Hindi audio-video-Deepfake (HAV-DF): A Hindi language-based Audio-video Deepfake Dataset
Sukhandeep Kaur, Mubashir Buhari, Naman Khandelwal, Priyansh Tyagi and, Kiran Sharma

TL;DR
This paper introduces HAV-DF, the first comprehensive Hindi deepfake dataset combining audio and video, to enhance detection models in a language-specific context, revealing greater detection challenges than existing datasets.
Contribution
The creation of the first Hindi audio-video deepfake dataset, HAV-DF, using diverse manipulation techniques, filling a critical gap for multilingual deepfake detection research.
Findings
HAV-DF presents lower detection accuracy with existing methods.
The dataset captures Hindi speech and facial nuances, increasing detection complexity.
HAV-DF is more challenging than FF-DF and DFDC datasets.
Abstract
Deepfakes offer great potential for innovation and creativity, but they also pose significant risks to privacy, trust, and security. With a vast Hindi-speaking population, India is particularly vulnerable to deepfake-driven misinformation campaigns. Fake videos or speeches in Hindi can have an enormous impact on rural and semi-urban communities, where digital literacy tends to be lower and people are more inclined to trust video content. The development of effective frameworks and detection tools to combat deepfake misuse requires high-quality, diverse, and extensive datasets. The existing popular datasets like FF-DF (FaceForensics++), and DFDC (DeepFake Detection Challenge) are based on English language.. Hence, this paper aims to create a first novel Hindi deep fake dataset, named ``Hindi audio-video-Deepfake'' (HAV-DF). The dataset has been generated using the faceswap, lipsyn and…
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Taxonomy
TopicsMusic and Audio Processing · Speech and Audio Processing · Subtitles and Audiovisual Media
MethodsFocus
