遇见数据集

A compact neuromorphic system for ultra energy-efficient, on-device robot localization

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Zenodo2025-06-19 更新2026-05-26 收录
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This repository contains the data for the following publication, if you use it in your work please cite appropriately; @article{HinesLENS2025, author = {Adam D. Hines and Michael Milford and Tobias Fischer }, title = {A compact neuromorphic system for ultra–energy-efficient, on-device robot localization}, journal = {Science Robotics}, volume = {10}, number = {103}, pages = {eads3968}, year = {2025}, doi = {10.1126/scirobotics.ads3968}, URL = {https://www.science.org/doi/abs/10.1126/scirobotics.ads3968}} This dataset contains 3 .zip files corresponding to the data for Figure 3, 4, and 5 of our publication (named accordingly) and the code for Locational Encoding with Neuromorphic Systems (LENS, @ v0.1.3). It contains the following; Figure 3: SoCWatch output of power traces for CPU (.csv), jetson power traces for LENS and SAD (.npy files), and the samna output of power traces (.npy) Figure 4: Consists of 2 folders, sunset1 and sunset2, which contain 7x7 downsampled images from the Brisbane Event-VPR dataset sampled over one second timebins (https://zenodo.org/records/4302805) Two .csv files which correspond to the image names of sunset1 and sunset2, used in our model to load files Figure 5: 2 folders, 220724-16-14-33 (indoor Hexapod data) and 240724-11-49-52 (outdoor Hexapod data) Each folder consists of the LENS.log file, various plots of Recall@N and Precision-Recall, png images of the both the reference and query traversal reconstructed from the raw spikes, the raw spike data (spike_data.npy), and the similarity matrix used to calculate statistics (similarity_matrix.npy) LENS.zip v0.1.3 of the LENS software, latest versions available at https://github.com/AdamDHines/LENS

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创建时间:
2025-05-12
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