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Artificial Intelligence (AI)
βββ Machine Learning (ML)
βββ Deep Learning (DL)
βββ Neural Network Architectures
β βββ Feedforward Neural Networks (FNN)
β βββ Convolutional Neural Networks (CNN) β mainly vision
β βββ Recurrent Neural Networks (RNN)
β β βββ LSTM
β β βββ GRU
β βββ Autoencoders
β βββ Generative Adversarial Networks (GANs)
β βββ Transformers
β βββ Encoder-only (e.g., BERT-style)
β βββ Decoder-only (e.g., GPT-style)
β βββ EncoderβDecoder (e.g., T5-style)
β
βββ Large Language Models (LLMs)
βββ Built on Transformer architectures
βββ Pretraining (self-supervised learning)
βββ Fine-tuning
β βββ Supervised Fine-Tuning (SFT)
β βββ Instruction Tuning
β βββ RLHF (Reinforcement Learning from Human Feedback)
βββ Inference-time methods
β βββ Prompt Engineering
β βββ Retrieval-Augmented Generation (RAG)
β βββ Tool / Function Calling
βββ Model Types
β βββ Base models
β βββ Instruction-tuned models
β βββ Multimodal models
βββ Scaling Dimensions
βββ Parameters
βββ Training data
βββ Compute
Topic to kickstart the Journey to understand the Deep Learning. Refer the above MindMap.
*One field. Five career paths. Infinite opportunities.*
Credit: geeksforgeeks
Anthropic dropped the best free masterclass on prompt engineering
