基于残差特征多模态融合的数字视频篡改检测

G. Chetty, M. Biswas, Rashmi Singh
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引用次数: 25

摘要

本文提出了一种基于跨模态子空间特征变换及其多模态融合的新算法模型,用于检测视频序列中帧内和帧间像素子块中提取的不同类型残留特征。对模拟复制-移动篡改场景的残留特征——噪声残留特征和量化特征及其在跨模态子空间中的变换和多模态融合的评价表明,与未在跨模态子空间中进行变换的单模态特征相比,篡改检测精度有显著提高。
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Digital Video Tamper Detection Based on Multimodal Fusion of Residue Features
In this paper, we propose novel algorithmic models based on feature transformation in cross-modal subspace and their multimodal fusion for different types of residue features extracted from several intra-frame and inter frame pixel sub-blocks in video sequences for detecting digital video tampering or forgery. An evaluation of proposed residue features – the noise residue features and the quantization features, their transformation in cross-modal subspace, and their multimodal fusion, for emulated copy-move tamper scenario shows a significant improvement in tamper detection accuracy as compared to single mode features without transformation in cross-modal subspace.
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