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Innehåll tillhandahållet av a16z and Andreessen Horowitz. Allt poddinnehåll inklusive avsnitt, grafik och podcastbeskrivningar laddas upp och tillhandahålls direkt av a16z and Andreessen Horowitz eller deras podcastplattformspartner. Om du tror att någon använder ditt upphovsrättsskyddade verk utan din tillåtelse kan du följa processen som beskrivs här https://sv.player.fm/legal.
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Text to Video: The Next Leap in AI Generation

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Manage episode 390476681 series 2546451
Innehåll tillhandahållet av a16z and Andreessen Horowitz. Allt poddinnehåll inklusive avsnitt, grafik och podcastbeskrivningar laddas upp och tillhandahålls direkt av a16z and Andreessen Horowitz eller deras podcastplattformspartner. Om du tror att någon använder ditt upphovsrättsskyddade verk utan din tillåtelse kan du följa processen som beskrivs här https://sv.player.fm/legal.

General Partner Anjney Midha explores the cutting-edge world of text-to-video AI with AI researchers Andreas Blattmann and Robin Rombach.

Released in November, Stable Video Diffusion is their latest open-source generative video model, overcoming challenges in size and dynamic representation.

In this episode Robin and Andreas share why translating text to video is complex, the key role of datasets, current applications, and the future of video editing.

Topics Covered:

00:00 - Text to Video: The Next Leap in AI Generation

02:41 - The Stable Diffusion backstory

04:25 - Diffusion vs autoregressive models

06:09 - The benefits of single step sampling

09:15 - Why generative video?

11:19 - Understanding physics through AI video

12:20 - The challenge of creating generative video

15:36 - Data set selection and training

17:50 - Structural consistency and 3D objects

19:50 - Incorporating LoRAs

21:24 - How should creators think about these tools?

23:46 - Open challenges in video generation

25:42 - Infrastructure challenges and future research

Resources:

Find Robin on Twitter: https://twitter.com/robrombach

Find Andreas on Twitter: https://twitter.com/andi_blatt

Find Anjney on Twitter: https://twitter.com/anjneymidha

Stay Updated:

Find a16z on Twitter: https://twitter.com/a16z

Find a16z on LinkedIn: https://www.linkedin.com/company/a16z

Subscribe on your favorite podcast app: https://a16z.simplecast.com/

Follow our host: https://twitter.com/stephsmithio

Please note that the content here is for informational purposes only; should NOT be taken as legal, business, tax, or investment advice or be used to evaluate any investment or security; and is not directed at any investors or potential investors in any a16z fund. a16z and its affiliates may maintain investments in the companies discussed. For more details please see a16z.com/disclosures.

  continue reading

256 episoder

Artwork

Text to Video: The Next Leap in AI Generation

a16z Podcast

51,240 subscribers

published

iconDela
 
Manage episode 390476681 series 2546451
Innehåll tillhandahållet av a16z and Andreessen Horowitz. Allt poddinnehåll inklusive avsnitt, grafik och podcastbeskrivningar laddas upp och tillhandahålls direkt av a16z and Andreessen Horowitz eller deras podcastplattformspartner. Om du tror att någon använder ditt upphovsrättsskyddade verk utan din tillåtelse kan du följa processen som beskrivs här https://sv.player.fm/legal.

General Partner Anjney Midha explores the cutting-edge world of text-to-video AI with AI researchers Andreas Blattmann and Robin Rombach.

Released in November, Stable Video Diffusion is their latest open-source generative video model, overcoming challenges in size and dynamic representation.

In this episode Robin and Andreas share why translating text to video is complex, the key role of datasets, current applications, and the future of video editing.

Topics Covered:

00:00 - Text to Video: The Next Leap in AI Generation

02:41 - The Stable Diffusion backstory

04:25 - Diffusion vs autoregressive models

06:09 - The benefits of single step sampling

09:15 - Why generative video?

11:19 - Understanding physics through AI video

12:20 - The challenge of creating generative video

15:36 - Data set selection and training

17:50 - Structural consistency and 3D objects

19:50 - Incorporating LoRAs

21:24 - How should creators think about these tools?

23:46 - Open challenges in video generation

25:42 - Infrastructure challenges and future research

Resources:

Find Robin on Twitter: https://twitter.com/robrombach

Find Andreas on Twitter: https://twitter.com/andi_blatt

Find Anjney on Twitter: https://twitter.com/anjneymidha

Stay Updated:

Find a16z on Twitter: https://twitter.com/a16z

Find a16z on LinkedIn: https://www.linkedin.com/company/a16z

Subscribe on your favorite podcast app: https://a16z.simplecast.com/

Follow our host: https://twitter.com/stephsmithio

Please note that the content here is for informational purposes only; should NOT be taken as legal, business, tax, or investment advice or be used to evaluate any investment or security; and is not directed at any investors or potential investors in any a16z fund. a16z and its affiliates may maintain investments in the companies discussed. For more details please see a16z.com/disclosures.

  continue reading

256 episoder

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