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Simple And Scalable Encryption Of Data In Use For Analytics And Machine Learning With Opaque Systems

Data Engineering Podcast

CHAPTER

Data Collaboration

In the absence of this technology, we have been relying or industry has relied on approaches like obfuscation, data masking, tokenization, renalization, retaction to enforce controls on the data. The problem with these approaches is that there has been a lot of research that has shown that they are not really secure approaches. What you really need is randomizing encryption. But the problem with randomizing encryption has been that well, because it's randomized, you can now can't combine these two datasets together. How do I bridge that again? This is where confidential computing comes in and sort of allows you to get the best of both worlds.

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