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Geunseob Oh

3 accepted papers

2025

Revisiting In-Context Learning with Long Context Language Models

ACL 2025finding

In-Context Learning (ICL) is a technique by which language models make predictions based on examples provided in their input context. Previously, their context window size imposed a limit on the number of examples that can be shown, making example selection techniques crucial for identifying the max…

Cited by 0SourcePDFScholar
2022

Improving Top-K Decoding for Non-Autoregressive Semantic Parsing via Intent Conditioning

COLING 2022main

Semantic parsing (SP) is a core component of modern virtual assistants like Google Assistant and Amazon Alexa. While sequence-to-sequence based auto-regressive (AR) approaches are common for conversational SP, recent studies employ non-autoregressive (NAR) decoders and reduce inference latency while…

Cited by 3SourcePDFScholar
2020

HCNAF: Hyper-Conditioned Neural Autoregressive Flow and its Application for Probabilistic Occupancy Map Forecasting

CVPR 2020poster

We introduce Hyper-Conditioned Neural Autoregressive Flow (HCNAF); a powerful universal distribution approximator designed to model arbitrarily complex conditional probability density functions. HCNAF consists of a neural-net based conditional autoregressive flow (AF) and a hyper-network that can ta…

Cited by 16PDFcodeScholar