Records |
Author |
Marçal Rusiñol; K. Bertet; Jean-Marc Ogier; Josep Llados |
Title |
Symbol Recognition Using a Concept Lattice of Graphical Patterns |
Type |
Book Chapter |
Year |
2010 |
Publication |
Graphics Recognition. Achievements, Challenges, and Evolution. 8th International Workshop, GREC 2009. Selected Papers |
Abbreviated Journal |
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Volume |
6020 |
Issue |
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Pages |
187-198 |
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Abstract |
In this paper we propose a new approach to recognize symbols by the use of a concept lattice. We propose to build a concept lattice in terms of graphical patterns. Each model symbol is decomposed in a set of composing graphical patterns taken as primitives. Each one of these primitives is described by boundary moment invariants. The obtained concept lattice relates which symbolic patterns compose a given graphical symbol. A Hasse diagram is derived from the context and is used to recognize symbols affected by noise. We present some preliminary results over a variation of the dataset of symbols from the GREC 2005 symbol recognition contest. |
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Springer Berlin Heidelberg |
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LNCS |
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ISSN |
0302-9743 |
ISBN |
978-3-642-13727-3 |
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DAG |
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no |
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Admin @ si @ RBO2010 |
Serial |
2407 |
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Author |
Josep Llados; Gemma Sanchez |
Title |
Symbol Recognition Using Graphs |
Type |
Miscellaneous |
Year |
2003 |
Publication |
Proceedings of 10th IEEE International Conference on Image Processing, vol II, 49–52 |
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Barcelona |
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DAG |
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no |
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DAG @ dag @ LlS2003 |
Serial |
383 |
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Author |
Josep Llados; Ernest Valveny; Gemma Sanchez; Enric Marti |
Title |
Symbol recognition: current advances and perspectives |
Type |
Book Chapter |
Year |
2002 |
Publication |
Graphics Recognition Algorithms And Applications |
Abbreviated Journal |
LNCS |
Volume |
2390 |
Issue |
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Pages |
104-128 |
Keywords |
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Abstract |
The recognition of symbols in graphic documents is an intensive research activity in the community of pattern recognition and document analysis. A key issue in the interpretation of maps, engineering drawings, diagrams, etc. is the recognition of domain dependent symbols according to a symbol database. In this work we first review the most outstanding symbol recognition methods from two different points of view: application domains and pattern recognition methods. In the second part of the paper, open and unaddressed problems involved in symbol recognition are described, analyzing their current state of art and discussing future research challenges. Thus, issues such as symbol representation, matching, segmentation, learning, scalability of recognition methods and performance evaluation are addressed in this work. Finally, we discuss the perspectives of symbol recognition concerning to new paradigms such as user interfaces in handheld computers or document database and WWW indexing by graphical content. |
Address |
London, UK |
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Publisher |
Springer-Verlag |
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Editor |
Dorothea Blostein and Young- Bin Kwon |
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Lecture Notes in Computer Science |
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LNCS |
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ISBN |
3-540-44066-6 |
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Conference |
GREC |
Notes |
DAG; IAM; |
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no |
Call Number |
IAM @ iam @ LVS2002 |
Serial |
1572 |
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Author |
Marçal Rusiñol; Josep Llados |
Title |
Symbol Spotting in Digital Libraries:Focused Retrieval over Graphic-rich Document Collections |
Type |
Book Whole |
Year |
2010 |
Publication |
Symbol Spotting in Digital Libraries:Focused Retrieval over Graphic-rich Document Collections |
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Pages |
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Keywords |
Focused Retrieval , Graphical Pattern Indexation,Graphics Recognition ,Pattern Recognition , Performance Evaluation , Symbol Description ,Symbol Spotting |
Abstract |
The specific problem of symbol recognition in graphical documents requires additional techniques to those developed for character recognition. The most well-known obstacle is the so-called Sayre paradox: Correct recognition requires good segmentation, yet improvement in segmentation is achieved using information provided by the recognition process. This dilemma can be avoided by techniques that identify sets of regions containing useful information. Such symbol-spotting methods allow the detection of symbols in maps or technical drawings without having to fully segment or fully recognize the entire content.
