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Robust Algorithm for Multimodal Deception Detection

机译:多模态欺骗检测的鲁棒算法

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Automatic deception detection from the video has gained a paramount of interest because of their applicability in various real-life applications. The recorded videos contain various information such as temporal variations of the face, linguistics and acoustics, which can be used together, to detect deception automatically. In this work, we proposed a new approach based on multimodal information like audio, linguistic (or text) and non-verbal features. The proposed multimodal deception detection framework is based on combining the decision from the audio, text and non-verbal features using majority voting. The proposed multimodal deception system is banked on the audio system based on Cepstral Coefficients (CC) and Spectral Regression Kernel Discriminant Analysis (SRKDA) of fixed length audio sequences. The text system is based on bag-of-n-grams features and the linear Support Vector Machine (SVM) classifier while the non-verbal features are classified using the AdaBoost classifier. Extensive experiments are carried out on a publicly available real-life deception video dataset to evaluate the efficacy of the proposed scheme. The obtained results on a 25-cross-fold validation have indicated a deception detection accuracy of 97% out-performing both state-of-the-art techniques and human performance on the whole dataset.
机译:由于视频在各种现实生活中的适用性,自动检测视频中的欺骗已经引起了人们的极大关注。录制的视频包含各种信息,例如脸部的时间变化,语言学和声学特性,可以一起使用以自动检测欺骗。在这项工作中,我们提出了一种基于多模态信息(例如音频,语言(或文本)和非语言特征)的新方法。所提出的多模式欺骗检测框架基于使用多数表决将音频,文本和非语言特征的决策组合在一起的基础。所提出的多模式欺骗系统基于固定长度音频序列的倒谱系数(CC)和频谱回归核判别分析(SRKDA),而建立在音频系统上。文本系统基于n-grams袋功能和线性支持向量机(SVM)分类器,而非语言功能则使用AdaBoost分类器进行分类。在可公开获得的现实生活中的欺骗视频数据集上进行了广泛的实验,以评估所提出方案的功效。在25次交叉验证中获得的结果表明,在整个数据集上,欺骗检测的准确率均超过了97%,优于最新技术和人类性能。

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