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Portable Computer is now available on Windows PCs with @NVIDIA RTX GPUs. Run the harness, agents, and models locally on your PC. Work with local files and connected apps without sending tasks to the cloud. Use frontier cloud models when needed.

565,492 次观看 • 1 天前 •via X (Twitter)

17 条评论

Perplexity 的头像
Perplexity1 天前

We’ve also added support for local MCP and scheduled tasks. Connect Portable Computer to your own tools and app integrations through local MCP. Give Computer recurring work and schedule it to run on your PC while you’re away.

Perplexity 的头像
Perplexity1 天前

Get started with Portable Computer in the Perplexity Windows app. On-device inference requires an NVIDIA RTX GPU with 24GB of VRAM or higher.

Jester 的头像
Jester1 天前

@nvidia nvidia's out here selling the shovels and perplexity's selling the map to the shovel store

Assaf Elovic 的头像
Assaf Elovic1 天前

@nvidia the underrated part is converting fat mcp schemas into compact clis. local models were choking on tool defs before they could do the work.

Matthew 的头像
Matthew1 天前

@nvidia 🤮🤮🤮

KINFX🇭🇰 的头像
KINFX🇭🇰1 天前

@nvidia pro plan ? api ?

shadow 的头像
shadow1 天前

@nvidia Not free

Elodie 3DFontaine 的头像
Elodie 3DFontaine1 天前

@nvidia Local-first with cloud as fallback is how it should work. Honestly, the real test is whether the local mode stays fully functional or quietly gets nerfed to push people to a cloud tier. Owning your own compute = sanity.

Suraj Verma 🇮🇳 的头像
Suraj Verma 🇮🇳1 天前

@nvidia This is the direction I want local AI to go. But 24GB VRAM still puts it well outside the average Windows PC. The really interesting part is local by default, with the option to use a cloud model only when you actually need it.

Violeta Insights 的头像
Violeta Insights1 天前

@nvidia The connected-app boundary is the bit I'd test first, especially with local files

Eemanuel 的头像
Eemanuel1 天前

@nvidia That's incredible

TLB 的头像
TLB1 天前

@nvidia Mac support soon?

Stop the FOMO 的头像
Stop the FOMO1 天前

@nvidia Waiting for you to add M5 Ultra support up to 512GB please

... 💉💉💉 的头像
... 💉💉💉1 天前

@nvidia Does this work on DGX Spark

VastPlan 的头像
VastPlan1 天前

@nvidia 24GB VRAM 门槛把大多数游戏卡挡出去了。真正能用上的是本机 harness + 本地 MCP + 定时任务这一套,文件不用上云还能排过夜活。

Christian Cesar 的头像
Christian Cesar1 天前

@nvidia Local harness + agents on a Windows RTX box is the right packaging. The part operators care about is how you freeze a working loop (tools, memory, stop conditions) so it survives a reboot — not another chat window with a GPU.

Théo 的头像
Théo1 天前

@nvidia Two modes: harness on the GPU in the box, cloud model only when you send the task.

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