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CS7643 Quiz 4 | Complete Questions and Answers (Newest Rated A+) 2025–2026 | Deep Learning & NLP Concepts

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This document provides the complete CS7643 Quiz 4 (2025–2026) with verified questions and correct answers rated A+. It covers essential topics in deep learning and natural language processing, including embeddings, graph embeddings, MLP limitations, truncated backpropagation through time, RNNs, and LSTM gates and states. Each section includes clear formulas, concise definitions, and bullet-point explanations to help students master advanced neural network concepts for exams and practical applications. Perfect for learners focusing on deep learning architectures, recurrent models, and NLP theory.

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Subido en
9 de noviembre de 2025
Número de páginas
9
Escrito en
2025/2026
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Examen
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CS7643 Quiz 4 With complete Questions and
answers Newest RATED A+ 2025-2026
Embedding – >>> CORRECT ANSWER
A learned map from entities to vectors that encodes similarity

Graph Embedding – >>> CORRECT ANSWER
Optimize the objective that connected nodes have more similar
embeddings than unconnected nodes.
Task: convert nodes to vectors

 effectively unsupervised learning where nearest neighbors are similar
 these learned vectors are useful for downstream tasks

Multi-layer Perceptron (MLP) pain points for NLP – >>> CORRECT ANSWER

 Cannot easily support variable-sized sequences as inputs or outputs
 No inherent temporal structure
 No practical way of holding state
 The size of the network grows with the maximum allowed size of the
input or output sequences

Truncated Backpropagation through time – >>> CORRECT ANSWER
Only back propagate an RNN through T time steps

Recurrent Neural Networks (RNN) – >>> CORRECT ANSWER
h(t) = activation(U × input + V × h(t-1) + bias)
y(t) = activation(W × h(t) + bias)

 activation is typically the logistic function or tanh
 outputs can also simply be h(t)
 family of NN architectures for modeling sequences

Training Vanilla RNN's difficulties – >>> CORRECT ANSWER

,  Vanishing gradients
 Since dx(t)/dx(t-1) = w^t
 if w > 1 → exploding gradients
 if w < 1 → vanishing gradients

Long Short-Term Memory Network Gates and States – >>> CORRECT
ANSWER

 f(t) = forget gate
 i(t) = input gate
 u(t) = candidate update gate
 o(t) = output gate
 c(t) = cell state c(t) = f(t) × c(t – 1) + i(t) × u(t)
 h(t) = hidden state h(t) = o(t) × tanh(c(t))

Perplexity(s) – >>> CORRECT ANSWER
= product ( 1 / P(w(i) | w(i-1), ...) )^ (1 / N)
= b^(–1/N Σ log_b (P(w(i) | w(i-1), ...)))

 note exponent of b is per-word CE loss
 perplexity of a discrete uniform distribution over k events = k

Language Model Goal – >>> CORRECT ANSWER

 estimate the probability of sequences of words
 p(s) = p(w₁, w₂, …, wₙ)

Masked Language Modeling – >>> CORRECT ANSWER

 pre-training task – an auxiliary task different from the final task we're
really interested in, but which can help us achieve better performance
by finding good initial parameters for the model
 By pre-training on masked language modeling before training on our
final task, it is usually possible to obtain higher performance than by
simply training on the final task

Knowledge Distillation to Reduce Model Sizes – >>> CORRECT ANSWER
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