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Data Science | Machinelearning [world]

Data Science | Machinelearning [world]

@ds_international

About: data science, algorithms, machinelearning, big data, python, mathematics

Contact - @g_abashkin
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1.12K
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Recent Posts 20 shown
Post #90 1.73K
🧰 How agents work with MCP and identify a problem? (By Microsoft)

When there are too many tools, agents start interfering with each other. This was called tool-space interference.

🔵 How it manifests?
- overloaded tool menus
- excessively large outputs
- confusing parameters
- duplicate names
- vague errors

🟤 What comes In the study?
- Some servers offered up to 256 tools, although the optimal number is fewer than 20. With large menus, accuracy dropped by 85%.
- One tool returned an average of 557,766 tokens per response, 16 tools returned more than 128,000 tokens. This broke models and reduced accuracy by 91%.
- Deeply nested parameters (up to 20 levels) hindered performance. Flattening the schema increased success by 47%.
- 775 duplicate tool names were found, the word "search" appeared in 32 servers.


🟢 What is the Solutions from Microsoft?
- group tools into smaller sets
- cache schemas
- use namespaces for unique names
- limit response sizes and simplify parameters
- standardize errors and support resource passing

📊 Reports show that smart use of namespaces sped up task execution by 40%.


Fewer tools, Cleaner parameters, Structured responses = agents start cooperating rather than getting in each other's way.

🤖 Data Science, ML & Big Data with @DataXplore
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Post #88 5.31K
​​Top 26 Python pandas Interview Questions and Answers

In this article, we’ve compiled the most frequently asked Python pandas interview questions and their answers.

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Post #87 4.89K
​​5 Common Data Science Challenges and Effective Solutions

In this article, you’ll learn five main data science challenges you need to overcome to get the most out of data analytics and enhance business decision-making.

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Post #85 3.54K
​​8 of The Most Popular Machine Learning Tools

In this article, we'll take a look at comparing each tool so you know how to choose the best one for your projects.

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Post #84 3.07K
​​Anaconda vs Python: Exploring Their Key Differences

In this article, we will explore the key differences between Anaconda and Python and when each of them is used.

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Post #83 2.47K
​​How to Learn Python From Scratch in 2024: An Expert Guide

In this guide, we explore everything you need to know to begin your learning journey, including a step-by-step guide and learning plan and some of the most useful resources to help you succeed.

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Post #82 2.07K
​​DuckDB makes SQL a first-class citizen on DataCamp Workspace

In this article, we list all the recent improvements that make querying data using SQL easy and efficient without leaving the tool.

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Post #81 1.91K
​​PostgreSQL Certification: Everything You Need to Know

This guide will outline the pathway to PostgreSQL certification, discussing its importance, what you'll learn, and how it can benefit your career.

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Post #80 1.62K
​​SQL vs NoSQL Databases: Key Differences and Practical Insights

This article will discuss the differences between the two database systems.

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Post #79 1.58K
​​PostgreSQL Certification: Everything You Need to Know

This guide will outline the pathway to PostgreSQL certification, discussing its importance, what you'll learn, and how it can benefit your career.

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Post #78 1.37K
​​Bidirectional Relationship Support in JSON

In this paper, the author proposes a robust working approach to avoid these errors when creating JSON structures that include entities with bidirectional (i.e., circular) links.

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Post #77 1.4K
​​Adversarial Machine Learning: How to Attack and Defend ML Models

In this article, the author looks at the world of adversarial machine learning, explains how ML models can be attacked and what can be done to protect them from attacks.

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Post #76 1.27K
​​An Intro to SQL Window Functions

In this article, SQL Developer explains the benefits of SQL functions, tells you when you can use them, and provides real-world examples to help you understand the concept.

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Post #74 1.23K
​​The Trie Data Structure: A Neglected Gem

In this article we’ll see how an oft-neglected data structure, the trie, really shines in application domains with specific features, like word games.

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Post #73 1.41K
​​Context Aware Applications and Complex Event Processing Architecture

This article walks you through building a context aware app that employs complex event processing.

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Post #72 1.97K
​​Introduction to Apache Spark with Examples and Use Cases

In this article, the author will discuss Apache Spark, a fast, easy-to-use and flexible big data processing system.

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Post #71 1.67K
​​Optimized Successive Mean Quantization Transform

In this paper, the author gives us some insight into how the SMQT algorithm works and talks about a clever optimization technique to make this algorithm a viable option for portable devices.

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Post #70 1.11K
​​MySQL Master-Slave Replication on the Same Machine

In this article, the author will walk us through a step-by-step guide on how to implement MySQL master-slave replication on a single machine.

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Post #69 986
​​Tree Kernels: Quantifying Similarity Among Tree-structured Data

In this article, we will look at the analysis of the link structure in trees. In particular, we will focus on tree kernels, a method for comparing tree graphs to each other, allowing us to get quantifiable measurements of their similarities or differences.

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Post #68 996
​​Ensemble Methods: Elegant Techniques to Produce Improved Machine Learning Results

In this paper, the author discusses some elegant techniques of ensemble methods, which utilize a combination of data partitioning and multiple algorithms to produce machine learning results with higher accuracy.

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