This unique text/reference provides a complete, integrated and large-scale solution to the challenge of designing a robust symbol-spotting method for collections of graphic-rich documents. The book examines a number of features and descriptors, from basic photometric descriptors commonly used in computer vision techniques to those specific to graphical shapes, presenting a methodology which can be used in a wide variety of applications. Additionally, readers are supplied with an insight into the problem of performance evaluation of spotting methods. Some very basic knowledge of pattern recognition, document image analysis and graphics recognition is assumed. |
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Springer |
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ISBN |
978-1-84996-208-7 |
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DAG |
Approved |
no |
Call Number |
DAG @ dag @ RuL2010a |
Serial |
1292 |
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Author |
Anjan Dutta |
Title |
Symbol Spotting in Graphical Documents by Serialized Subgraph Matching |
Type |
Report |
Year |
2010 |
Publication |
CVC Technical Report |
Abbreviated Journal |
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Volume |
159 |
Issue |
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Thesis |
Master's thesis |
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DAG |
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no |
Call Number |
Admin @ si @ Dut2010 |
Serial |
1351 |
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Author |
Anjan Dutta; Josep Llados; Umapada Pal |
Title |
Symbol Spotting in Line Drawings Through Graph Paths Hashing |
Type |
Conference Article |
Year |
2011 |
Publication |
11th International Conference on Document Analysis and Recognition |
Abbreviated Journal |
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Volume |
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Issue |
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Pages |
982-986 |
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Abstract |
In this paper we propose a symbol spotting technique through hashing the shape descriptors of graph paths (Hamiltonian paths). Complex graphical structures in line drawings can be efficiently represented by graphs, which ease the accurate localization of the model symbol. Graph paths are the factorized substructures of graphs which enable robust recognition even in the presence of noise and distortion. In our framework, the entire database of the graphical documents is indexed in hash tables by the locality sensitive hashing (LSH) of shape descriptors of the paths. The hashing data structure aims to execute an approximate k-NN search in a sub-linear time. The spotting method is formulated by a spatial voting scheme to the list of locations of the paths that are decided during the hash table lookup process. We perform detailed experiments with various dataset of line drawings and the results demonstrate the effectiveness and efficiency of the technique. |
Address |
Beijing, China |
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ISSN |
1520-5363 |
ISBN |
978-1-4577-1350-7 |
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ICDAR |
Notes |
DAG |
Approved |
no |
Call Number |
Admin @ si @ DLP2011b |
Serial |
1791 |
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Author |
Marçal Rusiñol; Josep Llados |
Title |
Symbol Spotting in Technical Drawings Using Vectorial Signatures |
Type |
Miscellaneous |
Year |
2005 |
Publication |
6th IAPR International Workshop on Graphics Recognition (GREC 2005), 35–45 |
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Address |
Hong Kong |
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DAG |
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no |
Call Number |
DAG @ dag @ RuL2005 |
Serial |
579 |
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Author |
Marçal Rusiñol; Josep Llados |
Title |
Symbol Spotting in Technical Drawings Using Vectorial Signatures |
Type |
Book Chapter |
Year |
2006 |
Publication |
Graphics Recognition: Ten Years Review and Future Perspectives, W. Liu, J. Llados (Eds.), LNCS 3926: 35–46 |
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DAG |
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no |
Call Number |
DAG @ dag @ RuL2006a |
Serial |
719 |
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Author |
Marçal Rusiñol; Josep Llados; Gemma Sanchez |
Title |
Symbol Spotting in Vectorized Technical Drawings Through a Lookup Table of Region Strings |
Type |
Journal Article |
Year |
2010 |
Publication |
Pattern Analysis and Applications |
Abbreviated Journal |
PAA |
Volume |
13 |
Issue |
3 |
Pages |
321-331 |
Keywords |
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Abstract |
In this paper, we address the problem of symbol spotting in technical document images applied to scanned and vectorized line drawings. Like any information spotting architecture, our approach has two components. First, symbols are decomposed in primitives which are compactly represented and second a primitive indexing structure aims to efficiently retrieve similar primitives. Primitives are encoded in terms of attributed strings representing closed regions. Similar strings are clustered in a lookup table so that the set median strings act as indexing keys. A voting scheme formulates hypothesis in certain locations of the line drawing image where there is a high presence of regions similar to the queried ones, and therefore, a high probability to find the queried graphical symbol. The proposed approach is illustrated in a framework consisting in spotting furniture symbols in architectural drawings. It has been proved to work even in the presence of noise and distortion introduced by the scanning and raster-to-vector processes. |
