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K.Tharmikan
TMP-23-105
Commits
eeb3cf8b
Commit
eeb3cf8b
authored
Nov 23, 2023
by
M.A. Miqdad Ali Riza
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Update Wishlist_create.py
parent
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Wishlist_create.py
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Wishlist_create.py
View file @
eeb3cf8b
from
main_imports
import
MDScreen
from
ProjectFiles.applibs
import
utils
import
warnings
from
kivy.core.audio
import
SoundLoader
import
pandas
as
pd
import
numpy
as
np
from
sklearn.metrics.pairwise
import
cosine_similarity
# Load the song data
song_ratings
=
pd
.
read_csv
(
"song_ratings.csv"
)
import
os
warnings
.
filterwarnings
(
'ignore'
)
utils
.
load_kv
(
"Wish_list.kv"
)
# Create a user-song matrix
user_song_ratings
=
song_ratings
.
pivot_table
(
index
=
'user_id'
,
columns
=
'song_id'
,
values
=
'rating'
)
user_song_ratings
.
fillna
(
0
,
inplace
=
True
)
# Calculate the cosine similarity between songs
song_similarity
=
cosine_similarity
(
user_song_ratings
.
T
)
# Define a function to generate song recommendations for a user
def
generate_song_recommendations
(
user_id
,
num_recommendations
=
10
):
if
user_id
not
in
user_song_ratings
.
index
:
print
(
f
"User ID {user_id} not found."
)
return
[]
class
Wish_list_Screen
(
MDScreen
):
def
__init__
(
self
,
**
kwargs
):
super
(
Wish_list_Screen
,
self
)
.
__init__
(
**
kwargs
)
user_ratings
=
user_song_ratings
.
loc
[
user_id
]
.
values
song_scores
=
np
.
dot
(
user_ratings
,
song_similarity
)
/
np
.
sum
(
np
.
abs
(
song_similarity
),
axis
=
1
)
recommended_song_indices
=
np
.
argsort
(
-
song_scores
)[:
num_recommendations
]
recommended_song_ids
=
user_song_ratings
.
columns
[
recommended_song_indices
]
.
tolist
()
return
recommended_song_ids
def
btnA
(
self
):
# Example: Generate song recommendations for user 98549
user_id
=
98549
recommended_songs
=
generate_song_recommendations
(
user_id
,
num_recommendations
=
5
)
if
recommended_songs
:
print
(
f
"Recommended songs for user {user_id}:"
)
print
(
recommended_songs
)
else
:
print
(
"No recommendations available for this user."
)
class
RecommendationSystem
:
def
__init__
(
self
,
song_ratings_file
):
data
=
pd
.
read_csv
(
song_ratings_file
)
with
open
(
"mood_label.txt"
,
"r"
)
as
file
:
readdata
=
file
.
read
()
self
.
song_ratings
=
data
[
data
[
'types'
]
==
readdata
]
# self.song_ratings = pd.read_csv(song_ratings_file)
self
.
user_song_ratings
=
self
.
preprocess_data
()
def
preprocess_data
(
self
):
# Pivot the data to create a user-song matrix
user_song_ratings
=
self
.
song_ratings
.
pivot_table
(
index
=
'user_id'
,
columns
=
'song_id'
,
values
=
'rating'
)
user_song_ratings
.
fillna
(
0
,
inplace
=
True
)
return
user_song_ratings
def
content_based_recommendations
(
self
,
user_id
,
num_recommendations
=
10
):
user_songs
=
self
.
user_song_ratings
.
loc
[
user_id
]
recommended_songs
=
user_songs
.
sort_values
(
ascending
=
False
)
.
head
(
num_recommendations
)
return
recommended_songs
.
index
.
tolist
()
# Initialize the recommendation system
recommendation_system
=
RecommendationSystem
(
"song_ratings_new.csv"
)
user_ids
=
[
1
]
for
user_id
in
user_ids
:
# Get content-based recommendations for each user
recommended_songs
=
recommendation_system
.
content_based_recommendations
(
user_id
,
num_recommendations
=
5
)
if
recommended_songs
:
print
(
f
"Recommended songs for user {user_id}:"
)
print
(
recommended_songs
)
self
.
l1
.
text
=
str
(
recommended_songs
)
else
:
print
(
f
"No recommendations available for user {user_id}"
)
self
.
ids
.
play
.
opacity
=
1
self
.
ids
.
pause
.
opacity
=
1
self
.
ids
.
next
.
opacity
=
1
self
.
ids
.
previous
.
opacity
=
1
self
.
ids
.
current_audio_label
.
opacity
=
1
audio_files
=
recommended_songs
static_part
=
'wishlistData/'
self
.
audio_files
=
[
static_part
+
file
+
'.mp3'
for
file
in
audio_files
]
file_path
=
'audio_files.txt'
# Open the file in write mode and write the audio files
with
open
(
file_path
,
'w'
)
as
file
:
for
item
in
self
.
audio_files
:
file
.
write
(
"
%
s
\n
"
%
item
)
self
.
current_audio_index
=
0
self
.
sound
=
None
if
self
.
current_audio_index
<
len
(
self
.
audio_files
):
self
.
sound
=
SoundLoader
.
load
(
self
.
audio_files
[
self
.
current_audio_index
])
def
play_audio
(
self
):
if
self
.
sound
and
self
.
sound
.
state
==
'stop'
:
self
.
sound
.
play
()
self
.
ids
.
current_audio_label
.
text
=
f
"Current Audio: {self.audio_files[self.current_audio_index]}"
def
play_next_audio
(
self
):
if
self
.
sound
:
self
.
sound
.
stop
()
self
.
current_audio_index
+=
1
if
self
.
current_audio_index
>=
len
(
self
.
audio_files
):
self
.
current_audio_index
=
0
self
.
sound
.
unload
()
self
.
sound
=
SoundLoader
.
load
(
self
.
audio_files
[
self
.
current_audio_index
])
self
.
sound
.
play
()
self
.
ids
.
current_audio_label
.
text
=
f
"Current Audio: {self.audio_files[self.current_audio_index]}"
def
pause_audio
(
self
):
if
self
.
sound
and
self
.
sound
.
state
==
'play'
:
self
.
sound
.
stop
()
def
play_previous_audio
(
self
):
if
self
.
sound
:
self
.
sound
.
stop
()
self
.
current_audio_index
-=
1
if
self
.
current_audio_index
<
0
:
self
.
current_audio_index
=
len
(
self
.
audio_files
)
-
1
self
.
sound
.
unload
()
self
.
sound
=
SoundLoader
.
load
(
self
.
audio_files
[
self
.
current_audio_index
])
self
.
sound
.
play
()
self
.
ids
.
current_audio_label
.
text
=
f
"Current Audio: {self.audio_files[self.current_audio_index]}"
\ No newline at end of file
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