Average word length |
---|
7.4492 |
word length | percentage |
---|---|
1 | 0.2369 |
2 | 1.1625 |
3 | 3.7561 |
4 | 7.7222 |
5 | 12.8166 |
6 | 16.0549 |
7 | 14.1940 |
8 | 12.5089 |
9 | 10.7163 |
10 | 8.2155 |
11 | 5.2482 |
12 | 3.3165 |
13 | 2.1980 |
14 | 1.0941 |
15 | 0.7229 |
16 | 0.3907 |
17 | 0.2686 |
18 | 0.1612 |
19 | 0.0855 |
20 | 0.0757 |
21 | 0.0391 |
22 | 0.0269 |
23 | 0.0269 |
24 | 0.0049 |
25 | 0.0049 |
26 | 0.0049 |
27 | 0.0073 |
28 | 0.0024 |
29 | 0.0024 |
In this subsection we ignore the fact that words have different frequencies. So for the average word length, each word is considered equally. For a fixed word length, we count the number of different words having this length.
The plot of the word length against the number of words of this length usually has a clear maximum between 10 and 15. Moreover, with a logarithmic scale of the y-axis, we get a nearly linear part between length 15 and 40.
Average word length is one of the classic parameters for a language.
Counting without multiplicity makes average word length depending on the corpus size. A larger corpus contains more words, and the additional words are usually longer. Hence, average word length should increase with corpus size.
Average word length:
select avg(char_length(word)) from words where w_id>100;;
Data for large table:
SELECT @all:=count(*) from words where w_id>100;
select char_length(word), 100*count(*)/@all from words where w_id>100 group by char_length;
Do we have the linear part between 15 and 40 for (nearly) all languages?
Where does it come from?
Calculate and compare the slope!
3.5.1.2 Words by Length with multiplicity