of Electrical and Electronics Engineers Inc., 2024.
Authors:
ZHAO LINQI
;
CHEONG PEDRO
;
CHOI WAI WA
Favorite
|
TC[WOS]:
0
TC[Scopus]:
0
|
Submit date:2024/08/30
Convolutional Neural Network (Cnn)
Pedestrian Identification
Radio Frequency Identification
Squeeze-and-excitation Block
A Deep High-Order Tensor Sparse Representation for Hyperspectral Image Classification
Journal article
Cheng, Chunbo, Zhang, Liming, Li, Hong, Cui, Wenjing, Gao, Junbin, Cun, Yuxiao. A Deep High-Order Tensor Sparse Representation for Hyperspectral Image Classification[J]. IEEE Transactions on Geoscience and Remote Sensing, 2024, 62, 5521416.
Authors:
Cheng, Chunbo
;
Zhang, Liming
;
Li, Hong
;
Cui, Wenjing
;
Gao, Junbin
; et al.
Favorite
|
TC[WOS]:
0
TC[Scopus]:
0
IF:
7.5
/
7.6
|
Submit date:2024/08/05
Convolutional Neural Network (Cnn)
Deep High-order Tensor Sparse Representation (Sr)
Deep Learning
Graph-based Learning (Gsl)
Hyperspectral Image (Hsi) Classification
FLEX-CIM: A Flexible Kernel Size 1-GHz 181.6-TOPS/W 25.63-TOPS/mm2 Analog Compute-in-Memory Macro
Journal article
Fu, Yuzhao, Yu, Wei Han, Un, Ka Fai, Chan, Chi Hang, Zhu, Yan, Zhang, Minglei, Martins, Rui P., Mak, Pui In. FLEX-CIM: A Flexible Kernel Size 1-GHz 181.6-TOPS/W 25.63-TOPS/mm2 Analog Compute-in-Memory Macro[J]. IEEE Journal of Solid-State Circuits, 2024.
Authors:
Fu, Yuzhao
;
Yu, Wei Han
;
Un, Ka Fai
;
Chan, Chi Hang
;
Zhu, Yan
; et al.
Favorite
|
TC[WOS]:
1
TC[Scopus]:
1
IF:
4.6
/
5.6
|
Submit date:2024/05/16
Analog Partial Sum (Aps)
Compute-in-memory (Cim)
Convolutional Neural Network (Cnn)
Flexible Kernel Size
Utilization
Residual GCB-Net: Residual Graph Convolutional Broad Network on Emotion Recognition
Journal article
Li, Qilin, Zhang, Tong, Chen, C. L.P., Yi, Ke, Chen, Long. Residual GCB-Net: Residual Graph Convolutional Broad Network on Emotion Recognition[J]. IEEE Transactions on Cognitive and Developmental Systems, 2023, 15(4), 1673 - 1685.
Authors:
Li, Qilin
;
Zhang, Tong
;
Chen, C. L.P.
;
Yi, Ke
;
Chen, Long
Favorite
|
TC[WOS]:
31
TC[Scopus]:
32
IF:
5.0
/
4.6
|
Submit date:2022/05/17
Broad Learning System (Bls)
Emotion Recognition
Graph Convolutional Broad Network (Gcb-net)
Graph Convolutional Neural Network (Cnn)
Residual Graph Convolutional Broad Network (Residual Gcb-net)
A 0.05-mm2 2.91-nJ/Decision Keyword-Spotting (KWS) Chip Featuring an Always-Retention 5T-SRAM in 28-nm CMOS
Journal article
Tan,Fei, Yu,Wei Han, Un,Ka Fai, Martins,Rui P., Mak,Pui In. A 0.05-mm2 2.91-nJ/Decision Keyword-Spotting (KWS) Chip Featuring an Always-Retention 5T-SRAM in 28-nm CMOS[J]. IEEE Journal of Solid-State Circuits, 2023, 59(2), 626-635.
Authors:
Tan,Fei
;
Yu,Wei Han
;
Un,Ka Fai
;
Martins,Rui P.
;
Mak,Pui In
Favorite
|
TC[WOS]:
10
TC[Scopus]:
9
IF:
4.6
/
5.6
|
Submit date:2023/08/03
5t-sram
Convolutional Neural Network (Cnn)
Input Stationery
Keyword Spotting (Kws)
Low-leakage Memory
Quantization
Switched-capacitor Circuits
An FPGA-Based Energy-Efficient Reconfigurable Depthwise Separable Convolution Accelerator for Image Recognition
Journal article
Lei Xuan, Ka-Fai Un, Chi-Seng Lam, Rui P. Martins. An FPGA-Based Energy-Efficient Reconfigurable Depthwise Separable Convolution Accelerator for Image Recognition[J]. IEEE Transactions on Circuits and Systems II: Express Briefs, 2022, 69(10), 4003-4007.
Authors:
Lei Xuan
;
Ka-Fai Un
;
Chi-Seng Lam
;
Rui P. Martins
Favorite
|
TC[WOS]:
30
TC[Scopus]:
32
IF:
4.0
/
3.7
|
Submit date:2022/06/14
Frequency Modulation
Field Programmable Gate Arrays
Energy Efficiency
Memory Management
Random Access Memory
Arrays
Computational Cost
Convolutional Neural Network (Cnn)
Field-programmable Gate Array (Fpga)
Mobilenetv2
Neural Network
Quantization
A 108-nW 0.8-mm 2 Analog Voice Activity Detector Featuring a Time-Domain CNN With Sparsity-Aware Computation and Sparsified Quantization in 28-nm CMOS
Journal article
Chen, Feifei, Un, Ka Fai, Yu, Wei Han, Mak, Pui In, Martins, Rui P.. A 108-nW 0.8-mm 2 Analog Voice Activity Detector Featuring a Time-Domain CNN With Sparsity-Aware Computation and Sparsified Quantization in 28-nm CMOS[J]. IEEE JOURNAL OF SOLID-STATE CIRCUITS, 2022, 57(11), 3288 - 3297.
Authors:
Chen, Feifei
;
Un, Ka Fai
;
Yu, Wei Han
;
Mak, Pui In
;
Martins, Rui P.
Adobe PDF
|
Favorite
|
TC[WOS]:
9
TC[Scopus]:
8
IF:
4.6
/
5.6
|
Submit date:2022/07/22
Approximate Computing
Convolutional Neural Network (Cnn)
Feature Extraction
Keyword Spotting (Kws)
Quantization
Reconfigurable
Sparsity
Switched-capacitor Circuits
Voice Activity Detection (Vad)
NFANet: A Novel Method for Weakly Supervised Water Extraction from High-Resolution Remote-Sensing Imagery
Journal article
Lu, Ming, Fang, Leyuan, Li, Muxing, Zhang, Bob, Zhang, Yi, Ghamisi, Pedram. NFANet: A Novel Method for Weakly Supervised Water Extraction from High-Resolution Remote-Sensing Imagery[J]. IEEE Transactions on Geoscience and Remote Sensing, 2022, 60.
Authors:
Lu, Ming
;
Fang, Leyuan
;
Li, Muxing
;
Zhang, Bob
;
Zhang, Yi
; et al.
Favorite
|
TC[WOS]:
27
TC[Scopus]:
38
IF:
7.5
/
7.6
|
Submit date:2022/05/17
Convolutional Neural Network (Cnn)
Deep Learning
Semantic Segmentation
Water Extraction
Weak Supervision