Ludwig Kann Oral History Interview Code 9328 PDF Download

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Ludwig Klein Oral History (interview Code: 26100)

Ludwig Klein Oral History (interview Code: 26100)
Author:
Publisher:
Total Pages: 0
Release: 1997
Genre:
ISBN:

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Zusammenfassung: Audiovisual testimony of a Holocaust survivor. Includes pre-war, wartime, and post-war experiences


Ludwig Gottschalk Oral History (interview Code: 1490)

Ludwig Gottschalk Oral History (interview Code: 1490)
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Total Pages: 0
Release: 1995
Genre:
ISBN:

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Zusammenfassung: Audiovisual testimony of a Holocaust survivor. Includes pre-war, wartime, and post-war experiences


Ludwig Haas Oral History (interview Code: 51876)

Ludwig Haas Oral History (interview Code: 51876)
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Total Pages: 0
Release: 2002
Genre:
ISBN:

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Zusammenfassung: Audiovisual testimony of a Holocaust survivor. Includes pre-war, wartime, and post-war experiences


Ludwig Libman Oral History (interview Code: 3628)

Ludwig Libman Oral History (interview Code: 3628)
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Total Pages: 0
Release: 1995
Genre:
ISBN:

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Zusammenfassung: Audiovisual testimony of a Holocaust survivor. Includes pre-war, wartime, and post-war experiences


Ludwig Friedman Oral History (interview Code: 40921)

Ludwig Friedman Oral History (interview Code: 40921)
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Total Pages: 0
Release: 1998
Genre:
ISBN:

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Zusammenfassung: Audiovisual testimony of a Holocaust survivor. Includes pre-war, wartime, and post-war experiences


Ludwig Weiler Oral History (interview Code: 14060)

Ludwig Weiler Oral History (interview Code: 14060)
Author:
Publisher:
Total Pages: 0
Release: 1996
Genre:
ISBN:

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Zusammenfassung: Audiovisual testimony of a Holocaust survivor. Includes pre-war, wartime, and post-war experiences


Ludwig Luft Oral History (interview Code: 24218)

Ludwig Luft Oral History (interview Code: 24218)
Author:
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Total Pages: 0
Release: 1996
Genre:
ISBN:

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Zusammenfassung: Audiovisual testimony of a Holocaust survivor. Includes pre-war, wartime, and post-war experiences


Neural Machine Translation

Neural Machine Translation
Author: Philipp Koehn
Publisher: Cambridge University Press
Total Pages: 409
Release: 2020-06-18
Genre: Computers
ISBN: 1108497322

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Learn how to build machine translation systems with deep learning from the ground up, from basic concepts to cutting-edge research.


Quality Estimation for Machine Translation

Quality Estimation for Machine Translation
Author: Lucia Specia
Publisher: Springer Nature
Total Pages: 148
Release: 2022-05-31
Genre: Computers
ISBN: 3031021681

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Many applications within natural language processing involve performing text-to-text transformations, i.e., given a text in natural language as input, systems are required to produce a version of this text (e.g., a translation), also in natural language, as output. Automatically evaluating the output of such systems is an important component in developing text-to-text applications. Two approaches have been proposed for this problem: (i) to compare the system outputs against one or more reference outputs using string matching-based evaluation metrics and (ii) to build models based on human feedback to predict the quality of system outputs without reference texts. Despite their popularity, reference-based evaluation metrics are faced with the challenge that multiple good (and bad) quality outputs can be produced by text-to-text approaches for the same input. This variation is very hard to capture, even with multiple reference texts. In addition, reference-based metrics cannot be used in production (e.g., online machine translation systems), when systems are expected to produce outputs for any unseen input. In this book, we focus on the second set of metrics, so-called Quality Estimation (QE) metrics, where the goal is to provide an estimate on how good or reliable the texts produced by an application are without access to gold-standard outputs. QE enables different types of evaluation that can target different types of users and applications. Machine learning techniques are used to build QE models with various types of quality labels and explicit features or learnt representations, which can then predict the quality of unseen system outputs. This book describes the topic of QE for text-to-text applications, covering quality labels, features, algorithms, evaluation, uses, and state-of-the-art approaches. It focuses on machine translation as application, since this represents most of the QE work done to date. It also briefly describes QE for several other applications, including text simplification, text summarization, grammatical error correction, and natural language generation.