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== and all by the official to master. Official among the monks ==
In [[computational number theory]], the '''index calculus algorithm''' is a [[probabilistic]] [[algorithm]]  for computing [[discrete logarithm]]s.
Dedicated to the discrete logarithm in <math>(\mathbb{Z}/q\mathbb{Z})^*</math> where <math>q</math> is a prime, Index calculus lead to a family of algorithms adapted to finite fields and to some families of elliptic curves. The algorithm collects relations among the discrete logarithms of small primes, computes them by a linear algebra procedure and finally expresses the desired discrete logarithm with respect to the discrete logarithms of small primes.


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== Description ==
相关的主题文章:
Roughly speaking, the [[Discrete logarithm|discrete log]] problem asks us to find an ''x'' such that <math>g^x \equiv h \pmod{n}</math>, where ''g'', ''h'', and the modulus ''n'' are given.
<ul>
 
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== feel the cold side has some wrong. ==
The algorithm (described in detail below) applies to the group <math>(\mathbb{Z}/q\mathbb{Z})^*</math> where ''q'' is prime. It requires a ''factor base'' as input. This ''factor base'' is usually chosen to be the number −1 and the first ''r'' primes starting with 2.  From the point of view of efficiency, we want this factor base to be small, but in order to solve the discrete log for a large group we require the ''factor base'' to be (relatively) large. In practical implementations of the algorithm, those conflicting objectives are compromised one way or another.


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The algorithm is performed in three stages.  The first two stages depend only on the generator ''g'' and prime modulus ''q'', and find the discrete logarithms of a ''factor base'' of ''r'' small primes. The third stage finds the discrete log of the desired number ''h'' in terms of the discrete logs of the factor base.
相关的主题文章:
<ul>
 
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== Huangfu天軍などの他の側は、そのような人を見たことがない ==
The first stage consists of searching for a set of ''r'' [[linearly independent]] ''relations'' between the factor base and power of the [[Generating set of a group|generator]]  ''g''.  Each relation contributes one equation to a [[system of linear equations]] in ''r'' unknowns, namely the discrete logarithms of the ''r'' primes in the factor base.  This stage is [[embarrassingly parallel]] and easy to divide among many computers.


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The second stage solves the system of linear equations to compute the discrete logs of the factor base. Although a minor computation compared to the other stages, a system of hundreds of thousands or millions of equations is a significant computation requiring large amounts of memory, and it is ''not'' embarrassingly parallel, so a [[supercomputer]] is typically used.
相关的主题文章:
<ul>
 
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</ul>


== マジック本当に怒っ神々が微笑んで言った ' ==
The third stage searches for a power ''s'' of the generator ''g'' which, when multiplied by the argument ''h'', may be factored in terms of the factor base ''g<sup>s</sup>h'' = (−1)<sup>''f''<sub>0</sub></sup> 2<sup>''f''<sub>1</sub></sup> 3<sup>''f''<sub>2</sub></sup>···''p''<sub>''r''</sub><sup>''f''<sub>''r''</sub></sup>.


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Finally, in an operation too simple to really be called a fourth stage, the results of the second and third stages can be rearranged by simple algebraic manipulation to work out the desired discrete logarithm ''x'' = ''f''<sub>0</sub>log<sub>''g''</sub>(−1) + ''f''<sub>1</sub>log<sub>''g''</sub>2 + ''f''<sub>2</sub>log<sub>''g''</sub>3 + ··· + ''f''<sub>''r''</sub>log<sub>''g''</sub>''p<sub>r</sub>'' − ''s''.
相关的主题文章:
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</ul>


== 「この人、実際にそんなに ==
The first and third stages are both embarrassingly parallel, and in fact the third stage does not depend on the results of the first two stages, so it may be done in parallel with them.


