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Letter, digraph and trigraph frequencies in written Dutch

Citation for published version (APA):

Larochelle, S. (1983). Letter, digraph and trigraph frequencies in written Dutch. (IPO-Rapport; Vol. 438). Instituut

voor Perceptie Onderzoek (IPO).

Document status and date:

Published: 15/04/1983

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(2)

Rapport no. 438

Letter, digraph and trigt'aEQ

frequencies in written D~tch

(3)

INSTITUUT VOOR PERCEPTIE ONDERZOEK

Den Dolech 2 -

Eindhoven

Rapport no. 438

Letter, digraph and trigraph in written Dutch

S. Larochelle

Summary

SL/an 83/06

15.04.1983

This report presents letter, digraph and trigraph frequencies

in the Dutch written language, based on Uit den'B~ogaart's

(4)

This report presents a frequency count of single letters,

digraphs and trigraphs for the Dutch written language.

Other

such counts do exist. However, earlier counts like that of

Berckel, Brandt Corstius, Mokken and van Wijngaarden

(1965)

were based on a much more restricted sample of Dutch texts.

The present count is based on a word-frequency list, derived

by Marcus and Goldstein (Note

1)

frcm Uit den Bogaart's

(1975) corpus.

The Marcus and Goldstein list contains

69,617

different entries (types), fora tota

l

of

593,519 word

tokens.

Actually, the list

d

oes not consist only of single

words, but it also includes compounf words, multi-words

expressions and numerical expressions.

For the present

frequency count, I excluded from the l

i

st all the entries

containing digits.

I also excluded from the list all the

entries containing non-alphabetic symbols which occurred less

than

50 times, like:

the double-quote

,

the left and right

parentheses, the slashes, etc ••. The entries containing

apostrophes, hyphens, periods and spaces remained.

.

The

resulting list contained

67,703 typEis, representing 588,793

word tokens.

It is worth ment

i

oning that words categor

i

zed as names and

foreign words by Uit den Boog aart a1~e inc

l

uded in the present

frequency count. It would pe

r

haps have been possible to

obtain frequencies that are more representative of classical

Dutch by eliminating names and/or foreign words (although Uit

den Boogaart's categorization is ofl:en questionable with

respect to such words).

I have cho

:

;;en to keep these words so

that the frequencies presented are more representative of

contemporary Dutch texts.

The

f

requencies reported he

re

in apply indiscriminately to

upper and lower case letters, since this distinction was not

preserved in Marcus and Goldstein's list.

Marcus and

(5)

Goldstein did not distinguish betweein words breken across

lines and unbroken words in Uit den Boogaart's corpus.

So,

the frequencies pertaining to the hyphen represent only cases

of true hyphenation, as in ANTI-POLIO and CHOCOLADE-MELK.

Similarly, the periods come from name initials and

abbreviations, as in T.V.; not from s~ntence punctuation.

Finally, the spaces come from multi-·words expresssions, like

APRIORI, and they are represented hereafter by!•

The frequencies are presented in two different ways.

The raw

frequencies are g i ven in Table 1 whE!reas, in Table 2, the

frequencies are presented as percentages of the total number

of character, digraph and trigraph tekens. Table

1

has the

form of a 3-dimensional matrix.

Each

page

is devoted t o a

single character (letter or non-alphabetic symbol), showing

the frequency of all the trigraphs uhich have this character

in

middle position.

The lines with

:

L

n each page represent the

various characters occupying the fi1~st position in the

trigraphs, whereas the columns represent the c};laracters in

last position.

So, the top

l

eft ce

l

l of

the

first page,

which is devoted to the letter~' shows that the trigraph AAA

occurred

1

time in the 588,793 word tekens.

The next cell

shows that AAB occurred 2 times, wh1?reas

the

cell be low AAA

shows that BAA occurred

914

times.

The bottom line of the first page g

i

ves the frequency of the

digraphs starting with ~' whereas the rightmost column gives

the frequency of the digraphs endinq in~-

Note that there

is some redundancy in the presentat:Lon of the digraph

frequencies, the AA frequency being shown twice on

the

first

page for instance.

