Translation and Scale Invariance for Event-Based Object tracking

被引:0
|
作者
Pedersen, Jens E. [1 ]
Singhal, Raghav [1 ]
Conradt, Jorg [1 ]
机构
[1] KTH Royal Inst Technol, Stockholm, Sweden
基金
欧盟地平线“2020”;
关键词
event-based vision; spiking neural networks; object tracking; coordinate regression;
D O I
10.1145/3584954.3584996
中图分类号
TP301 [理论、方法];
学科分类号
081202 ;
摘要
Without temporal averaging, such as rate codes, it remains challenging to train spiking neural networks for temporal regression tasks. In this work, we present a novel method to accurately predict spatial coordinates from event data with a fully spiking convolutional neural network (SCNN) without temporal averaging. Our method performs on-par with artificial neural networks (ANN) of similar complexity. Additionally, we demonstrate faster convergence in half the time using translation- and scale-invariant receptive fields. To permit comparison with conventional frame-based ANNs, we base our results on a simulated event-based dataset with an unrealistic high density. Therefore, we hypothesize that our method significantly outperform ANNs in settings with lower event density, as seen in real-life event-based data. Our model is fully spiking and can be ported directly to neuromorphic hardware.
引用
收藏
页码:79 / 85
页数:7
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