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Avoiding supporting evidence processing when evidence scoring does not affect final ranking of a candidate answer

机译:当证据评分不影响候选答案的最终排名时,避免支持证据处理

摘要

Methods to provide selective supporting evidence processing by applying a first machine learning (ML) model to a first candidate answer to generate a first confidence score that does not consider supporting evidence for the first candidate answer, determining, from a second ML model, an expected contribution of processing supporting evidence for the first candidate answer, and upon determining that the expected contribution does not exceed a specified threshold, skipping supporting evidence processing for the first candidate answer.
机译:通过将第一机器学习(ML)模型应用于第一候选答案以生成不考虑第一候选答案的支持证据的第一置信度得分来提供选择性支持证据处理的方法,并从第二ML模型中确定期望值处理第一个候选答案的支持证据的贡献,并在确定预期贡献不超过指定阈值时,跳过对第一个候选答案的支持证据处理。

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