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電路<b>分析</b>

  • RSA算法 :首先, 找出三個(gè)數(shù), p, q, r, 其中 p, q 是兩個(gè)相異的質(zhì)數(shù), r 是與 (p-1)(q-1) 互質(zhì)的數(shù)...... p, q, r 這三個(gè)數(shù)便是 person_key

    RSA算法 :首先, 找出三個(gè)數(shù), p, q, r, 其中 p, q 是兩個(gè)相異的質(zhì)數(shù), r 是與 (p-1)(q-1) 互質(zhì)的數(shù)...... p, q, r 這三個(gè)數(shù)便是 person_key,接著, 找出 m, 使得 r^m == 1 mod (p-1)(q-1)..... 這個(gè) m 一定存在, 因?yàn)?r 與 (p-1)(q-1) 互質(zhì), 用輾轉(zhuǎn)相除法就可以得到了..... 再來, 計(jì)算 n = pq....... m, n 這兩個(gè)數(shù)便是 public_key ,編碼過程是, 若資料為 a, 將其看成是一個(gè)大整數(shù), 假設(shè) a < n.... 如果 a >= n 的話, 就將 a 表成 s 進(jìn)位 (s

    標(biāo)簽: person_key RSA 算法

    上傳時(shí)間: 2013-12-14

    上傳用戶:zhuyibin

  • 一個(gè)LCD燈的小程序。不是我寫的。我只負(fù)責(zé)了調(diào)試。適用在ACEXEP1K30QC208-3上。我跑了SIMULATOR

    一個(gè)LCD燈的小程序。不是我寫的。我只負(fù)責(zé)了調(diào)試。適用在ACEXEP1K30QC208-3上。我跑了SIMULATOR,管腳連接標(biāo)示了。我也下在電路板上試過了,沒有問題。要用到實(shí)驗(yàn)板上的兄弟們把CLK1改到TESTOUT3或者0就好了。綫幫助新手,人人有責(zé)。

    標(biāo)簽: SIMULATOR ACEXEP LCD 208

    上傳時(shí)間: 2015-04-10

    上傳用戶:330402686

  • The government of a small but important country has decided that the alphabet needs to be streamline

    The government of a small but important country has decided that the alphabet needs to be streamlined and reordered. Uppercase letters will be eliminated. They will issue a royal decree in the form of a String of B and A characters. The first character in the decree specifies whether a must come ( B )Before b in the new alphabet or ( A )After b . The second character determines the relative placement of b and c , etc. So, for example, "BAA" means that a must come Before b , b must come After c , and c must come After d . Any letters beyond these requirements are to be excluded, so if the decree specifies k comparisons then the new alphabet will contain the first k+1 lowercase letters of the current alphabet. Create a class Alphabet that contains the method choices that takes the decree as input and returns the number of possible new alphabets that conform to the decree. If more than 1,000,000,000 are possible, return -1. Definition

    標(biāo)簽: government streamline important alphabet

    上傳時(shí)間: 2015-06-09

    上傳用戶:weixiao99

  • 電力系統(tǒng)在臺(tái)穩(wěn)定計(jì)算式電力系統(tǒng)不正常運(yùn)行方式的一種計(jì)算。它的任務(wù)是已知電力系統(tǒng)某一正常運(yùn)行狀態(tài)和受到某種擾動(dòng)

    電力系統(tǒng)在臺(tái)穩(wěn)定計(jì)算式電力系統(tǒng)不正常運(yùn)行方式的一種計(jì)算。它的任務(wù)是已知電力系統(tǒng)某一正常運(yùn)行狀態(tài)和受到某種擾動(dòng),計(jì)算電力系統(tǒng)所有發(fā)電機(jī)能否同步運(yùn)行 1運(yùn)行說明: 請(qǐng)輸入初始功率S0,形如a+bi 請(qǐng)輸入無限大系統(tǒng)母線電壓V0 請(qǐng)輸入系統(tǒng)等值電抗矩陣B 矩陣B有以下元素組成的行矩陣 1正常運(yùn)行時(shí)的系統(tǒng)直軸等值電抗Xd 2故障運(yùn)行時(shí)的系統(tǒng)直軸等值電抗X d 3故障切除后的系統(tǒng)直軸等值電抗 請(qǐng)輸入慣性時(shí)間常數(shù)Tj 請(qǐng)輸入時(shí)段數(shù)N 請(qǐng)輸入哪個(gè)時(shí)段發(fā)生故障Ni 請(qǐng)輸入每時(shí)段間隔的時(shí)間dt

