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🔖Computer Science Fundamentals from MIT

We found the textbook Mathematics for Computer Science – covering the mathematics that underlies algorithms and computer science.

Logic, graphs, combinatorics, probability, induction, recurrence relations, and discrete structures – all in one place.

⛓️ Link to the textbook
https://ocw.mit.edu/courses/6-042j-mathematics-for-computer-science-spring-2015/mit6_042js15_textbook.pdf

@Machine_learn
❤5
با عرض سلام برای یکی از مقالاتمون تحت عنون زیر نیازمند نفر دوم و سوم هستیم.
Price: 2 --> 200$
Price 3--> 150$
Title:Skin cancer diagnosis (scd) using efficientnet-wavelet and Optimization algortithms

@Raminmousa1
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Machine learning books and papers pinned «با عرض سلام برای یکی از مقالاتمون تحت عنون زیر نیازمند نفر دوم و سوم هستیم. Price: 2 --> 200$ Price 3--> 150$ Title:Skin cancer diagnosis (scd) using efficientnet-wavelet and Optimization algortithms @Raminmousa1»
This repository contains Jupyter notebooks for the O'Reilly book "Transformers: The Definitive Guide."

It includes code for computer vision tasks, time series analysis, audio processing, and reinforcement learning.

https://github.com/Nicolepcx/transformers-the-definitive-guide

@Machine_learn
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❇️ MindDrive: A Vision-Language-Action Model for Autonomous Driving via Online Reinforcement Learning 🔥

Source code: https://github.com/xiaomi-mlab/Minddrive

@Machine_learn
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Machine learning books and papers
#for_sell @Raminmousa1
High-Impact Research Paper – MedicalRec / GROKRec

Title: MedicalRec

Price: $1,000 USD

Looking for a ready-to-publish, novel research paper in medical AI and sustainable deep learning?

This paper introduces GROKRec, an innovative recommender framework that uses embedding vectors from the Grok language model combined with numerical features to recommend the best deep learning model for any medical image classification task — without the need to train dozens of models on the target dataset.

Key Highlights:
Addresses major real-world problems: high computational cost, energy consumption, carbon emissions, and e-waste caused by training large DL models.
Built on a newly curated public dataset MedicalRec-Bench II containing 3,500 research papers and over 6,000 model evaluation records across diverse medical imaging tasks.
Evaluated under four feature configurations (MedicalRec I) using 13 different models.
Achieves strong performance with HitRate@100 ranging from 72.43% to 77.08% — the highest among compared approaches.
Uses composite loss functions and regularization techniques for accurate recommendations.
Fully eliminates the trial-and-error process of training multiple models, significantly reducing carbon footprint.

This is a complete, self-contained research contribution with a novel dataset and a practical, environmentally conscious solution for the medical AI community.

Ideal for: Researchers, academic publishers, journals, or institutions looking for high-quality, ready-to-use work in medical image analysis, recommender systems, and green AI.

Price: $1,000 USD (one-time transfer of ownership/rights as agreed).

Interested? Contact me for the full manuscript, dataset details, or to discuss terms.
@Raminmousa1
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Machine learning books and papers pinned «High-Impact Research Paper – MedicalRec / GROKRec Title: MedicalRec Price: $1,000 USD Looking for a ready-to-publish, novel research paper in medical AI and sustainable deep learning? This paper introduces GROKRec, an innovative recommender framework that…»
Uniface

Automate face detection, recognition, and analysis of key facial landmarks with the Uniface Python library.

https://github.com/yakhyo/uniface

@Machine_learn
🔥2
Understanding Attention
From Q, K, V to Modern Transformer Attention

https://drive.google.com/file/d/1fCHQ5xCQJ6jZszAYf-qP3VIySbzFIEDv/view

@Machine_learn
❤3
با عرض سلام این مقاله به صورت کامل واگذار میشه به همراه پیاده سازی, مجموعه داده و قالب latex. هزینه کار ۱۰۰۰ دلار


@Raminmousa1
📖 "A Little Book on the Fundamentals of Generative AI" - an intuitive introduction to the mathematics:

arxiv.org/pdf/2605.29713

#GenerativeAI #Mathematics #DeepLearning #AIResearch #MachineLearning #arXiv

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@Machine_learn
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