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College notes Natural Language Processing Technology (L_AAMAALG005)

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All notes for the NLPT course, got a 7.6 for the exam itself. All the necessary slides are also included with necessary explanations.

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Uploaded on
March 2, 2022
Number of pages
41
Written in
2020/2021
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Lisa beinborn
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Natural Language Processing
Technology
Created @March 24, 2021 2:40 PM

Class S5

Type S5

Materials



Lecture 1
Introduction
NLP:

represents language in a way that a computer can process it → representing input

Process language in a way that is useful for human → generating output

understanding language structure and language use → computational modelling



Analyzing Language

linguistic pre-processing steps

standardizing the input

normalization and cleaning

remove layout (paragraphs, underlined, bold, italics)

remove/replace emojis and urls (making URLS or sth like that)

replace numbers with NUM

anonymization: replacing phone numbers/paswords

unless you need them!

Casing: uppercase vs lowercase vs true case (for example keeping uppercase by names but
not sentence beginnings)

sentence segmentation: What are indicators for sentence boundaries?

Linguistic pre-processing

fast developments: huge research places can now be done by just one package Python.

performance: very good for generic languages and problematic for domain-specific data or
small languages.




Natural Language Processing Technology 1

, word segmentation: how can i decompose a sentence into its words?

tokenization: all things, type: amount of different tokens

morphological analysis: lemmatization, sub-words, ... [read chapter 2]

morphological analysis

we want to decompose a word into their morphemes (as small as possible): unhappier-un-
happy-er (difficult in turkish for example)

highly challenging, because most languages contain many exceptions and morpheme
boundaries can be ambiguous

subwords:

frequent tokens are unique

less frequent tokens are decomposed into subwords

really statistical, not about linguistics by the approaches!




lemmatization: dictionary word happier/happiest → happy. there are ambiguities saw → see or
saw?

now we analyze the lemma




Natural Language Processing Technology 2

, Penn Treebank: 36 labels




Natural Language Processing Technology 3

, note on image above: left more complex, deeper structure




error propagation: dat de fout gemaakt in een van de stappen overvloeit naar de volgende stap

corpora and shared tasks

1) how did automated linguistic preprocessing become so good? tools were trained on manually
annotated corpora, tuned on development data and evaluated on test data. Machine learning and
neural networks boosted the performance and facilitated transfer across languages

nlpprogress.com → good to look for which process which package is the best




Natural Language Processing Technology 4

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