语境失调:基于传感器的经验抽样方法中的设计偏差

N. Lathia, Kiran Rachuri, C. Mascolo, P. Rentfrow
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引用次数: 75

摘要

经验抽样法(Experience Sampling Method, ESM)被广泛用于收集参与者的纵向调查数据;在这个领域,智能手机传感器现在被用来增强采样策略的上下文感知。在本文中,我们研究了ESM设计选择对可以从参与者的传感器数据中得出的推论的影响,以及对可以收集到的调查响应方差的影响。特别是,我们回答了这样一个问题:研究人员使用触发器定义的传感器数据子样本进行的行为推断是否受到采样策略设计的影响?我们证明,不同的单传感器采样策略将导致我们所说的上下文不协调:在聚合传感器数据中表示多少不同行为的分歧。这些结果不仅与使用ESM的研究人员有关,而且还需要未来的研究工作来减轻我们测量的偏见。
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Contextual dissonance: design bias in sensor-based experience sampling methods
The Experience Sampling Method (ESM) has been widely used to collect longitudinal survey data from participants; in this domain, smartphone sensors are now used to augment the context-awareness of sampling strategies. In this paper, we study the effect of ESM design choices on the inferences that can be made from participants' sensor data, and on the variance in survey responses that can be collected. In particular, we answer the question: are the behavioural inferences that a researcher makes with a trigger-defined subsample of sensor data biased by the sampling strategy's design? We demonstrate that different single-sensor sampling strategies will result in what we refer to as contextual dissonance: a disagreement in how much different behaviours are represented in the aggregated sensor data. These results are not only relevant to researchers who use the ESM, but call for future work into strategies that may alleviate the biases that we measure.
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