SigmaWay Blog

SigmaWay Blog tries to aggregate original and third party content for the site users. It caters to articles on Process Improvement, Lean Six Sigma, Analytics, Market Intelligence, Training ,IT Services and industries which SigmaWay caters to

Machine Learning vs. Deep Learning

Artificial Intelligence (AI) is reshaping industries, with Machine Learning (ML) and Deep Learning (DL) standing out as its most influential technologies. ML involves algorithms that learn patterns from data to make decisions, such as spam filters identifying unwanted emails based on labeled examples. Its adaptability makes ML widely useful in fields like finance and healthcare, where it powers predictive analytics to forecast trends and outcomes.

Deep Learning, a subset of ML, uses neural networks to automatically extract and learn features from large datasets. This makes it highly effective for complex tasks such as image and speech recognition. For instance, DL enables facial recognition systems to identify individuals with remarkable precision and supports innovations like autonomous vehicles and advanced medical diagnostics.

While ML excels in handling diverse applications with moderate complexity, DL’s computational power is better suited for cutting-edge problems requiring deep insights. Together, these technologies are driving AI’s evolution, transforming industries and expanding the possibilities of automation and innovation.

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Deep Learning Application That Codes

The latest version of Deep Learning Application (Bayou) will help humans in programming. With the help of just a little information and some keywords, Bayou can almost predict the programmers brain. The researchers have used method of Neural Sketch Learning to train its Neural Network.  It can easily take over forums like Stack-Overflow because of its instant reply to programming problems. Read more at: 

https://www.futurity.org/artificial-intelligence-bayou-coding-1740702/

 

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A Neural Network Approach To Raise Your E-Book Business 

E-Book business communities generate a lot of revenue everyday but sometimes it is difficult for author(s) to earn decent amount because of lack of preparation and research. No matter how unique and interesting your content is, if it doesn't appear on the first or second page of search results, it's highly unlikely that a visitor would ever read it. The story doesn't end here, one must cleverly select the title and cover which attract the reader as it changes the way we think. A neural network approach for the determination of most titles using Doc2Vec can be adopted to increase revenue. It involves training a thin two-layer neural network, which operates in unsupervised mode and form clusters of most similar words (using cosine similarity metric) based on context.

To read more about the technical implications here: http://www.datasciencecentral.com/profiles/blogs/use-neural-networks-to-find-the-best-words-to-title-your-ebook

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