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import gradio as gr | |
from PIL import Image | |
import requests | |
import hopsworks | |
import joblib | |
import pandas as pd | |
project = hopsworks.login() | |
fs = project.get_feature_store() | |
mr = project.get_model_registry() | |
model = mr.get_model("wine_model", version=1) | |
model_dir = model.download() | |
model = joblib.load(model_dir + "/wine_model.pkl") | |
print("Model downloaded") | |
def wine(type,fixed_acidity,volatile_acidity,citric_acid,residual_sugar,chlorides,free_sulfur_dioxide,total_sulfur_dioxide,density,ph,sulphates,alcohol): | |
print("Calling function") | |
df = pd.DataFrame([[type,fixed_acidity,volatile_acidity,citric_acid,residual_sugar,chlorides,free_sulfur_dioxide,total_sulfur_dioxide,density,ph,sulphates,alcohol]], | |
columns=['type','fixed_acidity','volatile_acidity','citric_acid','residual_sugar','chlorides','free_sulfur_dioxide','total_sulfur_dioxide','density','ph','sulphates','alcohol']) | |
print("Predicting") | |
print(df) | |
# 'res' is a list of predictions returned as the label. | |
res = model.predict(df) | |
# We add '[0]' to the result of the transformed 'res', because 'res' is a list, and we only want | |
# the first element. | |
# print("Res: {0}").format(res) | |
print(res) | |
# flower_url = "https://raw.githubusercontent.com/featurestoreorg/serverless-ml-course/main/src/01-module/assets/" + res[0] + ".png" | |
# img = Image.open(requests.get(flower_url, stream=True).raw) | |
return res[0] | |
demo = gr.Interface( | |
fn=wine, | |
title="Wine Predictive Analytics", | |
description="Experiment with wine features to predict which quality of wine it is.", | |
allow_flagging="never", | |
inputs=[ | |
gr.Number(value=0, label="type 0 for white, 1 for red"), | |
gr.Number(value=7.0, label="fixed_acidity"), | |
gr.Number(value=0.0, label="volatile_acidity"), | |
gr.Number(value=0.0, label="citric_acid"), | |
gr.Number(value=5.0, label="residual_sugar"), | |
gr.Number(value=0.0, label="chlorides"), | |
gr.Number(value=30.0, label="free_sulfur_dioxide"), | |
gr.Number(value=115.0, label="total_sulfur_dioxide"), | |
gr.Number(value=1.0, label="density"), | |
gr.Number(value=3.0, label="ph"), | |
gr.Number(value=0.0, label="sulphates"), | |
gr.Number(value=10.0, label="alcohol") | |
], | |
outputs=gr.Label("Predicted Quality") | |
) | |
demo.launch(debug=True) | |