If this

redundancy

is of little use in

the case of digraphs made of a single repeated character like

AA, i t can f aci

1

i tate the reader' s

,:i.ccess to the

information

in the case of digraphs made of dif

:

E

erent letters, like AB

and BA, the

frequency

of such digraphs being available on

(6)

both the page devoted to A and the page devoted to B.

Finally, the bottom right cell of each page shows the

frequency

of occurrence of the chara,

:::ter to which the page is

devoted.

So, it can be seen on the Eirst page that the

letter A occurred 229,609 times and, on the second page, that

~ occurred 45,287times, etc •••

Note that IJ was considered

as a digraph rather than a letter.

The advantage of the matrix format of Table 1 over a simple

alphabetical listing is that it is easier to see in which

context a given letter or digraph can appear.

For instance,

by counting the number of non-zero cells on the first line of

the first page, one finds that the digraph AA was followed by

19 different characters.

Similarly, by counting the number

of non-zero cells in the first column, one finds that AA was

preceded by 26 different characters.

Of course, a criterion

other than zero could be used.

Note that some contexts are

not

explicitely represented in

Table

1,

namely: the cases where a given letter or digraph

occurred at the very beginning or end of an entry.

However,

such information can be comp

u

ted

frc,m

the

table. For

instance,

by substracting from the total AA frequency

(43,456)

the sum of

the

trigraph fniquencies presented on the

first

line

(43,454), one finds that AA occurred twice at the

end of an entry.

By adding back thei frequencies found under

.=

(1) and! (0), one finds that 3 token words ended with AA.

By doing the same calculations on the first column of the

first

poge, one

finds

that AA occun:ed 6351 times at the

beg inning of an en try, and that 637:!

word

tokens started wi th

AA.

In

short, some informat

i

on concerning the positional

frequency of

digraphs

at

the beginn

i

ng, in the middle and at

the end of words can be extracted f

1

~om the table.

The same

information concerning single

lette~s

can be obtained by

(7)

comparing the letter frequencies and the appropriate surn of

digraph frequencies.

In Table 2, the characters, digraphs and trigraphs are

ordered according to their frequency.

For each page of Table

2, the ordering goes from top to bott?m and from left to

right.

The items with equal frequencies are ordered

alphabetically.

Reference Note

Marcus, S.M.

&

Goldstein, L.

Dutch word frequencies - A

compact corpus. (Memorandum no. 2:30). Eindhoven:

Institute for Perception Research (IPO), 1980.

Reference

Boogaart, P.C. Uit den.

Woor

dfrequenties in geschreven en

gesproken Nederlands. Utrecht: Oo

:

;thoek, Scheltema

&

Holkema, 1975.

Berckel, J.A.Th.M. van, Brandt Corst

:L

us, H., Mokken, R.J.

&

Wijngaarden, A. van.

Formal properties of newspaper

Dutch. Amsterdam: Mathemati

ca! Centre Tracts,

g,

1965.

(8)

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u

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n

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rn

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(9)

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2 10 0 0 0 0 24 191 67 0 0 0 2 0 0 2

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0 0 3 0 44 68 79 0 63 2 14 0 0 0 0 0 43 0 62 0 32 14 5 0 0 0 20 0 0 0 2 0 7 0 0 0 11 0 0 0 25 BT ElJ 21!3 1739 2 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 2 0 0 0 0 0 0 0 0 0 BV 24

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0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 BZ 3 0 0 2 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 B' 4 0 3 0 0 0 0 0 0 0 0 0 0 0 0 0 3 0 0 0 0 0 4 0 0 B-28 0 0 0 0 0 13 0 0 0 0 0 0 0 0 0 0 0

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(10)

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(11)

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(12)

