IACR News
If you have a news item you wish to distribute, they should be sent to the communications secretary. See also the events database for conference announcements.
Here you can see all recent updates to the IACR webpage. These updates are also available:
12 August 2013
Dalian, China, December 11 - December 13
Notification: 12 October 2013
From December 11 to December 13
Location: Dalian, China
More Information: http://jlloret.webs.upv.es/sspa2013/index.html
10 August 2013
Lausanne, Switzerland, September 30
From September 30 to September 30
Location: Lausanne, Switzerland
More Information: http://ic.epfl.ch/privacy-surveillance
09 August 2013
Dallas, USA, November 13 - November 15
Notification: 21 October 2013
From November 13 to November 15
Location: Dallas, USA
More Information: http://www.utdallas.edu/isc/
Guangzhou, China, November 27 - November 30
Notification: 22 October 2013
From November 27 to November 30
Location: Guangzhou, China
More Information: http://www.inscrypt.cn/2013/Inscrypt_2013.html
08 August 2013
06 August 2013
La Jolla, CA, USA, February 24 - February 26
Notification: 5 November 2013
From February 24 to February 26
Location: La Jolla, CA, USA
More Information: http://www.iacr.org/workshops/tcc2014/index.html
05 August 2013
One of the key roles of the the IACR is the review and dissemination of scientific publications. In the past three years, there has been an intensive discussion of publication options, in which several alternatives have been reviewed thoroughly.
At the end of 2012, the IACR has signed a new publication contract with Springer for a 4-year period (2013-2017); IACR continues to publish the proceedings of our flagship conferences and workshops in Springer's Lecture Notes in Computer Science series. This new contract makes substantial progress towards broader access to our publications and reduces the cost of publications. However, the IACR Board believes that the area of scientific publications will undergo further changes in the next years, in particular towards open access. In addition, the expansion of our field (more than 1200 submissions and more than 250 publications per year) has resulted in a steadily increasing reviewing load. Some other scientific communities have updated their publication models with a shift towards journal publications.
The IACR Board understands that any change to our publication model has major implications on our members and on the cryptographic community at large. We also have learned that changing this model would be complex and time consuming: in order to be ready for a new publication model in 2018, a new strategy would need to be in place by mid 2015.
In view of this, the IACR Board has decided to start an open discussion on the future of IACR publications. In order to focus this discussion, Nigel Smart has drafted a radical proposal, that would involve moving towards a journal publication model. This proposal has been outlined at the rump session of Eurocrypt'13 and has been further refined based on comments received. The reason for working with a detailed document is that this seems the best way to make sure that all issues are identified and detailed solutions are proposed and compared.
It should be fully understood that this document is a strawman proposal: it does not reflect the view of the IACR Board; the document has also not been discussed with the steering committees of the workshops. Its only intention is to start an open discussion. In particular, the Board welcomes detailed comments and alternative proposals for the future of IACR publications.
We are looking forward to hearing from the community.
Bart Preneel
IACR-International Association for Cryptologic Research
04 August 2013
A*STAR, Data Storage Institute, Singapore
Requirements
- Deep understanding of theory and implementation of Security protocols and applied cryptography
- Demonstrated expertise with computer architecture
- A strong programming background and experience with functional programming languages is preferred
- Experience in developing prototypes in a research environment
- A demonstrated potential to excel in collaborative research
- PhD in computer science or computer engineering
03 August 2013
Rochester Institute of Technology, Rochester, NY, USA
In July of 2012, the Department of Computing Security at RIT was established to address critical security challenges that cut across computing disciplines. The department engages in a wide range of research and teaching activities, including: big data analytics, cryptology and covert communications, digital forensics, mobile devices, networks, privacy, security measurement, security pedagogy, sensors, software, and systems security. Through these activities, the department seeks to advance the discipline and to meet the rapidly growing need for computing security professionals.
