udemy deep learning

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Deep Learning Popular Science

First, it's up to the father of Ai, Turing. Turing once had a dream uninstall "computer and Intelligence" (1950) article, if one day, the computer can do, across the wall, you do not know the opposite and you communicate is a person or computer, then this computer has artificial intelligence. For the next half century, Ai has not developed much. Although the computer has the powerful memory and the data processing ability, but does not have the human cognition ability. For example, Wang, Meo

Understanding Point OpenAI and the frontier of deep learning research

most important thing to know about OpenAI is to understand the frontiers of AI research.What is the research direction of Ai's frontier?OpenAI raised three points:-Training Generative Models-Algorithms for inferring algorithms from data-New approaches to reinforcement learningSo what do these three categories represent, respectively?Deep generative ModelsThe first type is oriented to the generation model, the main task is to generate new information,

Deep Learning (Bengio) First chapter reading notes

feature algorithms, our goal is usually to isolate the variables that explain the observed data.Deep learning allows a computer to construct complex concepts through simpler concepts. (The examples in the comparison book can be understood clearly)The idea of learning the correct representation of data is a point of view for explaining deep

R language ︱h2o Some R language practices for deep learning--H2O Package

Several application cases of R language H2O packageAuthor's message: Inspired to understand the H2O platform of some R language implementation, online has a H2O demo file. I post some cases here, and put some small examples of their own practice.About H2O platform long what kind, can see H2O's official website, about deep learning long what kind of, you can see some tutorials, such as PARALLELR blog in the

Neural network and deep learning article One: Using neural networks to recognize handwritten numbers

Source: Michael Nielsen's "Neural Network and Deep leraning"This section translator: Hit Scir master Xu Zixiang (Https://github.com/endyul)Disclaimer: We will not periodically serialize the Chinese translation of the book, if you need to reprint please contact [email protected], without authorization shall not be reproduced."This article is reproduced from" hit SCIR "public number, reprint has obtained consent. " Using neural networks

How to use deep learning to crack verification code keras continuous Verification Code

matching is no longer effective, and then the OCR algorithm is difficult to parse the results.In recent years, The Deep Neural Network (DNN) has been proved to be a powerful recognition capability in the field of image recognition. The identification of single text is a typical classification problem. The usual practice is to train a deep neural network, the last layer of the network is divided into n cate

Resources | Learn the basics of linear algebra in deep learning with Python and numpy

This article is a basic learning blog from the University of Paris, PhD Hadrien Jean, which aims to help beginners/Advanced Beginners Master the concept of linear algebra based on deep learning and machine learning. Mastering these skills can improve your ability to understand and apply a variety of data science algori

Deep learning the significance of convolutional and pooled layers in convolutional neural networks

time series signals. CNNs is the first learning algorithm to truly successfully train a multi-layered network structure. It uses spatial relationships to reduce the number of parameters that need to be learned to improve the training performance of the general Feedforward BP algorithm. CNNs as a deep learning architecture is proposed to minimize the preprocessin

Neural networks and deep learning (1): Neurons and neural networks

This paper summarizes some contents from the 1th chapter of Neural Networks and deep learning. Catalogue Perceptual device S-type neurons The architecture of the neural network Using neural networks to recognize handwritten numbers Towards Deep learning Perceptron (perceptrons)1. Fundament

Deep Learning MATLAB Toolbox code detailed

Recently studied a few days of deep learning of the MATLAB Toolbox code, found that the author gives the source of the comments is very poor, in order to facilitate everyone to read, the code has been commented, share with you.Before reading the MATLAB Toolbox code, we recommend that you read a few CNN two classic materials, the convolutional neural Network MATLAB Toolbox Code understanding is very helpful,

The first week of the "deeplearning.ai-Neural network and deep learning" answer

the first week after-school assignment is a 10-course choice question Note: The answer is from the first one and then the ABCD ... The answer has its own understanding, there are also from the online blog reference, only to learn.1. First questionI understand the answer: D.Reference answer: A. "AI is the new power", this is the topic of Wunda Teacher's speech on AI conference this year. Of course, the analogy is that AI, like electricity 100 years ago, is bringing great changes to our productiv

R language Fast deep learning for regression prediction

Deep learning over the past few years, the feature extraction capability of convolutional neural Networks has made this algorithm fire again, in fact, many years ago, but because of the computational complexity of deep learning problems, has not been widely used.As a general rule, the convolution layer is calculated in

SQL Python R SAS deep learning experience

to be personal, but it's easy to look at SAS help. The PDV mechanism of SAS and the execution mechanism of macros must be understood. SAS has a great advantage, the standard of unification, as long as the learning to be able to swim throughout the system. R VS python: In contrast, R is statistically much stronger than Python because Statsmodel does not give force, and new statistical methods Python cannot keep pace. In the area of data mining, Pytho

Deep Learning 23:dropout Understanding _ Reading Paper "Improving neural networks by preventing co-adaptation of feature detectors"

theoretical knowledge : Deep learning: 41 (Dropout simple understanding), in-depth learning (22) dropout shallow understanding and implementation, "improving neural networks by preventing Co-adaptation of feature detectors "Feel there is nothing to say, should be said in the citation of the two blog has been made very clear, direct test itNote :1. During the test

Information on deep Learning (1)

I. List of studies1. Comprehensive class(1) collected a variety of the latest and most classic literature, neural network resources list: Https://github.com/robertsdionne/neural-network-papers contains the deep learning domain classic, as well as the latest and best algorithm, If you learn this list over and over again, you have already reached the great God level.(2) Machine

Computational Network Toolkit (CNTK) is a Microsoft-produced open-Source Deep learning Toolkit

Computational Network Toolkit (CNTK) is a Microsoft-produced open-Source Deep learning ToolkitUsing CNTK to engage in deep learning (a) Getting StartedComputational Network Toolkit (CNTK) is a Microsoft-produced open-source deep learning

Target Detection deep learning

Target detection is a simple task for a person, but for a computer it sees an array of values of 0~255, making it difficult to directly get a high-level semantic concept for someone or a cat in the image, or the target to eat the area in the image. The target in the image may appear in any position, the shape of the target may have a variety of changes, the background of the image is very different ..., these factors lead to target detection is not an easy task to solve. Thanks to

Theano Deep Learning (i)----installation and use

/* author:cyh_24 *//* date:2014.10.2 *//* Email: [Email protected] *//* more:http://blog.csdn.net/cyh_24 */Recently, the focus of the study in the image of this piece of content, the recent game more, in order not to drag the hind legs too much, decided to study deeplearning, mainly in Theano the official course deep Learning tutorial for reference.This series of blog should be continuously updated, I hope

Joint deep Learning for pedestrian detection notes

1. Structure diagramIntroductionFeature extraction, deformation handling, occlusion handling, and classification is four important components in Pedestri An detection. Existing methods Learn or design these components either individually or sequentially. The interaction among these are not yet well explored. This paper proposes, they should be jointly learned in order to maximize their strengths through cooperation. We formulate these four to a joint deep

When does the deep learning model in NLP need a tree structure?

When does the deep learning model in NLP need a tree structure?Some time ago read Jiwei Li et al and others [1] in EMNLP2015 published the paper "When is the Tree structures necessary for the deep learning of representations?", This paper mainly compares the recursive neural network based on tree structure (Recursive n

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