Goppa-code cryptosystem - traducción al ruso
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Goppa-code cryptosystem - traducción al ruso

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

Goppa-code cryptosystem      
криптосистема на основе кода Гоппы криптосистема на основе кода Гоппы
codetext         
  • A portion of the "[[Zimmermann Telegram]]" as decrypted by [[British Naval Intelligence]] codebreakers. The word ''Arizona'' was not in the German codebook and had therefore to be split into phonetic syllables.
METHOD USED TO ENCRYPT A MESSAGE
Codetext; Idiot code; One-part code; Two-part code; Cryptography code
(за) кодированный текст
Napoleonic Code         
  • The Napoleonic Code in the [[Historical Museum of the Palatinate]] in [[Speyer]]
CIVIL CODE OF 1804
Code Napoleon; Napoleonic civil code; Napoleanic Code; Code Civil; Code Napoléon; French Familly code; Code civil; French Civil Code; Civil Code of France; Civil Code of 1804; French civil code; Code civil du Français; Napoleonic law; Code civil des Français; Code civil des Francais; Napoleonic code; Napoléonic Code; Code Civil des Francais; Code Civil of 1804; French Napoleonic Code of 1804
[юр.] кодекс Наполеона

Definición

ФРАНЦУЗСКИЙ ГРАЖДАНСКИЙ КОДЕКС
1804 (Кодекс Наполеона) , действующий гражданский кодекс Франции. Составлен при активном участии Наполеона. Включает нормы гражданского, семейного, процессуального, частично трудового права. Кодекс закрепил свободу частной собственности, провозгласив это право священным и неприкосновенным.

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.

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