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Mohammed Asad Karim

4 accepted papers

2026

FOCUS: Forcing In-Context Object Localization through Visual Support Constraints and Policy Optimization

ICML 2026poster

In-context localization (ICL) seeks to localize a target object specified by a small set of support examples in a query image, operating on the fly without training or parameter updates. Despite rapid advances in vision–language models (VLMs), achieving category-agnostic and visually grounded ICL re…

Cited by 0SourceScholar
2024

Salient Information Prompting to Steer Content in Prompt-based Abstractive Summarization

EMNLP 2024industry

Large language models (LLMs) can generate fluent summaries across domains using prompting techniques, reducing the effort required for summarization applications. However, crafting effective prompts that guide LLMs to generate summaries with the appropriate level of detail and writing style remains…

2022

Attaining Class-Level Forgetting in Pretrained Model Using Few Samples

ECCV 2022poster

"In order to address real-world problems, deep learning models are jointly trained on many classes. However, in the future, some classes may become restricted due to privacy/ethical concerns, and the restricted class knowledge has to be removed from the models that have been trained on them. The ava…

Cited by 1SourcePDFScholar
2021

Knowledge Consolidation based Class Incremental Online Learning with Limited Data

IJCAI 2021poster

We propose a novel approach for class incremental online learning in a limited data setting. This problem setting is challenging because of the following constraints: (1) Classes are given incrementally, which necessitates a class incremental learning approach; (2) Data for each class is given in a…

Cited by 0SourcePDFScholar