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A Learning Effect by Presenting Machine Prediction as a Reference Answer in Self-correction

机译:通过将机器预测作为自校正的参考答案呈现学习效果

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Can people learn from machines behavior in microtask based crowdsourcing? Can we train the machines as our mentor even without domain expertise? In this paper, we investigate how the task results improve concerning quality during and after presenting machine prediction as a reference answer in self-correction. Four reference types were examined in the experiment; Correct, Random, Machine prediction trained by correct answers, and that trained by human answers. Learning effects were observed only in presenting machine prediction, although those accuracy rates were far from correct (100%). Moreover, there were no learning effects in "Correct" and "Random". This suggests the following hypothesis: Since machine learners make some "models" for the problem, it is easier for humans to interpret the outputs of machine learners than the results without via them; it is more difficult to interpret not only random answers but also the correct answers in a case where the perfect interpretation of the problem is difficult. Furthermore, some workers answered with higher accuracy rate than machines in the post-test. Therefore, this strategy can be expected to be useful for bootstrapping solutions in the situation where unknown problems occur without expertise or at a low cost.
机译:人们可以在基于微任务的众包中从机器行为中学习吗?即使没有领域专业知识,我们也可以将机器培训为我们的导师吗?在本文中,我们研究了在将机器预测作为自校正的参考答案期间和之后,与任务质量有关的任务结果如何提高。实验中检查了四种参考类型。通过正确答案训练的正确,随机,机器预测,以及通过人类答案训练的预测。尽管这些准确率远非正确的(100%),但仅在呈现机器预测时才观察到学习效果。而且,“正确”和“随机”没有学习效果。这提出了以下假设:由于机器学习者为问题建立了一些“模型”,因此与没有通过机器学习者的结果相比,人类更容易解释机器学习者的输出。在难以对问题进行完美解释的情况下,不仅要解释随机答案,还要解释正确答案会更加困难。此外,在后期测试中,一些工人的回答准确率高于机器。因此,在没有专业知识或成本较低的情况下发生未知问题的情况下,可以预期该策略对于引导解决方案很有用。

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