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Flood Prediction
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Intelligent Tank Management System
Flood Prediction
Commits
136b764a
Commit
136b764a
authored
Jul 18, 2022
by
Mohamed Naseef
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136b764a
import
numpy
as
np
import
nltk
# nltk.download('punkt')
from
nltk.stem.porter
import
PorterStemmer
stemmer
=
PorterStemmer
()
def
tokenize
(
sentence
):
"""
split sentence into array of words/tokens
a token can be a word or punctuation character, or number
"""
return
nltk
.
word_tokenize
(
sentence
)
def
stem
(
word
):
"""
stemming = find the root form of the word
examples:
words = ["organize", "organizes", "organizing"]
words = [stem(w) for w in words]
-> ["organ", "organ", "organ"]
"""
return
stemmer
.
stem
(
word
.
lower
())
def
bag_of_words
(
tokenized_sentence
,
words
):
"""
return bag of words array:
1 for each known word that exists in the sentence, 0 otherwise
example:
sentence = ["hello", "how", "are", "you"]
words = ["hi", "hello", "I", "you", "bye", "thank", "cool"]
bog = [ 0 , 1 , 0 , 1 , 0 , 0 , 0]
"""
# stem each word
sentence_words
=
[
stem
(
word
)
for
word
in
tokenized_sentence
]
# initialize bag with 0 for each word
bag
=
np
.
zeros
(
len
(
words
),
dtype
=
np
.
float32
)
for
idx
,
w
in
enumerate
(
words
):
if
w
in
sentence_words
:
bag
[
idx
]
=
1
return
bag
\ No newline at end of file
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