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"Linux kernel Analysis" Learning Summary and learning experience

I. List of directoriesFirst week: How does a computer work?Http://www.cnblogs.com/dvew/p/5224866.htmlSecond week: How does the operating system work?Http://www.cnblogs.com/dvew/p/5245866.htmlThird week: Construct a simple Linux system MenosHttp://www.cnblogs.com/dvew/p/5270915.htmlWeek fourth to fifth: three layers of system call skinsHttp://www.cnblogs.com/dvew/p/5285685.htmlHttp://www.cnblogs.com/dvew/p/5325111.htmlWeek Six: Description of the process and creation of the processHttp://www.cnbl

Learning C + + Learning Plan in winter vacation

Study Plan Course Selection 在MOOC中选择西北工业大学的C++程序设计课程。因为此课程从基础开始教学,适合还没接触C++的学生,并且可以让我打好基础。本课程分为48课时,前课时主要讲的是变量常量输入输出,运算符与表达式等基本内容,然后讲各种结构,然后讲指针,向量,堆栈等内容,课程学习由浅入深。Learning arrangementsBy February 7, the contents of section 1-8, that is, the design of the loop structure.By February 8, read section 9-12, the content of the learning function.By February 10, after reading section 13-19, you will learn the cont

Build a chat robot with deep Learning Network (ii) _ Depth Learning

choose, which requires a high degree of precision in the model. Here, I want to mention the specificity of the dataset and the difference from the real data. For the dataset, the robot model scores different answers each time, and in the training phase some of the answers may only be met once. This means that the robot has a better generalization ability to perform well in the face of many never-seen answers in the test set. However, in many reality systems, robots only need to deal with a limi

Deep Learning Learning Notes (ii): Neural network Python Implementation __python

Python implementation of multilayer neural networks. The code is pasted first, the programming thing is not explained. Basic theory reference Next: Deep Learning Learning Notes (iii): Derivation of neural network reverse propagation algorithm Supervisedlearningmodel, Nnlayer, and softmaxregression that appear in your code, refer to the previous note: Deep Learning

Paper notes: Deep reinforcement learning with Double q-learning

Deep reinforcement learning with Double q-learningGoogle DeepMind  AbstractThe mainstream q-learning algorithm is too high to estimate the action value under certain conditions. In fact, it was not known whether such overestimation was common, detrimental to performance, and whether it could be organized from the main body. This article answers the above questions, in particular, this article points out tha

What is supervised learning and unsupervised learning

supervised learning , which is often said to be classified, is trained to obtain an optimal model (a set of functions, the best of which is optimal under a certain evaluation criterion) through the training sample (known data and its corresponding output). Using this model to map all the input to the corresponding output, the output is simply judged to achieve the purpose of classification, it also has the ability to classify the unknown data. In peop

Deep Learning (deep learning) Study Notes series (3)

9. Common models or methods of deep learning 9.1 autoencoder automatic Encoder One of the simplest ways of deep learning is to use the features of artificial neural networks. Artificial Neural Networks (ANN) itself are hierarchical systems. If a neural network is given, let's assume that the output is the same as the input, and then train and adjust its parameters to get the weight in each layer. Naturally,

Machine learning-----> Google Cloud machine learning platform

1. Google Cloud Machine learning Platform Introduction:The three elements of machine learning are data sources, computing resources, and models. Google has a strong support in these three areas: Google not only has a rich variety of data resources, but also has a strong computer group to provide data storage in the data computing capacity, at the same time, research and implementation of TensorFlow this mac

Learning reinforcement Learning (with Code, exercises and Solutions) __reinforcement

Why Study Reinforcement Learning Reinforcement Learning is one of the fields I ' m most excited about. Over the past few years amazing results like learning to play Atari Games from Raw Pixelsand Mastering the Game of Go have Gotten a lot of attention, but RL is also widely used in robotics, Image processing and Natural Language processing. Combining reinforcem

Video Learning Website learning duration real-time recording-performance optimization practices, real-time performance optimization

Video Learning Website learning duration real-time recording-performance optimization practices, real-time performance optimization I. Application Scenario Description The system provides services for teachers to learn online. The video learning website supports online video learning for teachers. During video

Stanford Machine Learning---seventh lecture. Machine Learning System Design

Original: http://blog.csdn.net/abcjennifer/article/details/7834256This column (machine learning) includes linear regression with single parameters, linear regression with multiple parameters, Octave Tutorial, Logistic Regression, regularization, neural network, design of the computer learning system, SVM (Support vector machines), clustering, dimensionality reduction, anomaly detection, large-scale machine

Machine learning fundamentals and concepts for the foundation course of machine learning in Tai-Tai

some time ago on the Internet to see the Coursera Open Classroom Big Machine learning Cornerstone Course, more comprehensive and clear machine learning needs of the basic knowledge, theoretical basis to explain. There are several more important concepts and ideas in foundation, first review, and then open the follow-up techniques to learn and summarize the course.1. VC Dimension (VC dimension, very importan

Machine learning-An introduction to statistical learning methods

Statistical learning is supervised learning (supervised learning), unsupervised learning (unsupervised learning), semi-supervised learning (semi-supervised learning) and intensive

Machine learning 00: How to get started with Python machine learning

We all know that machine learning is a very comprehensive research subject, which requires a high level of mathematics knowledge. Therefore, for non-academic professional programmers, if you want to get started machine learning, the best direction is to trigger from the practice.PythonThe ecology I learned is very helpful for getting started with machine learning

R Language Learning notes-machine learning 1-3 Chapters

After tossing the crawler and some interesting content, I recently in the R language for simple machine learning knowledge, the main reference is "machine learning-Practical Case Analysis" this book.This book is a rare, purely r language-based machine learning knowledge, covering 11 cases. Divided into 12 chapters. Both the author's notes and the code sections ar

See Machine learning Machines learning in ten pictures with 10 images

I find myself coming back to the same few pictures when explaining basic machine learning concepts. Below is a list I find most illuminating.1. Test and Training error: Why lower training error was not always a good thing:esl figure 2.11. Test and training error as a function of model complexity.2. Under and overfitting: PRML figure 1.4. Plots of polynomials has various orders M, shown as red curves, fitted to the data set generated by the green curve

Machine Learning-xi. Machine learning System Design

http://blog.csdn.net/pipisorry/article/details/44119187Machine learning machines Learning-andrew NG Courses Study notesMachine Learning System DesignPrioritizing what do I do on priorityError analysisError Metrics for skewed Classes Error metrics with biased classesTrading Off Precision and recall weigh accuracy and recall rateData for machines

TensorFlow practical Google Depth Learning Framework (i) _ depth learning

Chapter One introduction to Deep learning 1. Artificial sometimes not very good to extract the characteristics of the entity, then there is an automatic way. Yes, one of the key problems in the deep learning solution is to automatically combine simple features into more complex features and use these combination features to solve problems. 2. Depth learning is a

Recommended AngularJS interactive learning courses and AngularJS Learning Courses

Recommended AngularJS interactive learning courses and AngularJS Learning Courses0. Directory Directory Preview Details 1 Learn Angular 2 AngularJS getting started tutorial Perception Statement 1. Preview If you are in a hurry and do not have time to listen to my nonsense, you can directly read the two AngularJS interactive learning tutorials

Machine Learning Professional Advanced Course _ Machine learning

At present, the application of machine learning business is more in communication and finance. Large data, machine learning these concepts have been popularized in recent years, but many researchers have worked in this field more than 10 years earlier. Now finally ushered in their own tuyere. I will use the professional experience of millions of machine-learning

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