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Springerbriefs in computer science - 9789819703609 - open-set text recognition: concepts, framework, and algorithms (springerbriefs in computer science) von yin, xu-cheng; yang, chun; liu, chang (11 Ergebnisse)

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    • Sprache: Englisch

      Verlag: Springer, 2024

      9819703603 / 9789819703609

      Serie: Buch 54 von 60 - SpringerBriefs in Computer Science

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    • Sprache: Englisch

      Verlag: Springer, 2024

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      Serie: Buch 54 von 60 - SpringerBriefs in Computer Science

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    • Sprache: Englisch

      Verlag: Springer-Nature New York Inc, 2024

      9819703603 / 9789819703609

      Serie: Buch 54 von 60 - SpringerBriefs in Computer Science

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    • Sprache: Englisch

      Verlag: Springer, 2024

      9819703603 / 9789819703609

      Serie: Buch 54 von 60 - SpringerBriefs in Computer Science

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      Taschenbuch. Zustand: Neu. Druck auf Anfrage Neuware - Printed after ordering - In real-world applications, new data, patterns, and categories that were not covered by the training data can frequently emerge, necessitating the capability to detect and adapt to novel characters incrementally. Researchers refer to these challenges as the Open-Set Text Recognition (OSTR) task, which has, in recent years, emerged as one of the prominent issues in the field of text recognition. This book begins by providing an introduction to the background of the OSTR task, covering essential aspects such as open-set identification and recognition, conventional OCR methods, and their applications. Subsequently, the concept and definition of the OSTR task are presented encompassing its objectives, use cases, performance metrics, datasets, and protocols. A general framework for OSTR is then detailed, composed of four key components: The Aligned Represented Space, the Label-to-Representation Mapping, the Sample-to-Representation Mapping, and the Open-set Predictor. In addition,possible implementations of each module withinthe framework are discussed. Following this, two specific open-set text recognition methods, OSOCR and OpenCCD, are introduced. The book concludes by delving into applications and future directions of Open-set text recognition tasks.This book presents a comprehensive overview of the open-set text recognition task, including concepts, framework, and algorithms. It is suitable for graduated students and young researchers who are majoring in pattern recognition and computer science, especially interdisciplinary research.

    • Sprache: Englisch

      Verlag: Springer, 2024

      9819703603 / 9789819703609

      Serie: Buch 54 von 60 - SpringerBriefs in Computer Science

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      Zustand: Hervorragend. Zustand: Hervorragend | Sprache: Englisch | Produktart: Bücher | In real-world applications, new data, patterns, and categories that were not covered by the training data can frequently emerge, necessitating the capability to detect and adapt to novel characters incrementally. Researchers refer to these challenges as the Open-Set Text Recognition (OSTR) task, which has, in recent years, emerged as one of the prominent issues in the field of text recognition. This book begins by providing an introduction to the background of the OSTR task, covering essential aspects such as open-set identification and recognition, conventional OCR methods, and their applications. Subsequently, the concept and definition of the OSTR task are presented encompassing its objectives, use cases, performance metrics, datasets, and protocols. A general framework for OSTR is then detailed, composed of four key components: The Aligned Represented Space, the Label-to-Representation Mapping, the Sample-to-Representation Mapping, and the Open-set Predictor. In addition,possible implementations of each module within the framework are discussed. Following this, two specific open-set text recognition methods, OSOCR and OpenCCD, are introduced. The book concludes by delving into applications and future directions of Open-set text recognition tasks.This book presents a comprehensive overview of the open-set text recognition task, including concepts, framework, and algorithms. It is suitable for graduated students and young researchers who are majoring in pattern recognition and computer science, especially interdisciplinary research.

