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AnyPlace: Learning Generalized Object Placement for Robot Manipulationcs.AI updates on arXiv.org

AnyPlace: Learning Generalized Object Placement for Robot Manipulationcs.AI updates on arXiv.orgon September 26, 2025 at 4:00 am arXiv:2502.04531v2 Announce Type: replace-cross
Abstract: Object placement in robotic tasks is inherently challenging due to the diversity of object geometries and placement configurations. To address this, we propose AnyPlace, a two-stage method trained entirely on synthetic data, capable of predicting a wide range of feasible placement poses for real-world tasks. Our key insight is that by leveraging a Vision-Language Model (VLM) to identify rough placement locations, we focus only on the relevant regions for local placement, which enables us to train the low-level placement-pose-prediction model to capture diverse placements efficiently. For training, we generate a fully synthetic dataset of randomly generated objects in different placement configurations (insertion, stacking, hanging) and train local placement-prediction models. We conduct extensive evaluations in simulation, demonstrating that our method outperforms baselines in terms of success rate, coverage of possible placement modes, and precision. In real-world experiments, we show how our approach directly transfers models trained purely on synthetic data to the real world, where it successfully performs placements in scenarios where other models struggle — such as with varying object geometries, diverse placement modes, and achieving high precision for fine placement. More at: https://any-place.github.io.

 arXiv:2502.04531v2 Announce Type: replace-cross
Abstract: Object placement in robotic tasks is inherently challenging due to the diversity of object geometries and placement configurations. To address this, we propose AnyPlace, a two-stage method trained entirely on synthetic data, capable of predicting a wide range of feasible placement poses for real-world tasks. Our key insight is that by leveraging a Vision-Language Model (VLM) to identify rough placement locations, we focus only on the relevant regions for local placement, which enables us to train the low-level placement-pose-prediction model to capture diverse placements efficiently. For training, we generate a fully synthetic dataset of randomly generated objects in different placement configurations (insertion, stacking, hanging) and train local placement-prediction models. We conduct extensive evaluations in simulation, demonstrating that our method outperforms baselines in terms of success rate, coverage of possible placement modes, and precision. In real-world experiments, we show how our approach directly transfers models trained purely on synthetic data to the real world, where it successfully performs placements in scenarios where other models struggle — such as with varying object geometries, diverse placement modes, and achieving high precision for fine placement. More at: https://any-place.github.io. Read More 

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Google AI Ships a Model Context Protocol (MCP) Server for Data Commons, Giving AI Agents First-Class Access to Public StatsMarkTechPost

Google AI Ships a Model Context Protocol (MCP) Server for Data Commons, Giving AI Agents First-Class Access to Public StatsMarkTechPost

Google AI Ships a Model Context Protocol (MCP) Server for Data Commons, Giving AI Agents First-Class Access to Public StatsMarkTechPoston September 26, 2025 at 8:05 am Google released a Model Context Protocol (MCP) server for Data Commons, exposing the project’s interconnected public datasets—census, health, climate, economics—through a standards-based interface that agentic systems can query in natural language. The Data Commons MCP Server is available now with quickstarts for Gemini CLI and Google’s Agent Development Kit (ADK). What was released Why MCP
The post Google AI Ships a Model Context Protocol (MCP) Server for Data Commons, Giving AI Agents First-Class Access to Public Stats appeared first on MarkTechPost.

 Google released a Model Context Protocol (MCP) server for Data Commons, exposing the project’s interconnected public datasets—census, health, climate, economics—through a standards-based interface that agentic systems can query in natural language. The Data Commons MCP Server is available now with quickstarts for Gemini CLI and Google’s Agent Development Kit (ADK). What was released Why MCP
The post Google AI Ships a Model Context Protocol (MCP) Server for Data Commons, Giving AI Agents First-Class Access to Public Stats appeared first on MarkTechPost. Read More 

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Nano Banana Practical Prompting & Usage Guide KDnuggets

Nano Banana Practical Prompting & Usage Guide KDnuggets

Nano Banana Practical Prompting & Usage GuideKDnuggetson September 26, 2025 at 12:00 pm In this article we will take a look at what Nano Banana excels at, some tips and tricks for using the model, and lay out a series of example prompts and promoting strategies for getting the most out of using it.

