标签: PAT

1062. Talent and Virtue (25)-PAT甲级真题

About 900 years ago, a Chinese philosopher Sima Guang wrote a history book in which he talked about people’s talent and virtue. According to his theory, a man being outstanding in both talent and virtue must be a “sage(圣人)”; being less excellent but with one’s virtue outweighs talent can be called a “nobleman(君子)”; being good in neither is a “fool man(愚人)”; yet a fool man is better than a “small man(小人)” who prefers talent than virtue.

Now given the grades of talent and virtue of a group of people, you are supposed to rank them according to Sima Guang’s theory.

Input Specification:

Each input file contains one test case. Each case first gives 3 positive integers in a line: N (<=105), the total number of people to be ranked; L (>=60), the lower bound of the qualified grades — that is, only the ones whose grades of talent and virtue are both not below this line will be ranked; and H (<100), the higher line of qualification — that is, those with both grades not below this line are considered as the “sages”, and will be ranked in non-increasing order according to their total grades. Those with talent grades below H but virtue grades not are cosidered as the “noblemen”, and are also ranked in non-increasing order according to their total grades, but they are listed after the “sages”. Those with both grades below H, but with virtue not lower than talent are considered as the “fool men”. They are ranked in the same way but after the “noblemen”. The rest of people whose grades both pass the L line are ranked after the “fool men”.

Then N lines follow, each gives the information of a person in the format:

ID_Number Virtue_Grade Talent_Grade
where ID_Number is an 8-digit number, and both grades are integers in [0, 100]. All the numbers are separated by a space.
Output Specification:

The first line of output must give M (<=N), the total number of people that are actually ranked. Then M lines follow, each gives the information of a person in the same format as the input, according to the ranking rules. If there is a tie of the total grade, they must be ranked with respect to their virtue grades in non-increasing order. If there is still a tie, then output in increasing order of their ID’s.

Sample Input:
14 60 80
10000001 64 90
10000002 90 60
10000011 85 80
10000003 85 80
10000004 80 85
10000005 82 77
10000006 83 76
10000007 90 78
10000008 75 79
10000009 59 90
10000010 88 45
10000012 80 100
10000013 90 99
10000014 66 60
Sample Output:
12
10000013 90 99
10000012 80 100
10000003 85 80
10000011 85 80
10000004 80 85
10000007 90 78
10000006 83 76
10000005 82 77
10000002 90 60
10000014 66 60
10000008 75 79
10000001 64 90

题目大意:输入第1行给出3个正整数,分别为:N为考生总数;L为录取最低分数线,即德分和才分均不低于L的考生才有资格被考虑录取;H为优先录取线——德分和才分均不低于此线的被定义为“才德全尽”,此类考生按德才总分从高到低排序;才分不到但德分到线的一类考生属于“德胜才”,也按总分排序,但排在第一类考生之后;德才分均低于H,但是德分不低于才分的考生属于“才德兼亡”但尚有“德胜才”者,按总分排序,但排在第二类考生之后;其他达到最低线L的考生也按总分排序,但排在第三类考生之后。输出第1行首先给出达到最低分数线的考生人数M,随后M行,每行按照输入格式输出一位考生的信息,考生按输入中说明的规则从高到低排序。当某类考生中有多人总分相同时,按其德分降序排列;若德分也并列,则按准考证号的升序输出~

分析:用结构体存储~写好cmp函数~结构体数组vector v[4]中v[0]保存第一类考生,v[1]保存第二类考生…以此类推~写好cmp函数很重要,cmp函数中,排序先按照总分排序,然后按照德分排序,最后按照准考证号排序…最后输出符合条件的结果~

1077. Kuchiguse (20)-PAT甲级真题

The Japanese language is notorious for its sentence ending particles. Personal preference of such particles can be considered as a reflection of the speaker’s personality. Such a preference is called “Kuchiguse” and is often exaggerated artistically in Anime and Manga. For example, the artificial sentence ending particle “nyan~” is often used as a stereotype for characters with a cat-like personality:
Itai nyan~ (It hurts, nyan~)
Ninjin wa iyada nyan~ (I hate carrots, nyan~)
Now given a few lines spoken by the same character, can you find her Kuchiguse?

Input Specification:
Each input file contains one test case. For each case, the first line is an integer N (2<=N<=100). Following are N file lines of 0~256 (inclusive) characters in length, each representing a character’s spoken line. The spoken lines are case sensitive.

Output Specification:
For each test case, print in one line the kuchiguse of the character, i.e., the longest common suffix of all N lines. If there is no such suffix, write “nai”.

Sample Input 1:
3
Itai nyan~
Ninjin wa iyadanyan~
uhhh nyan~
Sample Output 1:
nyan~
Sample Input 2:
3
Itai!
Ninjinnwaiyada T_T
T_T
Sample Output 2:
nai

题目大意:给定N给字符串,求他们的公共后缀,如果不存在公共后缀,就输出“nai”
分析:因为是后缀,反过来比较太麻烦,所以每输入一个字符串,就把它逆序过来再比较会比较容易~
首先ans = s;后来每输入的一个字符串,都和ans比较,如果后面不相同的就把它截取掉,最后输出ans即可(要逆序输出~,所以先将ans倒置reverse一下~)

1035. Password (20)-PAT甲级真题

To prepare for PAT, the judge sometimes has to generate random passwords for the users. The problem is that there are always some confusing passwords since it is hard to distinguish 1 (one) from l (L in lowercase), or 0 (zero) from O (o in uppercase). One solution is to replace 1 (one) by @, 0 (zero) by %, l by L, and O by o. Now it is your job to write a program to check the accounts generated by the judge, and to help the juge modify the confusing passwords.

