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CVPR 2025 papers pt. 2 - SAMWISE SAMWISE adds language understanding and temporal reasoning to SAM2; you can segment and track objects in videos just by describing them more papers: ↓ more

20,528 Aufrufe • vor 1 Jahr •via X (Twitter)

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Profilbild von SkalskiP @ CVPR2025 🇺🇸
SkalskiP @ CVPR2025 🇺🇸vor 1 Jahr

- paper: - code: - video:

Profilbild von SkalskiP @ CVPR2025 🇺🇸
SkalskiP @ CVPR2025 🇺🇸vor 1 Jahr

SAM2 supports visual prompts like points and boxes but have no native support for text prompts. I often showed how combining SAM2 with VLMs enabled language-guided image segmentation. SAMWISE allows direct text-driven video object segmentation.

Profilbild von SkalskiP @ CVPR2025 🇺🇸
SkalskiP @ CVPR2025 🇺🇸vor 1 Jahr

SAM2 can make mistakes that, without human correction, will persist in subsequent frames. SAMWISE can auto correct it's own mistakes.

Profilbild von SkalskiP @ CVPR2025 🇺🇸
SkalskiP @ CVPR2025 🇺🇸vor 1 Jahr

SAMWISE uses a frozen Segment Anything 2 (SAM2) model and a frozen text encoder. it adds a special module called the Cross-Modal Temporal Adapter (CMT), which helps the model combine information from both the video and the text and follow changes over time.

Profilbild von SkalskiP @ CVPR2025 🇺🇸
SkalskiP @ CVPR2025 🇺🇸vor 1 Jahr

Conditional Memory Encoder (CME) helps the model notice when a new object fits your prompt better, so SAMWISE can automatically switch tracking, even if the correct object appears later or is hidden for a while.

Profilbild von SkalskiP @ CVPR2025 🇺🇸
SkalskiP @ CVPR2025 🇺🇸vor 1 Jahr

full poster explaining text understanding, temporal modeling, tracking bias, and much more

Profilbild von Nigam Arora
Nigam Aroravor 1 Jahr

In 2025, how much more money can you make in the stock market by following the most accurate analysis?

Profilbild von Team Reagent
Team Reagentvor 1 Jahr

Can it do this in real-time?

Profilbild von Team Reagent
Team Reagentvor 1 Jahr

Oh we are DEFINITELY taking a look at this! Wow!!

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