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Episode 13 — Deep Learning — Modern Architectures

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Manage episode 505486164 series 3689029
Content provided by Jason Edwards. All podcast content including episodes, graphics, and podcast descriptions are uploaded and provided directly by Jason Edwards or their podcast platform partner. If you believe someone is using your copyrighted work without your permission, you can follow the process outlined here https://ppacc.player.fm/legal.

Deep learning represents the cutting edge of neural networks, pushing performance far beyond earlier methods. In this episode, we define deep learning as networks with many layers capable of learning hierarchical features, supported by massive datasets and specialized hardware like GPUs. We’ll explore architectures including convolutional neural networks for vision, recurrent and gated networks for sequential data, attention mechanisms, and transformers that now dominate natural language processing. Autoencoders and generative adversarial networks are also introduced as creative architectures used for representation learning and data generation.

The episode then turns to breakthroughs and challenges. Deep learning has enabled advances in image classification, speech recognition, translation, and generative models capable of creating art, video, and text. But these capabilities come with costs: enormous energy demands, interpretability difficulties, and risks of bias amplified by opaque systems. We highlight the role of transfer learning and multimodal architectures that combine vision, audio, and text, showing how research continues to expand. Deep learning is the powerhouse of AI, and understanding its scope and limits is critical for both learners and practitioners. Produced by BareMetalCyber.com, where you’ll find more cyber prepcasts, books, and information to strengthen your certification path.

  continue reading

48 episodes

Artwork
iconShare
 
Manage episode 505486164 series 3689029
Content provided by Jason Edwards. All podcast content including episodes, graphics, and podcast descriptions are uploaded and provided directly by Jason Edwards or their podcast platform partner. If you believe someone is using your copyrighted work without your permission, you can follow the process outlined here https://ppacc.player.fm/legal.

Deep learning represents the cutting edge of neural networks, pushing performance far beyond earlier methods. In this episode, we define deep learning as networks with many layers capable of learning hierarchical features, supported by massive datasets and specialized hardware like GPUs. We’ll explore architectures including convolutional neural networks for vision, recurrent and gated networks for sequential data, attention mechanisms, and transformers that now dominate natural language processing. Autoencoders and generative adversarial networks are also introduced as creative architectures used for representation learning and data generation.

The episode then turns to breakthroughs and challenges. Deep learning has enabled advances in image classification, speech recognition, translation, and generative models capable of creating art, video, and text. But these capabilities come with costs: enormous energy demands, interpretability difficulties, and risks of bias amplified by opaque systems. We highlight the role of transfer learning and multimodal architectures that combine vision, audio, and text, showing how research continues to expand. Deep learning is the powerhouse of AI, and understanding its scope and limits is critical for both learners and practitioners. Produced by BareMetalCyber.com, where you’ll find more cyber prepcasts, books, and information to strengthen your certification path.

  continue reading

48 episodes

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