A Corpus of 21st Century Scots Texts

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Levenshtein Distance

Enter a word to find nearest neighbouring words, for example ablow

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Similar words to honed in Corpus

Levenshtein Double Levenshtein SoundEx MetaPhone Manually curated
honed (0) - 5 freq
honey (1) - 413 freq
howed (1) - 2 freq
zoned (1) - 1 freq
toned (1) - 1 freq
hoked (1) - 11 freq
hoped (1) - 42 freq
hosed (1) - 1 freq
phoned (1) - 72 freq
boned (1) - 2 freq
holed (1) - 7 freq
hoyed (1) - 8 freq
honked (1) - 3 freq
horned (1) - 2 freq
hond (1) - 3 freq
hoved (1) - 4 freq
hoes (2) - 2 freq
cloned (2) - 1 freq
cned (2) - 1 freq
homer (2) - 1 freq
hooded (2) - 1 freq
vaned (2) - 1 freq
lone (2) - 9 freq
loed (2) - 4 freq
hornet (2) - 34 freq
honed (0) - 5 freq
hond (1) - 3 freq
hnd (2) - 3 freq
hynd (2) - 1 freq
hoved (2) - 4 freq
honeyed (2) - 1 freq
hained (2) - 27 freq
hoond (2) - 2 freq
hand (2) - 319 freq
hund (2) - 1 freq
hound (2) - 11 freq
hind (2) - 14 freq
horned (2) - 2 freq
hnid (2) - 1 freq
phoned (2) - 72 freq
hoked (2) - 11 freq
hosed (2) - 1 freq
honey (2) - 413 freq
boned (2) - 2 freq
zoned (2) - 1 freq
howed (2) - 2 freq
toned (2) - 1 freq
hoyed (2) - 8 freq
honked (2) - 3 freq
holed (2) - 7 freq
SoundEx code - H530
haund - 384 freq
hummed - 10 freq
handy - 56 freq
haundie - 1 freq
haunt - 28 freq
hin't - 1 freq
haunit - 2 freq
hint - 78 freq
hoond - 2 freq
hand - 319 freq
hant - 6 freq
hunt - 62 freq
honed - 5 freq
him-it - 1 freq
hent - 6 freq
haundy - 18 freq
hannit - 20 freq
hantie - 4 freq
hamewith - 9 freq
hained - 27 freq
honey-dew - 1 freq
haunmaid - 1 freq
handee - 4 freq
handie - 3 freq
hind - 14 freq
haun't - 4 freq
hemmed - 3 freq
'haund - 3 freq
hem't - 1 freq
hannet - 2 freq
hummit - 1 freq
haand - 104 freq
hindu - 8 freq
him-hit - 1 freq
honeyed - 1 freq
hunda - 1 freq
haun-med - 1 freq
hainit - 6 freq
him-id - 1 freq
houmit - 1 freq
hunde - 1 freq
hinnied - 1 freq
hamada - 1 freq
haint - 3 freq
haunnit - 2 freq
hende - 1 freq
heymouthe - 1 freq
hynd - 1 freq
€œhunty - 1 freq
hound - 11 freq
€œhand - 1 freq
hnd - 3 freq
hindi - 2 freq
hond - 3 freq
henwudie - 1 freq
henwuddie - 3 freq
haun-made - 1 freq
hammett - 1 freq
heymooth - 1 freq
huntie - 1 freq
heynd - 1 freq
hmt - 1 freq
‘hand - 1 freq
hnuty - 1 freq
hmdt - 1 freq
honeat - 1 freq
hund - 1 freq
hnid - 1 freq
hunt' - 1 freq
handw - 1 freq
MetaPhone code - HNT
haund - 384 freq
handy - 56 freq
haundie - 1 freq
haunt - 28 freq
hin't - 1 freq
haunit - 2 freq
hint - 78 freq
hoond - 2 freq
hand - 319 freq
hant - 6 freq
hunt - 62 freq
honed - 5 freq
hent - 6 freq
haundy - 18 freq
hannit - 20 freq
hantie - 4 freq
hained - 27 freq
honey-dew - 1 freq
handee - 4 freq
handie - 3 freq
hind - 14 freq
haun't - 4 freq
'haund - 3 freq
hannet - 2 freq
haand - 104 freq
hindu - 8 freq
hunda - 1 freq
hainit - 6 freq
hunde - 1 freq
hinnied - 1 freq
haint - 3 freq
haunnit - 2 freq
hende - 1 freq
€œhunty - 1 freq
hound - 11 freq
€œhand - 1 freq
hindi - 2 freq
hond - 3 freq
huntie - 1 freq
heynd - 1 freq
‘hand - 1 freq
honeat - 1 freq
hund - 1 freq
hunt' - 1 freq
handw - 1 freq
HONED
Time to execute Levenshtein function - 0.488456 milliseconds
The Levenshtein distance is the number of characters you have to replace, insert or delete to transform one word into another, its useful for detecting typos and alternative spellings
Time to execute Double Levenshtein function - 0.534470 milliseconds
In a stroke of genius, this runs the Levenshtein function twice, once without vowels and adds the distance together, giving double weight to consonants.
Time to execute SoundEx function - 0.060908 milliseconds
Soundex is a phonetic algorithm for indexing names by sound, as pronounced in English. The goal is for homophones to be encoded to the same representation so that they can be matched despite minor differences in spelling.
Time to execute MetaPhone function - 0.037847 milliseconds
Metaphone is a phonetic algorithm, published by Lawrence Philips in 1990, for indexing words by their English pronunciation.[1] It fundamentally improves on the Soundex algorithm by using information about variations and inconsistencies in English spelling and pronunciation to produce a more accurate encoding, which does a better job of matching words and names which sound similar.
Time to execute Manually curated function - 0.000869 milliseconds
Manual Curation uses a lookup table / lexicon which has been created by hand which links words to their lemmas, and includes obvious typos and spelling variations. Not all words are covered.