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Springer-Verlag |
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1433-7541 |
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DAG |
Approved |
no |
Call Number |
DAG @ dag @ RLS2010 |
Serial |
1165 |
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Author |
Alicia Fornes; Josep Llados; Gemma Sanchez; Horst Bunke |
Title |
Symbol-independent writer identification in old handwritten music scores |
Type |
Conference Article |
Year |
2009 |
Publication |
In proceedings of 8th IAPR International Workshop on Graphics Recognition |
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Pages |
186–197 |
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Address |
La Rochelle, France |
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Springer Berlin Heidelberg |
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0302-9743 |
ISBN |
978-3-642-13727-3 |
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Conference |
GREC |
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DAG |
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no |
Call Number |
DAG @ dag @ FLS2009a |
Serial |
1222 |
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Author |
Cesar de Souza; Adrien Gaidon; Eleonora Vig; Antonio Lopez |
Title |
Sympathy for the Details: Dense Trajectories and Hybrid Classification Architectures for Action Recognition |
Type |
Conference Article |
Year |
2016 |
Publication |
14th European Conference on Computer Vision |
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Pages |
697-716 |
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Action recognition in videos is a challenging task due to the complexity of the spatio-temporal patterns to model and the difficulty to acquire and learn on large quantities of video data. Deep learning, although a breakthrough for image classification and showing promise for videos, has still not clearly superseded action recognition methods using hand-crafted features, even when training on massive datasets. In this paper, we introduce hybrid video classification architectures based on carefully designed unsupervised representations of hand-crafted spatio-temporal features classified by supervised deep networks. As we show in our experiments on five popular benchmarks for action recognition, our hybrid model combines the best of both worlds: it is data efficient (trained on 150 to 10000 short clips) and yet improves significantly on the state of the art, including recent deep models trained on millions of manually labelled images and videos. |
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Amsterdam; The Netherlands; October 2016 |
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ECCV |
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ADAS; 600.076; 600.085 |
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no |
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Admin @ si @ SGV2016 |
Serial |
2824 |
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Author |
Joan Serrat; Ferran Diego; Felipe Lumbreras; Jose Manuel Alvarez |
Title |
Synchronization of Video Sequences from Free-moving Cameras |
Type |
Conference Article |
Year |
2007 |
Publication |
3rd Iberian Conference on Pattern Recognition and Image Analysis |
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4477 |
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Pages |
620–627 |
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Address |
Girona (Spain) |
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J. Marti et al. |
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IbPRIA |
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ADAS |
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ADAS @ adas @ SDL2007 |
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880 |
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Author |
Joan Mas |
Title |
Syntactic approaches to recognize bi-dimensional shapes in graphics recognition. Application to sketching interfaces |
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Report |
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2005 |
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CVC Technical Report #86 |
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CVC (UAB) |
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DAG @ dag @ Mas2005a |
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573 |
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Author |
Lluis Pere de las Heras |
Title |
Syntactic Model for Semantic Document Analysis |
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Report |
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2010 |
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CVC Technical Report |
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158 |
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Admin @ si @ Per2010 |
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1350 |
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Author |
Gemma Sanchez; Josep Llados |
Title |
Syntactic models to represent perceptually regular repetitive patterns in graphic documents |
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Miscellaneous |
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2003 |
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Proceedings of Fifth IAPR International Workshop on Graphics Recognition, 194–201 |
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Barcelona |
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DAG |
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DAG @ dag @ SaL2003 |
Serial |
417 |
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