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07 February 2023
Alexandra Ciobanu, Marina Stefiuc
Elisa Giurgea, Tudor Hutu, Emil Simion
Hannah Davis, Christopher Patton, MIke Rosulek, Phillipp Schoppmann
We propose a formal framework for the analysis of VDAFs and apply it to two candidate protocols. The first is based on the Prio system of Corrigan-Gibbs and Boneh (NSDI 2017). Prio is fairly mature and has been deployed in real-world applications. We prove that, with only minor changes, the current draft of the standardized version achieves our security goals. The second candidate is the recently proposed Poplar system from Boneh et al. (IEEE S\&P 2021). The deployability of Poplar is less certain. One difficulty is that the interactive step requires two rounds of broadcast messages, whereas Prio requires just one. This makes Poplar less suitable for many deployment scenarios. We show the round complexity can be improved, at the cost of higher bandwidth.
Noam Mazor
Prabhanjan Ananth, Fatih Kaleoglu, Qipeng Liu
Rebecca Schwerdt, Laurin Benz, Wasilij Beskorovajnov, Sarai Eilebrecht, Jörn Müller-Quade, Astrid Ottenhues
Danielle Movsowitz Davidow, Yacov Manevich
Irimia Alexandru-Vasile
Ionuț Roșca, Alexandra-Ina Butnaru, Emil Simion
Tudorică Radu, Rares Radu, Emil Simion
Carsten Baum, James Hsin-yu Chiang, Bernardo David, Tore Kasper Frederiksen
Dmitrii Koshelev
Adam Caulfield, Nabiha Raza, Peizhao Hu
Akin Ünal
Concretely, against PRGs $F : \mathbb{Z}_q^{n} \rightarrow \mathbb{Z}_q^{m}$ that are computed by polynomials of degree $d$ over a field $\mathbb{Z}_q$ and have a stretch of $m = n^{1+e}$ we give an attack with space and time complexities $n^{O(n^{1 - \frac{e}{d-1}})}$ and noticeable advantage $1 - {O(n^{1 - \frac{e}{d-1}}/{q})}$, if $q$ is large. If $F$ is of constant locality $d$ and $q$ is constant, we construct a second attack that has a space and time complexity of $n^{O(\log(n)^{\frac{1}{(q-1)d-1}} \cdot n^{1 - \frac{e}{(q-1)d-1}})}$ and noticeable advantage $1-O((\log(n)/n^e)^{\frac{1}{(q-1)d-1}})$.
Chloé Gravouil
06 February 2023
University of North Texas, Denton, USA
Closing date for applications:
Contact: Please contact Drs. Stephanie Ludi (stephanie.ludi@unt.edu) or Kirill Morozov (kirill.morozov@unt.edu) for any inquiries.
More information: https://jobs.untsystem.edu/postings/68591
Inria and ENS, Paris, France
Closing date for applications:
Contact: Phong Nguyen ( Phong.Nguyen at inria.fr )
More information: https://jobs.inria.fr/public/classic/en/offres/2022-05411
01 February 2023
Aarhus, Denmark, 9 June 2023
Submission deadline: 28 February 2023
Notification: 31 March 2023
Virtual event, Anywhere on Earth, 28 February - 2 March 2023
KASTEL — Institute of Information Security and Dependability, KIT, Karlsruhe, Germany
A solid background in provable security is required (for PhD students: successfully attended courses or a master’s thesis on the subject). Experiences with secure multi-party computation or UC-based security are a plus. For PostDocs, a track record in research on privacy-preserving protocols is expected, including publications at reputable conferences such as Crypto, Eurocrypt, ACM CCS, PETS, etc.
You will be a member of the KASTEL Security Research Labs (https://zentrum.kastel.kit.edu). Your research will be dealing with privacy-preserving cryptographic building blocks and protocols for important application scenarios and result in both theoretical security concepts (protocol designs, security models and proofs, etc.) and their efficient implementation. You will have the opportunity to regularly visit other reputable research institutions for IT security and cryptography such as the University of Luxembourg.
As the positions should be filled as soon as possible, your application will be evaluated promptly. If you are interested, please send an email including your CV and a list of publications (for PostDocs) to andy.rupp@partner.kit.edu.
Closing date for applications:
Contact: Andy Rupp (andy.rupp@partner.kit.edu, PI at KASTEL)