Khaleej Times

Abu Dhabi varsity develops chips immune to hacking

- Staff Reporter

abu dhabi — A new computer chip technology that present landmark achievemen­ts in IT security has been developed by the researcher­s of the Design for Excellence (Dfx) lab at the New York University Abu Dhabi (NYUAD).

Secured by a secret key so that only authorised users may utilise them and immune to reverseeng­ineering, researcher­s believe the ‘logic-locked’ computer chips will provide future users with new guarantees of security for their devices.

As IT security rises to the forefront of public concern in the wake of recent cyber security attacks such as WannaCry and Petya ransomware, academic solutions have been investigat­ed in order to secure future systems from hackers. With any electronic device claiming to be “smart” containing a chip, from cell phones and computers to airplanes and medical devices, chip security has become a subject of priority amid the broadening debate surroundin­g measures for cyber defence.

“Traditiona­lly, security features are implemente­d at the software or system levels; for the first time, we have security implemente­d at the lowest possible level, the hardware level. This is quite important because if the hardware is compromise­d, there is no software or system security fix,” said Ozgur Sinanoglu, NYUAD associate dean of engineerin­g for academic affairs, associate professor of electrical and computer engineerin­g, and

only when the secret key has been loaded will the microproce­ssor unit inside execute the program loaded on its memory.” Ozgur Sinanoglu, head of Dfx, NYUAD

head of Dfx. “This chip can be unlocked only by loading the secret binary key on its memory. Without it, the chip will not work. Only when the secret key has been loaded will the microproce­ssor unit inside execute the program loaded on its memory.”

The NYUAD’s Dfx research team designed two different chips over the past year, utilising commercial and in-house developed software tools to help them build a baseline chip as well as their logiclocke­d chip.

These are micro-controller chips with mainly an ARM microproce­ssor unit that allow you to load a software program onto their memory. They may then execute, allowing users to design a computatio­nal system or computer around them. The team at NYUAD are now pursuing a platform that will enable the research community to validate the security of their new solution through extensive red-team blueteam testing.

Through their research at NYUAD, the Dfx team have surged ahead in the field of solution developmen­t for IT security, Sinanoglu said.

“The industry is developing solutions, but they are ‘early solutions’ that are not as of yet so secure. Academia is quite ahead in the game, with various research groups working on this area. Our solution is the first one that is provably secure, based on mathematic­al security definition­s and security proofs implemente­d on a real chip.

“Our goal is to make all electronic­s truly trustworth­y. We are now in a position where we can take any chip design and transform it into one that is secure at the hardware level, which means we can work with design companies to help them produce protected computer chips.” The paper containing the extensive research conducted by NYUAD’s Dfx team into logic-locking technology will be presented in November at this year’s edition of the ACM Conference on Computer and Communicat­ions Security (ACM CCS 2017) — the leading cyber security conference in the world.

reporters@khaleejtim­es.com

 ?? — Supplied photo ?? The ‘logic-locked’ computer chip is secured by a secret key so that only authorised users will be able to utilise them and is immune to reverse-engineerin­g. The solution is the first provably secure, based on mathematic­al security definition­s and...
— Supplied photo The ‘logic-locked’ computer chip is secured by a secret key so that only authorised users will be able to utilise them and is immune to reverse-engineerin­g. The solution is the first provably secure, based on mathematic­al security definition­s and...
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