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The Deep Learning A-Z: Artificial Neural Networks is a foundational program that will help you understand the capabilities, challenges, and consequences of deep learning and prepare you to participate in the development of leading-edge AI technology
In this Specialization, you will build and train neural network architectures such as Convolutional Neural Networks, Recurrent Neural Networks, LSTMs, Autoencoders, Object Detection, and learn concepts and their industry applications using Python and TensorFlow and tackle real-world cases such as speech recognition, music synthesis, chatbots, machine translation, natural language processing, and more.
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I really enjoyed this course, it is easy to follow and have many resources to read about this argument without fall in over-complicated mathematics. Good Work
This course is amazing in terms of it's friendliness to beginners. The instructor explains the intuitions and codings for the ANN, CNN and RNN very well for a beginner with basic knowledge of Python to understand.
Learn from India’s leading Management faculty and Industry leaders
I started as my work as a Data Science Intern at iNeuron where I learned Computer Vision for Medical Imaging and made project in the same. Now I am working as Research assistant at Engineers4Exploration (UCSD), where I developed models that helped solve pressing environmental issues.
Shankar is a data Scientist with 14 Years of Experience. His current employment is with Accenture and has experience in telecom, healthcare, finance and banking products.
Deep learning which is also known as deep structure learning. It is a part of machine learning methodologies based on artificial neural networks and representation learning. It can be either supervised learning, semi supervised or unsupervised learning.
Deep learning has several architectures such as :-
These architectures are used in fields such as machine translation, medical image analysis, bio informatics, speech recognition, drug design and natural language processing. Deep learning is a vital part of data science that includes predictive modeling and statistics.
It is valuable for data scientists who are entrusted with collection, analysation and interpretation of huge amounts of data. Deep learning makes it possible to process this faster and easier. It is a category of machine learning algorithm which utilizes numerous layers to progressively bring out higher level characteristics from raw input.
There are tons of courses available in the market whether offline or online in the name of deep learning but most of them are not worth it. Organizations search for a skilled candidate who is certified from a reputed organization. DataTrained presents you with the best online course available for Deep Learning and Neural Network with computer vision.
DataTrained is India’s number 1 Ed Tech startup and we have already transformed thousands of careers. In our course, we have designed such that you can learn everything from scratch. Step by step you would learn from beginner to advanced level.
Our tutors and instructors will guide you through every stage of learning. Here are the salient features of our deep learning and neural network with computer vision course:-
Computer vision is a multidisciplinary science field which focuses on how computer systems can reach a higher level of learning from digital media such as images and videos. It basically learns and automates work which the human visual system does.
According to a report by Forbes, computer vision is being utilized in various industries like energy, utilities, automotive, and manufacturing, and this market is expected to grow to USD 48.6 Billion by 2022.
In simple terms, neural networks are the computer systems which are created for machine learning to mimic a human brain which is a natural neural network. They analyze data, search for patterns to develop logical rules so as to process information for the identification of things.
In the market space, only that candidate would find success who is certified from a reputed organization. DataTrained, which is India’s number 1 Ed Tech startup, presents you with the best online course available for Deep Learning and Neural Networks with computer vision.
Our course is offered at an unbeatable price of ₹ {{ $page->price }}. Our course is comparatively cheaper and very affordable as we keep in our mind that every class of students would have the desire to join our course. We at DataTrained believe in quality education at affordable prices.
This course would teach students every topic in detail with respect to deep learning and neural networks with computer vision. Our students can raise any number of questions and doubts and it will be resolved within a short period of time. Upon successful completion of course our team will be guiding and assisting students for placements as well. We also train our students to crack interviews with the help of our industry experts.
Deep learning and neural networks have been used interchangeably many times but there is a difference between both of them. Let us first understand what a neural network is. AI has advanced a lot in last few years thanks to rapid development in technologies.
But we are still very far away from truly intelligent machines. It means machines which have the power to behave like human beings. Machines that can make decisions like human beings and reason things based on their learning from data that is being provided.
The human brain is made up of several neurons which are connected to each other. Artificial Neural Networks or ANNs in short look for simulating such networks and make computers mimic like inter connected brain cells. Different segments of neurons or the human brain are responsible for processing distinct information and they are in a hierarchical arrangement.
Neural networks are used in deep learning for solving complicated issues which require analytical calculations. These calculations are similar to the calculations that are performed in a human brain. Let's look at the most common uses of neural networks in deep learning:-
Deep learning is a subset of machine learning. The data that is represented in machine learning uses structured data whereas in deep learning it uses neural networks or artificial neural networks (ANNs). Machine learning is the next step of Artificial Intelligence whereas deep learning is the next stage to machine learning, it is basically how a machine can learn.
Machine learning consists of thousands of data points whereas deep learning consists of millions of data points. Outputs for machine learning are in numerical value whereas for deep learning they are either numerical or free form elements.
Machine learning utilizes several classes of algorithms to predict the future from datasets whereas deep learning utilizes neural networks to analyze data characteristics and relationships.
Natural Language Processing or in short NLP is a part of Artificial Intelligence specialization which looks for understanding and illustrating the cognitive systems which grant to understanding and producing human languages.
It utilizes advanced methodologies which are taken from artificial intelligence and computer science to facilitate computers in understanding, interpreting, and manipulating human languages.
Computer vision is a part of artificial intelligence or AI domain which facilitates machines, computers, and systems to make out meaningful data from digital media such as images, videos, and other visual sources. Computer vision requires a lot of data for processing meaningful information from different visual sources.
Yes, today deep learning is used very extensively for computer vision. In fact, there are various benefits of utilizing Convolutional Neural Networks or in short CNNs for computer vision. Convolutional neural networks provide a multi layered architecture which allows NNs to focus on the most applicable characteristics in the image.
You are eligible for a refund of the Booking Amount if you cancel your course within 7 calendar days of the Course Registration Date, which is the date of payment. However, this refund policy does not supersede any course-specific refund terms. Please consult your counselor for more information about the respective course's refund terms.