Input Specification:

Each input file contains one test case. Each case contains a positive integer N (<= 1000), followed by N lines of accounts. Each account consists of a user name and a password, both are strings of no more than 10 characters with no space.

Output Specification:

For each test case, first print the number M of accounts that have been modified, then print in the following M lines the modified accounts info, that is, the user names and the corresponding modified passwords. The accounts must be printed in the same order as they are read in. If no account is modified, print in one line “There are N accounts and no account is modified” where N is the total number of accounts. However, if N is one, you must print “There is 1 account and no account is modified” instead.

Sample Input 1:
3
Team000002 Rlsp0dfa
Team000003 perfectpwd
Team000001 R1spOdfa
Sample Output 1:
2
Team000002 RLsp%dfa
Team000001 R@spodfa
Sample Input 2:
1
team110 abcdefg332
Sample Output 2:
There is 1 account and no account is modified
Sample Input 3:
2
team110 abcdefg222
team220 abcdefg333
Sample Output 3:
There are 2 accounts and no account is modified
题目大意:给定n个用户的姓名和密码,把密码中的1改为@,0改为%,l改为L,O改为o
如果不存在需要修改的密码,则输出There are n accounts and no account is modified。注意单复数,如果只有一个账户,就输出There is 1 account and no account is modified

分析:把需要改变的字符串改变后存储在字符串数组vector里面,根据数组里面元素的个数是否为0输出相应的结果

1073. Scientific Notation (20)-PAT甲级真题

Scientific notation is the way that scientists easily handle very large numbers or very small numbers. The notation matches the regular expression [+-][1-9]”.”[0-9]+E[+-][0-9]+ which means that the integer portion has exactly one digit, there is at least one digit in the fractional portion, and the number and its exponent’s signs are always provided even when they are positive.

Now given a real number A in scientific notation, you are supposed to print A in the conventional notation while keeping all the significant figures.

Input Specification:

Each input file contains one test case. For each case, there is one line containing the real number A in scientific notation. The number is no more than 9999 bytes in length and the exponent’s absolute value is no more than 9999.

Output Specification:

For each test case, print in one line the input number A in the conventional notation, with all the significant figures kept, including trailing zeros,

Sample Input 1:
+1.23400E-03
Sample Output 1:
0.00123400
Sample Input 2:
-1.2E+10
Sample Output 2:
-12000000000

题目大意:题目给出科学计数法的格式的数字A,要求输出普通数字表示法的A,并保证所有有效位都被保留,包括末尾的0

分析:n保存E后面的字符串所对应的数字,t保存E前面的字符串,不包括符号位。当n<0时表示向前移动,那么先输出0. 然后输出abs(n)-1个0,然后继续输出t中的所有数字;当n>0时候表示向后移动,那么先输出第一个字符,然后将t中尽可能输出n个字符,如果t已经输出到最后一个字符(j == t.length())那么就在后面补n-cnt个0,否则就补充一个小数点。 然后继续输出t剩余的没有输出的字符~

 

1058. A+B in Hogwarts (20)-PAT甲级真题

If you are a fan of Harry Potter, you would know the world of magic has its own currency system — as Hagrid explained it to Harry, “Seventeen silver Sickles to a Galleon and twenty-nine Knuts to a Sickle, it’s easy enough.” Your job is to write a program to compute A+B where A and B are given in the standard form of “Galleon.Sickle.Knut” (Galleon is an integer in [0, 107], Sickle is an integer in [0, 17), and Knut is an integer in [0, 29)).

Input Specification:

Each input file contains one test case which occupies a line with A and B in the standard form, separated by one space.

Output Specification:

For each test case you should output the sum of A and B in one line, with the same format as the input.

Sample Input:
3.2.1 10.16.27
Sample Output:
14.1.28

题目大意:17个Sickle对换一个Galleon,29个Knut对换一个Sickle。根据Galleon.Sickle.Knut的方式相加A和B
分析:像相加算术一样从后往前按位相加,处理好进位~

1027. Colors in Mars (20)-PAT甲级真题

People in Mars represent the colors in their computers in a similar way as the Earth people. That is, a color is represented by a 6-digit number, where the first 2 digits are for Red, the middle 2 digits for Green, and the last 2 digits for Blue. The only difference is that they use radix 13 (0-9 and A-C) instead of 16. Now given a color in three decimal numbers (each between 0 and 168), you are supposed to output their Mars RGB values.

Input

Each input file contains one test case which occupies a line containing the three decimal color values.

Output

For each test case you should output the Mars RGB value in the following format: first output “#, then followed by a 6-digit number where all the English characters must be upper-cased. If a single color is only 1-digit long, you must print a “0” to the left.

Sample Input
15 43 71
Sample Output
#123456

题目大意:给三个十进制的数,把它们转换为十三进制的数输出。要求在前面加上一个”#”号
分析:因为0~168的十进制转换为13进制不会超过两位数,所以这个两位数为(num / 13)(num % 13)构成的数字