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The choice of the factor base size ''r'' is critical, and the details are too intricate to explain here.  The larger the factor base, the easier it is to find relations in stage 1, and the easier it is to complete stage 3, but the more relations you need before you can proceed to stage 2, and the more difficult stage 2 is.  The relative availability of computers suitable for the different types of computation required for stages 1 and 2 is also important.
相关的主题文章:
 
  <ul>
=== Applications in other groups ===
 
 
  <li>[http://www.masterind.net/plus/view.php?aid=376043 「フォース運命は、祝福を奪って、保護をリッピング]</li>
It is noteworthy that the lack of the notion of ''prime elements'' in the group of points on [[elliptic curves]], makes it impossible to find an efficient ''factor base'' to run index calculus method as presented here in these groups. Therefore this algorithm is incapable of solving discrete logarithms efficiently in elliptic curve groups. However: For special kinds of curves (so called [[supersingular elliptic curve]]s) there are specialized algorithms for solving the problem faster than with generic methods. While the use of these special curves can easily be avoided, in 2009 it has been proven that for certain fields the discrete logarithm problem in the group of points on ''general'' elliptic curves over these fields can be solved faster than with generic methods. The algorithms are indeed adaptations of the index calculus method.<ref>{{cite journal|last=Diem|first=C|title=On the discrete logarithm problem in elliptic curves|journal=Compositio Mathematica|year=2010}}</ref>
 
 
  <li>[http://a-g.ru/forum/viewtopic.php?f=2&t=176377  彼らがいた]</li>
== The algorithm ==
 
'''Input:''' Discrete logarithm generator ''g'', modulus ''q'' and argument ''h''.  Factor base {−1,2,3,5,7,11,...,''p<sub>r</sub>''}, of length ''r''+1.<br/>
  <li>[http://www.comune.torino.it/cgi-bin/toweb/jump.cgi 「シェイク風Yaoguang]</li>
'''Output:''' ''x'' such that ''g<sup>x</sup>'' ≡ ''h'' (mod ''q'').
 
 
</ul>
* relations ← empty_list
* for ''k'' = 1, 2, ...
** Using an [[integer factorization]] algorithm optimized for [[smooth numbers]], try to factor <math>g^k \mod  q</math> (Euclidian residue) using the factor base, i.e. find <math>e_i</math>'s such that <math>g^k \mod q= (-1)^{e_0}2^{e_1}3^{e_2}\cdots p_r^{e_r}</math>
** Each time a factorization is found:
*** Store ''k'' and the computed <math>e_i</math>'s as a vector <math>(e_0,e_1,e_2,\ldots,e_r,k)</math> (this is a called a relation)
*** If this relation is [[linearly independent]] to the other relations:
**** Add it to the list of relations
**** If there are at least ''r''+1 relations, exit loop
* Form a matrix whose rows are the relations
* Obtain the [[reduced echelon form]] of the matrix
** The first element in the last column is the discrete log of −1 and the second element is the discrete log of 2 and so on
* for ''s'' = 0, 1, 2, ...
** Try to factor <math>g^s h \mod q= (-1)^{f_0}2^{f_1}3^{f_2}\cdots p_r^{f_r}</math> over the factor base
** When a factorization is found:
*** Output <math>x = f_0 \log_g(-1) + f_1 \log_g2 + \cdots + f_r \log_g p_r - s.</math>
 
== Complexity ==
Assuming an optimal selection of the factor base, the expected running time (using [[L-notation]]) of the index-calculus algorithm can be stated as
<math>L_n[1/2,\sqrt{2}+o(1)] </math>.
 
==History==
The first to discover the idea was Kraitchik in 1922.<ref>M. Kraitchik, ''Théorie des nombres'', Gauthier--Villards, 1922</ref> After [[Discrete logarithm|DLP]] became important in 1976 with the creation of the [[Diffie-Hellman]] cryptosystem, R. Merkle from Stanford University rediscovered the idea in 1977. The first publications came in the next two years from Merkle's colleagues.<ref>Pohlig, S. ''Algebraic and combinatoric aspects of cryptography''.
Tech. Rep. No. 6602-1, Stanford Electron. Labs., Stanford, Calif., Oct. 1977.</ref><ref>M.E. Hellman and J.M. Reyneri, ''Fast computation of discrete logarithms in GF
(q),Advances in Cryptology--Proceedings of Crypto, 1983</ref> Finally, [[Leonard Adleman|Adleman]] optimized the algorithm and presented it in the form we know it today.<ref>L. Adleman, ''A subexponential algorithm for the discrete logarithm problem with applications to cryptography'', In 20th Annual Symposium on Foundations of Computer Science, 1979</ref>
 
