Affect as a proxy for literary mood

Öhman, Emily, Rossi, Riikka

arXiv.org Artificial Intelligence 

We propose to use affect as a proxy for mood in literary texts. In this study, we explore the differences in computationally detecting tone versus detecting mood. Methodologically we utilize affective word embeddings to look at the affective distribution in different text segments. We also present a simple yet efficient and effective method of enhancing emotion lexicons to take both semantic shift and the domain of the text into account producing real-world congruent results closely matching both contemporary and modern qualitative analyses. I INTRODUCTION In this study, we explore how the literary concept of mood can be studied and detected with computational methods.

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