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Roee Litman

6 accepted papers

2020

Can You Read Me Now? Content Aware Rectification using Angle Supervision

ECCV 2020poster

The ubiquity of smartphone cameras has led to more and more documents being captured by cameras rather than scanned. Unlike flatbed scanners, photographed documents are often folded and crumpled, resulting in large local variance in text structure. The problem of document rectification is fundamenta…

Cited by 35SourcePDFScholar
2020

SCATTER: Selective Context Attentional Scene Text Recognizer

CVPR 2020poster

Scene Text Recognition (STR), the task of recognizing text against complex image backgrounds, is an active area of research. Current state-of-the-art (SOTA) methods still struggle to recognize text written in arbitrary shapes. In this paper, we introduce a novel architecture for STR, named Selective…

Cited by 194PDFcodeScholar
2020

ScrabbleGAN: Semi-Supervised Varying Length Handwritten Text Generation

CVPR 2020poster

Optical character recognition (OCR) systems performance have improved significantly in the deep learning era. This is especially true for handwritten text recognition (HTR), where each author has a unique style, unlike printed text, where the variation is smaller by design. That said, deep learning…

Cited by 179PDFScholar
2018

Latent RANSAC

CVPR 2018poster

We present a method that can evaluate a RANSAC hypothesis in constant time, i.e. independent of the size of the data. A key observation here is that correct hypotheses are tightly clustered together in the latent parameter domain. In a manner similar to the generalized Hough transform we seek to fin…

2017

Product Manifold Filter: Non-Rigid Shape Correspondence via Kernel Density Estimation in the Product Space

CVPR 2017poster

Many algorithms for the computation of correspondences between deformable shapes rely on some variant of nearest neighbor matching in a descriptor space. Such are, for example, various point-wise correspondence recovery algorithms used as a post-processing stage in the functional correspondence fram…

Cited by 147PDFScholar
2015

Inverting RANSAC: Global Model Detection via Inlier Rate Estimation

CVPR 2015poster

This work presents a novel approach for detecting inliers in a given set of correspondences (matches). It does so without explicitly identifying any consensus set, based on a method for inlier rate estimation (IRE). Given such an estimator for the inlier rate, we also present an algorithm that detec…

Cited by 48SourcePDFScholar