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Paramita Koley

4 accepted papers

2025

Brevity is the soul of sustainability: Characterizing LLM response lengths

ACL 2025finding

A significant portion of the energy consumed by Large Language Models (LLMs) arises from their inference processes; hence developing energy-efficient methods for inference is crucial. While several techniques exist for inference optimization, output compression remains relatively unexplored, with on…

2025

ExPERT: Modeling Human Behavior Under External Stimuli Aware Personalized MTPP

AAAI 2025technical

Marked Temporal Point Process (MTPP) -- the de-facto sequence model for continuous-time event sequences -- historically employed for modeling human-generated action sequences, lack awareness of external stimuli. In this study, we propose a novel framework developed over Transformer Hawkes Process (T…

Cited by 0SourcePDFScholar
2025

Towards Sustainable NLP: Insights from Benchmarking Inference Energy in Large Language Models

NAACL 2025long

Large language models (LLMs) are increasingly recognized for their exceptional generative capabilities and versatility across various tasks. However, the high inference costs associated with these models have not received adequate attention, particularly when compared to the focus on training costs…

Cited by 0SourcePDFScholar
2023

Differentiable Change-point Detection With Temporal Point Processes

AISTATS 2023poster

In this paper, we consider the problem of global change-point detection in event sequence data, where both the event distributions and change-points are assumed to be unknown. For this problem, we propose a Log-likelihood Ratio based Global Change-point Detector, which observes the entire sequence a…