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Hilaf Hasson

7 accepted papers

2024

HyQE: Ranking Contexts with Hypothetical Query Embeddings

EMNLP 2024finding

In retrieval-augmented systems, context ranking techniques are commonly employed to reorder the retrieved contexts based on their relevance to a user query. A standard approach is to measure this relevance through the similarity between contexts and queries in the embedding space. However, such simi…

2023

But Are You Sure? An Uncertainty-Aware Perspective on Explainable AI

AISTATS 2023poster

Although black-box models can accurately predict outcomes such as weather patterns, they often lack transparency, making it challenging to extract meaningful insights (such as which atmospheric conditions signal future rainfall). Model explanations attempt to identify the essential features of a mod…

Cited by 24SourcePDFScholar
2023

Robust Multivariate Time-Series Forecasting: Adversarial Attacks and Defense Mechanisms

ICLR 2023poster

This work studies the threats of adversarial attack on multivariate probabilistic forecasting models and viable defense mechanisms. Our studies discover a new attack pattern that negatively impact the forecasting of a target time series via making strategic, sparse (imperceptible) modifications to t…

2023

Theoretical Guarantees of Learning Ensembling Strategies with Applications to Time Series Forecasting

ICML 2023poster

Ensembling is among the most popular tools in machine learning (ML) due to its effectiveness in minimizing variance and thus improving generalization. Most ensembling methods for black-box base learners fall under the umbrella of "stacked generalization," namely training an ML algorithm that takes t…

Cited by 6SourcePDFScholar
2020

Normalizing Kalman Filters for Multivariate Time Series Analysis

NeurIPS 2020poster

This paper tackles the modelling of large, complex and multivariate time series panels in a probabilistic setting. To this extent, we present a novel approach reconciling classical state space models with deep learning methods. By augmenting state space models with normalizing flows, we mitigate imp…

Cited by 155SourcePDFScholar