The benchmark comprises of 161 programming problems We use a clever technique that involves rotating the data within each layer of the model, making it easier to identify and keep only the most important parts for processing It requires full formal specs and proofs
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Our analysis yields a novel robustness metric called clever, which is short for cross lipschitz extreme value for network robustness
One common approach is training models to refuse unsafe queries, but this strategy can be vulnerable to clever prompts, often referred to as jailbreak attacks, which can trick the ai into providing harmful responses
Our method, stair (safety alignment with introspective reasoning), guides models to think more carefully before responding. While, as we mentioned earlier, there can be thorny “clever hans” issues about humans prompting llms, an automated verifier mechanically backprompting the llm doesn’t suffer from these A fundamental limitation of current ai agents is their inability to learn complex skills on the fly at test time, often behaving like “clever but clueless interns” in novel environments This severely limits their practical utility