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Crowdsourcing System for Numerical Tasks based on Latent Topic Aware Worker Reliability

机译:基于潜在主题的数值任务的众包系统意识到工人可靠性

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Crowdsourcing is a widely adopted way for various labor-intensive tasks. One of the core problems in crowdsourcing systems is how to assign tasks to most suitable workers for better results, which heavily relies on the accurate profiling of each worker’s reliability for different topics of tasks. Many previous work have studied worker reliability for either explicit topics represented by task descriptions or latent topics for categorical tasks. In this work, we aim to accurately estimate more fine-grained worker reliability for latent topics in numerical tasks, so as to further improve the result quality. We propose a bayesian probabilistic model named Gaussian Latent Topic Model(GLTM) to mine the latent topics of numerical tasks based on workers’ behaviors and to estimate workers’ topic-level reliability. By utilizing the GLTM, we propose a truth inference algorithm named TI-GLTM to accurately infer the tasks’ truth and topics simultaneously and dynamically update workers’ topic-level reliability. We also design an online task assignment mechanism called MRA-GLTM, which assigns appropriate tasks to workers with the Maximum Reduced Ambiguity principle. The experiment results show our algorithms can achieve significantly lower MAE and MSE than that of the state-of-the-art approaches.
机译:众包是各种劳动密集型任务的广泛采用方式。众包系统中的核心问题之一是如何为大多数合适的工人分配任务以获得更好的效果,这严重依赖于每个工人对不同主题的可靠性的准确分析。许多以前的工作已经研究了由任务描述或分类任务的潜在主题所代表的明确主题的工人可靠性。在这项工作中,我们的目标是准确估计数值任务的潜在主题的更精细的工人可靠性,从而进一步提高结果质量。我们提出了一个名为Gaussian潜在主题模型(GLTM)的贝叶斯概率模型来挖掘数值任务的潜在主题,并根据工人的行为和估算工人的主题可靠性。通过利用GLTM,我们提出了一个名为TI-GLTM的真理推理算法,可以同时准确地推断任务的真实性和主题,并动态更新工人的主题级可靠性。我们还设计了一个名为MRA-GLTM的在线任务分配机制,该机制为具有最大减少的歧义原理的工人分配适当的任务。实验结果表明我们的算法可以实现明显降低MAE和MSE,而不是最先进的方法。

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