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BRIEDGE: EEG-Adaptive Edge AI for Multi-Brain to Multi-Robot Interaction (2403.15432v1)

Published 14 Mar 2024 in eess.SP, cs.AI, cs.HC, cs.LG, and cs.RO

Abstract: Recent advances in EEG-based BCI technologies have revealed the potential of brain-to-robot collaboration through the integration of sensing, computing, communication, and control. In this paper, we present BRIEDGE as an end-to-end system for multi-brain to multi-robot interaction through an EEG-adaptive neural network and an encoding-decoding communication framework, as illustrated in Fig.1. As depicted, the edge mobile server or edge portable server will collect EEG data from the users and utilize the EEG-adaptive neural network to identify the users' intentions. The encoding-decoding communication framework then encodes the EEG-based semantic information and decodes it into commands in the process of data transmission. To better extract the joint features of heterogeneous EEG data as well as enhance classification accuracy, BRIEDGE introduces an informer-based ProbSparse self-attention mechanism. Meanwhile, parallel and secure transmissions for multi-user multi-task scenarios under physical channels are addressed by dynamic autoencoder and autodecoder communications. From mobile computing and edge AI perspectives, model compression schemes composed of pruning, weight sharing, and quantization are also used to deploy lightweight EEG-adaptive models running on both transmitter and receiver sides. Based on the effectiveness of these components, a code map representing various commands enables multiple users to control multiple intelligent agents concurrently. Our experiments in comparison with state-of-the-art works show that BRIEDGE achieves the best classification accuracy of heterogeneous EEG data, and more stable performance under noisy environments.

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References (75)
  1. 2017. UCI Machine Learning Repository. http://archive.ics.uci.edu/ml
  2. 2021. Brainlink. http://o.macrotellect.com/index.html
  3. 2022. Apple TV. https://tv.apple.com/
  4. 2022. EMOTIV Neuroheadsets - Emotiv: EEG Brain Interface. https://www.emotiv.com/
  5. 2022. Manifold 2 - DJI. https://www.dji.com/manifold-2
  6. 2022. Neuralink. https://neuralink.com/
  7. A New Approach for an End-to-end Communication System Using Variational Auto-encoder (VAE). In IEEE Global Communications Conference. 5159–5164.
  8. Onnx: Open neural network exchange. GitHub repository (2019). https://github.com/onnx/onnx
  9. Mutual Information Neural Estimation. In ICML 2018 (Proceedings of Machine Learning Research, Vol. 80). 530–539.
  10. Longformer: The Long-Document Transformer. arXiv 2004.05150 (2020).
  11. A prototype of a P300 based brain-robot interface to enable multi-modal interaction for patients with limited mobility. In 2019 IEEE International Conference on Cyborg and Bionic Systems (CBS). IEEE, 78–84.
  12. Gyorgy Buzsaki. 2006. Rhythms of the Brain. Oxford university press.
  13. A Software-Defined Radio for Wireless Brain Implants Network. In ACM MOBICOM. 852–854.
  14. Brain–computer interface classifier for wheelchair commands using neural network with fuzzy particle swarm optimization. IEEE journal of biomedical and health informatics 18, 5 (2013), 1614–1624.
  15. Generating Long Sequences with Sparse Transformers. arXiv 1904.10509 (2019).
  16. Semantic Communication System Based on Semantic Slice Models Propagation. IEEE Journal on Selected Areas in Communications 41, 1 (2022), 202–213.
  17. NestDNN: Resource-Aware Multi-Tenant On-Device Deep Learning for Continuous Mobile Vision. In ACM MOBICOM. 115–127.
  18. EEG-based mobile robot control through an adaptive brain–robot interface. IEEE Transactions on Systems, Man, and Cybernetics: Systems 44, 9 (2014), 1278–1285.
  19. Alex Graves and Jürgen Schmidhuber. 2005. Framewise phoneme classification with bidirectional LSTM and other neural network architectures. Neural Networks 18, 5-6, 602–610.
  20. LegoDNN: block-grained scaling of deep neural networks for mobile vision. In ACM MOBICOM. 406–419.
  21. Deep Compression: Compressing Deep Neural Network with Pruning, Trained Quantization and Huffman Coding. In ICLR. 1–14.