 
==The Index Calculus family==
Index Calculus inspired a large family of algorithms. In finite fields <math>\mathbb{F}_{q} </math> with <math>q=p^n</math> for some prime <math>p</math>, the state-of-art algorithms are
the Number Field Sieve for Discrete Logarithms, <math> L_{q}\left[1/3,\sqrt[3]{64/9}\right]</math>, when <math> p </math> is large compared to <math>q</math>, the [[function field sieve]], <math>L_{q}\left[1/3,\sqrt[3]{32/9}\right]</math>, and Joux,<ref> A. Joux, ''A new index calculus algorithm with complexity'' <math>L(1/4+o(1))</math> ''in very small characteristic'' [http://eprint.iacr.org/2013/095]</ref> <math>L_{q}\left[1/4+\epsilon,c\right] </math> for <math>c>0</math>, when <math>p</math> is small compared to <math>q </math> and the Number Field Sieve in High Degree, <math>L_q[1/3,c]</math> for <math>c>0</math> when <math>p </math> is middle-sided. Discrete logarithm in some families of elliptic curves can be solved in time <math>L_q\left[1/3,c\right]</math> for <math> c>0</math>, but the general case remains exponential.
 
== External links ==
*[http://www.dtc.umn.edu/~odlyzko/doc/arch/discrete.logs.pdf Discrete logarithms in finite fields and their cryptographic significance], by [[Andrew Odlyzko]]
*[http://www.cs.toronto.edu/~cvs/dlog/ Discrete Logarithm Problem], by Chris Studholme, including the June 21, 2002 paper "The Discrete Log Problem".
*{{cite book | authors=A. Menezes, P. van Oorschot, S. Vanstone | title=Handbook of Applied Cryptography  | url=http://www.cacr.math.uwaterloo.ca/hac/ | publisher=[[CRC Press]] | year=1997 | pages=107–109 | isbn=0-8493-8523-7}}
 
 
 
==Notes==
{{Reflist}}
 
{{Number-theoretic algorithms}}
 
{{DEFAULTSORT:Index Calculus Algorithm}}
[[Category:Group theory]]

Revision as of 22:14, 5 March 2013

In computational number theory, the index calculus algorithm is a probabilistic algorithm for computing discrete logarithms. Dedicated to the discrete logarithm in (/q)* where q is a prime, Index calculus lead to a family of algorithms adapted to finite fields and to some families of elliptic curves. The algorithm collects relations among the discrete logarithms of small primes, computes them by a linear algebra procedure and finally expresses the desired discrete logarithm with respect to the discrete logarithms of small primes.

Description

Roughly speaking, the discrete log problem asks us to find an x such that gxh(modn), where g, h, and the modulus n are given.

The algorithm (described in detail below) applies to the group (/q)* where q is prime. It requires a factor base as input. This factor base is usually chosen to be the number −1 and the first r primes starting with 2. From the point of view of efficiency, we want this factor base to be small, but in order to solve the discrete log for a large group we require the factor base to be (relatively) large. In practical implementations of the algorithm, those conflicting objectives are compromised one way or another.

The algorithm is performed in three stages. The first two stages depend only on the generator g and prime modulus q, and find the discrete logarithms of a factor base of r small primes. The third stage finds the discrete log of the desired number h in terms of the discrete logs of the factor base.

The first stage consists of searching for a set of r linearly independent relations between the factor base and power of the generator g. Each relation contributes one equation to a system of linear equations in r unknowns, namely the discrete logarithms of the r primes in the factor base. This stage is embarrassingly parallel and easy to divide among many computers.

The second stage solves the system of linear equations to compute the discrete logs of the factor base. Although a minor computation compared to the other stages, a system of hundreds of thousands or millions of equations is a significant computation requiring large amounts of memory, and it is not embarrassingly parallel, so a supercomputer is typically used.

The third stage searches for a power s of the generator g which, when multiplied by the argument h, may be factored in terms of the factor base gsh = (−1)f0 2f1 3f2···prfr.

Finally, in an operation too simple to really be called a fourth stage, the results of the second and third stages can be rearranged by simple algebraic manipulation to work out the desired discrete logarithm x = f0logg(−1) + f1logg2 + f2logg3 + ··· + frloggprs.

The first and third stages are both embarrassingly parallel, and in fact the third stage does not depend on the results of the first two stages, so it may be done in parallel with them.

The choice of the factor base size r is critical, and the details are too intricate to explain here. The larger the factor base, the easier it is to find relations in stage 1, and the easier it is to complete stage 3, but the more relations you need before you can proceed to stage 2, and the more difficult stage 2 is. The relative availability of computers suitable for the different types of computation required for stages 1 and 2 is also important.

