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		<title>Run Gemma on Reachy Mini, an open source robot</title>
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		<dc:creator><![CDATA[Ashwani Kumar]]></dc:creator>
		<pubDate>Sat, 27 Jun 2026 12:05:38 +0000</pubDate>
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					<description><![CDATA[<p>Run Gemma on Reachy Mini, an open source robot Run Gemma on Reachy Mini, an open source robot Ian Ballantyne, Developer Relations Engineer at Google DeepMind, shows how Gemma runs on hardware like Raspberry Pi, Jetson, and Nano, letting a model see, hear, and act the way a robot would. The demo is Reachy Mini,… <span class="read-more"><a href="https://www.taxheal.com/run-gemma-on-reachy-mini-an-open-source-robot.html">Read More &#187;</a></span></p>
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<h2 class="style-scope ytd-watch-metadata" style="text-align: center;">Run Gemma on Reachy Mini, an open source robot</h2>
<p><iframe title="Run Gemma on Reachy Mini, an open source robot" src="https://www.youtube.com/embed/KPx3nRwbldE" width="862" height="485" frameborder="0" allowfullscreen="allowfullscreen"></iframe><br />
Run Gemma on Reachy Mini, an open source robot</p>
<p>Ian Ballantyne, Developer Relations Engineer at Google DeepMind, shows how Gemma runs on hardware like Raspberry Pi, Jetson, and Nano, letting a model see, hear, and act the way a robot would. The demo is Reachy Mini, the open source robot from Hugging Face and Pollen Robotics, a small robot that sees with cameras, reacts with emotion and head movement, and holds a conversation through its microphone and speaker.</p>
<p>What&#8217;s covered: A live conversation with Reachy Mini about why local on-device models matter for privacy and speed, the robot&#8217;s ability to move its head, show emotion, and take pictures to understand its surroundings, controlling smart devices and APIs like lights, thermostats, calendars, and live data, and an early look at the robot reasoning about a chessboard and explaining how a knight moves. Explore the Reachy Mini project from Hugging Face and Pollen Robotics, and try running Gemma on your own hardware.</p>
<p>What&#8217;s covered: A live conversation with Reachy Mini about why local on-device models matter for privacy and speed, the robot&#8217;s ability to move its head, show emotion, and take pictures to understand its surroundings, controlling smart devices and APIs like lights, thermostats, calendars, and live data, and an early look at the robot reasoning about a chessboard and explaining how a knight moves. Explore the Reachy Mini project from Hugging Face and Pollen Robotics, and try running Gemma on your own hardware.</p>
<p>What would you build with Gemma on a robot or IoT device? Drop it in the comments.</p>
