Dspy Best Of N

Runs any DSPy module N times and returns the highest-scoring output via a reward function using dspy.BestOfN. Use when output quality varies across runs and you want to sample multiple completions and pick the best — trading latency for reliability on high-stakes outputs. Common scenarios - generating multiple candidate answers and picking the highest-scoring one, improving reliability on high-stakes classification, reducing variance in creative generation, getting better summaries by sampling several and selecting the best, or trading latency for quality on critical decisions. Related - ai-improving-accuracy, ai-making-consistent, dspy-refine. Also used for sample multiple completions, pick the best of several LLM outputs, majority voting for LLM, self-consistency decoding, reduce LLM output variance, generate and select pattern, best candidate selection, how to make AI more reliable by trying multiple times, brute force better quality, retry and pick best, dspy.BestOfN, quality vs latency tradeoff, n=5 comp

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npx skillmds@latest add lebsral/dspy-best-of-n