    • Sprache: Englisch

      Verlag: Springer, 2024

      9819703603 / 9789819703609

      Serie: Buch 54 von 60 - SpringerBriefs in Computer Science

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    • Sprache: Englisch

      Verlag: Springer Nature Singapore, Springer Nature Singapore Apr 2024, 2024

      9819703603 / 9789819703609

      Serie: Buch 54 von 60 - SpringerBriefs in Computer Science

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      Taschenbuch. Zustand: Neu. This item is printed on demand - it takes 3-4 days longer - Neuware -In real-world applications, new data, patterns, and categories that were not covered by the training data can frequently emerge, necessitating the capability to detect and adapt to novel characters incrementally. Researchers refer to these challenges as the Open-Set Text Recognition (OSTR) task, which has, in recent years, emerged as one of the prominent issues in the field of text recognition. This book begins by providing an introduction to the background of the OSTR task, covering essential aspects such as open-set identification and recognition, conventional OCR methods, and their applications. Subsequently, the concept and definition of the OSTR task are presented encompassing its objectives, use cases, performance metrics, datasets, and protocols. A general framework for OSTR is then detailed, composed of four key components: The Aligned Represented Space, the Label-to-Representation Mapping, the Sample-to-Representation Mapping, and the Open-set Predictor. In addition,possible implementations of each module withinthe framework are discussed. Following this, two specific open-set text recognition methods, OSOCR and OpenCCD, are introduced. The book concludes by delving into applications and future directions of Open-set text recognition tasks.This book presents a comprehensive overview of the open-set text recognition task, including concepts, framework, and algorithms. It is suitable for graduated students and young researchers who are majoring in pattern recognition and computer science, especially interdisciplinary research. 136 pp. Englisch.

    • Sprache: Englisch

      Verlag: Springer, 2024

      9819703603 / 9789819703609

      Serie: Buch 54 von 60 - SpringerBriefs in Computer Science

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    • Sprache: Englisch

      Verlag: Springer, 2024

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      Serie: Buch 54 von 60 - SpringerBriefs in Computer Science

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    • Sprache: Englisch

      Verlag: Springer, Berlin|Springer Nature Singapore|National Natural Science Foundation of China|National Science Fund for Distinguished Young Scholars|Springer, 2024

      9819703603 / 9789819703609

      Serie: Buch 54 von 60 - SpringerBriefs in Computer Science

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      Zustand: New. Dieser Artikel ist ein Print on Demand Artikel und wird nach Ihrer Bestellung fuer Sie gedruckt. In real-world applications, new data, patterns, and categories that were not covered by the training data can frequently emerge, necessitating the capability to detect and adapt to novel characters incrementally. Researchers refer to these challenges as .

    • Sprache: Englisch

      Verlag: Springer, Springer Apr 2024, 2024

      9819703603 / 9789819703609

      Serie: Buch 54 von 60 - SpringerBriefs in Computer Science

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      Taschenbuch. Zustand: Neu. This item is printed on demand - Print on Demand Titel. Neuware -In real-world applications, new data, patterns, and categories that were not covered by the training data can frequently emerge, necessitating the capability to detect and adapt to novel characters incrementally. Researchers refer to these challenges as the Open-Set Text Recognition (OSTR) task, which has, in recent years, emerged as one of the prominent issues in the field of text recognition. This book begins by providing an introduction to the background of the OSTR task, covering essential aspects such as open-set identification and recognition, conventional OCR methods, and their applications. Subsequently, the concept and definition of the OSTR task are presented encompassing its objectives, use cases, performance metrics, datasets, and protocols. A general framework for OSTR is then detailed, composed of four key components: The Aligned Represented Space, the Label-to-Representation Mapping, the Sample-to-Representation Mapping, and the Open-set Predictor. In addition,possible implementations of each module within the framework are discussed. Following this, two specific open-set text recognition methods, OSOCR and OpenCCD, are introduced. The book concludes by delving into applications and future directions of Open-set text recognition tasks.This book presents a comprehensive overview of the open-set text recognition task, including concepts, framework, and algorithms. It is suitable for graduated students and young researchers who are majoring in pattern recognition and computer science, especially interdisciplinary research.Springer-Verlag KG, Sachsenplatz 4-6, 1201 Wien 136 pp. Englisch.