Time Limit: 1000MS | Memory Limit: 65536K | |
Total Submissions: 2071 | Accepted: 606 |
Description
Flesch Reading Ease, a readability test named after its deviser Rudolf Flesch, is among most ubiquitously used readability tests, which are principally employed for assessment of the difficulty to understand a reading passage written in English. The Flesch Reading Ease score of a passage relies solely on three statistics, namely the total numbers of sentences, words and syllables, of the passage. Specifically, the score is defined by the following formula:
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As can be inferred from the above formula, a passage with a high Flesch Reading Ease score tends to favor shorter sentences and words, which is in compliance with commonsense in spite of partial accuracy. (Think of, for instance, the word "television". Long as it may seem, it is indeed one of the first words that any individual who studies English learns.) A related Wikipedia entry on Flesch Reading Ease [1] suggests that passages scoring 90~100 are comprehensible for an average American 5th grader, and 8th and 9th graders possess the ability to follow passages with a score in the range of 60~70, whereas passages not exceeding 30 in the score are best suitable for college graduates. The text of this problem, all sections taken into account, scores roughly 50 as per the calculation of Google Documents.
Despite the simplicity in its ideas, several aspects of its definition remains vague for any real-world implementation of Flesch Reading Ease. For the sake of precision and uniformity, the following restrictions adapted from [2] are adopted for this problem, to which you are to write a solution that effectively computes the Flesch Reading Ease score of a given passage of English text.
- Periods, explanation points, colons and semicolons serve as sentence delimiters.
- Each group of continuous non-blank characters with beginning and ending punctuation removed counts as a word.
- Each vowel (one of a, e, i, o, u and y) in a word is considered one syllable subject to that
- -es, -ed and -e (except -le) endings are ignored,
- words of three letters or shorter count as single syllables,
- consecutive vowels count as one syllable.
References
- Wikipedia contributors. Flesch-Kincaid Readability Test. Wikipedia, The Free Encyclopedia. August 30, 2007, 01:57 UTC. Available at: http://en.wikipedia.org/w
/index.php?title=Flesch . Accessed September 5, 2007.-Kincaid_Readability_Test &oldid=154509512 - Talburt, J. 1985. The Flesch index: An easily programmable readability analysis algorithm. In Proceedings of the 4th Annual international Conference on Systems Documentation. SIGDOC '85. ACM Press, New York, NY, 114-122.
Input
Output
Sample Input
Flesch Reading Ease, a readability test named after its deviser Rudolf Flesch, is among most ubiquitously used readability tests, which are principally employed for assessment of the difficulty to understand a reading passage written in English. The Flesch Reading Ease score of a passage relies solely on three statistics, namely the total numbers of sentences, words and syllables, of the passage.
Sample Output
26.09
给出了一段话,求这段话里面单词的个数,句子的个数,音节的个数,然后带入到上面的公式中输出结果。
单词的个数很好查,scanf("%s")输入一个就是一个单词。
一个句子的标志是句号“.”、问号“?”、冒号“:”、分号“;”、感叹号“!”。出现了这些符号就sen++。
比较麻烦的在于音节的计算。
首先,如果一个单词的长度小于等于3,那么这个单词固定就是贡献了一个音节的数量。
如果长度大于3,那么单词中出现一个“a”“e”“i”“o”“u”“y”“A”“E”“I”“O”“U”“Y”,音节数就+1。但是连续出现的元音字母就只算一次,注意是连续出现,连续出现2次算一个,连续出现3次也只算一个。
如果一个单词的末尾是es、ed、e(除了le),那么忽略这些字符。
所以。。。这种模拟题觉得也就做一做吧,感觉其实没什么价值。。。
代码:
#include <iostream> #include <algorithm> #include <cmath> #include <vector> #include <string> #include <cstring> #pragma warning(disable:4996) using namespace std; char test[1005]; double wor, sen, syl;//61 2 108 bool check2(char x) { if (x == 'a' || x == 'e' || x == 'o' || x == 'u' || x == 'y' || x == 'i' || x == 'A' || x == 'E' || x == 'I' || x == 'O' || x == 'U' || x == 'Y') { return true; } else { return false; } } int check(char *x) { int len = strlen(x); int i, res; while (!((x[len - 1] >= 'a'&&x[len - 1] <= 'z') || (x[len - 1] >= 'A'&&x[len - 1] <= 'Z'))) { len--; } res = 0; if (len <= 3) { return 1; } if (x[len - 2] == 'e'&&x[len - 1] == 's') { len = len - 2; } else if (x[len - 2] == 'e'&&x[len - 1] == 'd') { len = len - 2; } else if (x[len - 1] == 'e') { if (x[len - 2] != 'l') { len = len - 1; } } if (check2(x[0])) { res++; } for (i = 1; i < len; i++) { if (check2(x[i]) && !check2(x[i - 1])) { res++; } } return res; } int main() { //freopen("i.txt","r",stdin); //freopen("o.txt","w",stdout); wor = 0; sen = 0; syl = 0; int len; char temp; double res; while (scanf("%s", test) != EOF) { wor++; len = strlen(test); temp = test[len - 1]; if (temp == '.' || temp == '?' || temp == ':' || temp == ';' || temp == '!') { sen++; } syl += check(test); } res = 206.835 - 1.015*(wor / sen) - 84.6*(syl / wor); printf("%.2f ", res); return 0; }
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