<p><span class="ytAttributedStringLinkInheritColor" dir="auto">Resources: Reachy Mini → </span><span class="ytAttributedStringLinkInheritColor" dir="auto"><a class="ytAttributedStringLink ytAttributedStringLinkCallToActionColor" tabindex="0" href="https://www.youtube.com/redirect?event=video_description&amp;redir_token=QUFFLUhqazhuZmtWblBEeEVlYURMYTM4YTdTMU45OFNRd3xBQ3Jtc0tuS2wwSjRqTXFwS1N2bzhwczk0YWQ0WEI2bnpKaEZUZFpYQlMzaXNWcFRVcnA0MC00SUVsWHdOSUJCUWRCQlBWbzRmN21STEowRnpyZlE0c3NnaURUS3ppdExCOTJ1N1hOMlczVFZTVHRHZDFFQ2VwWQ&amp;q=https%3A%2F%2Fgoo.gle%2F4xJNpVJ&amp;v=KPx3nRwbldE" target="_blank" rel="nofollow noopener">https://goo.gle/4xJNpVJ</a></span></p>
<p><span class="ytAttributedStringLinkInheritColor" dir="auto">Local Reachy Mini → </span><span class="ytAttributedStringLinkInheritColor" dir="auto"><a class="ytAttributedStringLink ytAttributedStringLinkCallToActionColor" tabindex="0" href="https://www.youtube.com/redirect?event=video_description&amp;redir_token=QUFFLUhqa2V0YWJWaTUtbnozTTE5WEJQME9TRTAzYmhOUXxBQ3Jtc0tuZkRaYU56VFViSE9OWFVMR05Wd2tPY0JTTkpFRnZUbUJyeTUtRlRFS3lnZVVCOU9say02cVdWMnRqajh3UGd0YmNXTC1yR1N0RDdFVXBvT2dNcVVBYU5pZUxzN09GM2JwY19abmNOLS03Qkw0eWgwZw&amp;q=https%3A%2F%2Fgoo.gle%2F4f1dOXC&amp;v=KPx3nRwbldE" target="_blank" rel="nofollow noopener">https://goo.gle/4f1dOXC</a></span></p>
<p><span class="ytAttributedStringLinkInheritColor" dir="auto">Gemma Docs → </span><span class="ytAttributedStringLinkInheritColor" dir="auto"><a class="ytAttributedStringLink ytAttributedStringLinkCallToActionColor" tabindex="0" href="https://www.youtube.com/redirect?event=video_description&amp;redir_token=QUFFLUhqa2VXQlpPdU9UUXFpNzlIelJrZ3dCalJtbzliUXxBQ3Jtc0ttNjhaclBpUnVvbXI5cmJBZDc5U1dtcWp6QkdaMG5vRWFlN0RFMmZZeWtaSDUyaHRXbm9yYTg2RWpHcU9jdmJmZnNwNzlBR25VeG9NeUtRYy1mUmpMSjI2ZkJHQ0NCTV9Nc1BnZXl5M0hscWw4NnVoVQ&amp;q=https%3A%2F%2Fgoo.gle%2F4xMnVXS&amp;v=KPx3nRwbldE" target="_blank" rel="nofollow noopener">https://goo.gle/4xMnVXS</a></span></p>
<p><span class="ytAttributedStringLinkInheritColor" dir="auto">Gemma Cookbook → </span><span class="ytAttributedStringLinkInheritColor" dir="auto"><a class="ytAttributedStringLink ytAttributedStringLinkCallToActionColor" tabindex="0" href="https://www.youtube.com/redirect?event=video_description&amp;redir_token=QUFFLUhqbkdNajZyREZESDZGV3FwdjVfOHlfYlEtUW5Jd3xBQ3Jtc0ttcHdVR1JvRWd5TUFiUUR0a2tIMFg2cUs5RGxoMV9vZFVndDN4Y2dERDIydURvd3lhZlJ3WFpTMngtbFFDVThic1dTWWRDMEZsZUo0OEZSM0JWUzk4UEw0QnBNdFktV0FDbXZkWm9TWVl6SWlPTlFiYw&amp;q=https%3A%2F%2Fgoo.gle%2F4epYEuZ&amp;v=KPx3nRwbldE" target="_blank" rel="nofollow noopener">https://goo.gle/4epYEuZ</a></span></p>
<p>Yes, Gemma can be used to manage smart home systems and devices.</p>
<p>In the video, it is explained that by running a local model like <strong>Gemma</strong> on hardware (such as a <em>Reachy Mini</em> robot or other IoT devices), the AI can interact with smart devices and APIs.</p>
<p><strong>Potential applications include:</strong></p>
<ul>
<li><strong>Home Automation:</strong> Controlling <em>lights</em> and <em>thermostats</em> (<span class="ytwMarkdownDivTimestamp" tabindex="0" role="button" data-time="103">1:43</span> &#8211; <span class="ytwMarkdownDivTimestamp" tabindex="0" role="button" data-time="110">1:50</span>).</li>
<li><strong>Data Management:</strong> Fetching <em>live data</em> or managing <em>calendars</em> (<span class="ytwMarkdownDivTimestamp" tabindex="0" role="button" data-time="121">2:01</span> &#8211; <span class="ytwMarkdownDivTimestamp" tabindex="0" role="button" data-time="126">2:06</span>).</li>