  22. Johannes Edmund Handschin and David Q Mayne. 1969. Monte Carlo techniques to estimate the conditional expectation in multi-stage non-linear filtering. International journal of control 9, 5 (1969), 547–559.
  23. VI-eye: semantic-based 3D point cloud registration for infrastructure-assisted autonomous driving. In ACM MOBICOM. 573–586.
  24. SignSpeaker: A Real-time, High-Precision SmartWatch-based Sign Language Translator. In ACM MOBICOM. 24:1–24:15.
  25. Novel active comb-shaped dry electrode for EEG measurement in hairy site. IEEE Transactions on Biomedical Engineering 62, 1 (2014), 256–263.
  26. EEG-TCNet: An Accurate Temporal Convolutional Network for Embedded Motor-Imagery Brain-Machine Interfaces. In SMC. 2958–2965.
  27. Achieving Receiver-Side Cross-Technology Communication with Cross-Decoding. In ACM MOBICOM. 639–652.
  28. David Burth Kurka and Deniz Gündüz. 2021. Bandwidth-Agile Image Transmission With Deep Joint Source-Channel Coding. IEEE Trans. Wirel. Commun. 20, 12 (2021), 8081–8095.
  29. Quadcopter control in three-dimensional space using a noninvasive motor imagery-based brain-computer interface. Journal of neural engineering 10, 4 (2013), 1–15.
  30. EEGNet: a compact convolutional neural network for EEG-based brain–computer interfaces. Journal of Neural Engineering 15 (2018).
  31. Khoa N. Le and Theodoros A. Tsiftsis. 2019. Wireless Security Employing Opportunistic Relays and an Adaptive Encoder Under Outdated CSI and Dual-Correlated Nakagami- $m$ Fading. IEEE Trans. Commun. 67, 3 (2019), 2405–2419.
  32. Optimal Brain Damage. In NIPS. 598–605.
  33. All One Needs to Know about Metaverse: A Complete Survey on Technological Singularity, Virtual Ecosystem, and Research Agenda. arXiv preprint arXiv:2110.05352 (2021).
  34. Towards Independence: A BCI Telepresence Robot for People with Severe Motor Disabilities. Proc. IEEE 103, 6 (2015), 969–982.
  35. The roadmap to 6G: AI empowered wireless networks. IEEE communications magazine 57, 8 (2019), 84–90.
  36. NeuralGait: Assessing Brain Health Using Your Smartphone. ACM IMWUT (UbiComp) 6, 4 (2022), 169:1–169:28.
  37. Enhancing the Locality and Breaking the Memory Bottleneck of Transformer on Time Series Forecasting. In NeurIPS. 5244–5254.
  38. Towards an EEG-based brain-computer interface for online robot control. Multimedia Tools and Applications 75, 13 (2016), 7999–8017.
  39. Maskformer with Improved Encoder-Decoder Module for Semantic Segmentation of Fine-Resolution Remote Sensing Images. In ICIP. 1971–1975.
  40. Edge Assisted Real-time Object Detection for Mobile Augmented Reality. In ACM MOBICOM. 25:1–25:16.
  41. Novice-AI Music Co-Creation via AI-Steering Tools for Deep Generative Models. In CHI. 1–13.
  42. Semantic Communications: Overview, Open Issues, and Future Research Directions. IEEE Wirel. Commun. 29, 1 (2022), 210–219.
  43. A brain–robot interaction system by fusing human and machine intelligence. IEEE Transactions on Neural Systems and Rehabilitation Engineering 27, 3 (2019), 533–542.
  44. Yashar Moshfeghi and Frank E. Pollick. 2018. Search Process as Transitions Between Neural States. In ACM WWW. 1683–1692.
  45. Data-Driven Sensor Selection Method Based on Proximal Optimization for High-Dimensional Data With Correlated Measurement Noise. IEEE Trans. Signal Process. 70 (2022), 5251–5264.
  46. David O. Nahmias and Kimberly L. Kontson. 2020. Easy Perturbation EEG Algorithm for Spectral Importance (easyPEASI): A Simple Method to Identify Important Spectral Features of EEG in Deep Learning Models. In KDD. 2398–2406.
  47. A Paradigm Shift toward Semantic Communications. IEEE Communications Magazine 60, 11 (2022), 113–119.
  48. Backscatter and Reconfigurable Intelligent Surface-Empowered Wireless Communications in 6G. IEEE Veh. Technol. Mag. 17, 2 (2022), 14–15.
