UNHSAILLab

UNHSAILLab

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SentimentalLIAR

Our Sentimental LIAR dataset is a modified and further extended version of the LIAR extension introduced by Kirilin et al. In our dataset, the multi-class labeling of LIAR is converted to a binary annotation by changing half-true, false, barely-true and pants-fire labels to False, and the remaining labels to True. Furthermore, we convert the speaker names to numerical IDs in order to avoid bias with regards to the textual representation of names. The binary-label dataset is then extended by adding sentiments derived using the Google NLP API . Sentiment analysis determines the overall attitude of the text (i.e., whether it is positive or negative), and is quantified by a numerical score. If the sentiment score is positive, then we assign Positive for the sentiment attribute, otherwise Negative is assigned. We also introduced a further extension by adding emotion scores extracted using the IBM NLP API for each claim, which determine the detected level of 6 emotional states namely anger, sadness, disgust, fear and joy. The score for each emotion is between the range of 0 and 1. Table I demonstrates a sample record in Sentimental LIAR for a short claim in the LIAR dataset This repository contains the dataset for this paper: https://arxiv.org/abs/2009.01047

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Adversary-Engagement-Ontology

The adversary engagement ontology for expressing all things cyber denial, deception, and operational narratives.

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Combating-Human-Trafficking-via-Automatic-OSINT-Collection

Combating Human Trafficking via Automatic OSINT Collection, Validation and Fusion

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Phorcys-AutoPT-Framework

Capstone project for using Reinforcement Learning to conduct intelligent penetration tests.

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F23-DSCI6004

Assignments and Aux for Fa23 - DSCI 6004 (Natural Language Processing)

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rl_for_theranostics

This is the code repository for the data driven modeling for theranostics

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BINNs

Biologically-informed neural networks

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S24-AISec

Code and Data for S24 offering of DSCI 6015 - AI & Cybersecurity

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ToM_Against_AdvComm

Code for Theory of Mind Defense and Mitigation against Adversarial Communication

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UCO

This repository is for development of the Unified Cyber Ontology.

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Computational-Physics-UBC

computational physics forked from Research partners at UBC

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Multiscale-PBPK-Nanoparticle-Biodistribution-Model

This repository contains all matlab code files relevant to the Physiologically Based Multiscale Pharmacokinetic Model for Determining the Temporal Biodistribution of Targeted Nanoparticles paper

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TTS

🐸💬 - a deep learning toolkit for Text-to-Speech, battle-tested in research and production

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