Inside Google Brain
wired.com
Inside Google Brain
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Re: Inside Google Brain
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#4It seems they missed mentioning Ray Kurzweil, the AI master who's a Director of Engineering at Google.
Re: Inside Google Brain
#5I'm not versed in machine learning, but it looks to me that any model whose output quality is dependent on the quantity of data it ingests is deeply flawed. There's no doubt a bigger number of samples will make the predictions more accurate, but isn't the challenge to develop a system that is as accurate as possible regardless of the number of data points its fed, like the human brain?
Re: Inside Google Brain
#6I knew this was a Wired article without even looking at the URL.
Re: Inside Google Brain
#7"They’ve also found that the models tend to become more accurate the more data they consume. That may be the next big goal for Google: building AI models that are based on billions of data points, not just millions. " I'm not versed in machine learning, but it looks to me that any model whose output quality is dependent on the quantity of data it ingests is deeply flawed. There's no doubt a bigger number of samples w…
You often want your models to also perform well when you have fewer data points. Those are two separate - if in effect related - design goals.
Re: Inside Google Brain
#8"They’ve also found that the models tend to become more accurate the more data they consume. That may be the next big goal for Google: building AI models that are based on billions of data points, not just millions. " I'm not versed in machine learning, but it looks to me that any model whose output quality is dependent on the quantity of data it ingests is deeply flawed. There's no doubt a bigger number of samples w…
Regarding artificial systems, I think more data is the only way to reach super-performing classifiers. The data you supply doesn't have to be big but at least the data you extract from raw data should be big. For example, a method called Integral Channel Features [2] is designed to act in such a way.
[1] http://en.wikipedia.org/wiki/Sensory_deprivation
[2] http://pages.ucsd.edu/~ztu/publication/dollarBMVC09ChnFtrs_0...
Re: Inside Google Brain
#9"They’ve also found that the models tend to become more accurate the more data they consume. That may be the next big goal for Google: building AI models that are based on billions of data points, not just millions. " I'm not versed in machine learning, but it looks to me that any model whose output quality is dependent on the quantity of data it ingests is deeply flawed. There's no doubt a bigger number of samples w…
Re: Inside Google Brain
#10It seems they missed mentioning Ray Kurzweil, the AI master who's a Director of Engineering at Google.
To clarify, Ray is a director, not the director. Google has many engineering directors.