Generative AI is the new emerging era
It’s interesting that we talk about the metaverse frequently and there is a lot to build there obviously but AI in the past couple of years has started another level of creative diffusion and we are making incredible art & images. We are creating stuff like videos and the implications are really staggering because of that.
What does it mean to have AI as a creator?
Have you ever thought how mystical it is about artificial intelligence when technological growth is insanely rising? AI today is not only creating videos, it is curing diseases like cancer, shifting from interpreting existing data to generating novel content at scale.?
AI is effecting following areas at a different level:
– Unsupervised Learning: Removing the barriers to labeled and segregated data used by conventional AI models. Advanced AI algorithms are now trained via real data without any structure & human involvement.
– Transformers: Recurrent neural networks, RNNs perform data processing sequentially. They may be put in place of Transformers in the coming future.?
– Neural Network Compression: Deep learning models are usually huge and it becomes important to reduce them. Compressing them would make the neural networks work efficient as they will become smaller and easy to use.
What are GANs?
GAN or generative adversarial networks puts two AI models off against each other. Most machine learning models are used to generate a prediction.?
Example 1:?A flower, we are going to train a generator to create really convincing fake flowers. We can start doing this, we will train our discriminator model to recognize what a picture of a flower looks like.?
So, our domain is “lots of pictures of flowers” and we will be feeding this into our discriminator model telling it to look at all attributes that makeup those flower images. Take a look at the colors, the shading, the shapes and so forth.?
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And when our discriminator gets good at recognizing real flowers, then we will feed in some shapes that are not flowers at all & make sure that it can discriminate those as-being not flowers. Now, this whole time our generator here was frozen, it wasn’t doing anything but our discriminator is now good at recognizing things from our domain, then we apply our generator to start creating fake versions of those things.?
So, a generator is going to take a random input vector and it is going to use that to create its own fake flower. Now, this fake flower image is sent to the discriminator & the discriminator has a decision to make: “Is that image of a flower, the real thing from the domain or is it a fake from the generator??Now, The answer is revealed to both the generator and discriminator. The flower was fake and based upon that, the discriminator & generator will change their behavior. It will declare the winner & loser, the winner has to remain blissfully unchanged whereas the loser has to update its model. This is how a generative adversarial network directs the process to choose one thing amongst various options in machine learning.
Example 2:?What happens when we can actually use deep nuts to compose a whole paragraph and we may give you an interface that may give you a few suggestions but suggestion actually is multiple sentences so this becomes optimal in the form of AI. The software generating the content from google or the dedicated apps are far better than what we can do by ourselves manually.
A generative adversarial network is a class of machine learning frameworks for training generative models. Generative models create new data instances that resemble the training data.
What is Generative AI?
Artificial Intelligence has endowed us with limitless possibilities from intelligent marketing to fraud prevention & 24*7 customer support. AI has transformed every aspect of businesses and lives. Today, it can also enable machines to use textual or visual data to create new content via Generative AI.?
Generative AI refers to the advancement of artificial intelligence-enabled machines to use existing text, audio files, or images to create new content. It has a workflow that runs on algorithms & identifies the underlying pattern of an input to generate similar content.
Benefits of Generative AI
Applications of Generative AI
So, this is how generative AI is making a great change to envision artificial intelligence in the coming years. Do you want to explore the subfields of AI like machine learning, deep learning, neural networks etc.
Diretor na Roverplastic Ind. e Com. Plásticos Ltda.
2 年However, nothing before Genesis 1:1... Even so, they believe that something explodes, even though they say that before there was nothing and nothing is nothing! Neither what “explodes”, nor who explodes! Anything!