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A B C D G A 157 123 79 834 16 7Z 316 3(1} B 454 0 0 0 8 3 2 0 0 C 113 0 0 0 43 0 0 D 17 0 0 0 28 0 0 E 1465 165 16 4307 5830 194 7 165 F 123 0 0 0 1 7 5 0 0 G 224 0 0 \I2 0 0 H 3 0 0 0 5 0 0 131 36 651 231 4 12 16 3 4 65 0 0 K 7ZI 0 0 0 1~5 0 0 L 271 0 4 6122 0 0 M !ll 0 0 0 10 0 0 N 343 0 0 0 2 6 8 0 0 0 160 26 6 389 447 71 1135 P 1620 0 0 0 5 6 5 0 0 0 0 0 0 0 0 0 0 R 1103 4 0 3750 0 0 S 1289 0 0 0 6 9 3 0 0 T 67 0 0 0 167 0 0 U 144 8 5 513 230 3 9 278 0 0 0 169 0 0 W 5 2 0 10 0 0 X 2 0 0 0 0 0 0 Y 6 0 0 0 13 0 0 Z O 0 0 0 0 0 0 0 0 0 0 0 0 29 0 0 0 37 0 0 0 0 0 0 0 0 0 I 59 0 0 0 52 0 0 LA LB LC lD LE lF l.G 13014 367 114 6709 22860 2342 1632 18 1132 0 1534 0 50 0 30 176 7090 0 185 0 198 0 5 29 1031 0 5 0 245 0 1225 0 13 0 832 32 1077 0 215 0 0 1512 0 394 0 39 2 153 0 275 0 5 0 0 0 4 0 0 0 0 20 0 0 0 48 LH L1 258 19944 K

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(20)

A B M A 196 196 B O 0 C 3 0 53 0 E 1748 251 F 25 0 G 62 0 H 8 0 174 60 6 0 K 57 0 L 166 2 M 246 0 N 228 0 321 168 p Y3 0 0 0 0 R 675 9 û T 156 0 U 53 22 V O 0 W 12 0 X O 0 Y 11 54 Z 3 0 0 0 46 0 0 0 # 110 0 ~ ~ 13501 766 C 0 3 128 2640 0 0 0 0 0 0 0 19 2 596 2420 0 0 17 0 0 35 0 0 24 0 20 336 0 3 27 0 0 23 11 91 0 0 \156 0 0 160 674 2387 0 0 10} 0 0 0 0 141 1355 û Û 4ÎÛ 0 0 79 5 4 218 0 0 0 0 0 9 0 0 0 0 0 4 0 0 0 0 0 0 0 0 31 0 0 0 4 0 54 MC MJ ME 28 1579 24463 G 18 10 0 0 0 0 0 0 2 0 0 0 0 0 0 3 0 0 0 0 0 2 2 0 0 0 0 40 221 0 0 0 0 0 23

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(21)

A 8 N A 421 190 B O 0 C 0 D 16 0 E 824 581 F 9 0 G 89 0 H 4 0 571 73 250 29 K 116 0 L 17 0 M 24 0 N 145 0 0 571 295 P 45 2 Q O 0 R 744 4 5 /Y U T 105 0 U 19 0 V O 0 W 2 0 X 0 0 Y 30 2 Z 6 0 0 0 11 0 0 0 I 30 0 N'. l'8 9600 1178 C D 307 8990 386 0 0 0 0 0 0 0 31 25 6506 2375 0 0 35 0 0 89 0 0 11 271 3767 1340 0 J9 326 0 0 127 0 0 79 0 0 11 0 0 3801 406 7077 1231 0 36 0 0 0 4 471 U U 4:lt> 0 0 75 229 J95 106 0 0 0 0 0 0 0 0 0 12 13 17 0 0 0 0 0 0 0 0 ,.c; 0 0 0 t{) 6 0 24 i'E 1339 26791 13282 G 15 4041 0 0 0 0 0 53 1381 0 0 0 0 0 212 13118 9 0 3 0 0 0 0 0 0 191 1882 0 0 0 0 3 0 0 0 0 3 67 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 NF fG 479 20506 111 735 0 0 0 0 0 7 602 1772

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