Generative AI BAIL657C
Course Code: BAIL657C
Credits: 01
CIE Marks: 50
SEE Marks: 50
Total Marks: 100
Exam Hours: 01
Teaching Hours/Weeks: [L:T:P:S] 0:0:1:0
Explore pre-trained word vectors. Explore word relationships using vector arithmetic. Perform arithmetic operations and analyze results.
Use dimensionality reduction (e.g., PCA or t-SNE) to visualize word embeddings for Q 1. Select 10 words from a specific domain (e.g., sports, technology) and visualize their embeddings. Analyze clusters and relationships. Generate contextually rich outputs using embeddings. Write a program to generate 5 semantically similar words for a given input.
Train a custom Word2Vec model on a small dataset. Train embeddings on a domain-specific corpus (e.g., legal, medical) and analyze how embeddings capture domain-specific semantics.
Use word embeddings to improve prompts for Generative AI model. Retrieve similar words using word embeddings. Use the similar words to enrich a GenAI prompt. Use the AI model to generate responses for the original and enriched prompts. Compare the outputs in terms of detail and relevance.
Use word embeddings to create meaningful sentences for creative tasks. Retrieve similar words for a seed word. Create a sentence or story using these words as a starting point. Write a program that: Takes a seed word. Generates similar words. Constructs a short paragraph using these words.
Use a pre-trained Hugging Face model to analyze sentiment in text. Assume a real-world application, Load the sentiment analysis pipeline. Analyze the sentiment by giving sentences to input.
Summarize long texts using a pre-trained summarization model using Hugging face model. Load the summarization pipeline. Take a passage as input and obtain the summarized text.
Install langchain, cohere (for key), langchain-community. Get the api key( By logging into Cohere and obtaining the cohere key). Load a text document from your google drive . Create a prompt template to display the output in a particular manner.
Take the Institution name as input. Use Pydantic to define the schema for the desired output and create a custom output parser. Invoke the Chain and Fetch Results. Extract the below Institution related details from Wikipedia: The founder of the Institution. When it was founded. The current branches in the institution . How many employees are working in it. A brief 4-line summary of the institution.
Build a chatbot for the Indian Penal Code. We’ll start by downloading the official Indian Penal Code document, and then we’ll create a chatbot that can interact with it. Users will be able to ask questions about the Indian Penal Code and have a conversation with it.
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pls share the generative ai lab manual all the programs
pls share the generative ai lab manual of computer science engineering of 6th sem 2022 scheme
I need 8 9 10 program of gen ai
plz do update all the programs
please do update all the programs(4,8,9,10)
Please update programs 8,9, and 10 ASAP, our externals are very near
please upload 4, 8 ,9 , 10 coz we have externals on monday
Pls update the remaining questions