most citedA Review of Deep Learning Techniques for Speech Processing

22 citations · 45 across the 12 of their papers we have counts for

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cs.CL2024

Libra-Leaderboard: Towards Responsible AI through a Balanced Leaderboard of Safety and Capability

Haonan Li, Xudong Han, Zenan Zhai +32

To address this gap, we introduce Libra-Leaderboard, a comprehensive framework designed to rank LLMs through a balanced evaluation of performance and safety. Combining a dynamic le…

cs.CL2024

Ferret: Faster and Effective Automated Red Teaming with Reward-Based Scoring Technique

Tej Deep Pala, Vernon Y. H. Toh, Rishabh Bhardwaj +1

In today's era, where large language models (LLMs) are integrated into numerous real-world applications, ensuring their safety and robustness is crucial for responsible AI usage. A…

cs.CL2024

WalledEval: A Comprehensive Safety Evaluation Toolkit for Large Language Models

Prannaya Gupta, Le Qi Yau, Hao Han Low +8

WalledEval is a comprehensive AI safety testing toolkit designed to evaluate large language models (LLMs). It accommodates a diverse range of models, including both open-weight and…

cs.CL20241 cited

Ruby Teaming: Improving Quality Diversity Search with Memory for Automated Red Teaming

Vernon Toh Yan Han, Rishabh Bhardwaj, Soujanya Poria

We propose Ruby Teaming, a method that improves on Rainbow Teaming by including a memory cache as its third dimension. The memory dimension provides cues to the mutator to yield be…

cs.CL2024

DELLA-Merging: Reducing Interference in Model Merging through Magnitude-Based Sampling

Pala Tej Deep, Rishabh Bhardwaj, Soujanya Poria

With the proliferation of domain-specific models, model merging has emerged as a set of techniques that combine the capabilities of multiple models into one that can multitask with…

cs.CL20242 cited

HyperTTS: Parameter Efficient Adaptation in Text to Speech using Hypernetworks

Yingting Li, Rishabh Bhardwaj, Ambuj Mehrish +2

Neural speech synthesis, or text-to-speech (TTS), aims to transform a signal from the text domain to the speech domain. While developing TTS architectures that train and test on th…