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Zhanzhan Cheng

Researcher at Zhejiang University

Publications -  66
Citations -  1760

Zhanzhan Cheng is an academic researcher from Zhejiang University. The author has contributed to research in topics: Computer science & Feature (machine learning). The author has an hindex of 14, co-authored 53 publications receiving 1006 citations. Previous affiliations of Zhanzhan Cheng include Fudan University.

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Focusing Attention: Towards Accurate Text Recognition in Natural Images

TL;DR: Zhang et al. as mentioned in this paper proposed Focusing Attention Network (FAN) which employs a focusing attention mechanism to automatically draw back the drifted attention. But the FAN method is not suitable for complex and low-quality images and it cannot get accurate alignment between feature areas and targets for such images.
Proceedings ArticleDOI

AON: Towards Arbitrarily-Oriented Text Recognition

TL;DR: The arbitrary orientation network (AON) is developed to directly capture the deep features of irregular texts, which are combined into an attention-based decoder to generate character sequence and is comparable to major existing methods in regular datasets.
Proceedings ArticleDOI

Focusing Attention: Towards Accurate Text Recognition in Natural Images

TL;DR: Focusing Attention Network (FAN) as discussed by the authors employs a focusing attention mechanism to automatically draw back the attention drift in the encoder-decoder framework, which is the state-of-the-art for scene text recognition.
Proceedings ArticleDOI

Edit Probability for Scene Text Recognition

TL;DR: Zhang et al. as discussed by the authors proposed a novel method called edit probability (EP) for scene text recognition, which tries to estimate the probability of generating a string from the output sequence of probability distribution conditioned on the input image, while considering the possible occurrences of missing/superfluous characters.
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Edit Probability for Scene Text Recognition

TL;DR: Zhang et al. as mentioned in this paper proposed a novel method called edit probability (EP) for scene text recognition, which tries to estimate the probability of generating a string from the output sequence of probability distribution conditioned on the input image, while considering the possible occurrences of missing/superfluous characters.