  49. Semantic Communications: Principles and Challenges. CoRR abs/2201.01389 (2022). https://arxiv.org/abs/2201.01389
  50. Irving S Reed and Gustave Solomon. 1960. Polynomial codes over certain finite fields. Journal of the society for industrial and applied mathematics 8, 2 (1960), 300–304.
  51. Learning Temporal Information for Brain-Computer Interface Using Convolutional Neural Networks. IEEE Transaction Neural Networks Learn System. 29, 11 (2018), 5619–5629.
  52. BCI2000: a general-purpose brain-computer interface (BCI) system. IEEE Transactions on Biomedical Engineering 51 (2004), 1034–1043.
  53. Deep learning with convolutional neural networks for EEG decoding and visualization. Human Brain Mapping 38 (2017), 5391 – 5420.
  54. The mathematical theory of communication (Reprinted). Urbana University of Illinois Press (1997), 306–317.
  55. Using Deep Learning and Mobile Offloading to Control a 3D-Printed Prosthetic Hand. ACM IMWUT (UbiComp) 3, 3 (2019), 102:1–102:19.
  56. From Semantic Communication to Semantic-Aware Networking: Model, Architecture, and Open Problems. IEEE Commun. Mag. 59, 8 (2021), 44–50.
  57. Emilio Calvanese Strinati and Sergio Barbarossa. 2021. 6G networks: Beyond Shannon towards semantic and goal-oriented communications. Computer Networks 190 (2021), 107930.
  58. 5G edge enhanced mobile augmented reality. In ACM MOBICOM. 64:1–64:3.
  59. EEG-based Emotion Recognition via Channel-wise Attention and Self Attention. IEEE Transactions on Affective Computing (2020), 1–12.
  60. Semantic communications in networked systems: A data significance perspective. IEEE Network 36, 4 (2022), 233–240.
  61. Towards a Robotic Knee Exoskeleton Control Based on Human Motion Intention through EEG and sEMGsignals. Procedia Manufacturing 3 (2015), 1379–1386.
  62. Compact convolutional neural networks for classification of asynchronous steady-state visual evoked potentials. Journal of Neural Engineering 15 (2018).
  63. Zhenzi Weng and Zhijin Qin. 2021. Semantic Communication Systems for Speech Transmission. IEEE Journal on Selected Areas in Communications 39, 8 (2021), 2434–2444.
  64. DeepBrain: Enabling Fine-Grained Brain-Robot Interaction through Human-Centered Learning of Coarse EEG Signals from Low-Cost Devices. ACM IMWUT (UbiComp) 6, 3 (2022), 147:1–147:27.
  65. Deep Learning Enabled Semantic Communication Systems. IEEE Trans. Signal Process. 69 (2021), 2663–2675.
  66. Task-Oriented Multi-User Semantic Communications. IEEE Journal on Selected Areas in Communications (2022), 1–15.
  67. A Survey on Social Manufacturing: A Paradigm Shift for Smart Prosumers. IEEE Transactions on Computational Social Systems (2022), 1–19.
  68. DeepMV: Multi-View Deep Learning for Device-Free Human Activity Recognition. ACM IMWUT (UbiComp) 4, 1, Article 34 (March 2020), 26 pages.
  69. Gate Decorator: Global Filter Pruning Method for Accelerating Deep Convolutional Neural Networks. In NIPS. 2130–2141.
  70. Noisy Natural Gradient as Variational Inference. In ICML, Vol. 80. 5847–5856.
  71. Towards Real-time Cooperative Deep Inference over the Cloud and Edge End Devices. ACM IMWUT (UbiComp) 4, 2 (2020), 69:1–69:24.
  72. DeepKey: A Multimodal Biometric Authentication System via Deep Decoding Gaits and Brainwaves. ACM Trans. Intell. Syst. Technol. 11, 4 (2020), 49:1–49:24.
  73. MindID: Person identification from brain waves through attention-based recurrent neural network. ACM IMWUT (UbiComp) 2, 3 (2018), 1–23.
  74. Plug-and-Play Domain Adaptation for Cross-Subject EEG-Based Emotion Recognition. AAAI (2021), 863–870.
  75. Informer: Beyond Efficient Transformer for Long Sequence Time-Series Forecasting. AAAI, 11106–11115.
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