<li><strong>Privacy and Speed:</strong> Because the model runs locally on your device, it offers improved privacy and faster reaction times since data doesn&#8217;t need to travel over the internet (<span class="ytwMarkdownDivTimestamp" tabindex="0" role="button" data-time="64">1:04</span> &#8211; <span class="ytwMarkdownDivTimestamp" tabindex="0" role="button" data-time="72">1:12</span>).</li>
</ul>
<p><img fetchpriority="high" decoding="async" class="aligncenter" src="https://i.ytimg.com/vi/KPx3nRwbldE/maxresdefault.jpg" alt="Run Gemma on Reachy Mini, an open source robot" width="798" height="449" /></p>
<div data-sfc-cp="" data-sfc-root="ep" data-sfc-cb="">Running Google’s <span data-sfc-cp="" data-sfc-root="ep" data-sfc-cb="">Gemma<!--TgQPHd||[]--></span> locally on the <span data-sfc-cp="" data-sfc-root="ep" data-sfc-cb="">Reachy Mini<!--TgQPHd||[]--><!--TgQPHd||[]--></span> open-source desktop robot <mark data-sfc-cp="" data-sfc-root="ep" data-sfc-cb="">allows the machine to see, hear, speak, and act completely offline<!--TgQPHd||[]--></mark>. Developed by Hugging Face and <a href="https://x.com/pollenrobotics" data-sfc-cp="" data-sfc-root="ep" data-sfc-cb="">Pollen Robotics<!--TgQPHd||[]--></a>, this integration leverages a local speech-to-speech cascade pipeline to give the robot ultra-low latency real-time voice, vision reasoning, and expressive motor responses without relying on the cloud.<span data-sfc-root="ep" data-sfc-cb=""> [1, 2, 3, 4] <!--TgQPHd||[]--></span><!--TgQPHd||[]--></div>
<h3 role="heading" data-sfc-root="ep">Choose Your Setup Architecture<!--TgQPHd||[]--></h3>
<div data-sfc-cp="" data-sfc-root="ep" data-sfc-cb="">You can deploy Gemma on <span data-sfc-cp="" data-sfc-root="ep" data-sfc-cb="">Reachy Mini<!--TgQPHd||[]--></span> through three primary architectural approaches, depending on your hardware availability and use case:<span data-sfc-root="ep" data-sfc-cb=""> [5] <!--TgQPHd||[]--></span><!--TgQPHd||[]--></div>
<div data-sfc-cp="" data-sfc-root="ep" data-sfc-cb="">
<div></div>
<ul>
<li data-sfc-cp="" data-sfc-root="ep" data-sfc-cb=""><span data-sfc-cp="" data-sfc-root="ep" data-sfc-cb="">Fully On-Device (Single-Board Computer)<!--TgQPHd||[]--></span>: Run highly quantized variants directly on edge boards like the NVIDIA Jetson Orin Nano (8GB) or a Raspberry Pi 5.<span data-sfc-root="ep" data-sfc-cb=""> [2, 6, 7] <!--TgQPHd||[]--></span><!--TgQPHd||[]--></li>
<li data-sfc-cp="" data-sfc-root="ep" data-sfc-cb=""><span data-sfc-cp="" data-sfc-root="ep" data-sfc-cb="">Local Companion PC (Recommended)<!--TgQPHd||[]--></span>: Run the heavy LLM backend on an external Mac or PC (e.g., M3 Pro MacBook or an AI workstation), pointing the robot&#8217;s UI dashboard to your local host.<span data-sfc-root="ep" data-sfc-cb=""> [1, 3] <!--TgQPHd||[]--></span><!--TgQPHd||[]--></li>
