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NEW QUESTION # 19
Whatis the role of a decoder in a GPT model?
Answer: A
Explanation:
In the context of GPT (Generative Pre-trained Transformer) models, the decoder plays a crucial role. Here's a detailed explanation:
Decoder Function:The decoder in a GPT model is responsible for taking the input (often a sequence of text) and generating the appropriate output (such as a continuation of the text or an answer to a query).
Architecture:GPT models are based on the transformer architecture, where the decoder consists of multiple layers of self-attention and feed-forward neural networks.
Self-Attention Mechanism:This mechanism allows the model to weigh the importance of different words in the input sequence, enabling it to generate coherent and contextually relevant output.
Generation Process:During generation, the decoder processes the input through these layers to produce the next word in the sequence, iteratively constructing the complete output.
References:
Vaswani, A., Shazeer, N., Parmar, N., Uszkoreit, J., Jones, L., Gomez, A. N., ... & Polosukhin, I.
(2017). Attention is All You Need. In Advances in Neural Information Processing Systems.
Radford, A., Narasimhan, K., Salimans, T., & Sutskever, I. (2018). Improving Language Understanding by Generative Pre-Training. OpenAI Blog.
NEW QUESTION # 20
A team of researchers is developing a neural network where one part of the network compresses input data.
What is this part of the network called?
Answer: B
Explanation:
In the context of neural networks, particularly those involved in unsupervised learning like autoencoders, the part of the network that compresses the input data is called the encoder. This component of the network takes the high-dimensional input data and encodes it into a lower-dimensional latent space. The encoder's role is crucial as it learns to preserve as much relevant information as possible in this compressed form.
The term "encoder" is standard in the field of machine learning and is used in various architectures, including Variational Autoencoders (VAEs) and other types of autoencoders. The encoder works in tandem with a decoder, which attempts to reconstruct the input data from the compressed form, allowing the network to learn a compact representation of the data.
The options "Creator of random noise" and "Discerner of real from fake data" are not standard terms associated with the part of the network that compresses data. The term "Generator" is typically associated with Generative Adversarial Networks (GANs), where it generates new data instances.
The Dell GenAI Foundations Achievement document likely covers the fundamental concepts of neural networks, including the roles of encoders and decoders, which is why the encoder is the correct answer in this context12.
NEW QUESTION # 21
What is the purpose of fine-tuning in the generative Al lifecycle?
Answer: C
Explanation:
Customization: Fine-tuning involves adjusting a pretrained model on a smaller dataset relevant to a specific task, enhancing its performance for that particular application.
NEW QUESTION # 22
What is the primary function of Large Language Models (LLMs) in the context of Natural Language Processing?
Answer: B
Explanation:
The primary function of Large Language Models (LLMs) in Natural Language Processing (NLP) is to process and generate human language. Here's a detailed explanation:
Function of LLMs:LLMs are designed to understand, interpret, and generate human language text.
They can perform tasks such as translation, summarization, and conversation.
Input and Output:LLMs take input in the form of text and produce output in text, making them versatile tools for a wide range of language-based applications.
Applications:These models are used in chatbots, virtual assistants, translation services, and more, demonstrating their ability to handle natural language efficiently.
References:
Devlin, J., Chang, M. W., Lee, K., & Toutanova, K. (2018). BERT: Pre-training of Deep Bidirectional Transformers for Language Understanding. arXiv preprint arXiv:1810.04805.
Brown, T. B., Mann, B., Ryder, N., Subbiah, M., Kaplan, J., Dhariwal, P., ... & Amodei, D.
(2020). Language Models are Few-Shot Learners. In Advances in Neural Information Processing Systems.
NEW QUESTION # 23
What is feature-based transfer learning?
Answer: D
Explanation:
Feature-based transfer learning involves leveraging certain features learned by a pre-trained model and adapting them to a new task. Here's a detailed explanation:
Feature Selection:This process involves identifying and selecting specific features or layers from a pre-trained model that are relevant to the new task while discarding others that are not.
Adaptation:The selected features are then fine-tuned or re-trained on the new dataset, allowing the model to adapt to the new task with improved performance.
Efficiency:This approach is computationally efficient because it reuses existing features, reducing the amount of data and time needed for training compared to starting from scratch.
References:
Pan, S. J., & Yang, Q. (2010). A Survey on Transfer Learning. IEEE Transactions on Knowledge and Data Engineering, 22(10), 1345-1359.
Yosinski, J., Clune, J., Bengio, Y., & Lipson, H. (2014). How Transferable Are Features in Deep Neural Networks? In Advances in Neural Information Processing Systems.
NEW QUESTION # 24
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