    標(biāo)簽: 電力系統(tǒng) 計(jì)算 運(yùn)行

    上傳時(shí)間: 2015-06-13

    上傳用戶:it男一枚

  • 上下文無關(guān)文法(Context-Free Grammar, CFG)是一個(gè)4元組G=(V, T, S, P)

    上下文無關(guān)文法(Context-Free Grammar, CFG)是一個(gè)4元組G=(V, T, S, P),其中,V和T是不相交的有限集,S∈V,P是一組有限的產(chǎn)生式規(guī)則集,形如A→α,其中A∈V,且α∈(V∪T)*。V的元素稱為非終結(jié)符,T的元素稱為終結(jié)符,S是一個(gè)特殊的非終結(jié)符,稱為文法開始符。 設(shè)G=(V, T, S, P)是一個(gè)CFG,則G產(chǎn)生的語言是所有可由G產(chǎn)生的字符串組成的集合,即L(G)={x∈T* | Sx}。一個(gè)語言L是上下文無關(guān)語言(Context-Free Language, CFL),當(dāng)且僅當(dāng)存在一個(gè)CFG G,使得L=L(G)。 *⇒ 例如,設(shè)文法G:S→AB A→aA|a B→bB|b 則L(G)={a^nb^m | n,m>=1} 其中非終結(jié)符都是大寫字母,開始符都是S,終結(jié)符都是小寫字母。

    標(biāo)簽: Context-Free Grammar CFG

    上傳時(shí)間: 2013-12-10

    上傳用戶:gaojiao1999

  • 這是一本介紹8051的好書

    這是一本介紹8051的好書,看了這本書能對(duì)8051有所了解,本書有介紹指令、timer、interrup、uart幾乎是8051基本的功能都有說明,另外本書也有應(yīng)用電路能讓讀者了解8051。

    標(biāo)簽: 8051

    上傳時(shí)間: 2013-12-27

    上傳用戶:cmc_68289287

  • 用AVR實(shí)現(xiàn)軟USB轉(zhuǎn)RS232的全部資料

    用AVR實(shí)現(xiàn)軟USB轉(zhuǎn)RS232的全部資料,包含源碼與電路解

    標(biāo)簽: AVR 232 USB RS

    上傳時(shí)間: 2014-11-23

    上傳用戶:tonyshao

  • We have a group of N items (represented by integers from 1 to N), and we know that there is some tot

    We have a group of N items (represented by integers from 1 to N), and we know that there is some total order defined for these items. You may assume that no two elements will be equal (for all a, b: a<b or b<a). However, it is expensive to compare two items. Your task is to make a number of comparisons, and then output the sorted order. The cost of determining if a < b is given by the bth integer of element a of costs (space delimited), which is the same as the ath integer of element b. Naturally, you will be judged on the total cost of the comparisons you make before outputting the sorted order. If your order is incorrect, you will receive a 0. Otherwise, your score will be opt/cost, where opt is the best cost anyone has achieved and cost is the total cost of the comparisons you make (so your score for a test case will be between 0 and 1). Your score for the problem will simply be the sum of your scores for the individual test cases.

    標(biāo)簽: represented integers group items

    上傳時(shí)間: 2016-01-17

    上傳用戶:jeffery

  • altera Quartus II 減法器使用 配合LED

    altera Quartus II 減法器使用 配合LED,可自動(dòng)與手動(dòng)按鈕控製。 (含電路)

    標(biāo)簽: Quartus altera LED II

    上傳時(shí)間: 2013-12-13

    上傳用戶:王楚楚

  • altera Quartus II FSM使用 可設(shè)定時(shí)間波形

    altera Quartus II FSM使用 可設(shè)定時(shí)間波形,手動(dòng)調(diào)整波形頻率。 (含電路)

    標(biāo)簽: Quartus altera FSM II

    上傳時(shí)間: 2016-02-13

    上傳用戶:kbnswdifs

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