<li data-sfc-cp="" data-sfc-root="ep" data-sfc-cb=""><span data-sfc-cp="" data-sfc-root="ep" data-sfc-cb="">In-Browser WebAI<!--TgQPHd||[]--></span>: Use a browser, a USB-C tether, and <code dir="ltr" data-sfc-root="ep" data-sfc-cb="">Transformers.js<!--TgQPHd||[]--></code> to execute <a href="https://x.com/ailozovskaya" data-sfc-cp="" data-sfc-root="ep" data-sfc-cb="">Gemma 4<!--TgQPHd||[]--></a> entirely offline via WebGPU and WebSerial.<span data-sfc-root="ep" data-sfc-cb=""> [8] <!--TgQPHd||[]--></span><!--TgQPHd||[]--></li>
</ul>
<p><!--TgQPHd||[]--></div>
<hr data-sfc-root="ep" data-sfc-pl="||[]" data-sfc-cb="" />
<h4 role="heading" data-sfc-root="ep">Step-by-Step Implementation Guide<!--TgQPHd||[]--></h4>
<div data-sfc-cp="" data-sfc-root="ep" data-sfc-cb="">To implement the fully offline, zero-internet speech-to-speech stack recommended by Hugging Face, follow these configuration steps:<span data-sfc-root="ep" data-sfc-cb=""> [1, 9] from Run Gemma<!--TgQPHd||[]--></span><!--TgQPHd||[]--></div>
<h4 role="heading" data-sfc-root="ep">1. Deploy the Local Speech Backend<span data-sfc-root="ep" data-sfc-cb=""> [10] <!--TgQPHd||[]--></span><!--TgQPHd||[]--></h4>
<div data-sfc-cp="" data-sfc-root="ep" data-sfc-cb="">Set up a high-speed inference server on your companion hardware or advanced edge board using the Hugging Face <code dir="ltr" data-sfc-root="ep" data-sfc-cb="">speech-to-speech<!--TgQPHd||[]--></code> library. This relies on a cascaded architecture:<span data-sfc-root="ep" data-sfc-cb=""> [1] <!--TgQPHd||[]--></span><!--TgQPHd||[]--></div>
<div data-sfc-cp="" data-sfc-root="ep" data-sfc-cb="">
<div></div>
<ul>
<li data-sfc-cp="" data-sfc-root="ep" data-sfc-cb=""><span data-sfc-cp="" data-sfc-root="ep" data-sfc-cb="">LLM Engine<!--TgQPHd||[]--></span>: Deploy <code dir="ltr" data-sfc-root="ep" data-sfc-cb="">llama.cpp<!--TgQPHd||[]--></code> hosting the latest instruction-tuned <a href="https://ai.google.dev/gemma/docs/run" data-sfc-cp="" data-sfc-root="ep" data-sfc-cb=""><span data-sfc-cp="" data-sfc-root="ep" data-sfc-cb="">Gemma<!--TgQPHd||[]--></span> variants<!--TgQPHd||[]--></a>.<!--TgQPHd||[]--></li>
<li data-sfc-cp="" data-sfc-root="ep" data-sfc-cb=""><span data-sfc-cp="" data-sfc-root="ep" data-sfc-cb="">Voice Activity Detection (VAD)<!--TgQPHd||[]--></span>: Use <code dir="ltr" data-sfc-root="ep" data-sfc-cb="">Silero VAD<!--TgQPHd||[]--></code> for background noise isolation and instant voice detection.<!--TgQPHd||[]--></li>
<li data-sfc-cp="" data-sfc-root="ep" data-sfc-cb=""><span data-sfc-cp="" data-sfc-root="ep" data-sfc-cb="">Speech-to-Text (STT)<!--TgQPHd||[]--></span>: Use <code dir="ltr" data-sfc-root="ep" data-sfc-cb="">Parakeet-TDT 0.6B v3<!--TgQPHd||[]--></code> to transcribe the robot&#8217;s microphoned audio streams.<!--TgQPHd||[]--></li>
<li data-sfc-cp="" data-sfc-root="ep" data-sfc-cb=""><span data-sfc-cp="" data-sfc-root="ep" data-sfc-cb="">Text-to-Speech (TTS)<!--TgQPHd||[]--></span>: Integrate <code dir="ltr" data-sfc-root="ep" data-sfc-cb="">Qwen3-TTS<!--TgQPHd||[]--></code> or GPU-accelerated <code dir="ltr" data-sfc-root="ep" data-sfc-cb="">Kokoro TTS<!--TgQPHd||[]--></code> for low-latency verbal output.<span data-sfc-root="ep" data-sfc-cb=""> [1, 6, 11] <!--TgQPHd||[]--></span><!--TgQPHd||[]--></li>
</ul>
<p><!--TgQPHd||[]--></div>