Applications in other groups

It is noteworthy that the lack of the notion of prime elements in the group of points on elliptic curves, makes it impossible to find an efficient factor base to run index calculus method as presented here in these groups. Therefore this algorithm is incapable of solving discrete logarithms efficiently in elliptic curve groups. However: For special kinds of curves (so called supersingular elliptic curves) there are specialized algorithms for solving the problem faster than with generic methods. While the use of these special curves can easily be avoided, in 2009 it has been proven that for certain fields the discrete logarithm problem in the group of points on general elliptic curves over these fields can be solved faster than with generic methods. The algorithms are indeed adaptations of the index calculus method.[1]

The algorithm

Input: Discrete logarithm generator g, modulus q and argument h. Factor base {−1,2,3,5,7,11,...,pr}, of length r+1.
Output: x such that gxh (mod q).

Complexity

Assuming an optimal selection of the factor base, the expected running time (using L-notation) of the index-calculus algorithm can be stated as Ln[1/2,2+o(1)].

History

The first to discover the idea was Kraitchik in 1922.[2] After DLP became important in 1976 with the creation of the Diffie-Hellman cryptosystem, R. Merkle from Stanford University rediscovered the idea in 1977. The first publications came in the next two years from Merkle's colleagues.[3][4] Finally, Adleman optimized the algorithm and presented it in the form we know it today.[5]


The Index Calculus family

Index Calculus inspired a large family of algorithms. In finite fields 𝔽q with q=pn for some prime p, the state-of-art algorithms are the Number Field Sieve for Discrete Logarithms, Lq[1/3,64/93], when p is large compared to q, the function field sieve, Lq[1/3,32/93], and Joux,[6] Lq[1/4+ϵ,c] for c>0, when p is small compared to q and the Number Field Sieve in High Degree, Lq[1/3,c] for c>0 when p is middle-sided. Discrete logarithm in some families of elliptic curves can be solved in time Lq[1/3,c] for c>0, but the general case remains exponential.

External links


Notes

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Template:Number-theoretic algorithms

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    Extending the tax exemption would help. The exemption, which may be as a lot as $2 million per family, covers individuals who negotiate a principal reduction on their existing mortgage, sell their house short (i.e., for lower than the excellent loans), or take part in a foreclosure course of. An extension of theexemption would seem like a common-sense means to assist stabilize the housing market, but the political turmoil around the fiscal-cliff negotiations means widespread sense could not win out. Home Minority Chief Nancy Pelosi (D-Calif.) believes that the mortgage relief provision will be on the table during the grand-cut price talks, in response to communications director Nadeam Elshami. Buying or promoting of blue mild bulbs is unlawful.

    A vendor's stamp duty has been launched on industrial property for the primary time, at rates ranging from 5 per cent to 15 per cent. The Authorities might be trying to reassure the market that they aren't in opposition to foreigners and PRs investing in Singapore's property market. They imposed these measures because of extenuating components available in the market." The sale of new dual-key EC models will even be restricted to multi-generational households only. The models have two separate entrances, permitting grandparents, for example, to dwell separately. The vendor's stamp obligation takes effect right this moment and applies to industrial property and plots which might be offered inside three years of the date of buy. JLL named Best Performing Property Brand for second year running

    The data offered is for normal info purposes only and isn't supposed to be personalised investment or monetary advice. Motley Fool Singapore contributor Stanley Lim would not personal shares in any corporations talked about. Singapore private home costs increased by 1.eight% within the fourth quarter of 2012, up from 0.6% within the earlier quarter. Resale prices of government-built HDB residences which are usually bought by Singaporeans, elevated by 2.5%, quarter on quarter, the quickest acquire in five quarters. And industrial property, prices are actually double the levels of three years ago. No withholding tax in the event you sell your property. All your local information regarding vital HDB policies, condominium launches, land growth, commercial property and more

    There are various methods to go about discovering the precise property. Some local newspapers (together with the Straits Instances ) have categorised property sections and many local property brokers have websites. Now there are some specifics to consider when buying a 'new launch' rental. Intended use of the unit Every sale begins with 10 p.c low cost for finish of season sale; changes to 20 % discount storewide; follows by additional reduction of fiftyand ends with last discount of 70 % or extra. Typically there is even a warehouse sale or transferring out sale with huge mark-down of costs for stock clearance. Deborah Regulation from Expat Realtor shares her property market update, plus prime rental residences and houses at the moment available to lease Esparina EC @ Sengkang
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