The successful candidate will be ready to assume the leadership and administrative responsibilities of the department. A key role will be to lead the department in shaping and expanding its research and scholarship profile. Applicants are required to have a Ph.D. or equivalent in a related field and experience commensurate with that of a full professor. Applicants must have demonstrated research excellence in computing security, a track record of external funding, and a strong commitment to undergraduate and graduate education.
Candidates should visit http://careers.rit.edu and search 575BR for specific information about the position and the application process. Refer to http://www.rit.edu/gccis for information about RIT and the B. Thomas Golisano College of Computing and Information Sciences.
RIT is an equal opportunity employer that promotes and values diversity, pluralism, and inclusion. For more information or inquiries, please visit http://www.rit.edu/diversity/titleix.html.
Martin R. Albrecht, Jean-Charles Faugère, Robert Fitzpatrick, Ludovic Perret
Zvika Brakerski, Guy N. Rothblum
Our construction is based on multilinear maps, and can be instantiated using the recent candidates proposed by Garg, Gentry and Halevi (EUROCRYPT 2013) and by Coron, Lepoint and Tibouchi (CRYPTO 2013). We show that the construction is secure when the conjunction is drawn from a distribution, under mild assumptions on the distribution. Security follows from multilinear entropic variants of the Diffie-Hellman assumption. We conjecture that our construction is secure for any conjunction, regardless of the distribution from which it is drawn. We offer supporting evidence for this conjecture, proving that our obfuscator is secure for any conjunction against generic adversaries.
Kristian Gjøsteen
Certain applications require the ability to disclose part of the message to the server. We define partially blind password-based signatures and construct a scheme based that we prove secure, based on a novel computational problem related to computing discrete logarithms.
Our scheme is based on Nyberg-Rueppel signatures. We give a variant of Nyberg-Rueppel signatures that we prove secure based on our novel computational problem.
Unlike previous password-based signature schemes, our scheme can be instantiated using elliptic curve arithmetic over small prime fields. This is important for many applications
Kristian Gjøsteen
This paper discusses this cryptographic protocol, and in particular the ballot submission phase.
The security of the protocol relies on a novel hardness assumption similar to Decision Diffie-Hellman. While DDH is a claim that a random subgroup of a non-cyclic group is indistinguishable from the whole group, our assumption is related to the indistinguishability of certain special subgroups. We discuss this question in some detail.
Zhengjun Cao
Pascale Charpin, Gohar M. Kyureghyan
defined by elements from an hyperplane.
02 August 2013
Amadou Tall, Ali Yassin Sanghare
Jian Guo, Pierre Karpman, Ivica Nikolic, Lei Wang, Shuang Wu
Nir Bitansky, Ran Canetti, Omer Paneth
When combined with hardness properties such as one-wayness or collision-resistance, extractability has proven to be a powerful tool. However, so far, extractability has not been explicitly shown. Instead, it has only been considered as a non-standard {\\em knowledge assumption} on certain functions.
We give the first construction of extractable one-way functions assuming only standard hardness assumptions (e.g.,subexponential security of Decision Diffie-Hellman or Quadratic Residousity).
Our functions are extractable against adversaries with bounded polynomial advice and unbounded polynomial running time. We then use these functions to construct the first 2-message zero-knowledge arguments and 3-message zero-knowledge arguments of knowledge, against the same class of adversarial verifiers, from essentially the same assumptions.
The construction uses ideas from [Barak, FOCS01] and [Barak, Lindell, and Vadhan, FOCS03], and rely on the recent breakthrough construction of privately verifiable $\\P$-delegation schemes [Kalai, Raz, and Rothblum]. The extraction procedure uses the program evaluating $f$ in a non-black-box way, which we show to be necessary.
Michael Backes, Dario Fiore, Raphael M. Reischuk
In this work we propose novel cryptographic techniques that solve the above problem for the class of computations of quadratic polynomials over a large number of variables. This class covers a wide range of significant arithmetic computations - notably, many important statistics. To confirm the efficiency of our solution, we show encouraging performance results, e.g., correctness proofs have size below 1 kB and are verifiable by clients in less than 10 milliseconds.