Compact and robust deep learning architecture for fluorescence lifetime imaging and FPGA implementation.
Zhenya ZangDong XiaoQuan WangZiao JiaoYu ChenDavid Day-Uei LiPublished in: Methods and applications in fluorescence (2023)
This paper reports a bespoke adder-based deep learning network for time-domain fluorescence lifetime imaging (FLIM). By leveraging thel1-norm extraction method, we propose a 1D Fluorescence Lifetime AdderNet (FLAN) without multiplication-based convolutions to reduce the computational complexity. Further, we compressed fluorescence decays in temporal dimension using a log-scale merging technique to discard redundant temporal information derived as log-scaling FLAN (FLAN+LS). FLAN+LS achieves 0.11 and 0.23 compression ratios compared with FLAN and a conventional 1D convolutional neural network (1D CNN) while maintaining high accuracy in retrieving lifetimes. We extensively evaluated FLAN and FLAN+LS using synthetic and real data. A traditional fitting method and other non-fitting, high-accuracy algorithms were compared with our networks for synthetic data. Our networks attained a minor reconstruction error in different photon-count scenarios. For real data, we used fluorescent beads' data acquired by a confocal microscope to validate the effectiveness of real fluorophores, and our networks can differentiate beads with different lifetimes. Additionally, we implemented the network architecture on a field-programmable gate array (FPGA) with a post-quantization technique to shorten the bit-width, thereby improving computing efficiency. FLAN+LS on hardware achieves the highest computing efficiency compared to 1D CNN and FLAN. We also discussed the applicability of our network and hardware architecture for other time-resolved biomedical applications using photon-efficient, time-resolved sensors.
Keyphrases
- deep learning
- convolutional neural network
- electronic health record
- single molecule
- big data
- high resolution
- artificial intelligence
- machine learning
- healthcare
- living cells
- energy transfer
- climate change
- multidrug resistant
- emergency department
- quantum dots
- data analysis
- optical coherence tomography
- adverse drug
- mass spectrometry
- health information