Qi Wu Peng Wang Xin Wang Xiaodong He Wenwu Zhu Wu Visual Question Answering

Visual Question Answering

von Qi Wu Peng Wang Xin Wang Xiaodong He Wenwu Zhu

From Theory to Application

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Beschreibung

Visual Question Answering (VQA) usually combines visual inputs like image and video with a natural language question concerning the input and generates a natural language answer as the output. This is by nature a multi-disciplinary research problem, involving computer vision (CV), natural language processing (NLP), knowledge representation and reasoning (KR), etc.

Further, VQA is an ambitious undertaking, as it must overcome the challenges of general image understanding and the question-answering task, as well as the difficulties entailed by using large-scale databases with mixed-quality inputs. However, with the advent of deep learning (DL) and driven by the existence of advanced techniques in both CV and NLP and the availability of relevant large-scale datasets, we have recently seen enormous strides in VQA, with more systems and promising results emerging.

This book provides a comprehensive overview of VQA, covering fundamental theories, models, datasets, andpromising future directions. Given its scope, it can be used as a textbook on computer vision and natural language processing, especially for researchers and students in the area of visual question answering. It also highlights the key models used in VQA.


Visual Question Answering (VQA) usually combines visual inputs like image and video with a natural language question concerning the input and generates a natural language answer as the output. This is by nature a multi-disciplinary research problem, involving computer vision (CV), natural language processing (NLP), knowledge representation and reasoning (KR), etc.

Further, VQA is an ambitious undertaking, as it must overcome the challenges of general image understanding and the question-answering task, as well as the difficulties entailed by using large-scale databases with mixed-quality inputs. However, with the advent of deep learning (DL) and driven by the existence of advanced techniques in both CV and NLP and the availability of relevant large-scale datasets, we have recently seen enormous strides in VQA, with more systems and promising results emerging.

This book provides a comprehensive overview of VQA, covering fundamental theories, models, datasets, andpromising future directions. Given its scope, it can be used as a textbook on computer vision and natural language processing, especially for researchers and students in the area of visual question answering. It also highlights the key models used in VQA.


Provides the first comprehensive survey of and handbook on visual question answering (VQA) Is self-contained and reader-friendly: ranging from basic ML and NLP concepts and theory, to details of VQA applications Explains in detail various vision-and-language tasks and applications

Autor*in

Qi Wu

Themen in »Visual Question Answering«

Visual Question Answering VQA Image-based Question Answering Vision-and-Language Deep Learning

Stimmen zu »Visual Question Answering«

Details

ISBN: 9789811909634
Verlag: Springer Singapore
Erscheinung: 14.05.2022

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