Auto-Generating Clips for Social Media from Live Streams with the Strands Agents SDK

This page summarizes the projects mentioned and recommended in the original post on dev.to

Stream - Scalable APIs for Chat, Feeds, Moderation, & Video.
Stream helps developers build engaging apps that scale to millions with performant and flexible Chat, Feeds, Moderation, and Video APIs and SDKs powered by a global edge network and enterprise-grade infrastructure.
getstream.io
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InfluxDB – Built for High-Performance Time Series Workloads
InfluxDB 3 OSS is now GA. Transform, enrich, and act on time series data directly in the database. Automate critical tasks and eliminate the need to move data externally. Download now.
www.influxdata.com
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  1. bedrust

    Invoking models on Amazon Bedrock using Rust

    I decided to test the agent out with a recent live stream from my friend Darko Mesaroš.

  2. Stream

    Stream - Scalable APIs for Chat, Feeds, Moderation, & Video. Stream helps developers build engaging apps that scale to millions with performant and flexible Chat, Feeds, Moderation, and Video APIs and SDKs powered by a global edge network and enterprise-grade infrastructure.

    Stream logo
  3. whisper

    Robust Speech Recognition via Large-Scale Weak Supervision

    To accomplish this task, I decided to try out the new Strands Agents SDK. It's a fairly new framework for building agents that has a simple way to define tools that the agent can use to assist in responding to prompts. For this solution, we'll need FFMPEG and Whisper installed on the machine where the agent runs. I'll be working locally, but this could easily be converted to a server-based solution using FastAPI or another web framework and deployed to the cloud in a Docker/Podman container.

  4. FFmpeg

    Mirror of https://git.ffmpeg.org/ffmpeg.git

    To accomplish this task, I decided to try out the new Strands Agents SDK. It's a fairly new framework for building agents that has a simple way to define tools that the agent can use to assist in responding to prompts. For this solution, we'll need FFMPEG and Whisper installed on the machine where the agent runs. I'll be working locally, but this could easily be converted to a server-based solution using FastAPI or another web framework and deployed to the cloud in a Docker/Podman container.

NOTE: The number of mentions on this list indicates mentions on common posts plus user suggested alternatives. Hence, a higher number means a more popular project.

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