 In this article we will take a look at what Nano Banana excels at, some tips and tricks for using the model, and lay out a series of example prompts and promoting strategies for getting the most out of using it. Read More 

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Ethical cybersecurity practice reshapes enterprise security in 2025 AI News

Ethical cybersecurity practice reshapes enterprise security in 2025 AI News

Ethical cybersecurity practice reshapes enterprise security in 2025AI Newson September 26, 2025 at 8:20 am When ransomware attacks like Akira and Ryuk began crippling organisations worldwide, the cybersecurity industry’s first instinct was predictable: build bigger walls, deploy more aggressive automated responses, and lock down everything. But there was a different problem emerging, according to Romanus Prabhu Raymond, Director of Technology at ManageEngine. The company’s customers were demanding aggressive containment features,
The post Ethical cybersecurity practice reshapes enterprise security in 2025 appeared first on AI News.

 When ransomware attacks like Akira and Ryuk began crippling organisations worldwide, the cybersecurity industry’s first instinct was predictable: build bigger walls, deploy more aggressive automated responses, and lock down everything. But there was a different problem emerging, according to Romanus Prabhu Raymond, Director of Technology at ManageEngine. The company’s customers were demanding aggressive containment features,
The post Ethical cybersecurity practice reshapes enterprise security in 2025 appeared first on AI News. Read More 

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Notes on LLM EvaluationTowards Data Science

Notes on LLM EvaluationTowards Data Scienceon September 25, 2025 at 4:55 pm A practical, step-by-step guide to building an evaluation pipeline for a real-world AI application
The post Notes on LLM Evaluation appeared first on Towards Data Science.

 A practical, step-by-step guide to building an evaluation pipeline for a real-world AI application
The post Notes on LLM Evaluation appeared first on Towards Data Science. Read More 

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Building a Video Game Recommender System with FastAPI, PostgreSQL, and Render: Part 2Towards Data Science

Building a Video Game Recommender System with FastAPI, PostgreSQL, and Render: Part 2Towards Data Scienceon September 25, 2025 at 12:32 pm Deploying a FastAPI + PostgreSQL recommender system as a web application on Render
The post Building a Video Game Recommender System with FastAPI, PostgreSQL, and Render: Part 2 appeared first on Towards Data Science.

 Deploying a FastAPI + PostgreSQL recommender system as a web application on Render
The post Building a Video Game Recommender System with FastAPI, PostgreSQL, and Render: Part 2 appeared first on Towards Data Science. Read More 

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AI News September 09 25 2025 | 24-Hour Intelligence Update

AI News September 09 25 2025 | AI Morning Brief Executive Summary Microsoft fundamentally alters the enterprise AI landscape. The software giant adds Anthropic’s Claude models to Copilot on Wednesday, ending OpenAI’s monopoly on its flagship AI assistant. Markets responded with caution as AI stocks declined for a second day, with Oracle announcing a $15 […]

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Salesforce Confident in India’s Growth Amid Push for Local Solutions Analytics India Magazine

Salesforce Confident in India’s Growth Amid Push for Local Solutions Analytics India Magazine

Salesforce Confident in India’s Growth Amid Push for Local SolutionsAnalytics India Magazineon September 25, 2025 at 10:31 am “It’s important to experiment and learn. Every failure teaches us how to do things better,” Salesforce CEO said. 
The post Salesforce Confident in India’s Growth Amid Push for Local Solutions appeared first on Analytics India Magazine.

 “It’s important to experiment and learn. Every failure teaches us how to do things better,” Salesforce CEO said. 
The post Salesforce Confident in India’s Growth Amid Push for Local Solutions appeared first on Analytics India Magazine. Read More