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Constrained Image Splicing Detection and Localization With Attention-Aware Encoder-Decoder and Atrous Convolution

机译:用注意力感知编码器 - 解码器和贫困卷积的受限图像剪接检测和定位

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摘要

Constrained image splicing detection and localization (CISDL) is a newly formulated image forensics task and plays an important role in verifying the generating process of a forged image. CISDL conducts dense matching between two investigated images and detects whether one image has forged regions pasted from the other. In this work, we introduce a novel attention-aware encoder-decoder deep matching network named as AttentionDM for CISDL. An encoder-decoder with atrous convolution is newly designed for hierarchical features dense matching and fine-grained masks generation. A novel attention-aware correlation computation module is built on normalization operations and informative features recalibration with channel attention blocks. Last but not least, VGG and ResNets are respectively formulated as feature extractors for comprehensive comparisons in CISDL. Extensive experiments demonstrate the superior performance of AttentionDM over the state-of-the-art methods.
机译:受限制的图像剪接检测和定位(CISDL)是一种新配制的图像取证任务,在验证伪造图像的生成过程中起着重要作用。 CISDL在两个调查的图像之间进行密集匹配,并检测一个图像是否具有从另一个粘贴的区域伪造的区域。在这项工作中,我们介绍了一个名为CISDL的注意事项名为PenterningDM的新型关注感知的编码器解码网络。具有贫疑功能的含有不含卷积的编码器解码器,用于等级匹配和细粒面具生成。一种新的注意力感应计算模块是基于归一化操作和信息重新校准的归纳式关注块构建。最后但尤其是vgg和resnet分别作为特征提取器配制成CISDL中的综合比较。广泛的实验表明了注意力的优越性在最先进的方法上。

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