AI Language Interaction and Technologies

Study sheet excerpt

AI Practice and Technologies Interacting with Humans and the Real World — Revision Sheet

1. 📌 Essentials

  • NLP enables machines to interpret, understand, and generate human language naturally.
  • Classical NLP pipeline: tokenization, morphology/POS tagging, syntax, semantics, pragmatics.
  • Word embeddings (static and contextual) represent words as vectors capturing meaning.
  • Transformersized NLP with parallel processing and self-attention.
  • Large Language Models (LLMs): BERT, GPT, T5, capable of understanding and generating language.
  • Practical tools: spaCy (fast, rule-based), Hugging Face (state-of-the-art neural models).
  • Responsible NLP: address bias, fairness, privacy, and energy consumption.
  • Challenges include ambiguity, context-dependence, and intent recognition.
  • Hierarchical flow: raw text → structured understanding → response or action.
  • Future trends: instruction tuning, retrieval augmentation, multilingual models, safety.

2. 🧩 Key Structures & Components

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Quiz preview

1. What is the primary goal of natural language processing (NLP) in human–computer interaction?

2. Which step is NOT part of the classical NLP pipeline?

3. What is a key advantage of contextual embeddings like BERT and GPT over static embeddings such as Word2Vec?

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Flashcards preview

NLP — core task?

Extract meaning from human language

Classical NLP pipeline — step?

Tokenization, morphology, syntax, semantics, pragmatics

Word embeddings — type?

Vector representations capturing similarity

NLP — definition?

Enables machines to interpret and generate human language.

Transformers — key feature?

Parallel processing with self-attention mechanisms.

Large Language Models — examples?

BERT, GPT, T5.

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The quiz contains 9 multiple-choice questions with detailed corrections and explanations for each answer. Ideal for testing your knowledge and identifying gaps.

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