transposition cryptosystem - traduzione in russo
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transposition cryptosystem - traduzione in russo

Damgaard-Jurik cryptosystem; Damgaard–Jurik cryptosystem; Damgård-Jurik cryptosystem; Damgard–Jurik cryptosystem; Damgard-Jurik cryptosystem

transposition cryptosystem      
криптосистема на основе перестановок криптосистема на основе перестановок
transposition         
WIKIMEDIA DISAMBIGUATION PAGE
Transposing; Transposition (disambiguation)
сущ.
транспозиция; перенос, перемещение.
transposition         
WIKIMEDIA DISAMBIGUATION PAGE
Transposing; Transposition (disambiguation)

[trænspə'ziʃ(ə)n]

общая лексика

транспозиция

перемещение

перестановка

в сортировках - когда меняются местами два элемента

перегруппировка

перекладка

перенесение в другую часть уравнения

транспонирование

строительное дело

перенос

трансформация

преобразование

Смотрите также

sort; intersemiotic transposition; law of transposition; operation of transposition; operational transposition; transposition basis; transposition interval; transposition of elements; transposition operator; transposition principle; transposition section; transposition theorem

существительное

общая лексика

перестановка

перегруппировка

перемещение

перенос

перемещение, перестановка

математика

перенос в другую часть уравнения с обратным знаком

транспозиция (матрицы)

электротехника

скрутка (линии)

музыка

транспозиция

транспонировка

Definizione

transposition
n. a transposition from; into, to

Wikipedia

Damgård–Jurik cryptosystem

The Damgård–Jurik cryptosystem is a generalization of the Paillier cryptosystem. It uses computations modulo n s + 1 {\displaystyle n^{s+1}} where n {\displaystyle n} is an RSA modulus and s {\displaystyle s} a (positive) natural number. Paillier's scheme is the special case with s = 1 {\displaystyle s=1} . The order φ ( n s + 1 ) {\displaystyle \varphi (n^{s+1})} (Euler's totient function) of Z n s + 1 {\displaystyle Z_{n^{s+1}}^{*}} can be divided by n s {\displaystyle n^{s}} . Moreover, Z n s + 1 {\displaystyle Z_{n^{s+1}}^{*}} can be written as the direct product of G × H {\displaystyle G\times H} . G {\displaystyle G} is cyclic and of order n s {\displaystyle n^{s}} , while H {\displaystyle H} is isomorphic to Z n {\displaystyle Z_{n}^{*}} . For encryption, the message is transformed into the corresponding coset of the factor group G × H / H {\displaystyle G\times H/H} and the security of the scheme relies on the difficulty of distinguishing random elements in different cosets of H {\displaystyle H} . It is semantically secure if it is hard to decide if two given elements are in the same coset. Like Paillier, the security of Damgård–Jurik can be proven under the decisional composite residuosity assumption.

Traduzione di &#39transposition cryptosystem&#39 in Russo