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Saraf, Monali; Roberts, Tyrell; Ptucha, Raymond; Homan, Christopher; Alm, Cecilia Ovesdotter (, Adjunct of the 2019 International Conference on Multimodal Interaction)
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Tornblad, McKenna; Lapresi, Luke; Homan, Christopher; Ptucha, Raymond; Ovesdotter Alm, Cecilia (, North American Chapter of the Association for Computational Linguistics - Human Language Technology: Student Research Workshop)While labor issues and quality assurance in crowdwork are increasingly studied, how annotators make sense of texts and how they are personally impacted by doing so are not. We study these questions via a narrative-sorting annotation task, where carefully selected (by sequentiality, topic, emotional content, and length) collections of tweets serve as examples of everyday storytelling. As readers process these narratives, we measure their facial expressions, galvanic skin response, and self-reported reactions. From the perspective of annotator well-being, a reassuring outcome was that the sorting task did not cause a measurable stress response, however readers reacted to humor. In terms of sensemaking, readers were more confident when sorting sequential, target-topical, and highly emotional tweets. As crowdsourcing becomes more common, this research sheds light onto the perceptive capabilities and emotional impact of human readers.more » « less
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Calderwood, Alexander; Pruett, Elizabeth; Ptucha, Raymond; Homan, Christopher; Alm, Cecilia O (, Proceedings of the Workshop Computational Semantics Beyond Events and Roles)Interpersonal violence (IPV) is a prominent sociological problem that affects people of all demographic backgrounds. By analyzing how readers interpret, perceive, and react to experiences narrated in social media posts, we explore an understudied source for discourse about abuse. We asked readers to annotate Reddit posts about relationships with vs. without IPV for stakeholder roles and emotion, while measuring their galvanic skin response (GSR), pulse, and facial expression. We map annotations to coreference resolution output to obtain a labeled coreference chain for stakeholders in texts, and apply automated semantic role labeling for analyzing IPV discourse. Findings provide insights into how readers process roles and emotion in narratives. For example, abusers tend to be linked with violent actions and certain affect states. We train classifiers to predict stakeholder categories of coreference chains. We also find that subjects' GSR noticeably changed for IPV texts, suggesting that co-collected measurement-based data about annotators can be used to support text annotation.more » « less
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