Qun Gao
qgao007
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Reacted to
daniel-de-leon's
post
with ๐ฅ
about 1 month ago
As the rapid adoption of chat bots and QandA models continues, so do the concerns for their reliability and safety. In response to this, many state-of-the-art models are being tuned to act as Safety Guardrails to protect against malicious usage and avoid undesired, harmful output. I published a Hugging Face blog introducing a simple, proof-of-concept, RoBERTa-based LLM that my team and I finetuned to detect toxic prompt inputs into chat-style LLMs. The article explores some of the tradeoffs of fine-tuning larger decoder vs. smaller encoder models and asks the question if "simpler is better" in the arena of toxic prompt detection.
๐ to blog: https://huggingface.co/blog/daniel-de-leon/toxic-prompt-roberta
๐ to model: https://huggingface.co/Intel/toxic-prompt-roberta
๐ to OPEA microservice: https://github.com/opea-project/GenAIComps/tree/main/comps/guardrails/toxicity_detection
A huge thank you to my colleagues that helped contribute: @qgao007, @mitalipo, @ashahba and Fahim Mohammad
upvoted
an
article
about 1 month ago
Occamโs Sheath: A Simpler Approach to AI Safety Guardrails
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qgao007's activity
Provide information for Intel's vulnerability reporting process
#3 opened 6 months ago
by
qgao007