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What is AI ‘model collapse’?

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Manage episode 447083705 series 3323475
Conteúdo fornecido por Australian Broadcasting Corporation. Todo o conteúdo do podcast, incluindo episódios, gráficos e descrições de podcast, é carregado e fornecido diretamente por Australian Broadcasting Corporation ou por seu parceiro de plataforma de podcast. Se você acredita que alguém está usando seu trabalho protegido por direitos autorais sem sua permissão, siga o processo descrito aqui https://pt.player.fm/legal.

Artificial Intelligence chatbots have come such a long way in a really short time.

Each release of ChatGPT brings new features, like voice chat, along with updates to the training data fed into the systems, supposed to make them smarter.

But are more leaps forward a sure thing? Or could the tools actually get dumber?

Today, Aaron Snoswell from the generative AI lab at the Queensland University of Technology discusses the limitations of large language models like ChatGPT.

He explains why some observers fear ‘model collapse’, where more mistakes creep in as the systems start ‘inbreeding’, or consuming more AI created content than original human created works.

Aaron Snoswell says these models are essentially pattern matching machines, which can lead to surprising failures.

He also discusses the massive amounts of data required to train these models and the creative ways companies are sourcing this data.

The AI expert also touches on the concept of artificial general intelligence and the challenges in achieving it.

Featured:

Aaron Snoswell, senior research fellow at the generative AI lab at the Queensland University of Technology

Key Topics:

  • Artificial Intelligence
  • ChatGPT
  • Large Language Models
  • Model Collapse
  • AI Training Data
  • Artificial General Intelligence
  • Responsible AI Development
  • Generative AI
  continue reading

457 episódios

Artwork

What is AI ‘model collapse’?

ABC News Daily

317 subscribers

published

iconCompartilhar
 
Manage episode 447083705 series 3323475
Conteúdo fornecido por Australian Broadcasting Corporation. Todo o conteúdo do podcast, incluindo episódios, gráficos e descrições de podcast, é carregado e fornecido diretamente por Australian Broadcasting Corporation ou por seu parceiro de plataforma de podcast. Se você acredita que alguém está usando seu trabalho protegido por direitos autorais sem sua permissão, siga o processo descrito aqui https://pt.player.fm/legal.

Artificial Intelligence chatbots have come such a long way in a really short time.

Each release of ChatGPT brings new features, like voice chat, along with updates to the training data fed into the systems, supposed to make them smarter.

But are more leaps forward a sure thing? Or could the tools actually get dumber?

Today, Aaron Snoswell from the generative AI lab at the Queensland University of Technology discusses the limitations of large language models like ChatGPT.

He explains why some observers fear ‘model collapse’, where more mistakes creep in as the systems start ‘inbreeding’, or consuming more AI created content than original human created works.

Aaron Snoswell says these models are essentially pattern matching machines, which can lead to surprising failures.

He also discusses the massive amounts of data required to train these models and the creative ways companies are sourcing this data.

The AI expert also touches on the concept of artificial general intelligence and the challenges in achieving it.

Featured:

Aaron Snoswell, senior research fellow at the generative AI lab at the Queensland University of Technology

Key Topics:

  • Artificial Intelligence
  • ChatGPT
  • Large Language Models
  • Model Collapse
  • AI Training Data
  • Artificial General Intelligence
  • Responsible AI Development
  • Generative AI
  continue reading

457 episódios

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