-
源代碼\用動(dòng)態(tài)規(guī)劃算法計(jì)算序列關(guān)系個(gè)數(shù)
用關(guān)系"<"和"="將3個(gè)數(shù)a,b,c依次序排列時(shí),有13種不同的序列關(guān)系:
a=b=c,a=b<c,a<b=v,a<b<c,a<c<b
a=c<b,b<a=c,b<a<c,b<c<a,b=c<a
c<a=b,c<a<b,c<b<a
若要將n個(gè)數(shù)依序列,設(shè)計(jì)一個(gè)動(dòng)態(tài)規(guī)劃算法,計(jì)算出有多少種不同的序列關(guān)系,
要求算法只占用O(n),只耗時(shí)O(n*n).
標(biāo)簽:
lt
源代碼
動(dòng)態(tài)規(guī)劃
序列
上傳時(shí)間:
2013-12-26
上傳用戶:siguazgb
-
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),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)
正
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),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
-
使用 RS232串列通訊和機(jī)器人連結(jié),並且給予Output指令去使Robot去移動(dòng)
標(biāo)簽:
232
RS
上傳時(shí)間:
2014-01-11
上傳用戶:qq1604324866
-
一:需求分析
1. 問題描述
魔王總是使用自己的一種非常精練而抽象的語言講話,沒人能聽懂,但他的語言是可逐步解釋成人能聽懂的語言,因?yàn)樗恼Z言是由以下兩種形式的規(guī)則由人的語言逐步抽象上去的:
-----------------------------------------------------------
(1) a---> (B1)(B2)....(Bm)
(2)[(op1)(p2)...(pn)]---->[o(pn)][o(p(n-1))].....[o(p1)o]
-----------------------------------------------------------
在這兩種形式中,從左到右均表示解釋.試寫一個(gè)魔王語言的解釋系統(tǒng),把
他的話解釋成人能聽得懂的話.
2. 基本要求:
用下述兩條具體規(guī)則和上述規(guī)則形式(2)實(shí)現(xiàn).設(shè)大寫字母表示魔王語言的詞匯 小寫字母表示人的語言的詞匯 希臘字母表示可以用大寫字母或小寫字母代換的變量.魔王語言可含人的詞匯.
(1) B --> tAdA
(2) A --> sae
3. 測(cè)試數(shù)據(jù):
B(ehnxgz)B 解釋成 tsaedsaeezegexenehetsaedsae若將小寫字母與漢字建立下表所示的對(duì)應(yīng)關(guān)系,則魔王說的話是:"天上一只鵝地上一只鵝鵝追鵝趕鵝下鵝蛋鵝恨鵝天上一只鵝地上一只鵝".
| t | d | s | a | e | z | g | x | n | h |
| 天 | 地 | 上 | 一只| 鵝 | 追 | 趕 | 下 | 蛋 | 恨 |
標(biāo)簽:
語言
抽象
分
上傳時(shí)間:
2014-12-02
上傳用戶:jkhjkh1982
-
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
-
The XML Toolbox converts MATLAB data types (such as double, char, struct, complex, sparse, logical) of any level of nesting to XML format and vice versa.
For example,
>> project.name = MyProject
>> project.id = 1234
>> project.param.a = 3.1415
>> project.param.b = 42
becomes with str=xml_format(project, off )
"<project>
<name>MyProject</name>
<id>1234</id>
<param>
<a>3.1415</a>
<b>42</b>
</param>
</project>"
On the other hand, if an XML string XStr is given, this can be converted easily to a MATLAB data type or structure V with the command V=xml_parse(XStr).
標(biāo)簽:
converts
Toolbox
complex
logical
上傳時(shí)間:
2016-02-12
上傳用戶:a673761058
-
在室內(nèi)環(huán)境中可結(jié)合式子母機(jī)器人系統(tǒng),子機(jī)為一多功能平臺(tái),可放置各種家庭所需之設(shè)備,而母機(jī)為一輪式機(jī)器人,經(jīng)由兩者的結(jié)合,可提供高機(jī)動(dòng)性與多功能的服務(wù)。在結(jié)合的技術(shù)面,傳統(tǒng)的吸塵器機(jī)器人與充電站之間的導(dǎo)航系統(tǒng)使用紅外線感測(cè)作為依據(jù),當(dāng)兩者間有障礙物阻擋時(shí),紅外線感測(cè)器導(dǎo)航系統(tǒng)將會(huì)失效。因此本系統(tǒng)利用聲源方向做為機(jī)器人決定移動(dòng)方向的依據(jù),由於聲波傳遞的特性,即使在有障礙物的情況下,依然可以有效地偵測(cè)。此外,在移動(dòng)的過程中,本系統(tǒng)利用光流偵測(cè)法判斷是否遭遇障礙物或是利用Support Vector Machine分類判斷與聲源之間為是否有障礙物的阻隔;若發(fā)現(xiàn)前方有障礙物,則啟動(dòng)避障策略,用有效的方式繼續(xù)往目標(biāo)移動(dòng)。最後,當(dāng)母機(jī)接近子機(jī)時(shí),可根據(jù)多種紅外線感測(cè)器資訊進(jìn)行子母機(jī)器人的結(jié)合,結(jié)合成功後,母機(jī)將可搭載子機(jī)成為一自由行動(dòng)之機(jī)器人。
標(biāo)簽:
系統(tǒng)
上傳時(shí)間:
2013-12-19
上傳用戶:mhp0114
-
河內(nèi)塔問題
#include<stdio.h>
#include<stdlib.h>
int fun_a(int)
void fun_b(int,int,int,int)
int main(void)
{
int n
int option
printf("題目二:河內(nèi)塔問題\n")
printf("請(qǐng)輸入要搬移的圓盤數(shù)目\n")
scanf("%d",&n)
printf("最少搬移的次數(shù)為%d次\n",fun_a(n))
printf("是否顯示移動(dòng)過程? 是請(qǐng)輸入1,否則輸入0\n")
scanf("%d",&option)
if(option==1)
{
fun_b(n,1,2,3)
}
system("pause")
return 0
}
int fun_a(int n)
{
int sum1=2,sum2=0,i
for(i=n i>1 i--)
{
sum1=sum1*2
}
sum2=sum1-1
return sum2
}
void fun_b(int n,int left,int mid,int right)
{
if(n==1)
printf("把第%d個(gè)盤子從第%d座塔移動(dòng)到第%d座塔\n",n,left,right)
else
{
fun_b(n-1,left,right,mid)
printf("把第%d個(gè)盤子從第%d座塔移動(dòng)到第%d座塔\n",n,left,right)
fun_b(n-1,mid,left,right)
}
}
標(biāo)簽:
int
include
stdlib
fun_a
上傳時(shí)間:
2016-12-08
上傳用戶:努力努力再努力
