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Spatial pyramid pooling networks for image processing

机译:用于图像处理的空间金字塔池网络

摘要

Spatial pyramid pooling (SPP) layers are combined with convolutional layers and partition an input image into divisions from finer to coarser levels, and aggregate local features in the divisions. A fixed-length output may be generated by the SPP layer(s) regardless of the input size. The multi-level spatial bins used by the SPP layer(s) may provide robustness to object deformations. An SPP layer based system may pool features extracted at variable scales due to the flexibility of input scales making it possible to generate a full-image representation for testing. Moreover, SPP networks may enable feeding of images with varying sizes or scales during training, which may increase scale-invariance and reduce the risk of over-fitting.
机译:空间金字塔池(SPP)层与卷积层组合在一起,并将输入图像划分为从较细到较粗的层次,并聚集这些分区中的局部特征。无论输入大小如何,SPP层都可以生成固定长度的输出。 SPP层使用的多级空间仓可为对象变形提供鲁棒性。由于输入比例尺的灵活性,基于SPP图层的系统可以合并以可变比例尺提取的特征,从而可以生成用于测试的全图像表示。此外,SPP网络可以在训练过程中提供具有不同大小或比例的图像,这可能会增加比例不变性并降低过度拟合的风险。

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