<h4 role="heading" data-sfc-root="ep">2. Connect <span data-sfc-cp="" data-sfc-root="ep" data-sfc-cb="">Reachy Mini<!--TgQPHd||[]--></span> to the Pipeline<!--TgQPHd||[]--></h4>
<div data-sfc-cp="" data-sfc-root="ep" data-sfc-cb="">Once the backend environment is initialized, it exposes a Realtime API-compatible WebSocket (<code dir="ltr" data-sfc-root="ep" data-sfc-cb="">/v1/realtime<!--TgQPHd||[]--></code>).<span data-sfc-root="ep" data-sfc-cb=""> [1] <!--TgQPHd||[]--></span><!--TgQPHd||[]--></div>
<div data-sfc-cp="" data-sfc-root="ep" data-sfc-cb="">
<div></div>
<ul>
<li data-sfc-cp="" data-sfc-root="ep" data-sfc-cb="">Open the <span data-sfc-cp="" data-sfc-root="ep" data-sfc-cb="">Reachy Mini Desktop App<!--TgQPHd||[]--></span> or web interface.<!--TgQPHd||[]--></li>
<li data-sfc-cp="" data-sfc-root="ep" data-sfc-cb="">Navigate to the connection configuration panel.<!--TgQPHd||[]--></li>
<li data-sfc-cp="" data-sfc-root="ep" data-sfc-cb="">Map the robot&#8217;s media streams directly to your local WebSocket URL (e.g., <code dir="ltr" data-sfc-root="ep" data-sfc-cb="">ws://localhost:8000/v1/realtime<!--TgQPHd||[]--></code>).<span data-sfc-root="ep" data-sfc-cb=""> [1, 3, 6, 12] <!--TgQPHd||[]--></span><!--TgQPHd||[]--></li>
</ul>
<p><!--TgQPHd||[]--></div>
<h4 role="heading" data-sfc-root="ep">3. Establish the Media and Control Stack<!--TgQPHd||[]--></h4>
<div data-sfc-cp="" data-sfc-root="ep" data-sfc-cb="">The system coordinates audio streams, computer vision frames, and motor movements simultaneously:<!--TgQPHd||[]--></div>
<div data-sfc-root="ep" data-sfc-cb=""><!--TgQPHd||[]--></div>
<div data-sfc-cp="" data-sfc-root="ep" data-sfc-cb="">
<div></div>
<ul>
<li data-sfc-cp="" data-sfc-root="ep" data-sfc-cb=""><span data-sfc-cp="" data-sfc-root="ep" data-sfc-cb="">Audio &amp; Vision Streams<!--TgQPHd||[]--></span>: <span data-sfc-cp="" data-sfc-root="ep" data-sfc-cb="">Reachy Mini<!--TgQPHd||[]--></span> streams its built-in dual microphones and 160° wide-angle camera data locally.<span data-sfc-root="ep" data-sfc-cb=""> [4, 13] <!--TgQPHd||[]--></span><!--TgQPHd||[]--></li>
<li data-sfc-cp="" data-sfc-root="ep" data-sfc-cb=""><span data-sfc-cp="" data-sfc-root="ep" data-sfc-cb="">Tool Calling<!--TgQPHd||[]--></span>: When Gemma decides to execute an action (e.g., taking a picture, tracking a hand, or moving a chess piece), it outputs structured commands.<span data-sfc-root="ep" data-sfc-cb=""> [2, 8, 14] <!--TgQPHd||[]--></span><!--TgQPHd||[]--></li>
<li data-sfc-cp="" data-sfc-root="ep" data-sfc-cb=""><span data-sfc-cp="" data-sfc-root="ep" data-sfc-cb="">Actuation<!--TgQPHd||[]--></span>: These commands trigger Python SDK behaviors over WebSerial or Wi-Fi, converting the model&#8217;s logic into animated head turns, expressiveness, or physical actions.<span data-sfc-root="ep" data-sfc-cb=""> [4, 8, 15] <!--TgQPHd||[]--></span><!--TgQPHd||[]--></li>
</ul>
<p><!--TgQPHd||[]--></div>
<hr data-sfc-root="ep" data-sfc-pl="||[]" data-sfc-cb="" />
<h4 role="heading" data-sfc-root="ep">What You Can Do With Local Gemma<!--TgQPHd||[]--></h4>
<div data-sfc-cp="" data-sfc-root="ep" data-sfc-cb="">
<div></div>
<ul>
