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Papers

SafeCity: Understanding Diverse Forms of Sexual Harassment Personal Stories

2018-09-13 · EMNLP 2018 10 · Sweta Karlekar, Mohit Bansal

With the recent rise of #MeToo, an increasing number of personal stories about sexual harassment and sexual abuse have been shared online. In order to push forward the fight against such harassment and abuse, we present the task of automatically categorizing and analyzing various forms of sexual harassment, based on stories shared on the online forum SafeCity. For the labels of groping, ogling, and commenting, our single-label CNN-RNN model achieves an accuracy of 86.5%, and our multi-label model achieves a Hamming score of 82.5%. Furthermore, we present analysis using LIME, first-derivative saliency heatmaps, activation clustering, and embedding visualization to interpret neural model predictions and demonstrate how this extracts features that can help automatically fill out incident reports, identify unsafe areas, avoid unsafe practices, and 'pin the creeps'.

📄 PDF Abstract BibTeX arXiv:1809.04739

Code (4)

swkarlekar/safecity 공식 구현
Manojkumar8300/Sexual-Harassment-Personal-Story-Classsification
bhaveshnaidu999/sexual-harassment-classification-project tf
zaid7860/Safecity_BERT-LogisticRegression

Tasks

Clustering

Methods 이 논문이 사용한 방법론

LIME LIME, or Local Interpretable Model-Agnostic Explanations, is an algorithm that can explain the predictions of any classifier or regressor in a faithful way, by…

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