Your Web News in One Place

Help Webnuz

Referal links:

Sign up for GreenGeeks web hosting
March 15, 2022 12:02 am

Researcher Uses 379-Year-Old Aglorithm To Crack Crypto Keys Found In the Wild

An anonymous reader quotes a report from Ars Technica: Cryptographic keys generated with older software now owned by technology company Rambus are weak enough to be broken instantly using commodity hardware, a researcher reported on Monday. This revelation is part of an investigation that also uncovered a handful of weak keys in the wild. The software comes from a basic version of the SafeZone Crypto Libraries, which were developed by a company called Inside Secure and acquired by Rambus as part of its 2019 acquisition of Verimatrix, a Rambus representative said. That version was deprecated prior to the acquisition and is distinct from a FIPS-certified version that the company now sells under the Rambus FIPS Security Toolkit brand. Researcher Hanno Bock said that the vulnerable SafeZone library doesn't sufficiently randomize the two prime numbers it used to generate RSA keys. (These keys can be used to secure Web traffic, shells, and other online connections.) Instead, after the SafeZone tool selects one prime number, it chooses a prime in close proximity as the second one needed to form the key. "The problem is that both primes are too similar," Bock said in an interview. "So the difference between the two primes is really small." The SafeZone vulnerability is tracked as CVE-2022-26320. Cryptographers have long known that RSA keys that are generated with primes that are too close together can be trivially broken with Fermat's factorization method. French mathematician Pierre de Fermat first described this method in 1643. Fermat's algorithm was based on the fact that any number can be expressed as the difference between two squares. When the factors are near the root of the number, they can be calculated easily and quickly. The method isn't feasible when factors are truly random and hence far apart. The security of RSA keys depends on the difficulty of factoring a key's large composite number (usually denoted as N) to derive its two factors (usually denoted as P and Q). When P and Q are known publicly, the key they make up is broken, meaning anyone can decrypt data protected by the key or use the key to authenticate messages. So far, Bock has identified only a handful of keys in the wild that are vulnerable to the factorization attack. Some of the keys belong to printers originally branded as Fuji Xerox and now belonging to Canon. Printer users can use the keys to generate a Certificate Signing Request. The creation date for the keys was 2020 or later. The weak Canon keys are tracked as CVE-2022-26351. Bock also found four vulnerable PGP keys, typically used to encrypt email, on SKS PGP key servers. A user ID tied to the keys implied they were created for testing, so he doesn't believe they're in active use. Bock said he believes all the keys he found were generated using software or methods not connected to the SafeZone library. If true, other software that generates keys might be easily broken using the Fermat algorithm. It's plausible also that the keys were generated manually, "possibly by people aware of this attack creating test data." The researcher found the keys by searching through billions of public keys that he either had access to, were shared with him by other researchers, or that were available through certificate transparency programs. UPDATE: The headline incorrectly stated that a "600-Year-Old Algorithm" was used. It's been changed to "379-Year-Old-Algorithm" to reflect the updated headline on Ars.

Read more of this story at Slashdot.


Original Link: https://it.slashdot.org/story/22/03/14/228258/researcher-uses-379-year-old-aglorithm-to-crack-crypto-keys-found-in-the-wild?utm_source=rss1.0mainlinka

Share this article:    Share on Facebook
View Full Article

Slashdot

Slashdot was originally created in September of 1997 by Rob "CmdrTaco" Malda. Today it is owned by Geeknet, Inc..

More About this Source Visit Slashdot