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Ayush Jaiswal

6 accepted papers

2023

FashionNTM: Multi-turn Fashion Image Retrieval via Cascaded Memory

ICCV 2023poster

Multi-turn textual feedback-based fashion image retrieval focuses on a real-world setting, where users can iteratively provide information to refine retrieval results until they find an item that fits all their requirements. In this work, we present a novel memory-based method, called FashionNTM, fo…

Cited by 9PDFcodeScholar
2023

User-Controllable Arbitrary Style Transfer via Entropy Regularization

AAAI 2023technical

Ensuring the overall end-user experience is a challenging task in arbitrary style transfer (AST) due to the subjective nature of style transfer quality. A good practice is to provide users many instead of one AST result. However, existing approaches require to run multiple AST models or inference a…

2022

FashionVLP: Vision Language Transformer for Fashion Retrieval With Feedback

CVPR 2022poster

Fashion image retrieval based on a query pair of reference image and natural language feedback is a challenging task that requires models to assess fashion related information from visual and textual modalities simultaneously. We propose a new vision-language transformer based model, FashionVLP, tha…

Cited by 120PDFScholar
2021

Style-Aware Normalized Loss for Improving Arbitrary Style Transfer

CVPR 2021poster

Neural Style Transfer (NST) has quickly evolved from single-style to infinite-style models, also known as Arbitrary Style Transfer (AST). Although appealing results have been widely reported in literature, our empirical studies on four well-known AST approaches (GoogleMagenta, AdaIN, LinearTransfer,…

Cited by 51PDFcodeScholar
2019

AIRD: Adversarial Learning Framework for Image Repurposing Detection

CVPR 2019poster

Image repurposing is a commonly used method for spreading misinformation on social media and online forums, which involves publishing untampered images with modified metadata to create rumors and further propaganda. While manual verification is possible, given vast amounts of verified knowledge avai…

Cited by 30PDFcodeScholar