<li data-sfc-cp="" data-sfc-root="ep" data-sfc-cb=""><span data-sfc-cp="" data-sfc-root="ep" data-sfc-cb="">Offline Chess Play<!--TgQPHd||[]--></span>: Give the robot visual awareness of a physical chessboard; it can use its cameras to inspect piece positions and explain rules or moves.<span data-sfc-root="ep" data-sfc-cb=""> [2, 4, 16] <!--TgQPHd||[]--></span><!--TgQPHd||[]--></li>
<li data-sfc-cp="" data-sfc-root="ep" data-sfc-cb=""><span data-sfc-cp="" data-sfc-root="ep" data-sfc-cb="">Low-Latency Conversions<!--TgQPHd||[]--></span>: Chat seamlessly without waiting for data to travel over the internet, giving the robot a responsive, fluid personality.<span data-sfc-root="ep" data-sfc-cb=""> [2, 17] <!--TgQPHd||[]--></span><!--TgQPHd||[]--></li>
<li data-sfc-cp="" data-sfc-root="ep" data-sfc-cb=""><span data-sfc-cp="" data-sfc-root="ep" data-sfc-cb="">Total Privacy Isolation<!--TgQPHd||[]--></span>: Because no video or audio packets leave the local environment, the robot operates securely in private homes, classrooms, or confidential research spaces.<span data-sfc-root="ep" data-sfc-cb=""> [2] from Run Gemma<!--TgQPHd||[]--></span><!--TgQPHd||[]--></li>
</ul>
<p><!--TgQPHd||[]--></div>
<div data-sfc-root="ep" data-sfc-cb=""><!--TgQPHd||[]--></div>
<div data-sfc-root="ep" data-sfc-cb=""><!--TgQPHd||[]--></div>
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<p>. <a href="https://www.taxheal.com/gemini-3-5-live-translate-gemini-in-xcode-and-more-google-developer-news-june-2026.html" target="_blank" rel="noopener">Gemini 3.5 Live Translate, Gemini in Xcode, and more! &#8211; Google Developer News June 2026</a></p>
<p>. <a href="https://www.taxheal.com/what-if-plants-could-talk.html" target="_blank" rel="noopener">What if plants could talk?</a></p>
<p>. <a href="https://www.taxheal.com/google-wallet-makes-tsa-precheck-touchless-id-available-for-more-travelers.html" target="_blank" rel="noopener">Google Wallet makes TSA PreCheck Touchless ID available for more travelers</a></p>
<p>. <a href="https://www.taxheal.com/introducing-computer-use-in-gemini-3-5-flash.html" target="_blank" rel="noopener">Introducing computer use in Gemini 3.5 Flash</a></p>
<p>. <a href="https://www.taxheal.com/streamline-your-data-backups-with-incremental-exports-for-google-workspace.html" target="_blank" rel="noopener">Streamline your data backups with incremental exports for Google Workspace</a></p>
<p>. <a href="https://www.taxheal.com/google-workspace-weekly-recap-june-26-2026.html" target="_blank" rel="noopener">Google Workspace Weekly Recap &#8211; June 26, 2026</a></p>
<p>. <a href="https://www.taxheal.com/read-our-white-paper-on-a-pragmatic-approach-to-ai-governance-in-america.html" target="_blank" rel="noopener">Read our white paper on a pragmatic approach to AI governance in America</a></p>
<p><strong>for more refer Gemini website <a href="https://gemini.google.com/" target="_blank" rel="noopener">click here</a></strong></p>
<p><strong>for more refer Artificial Intelligence  website <a href="https://indiaai.gov.in/" target="_blank" rel="noopener">click here</a></strong></p>
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