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@karamanbk
Created June 9, 2019 06:59
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from datetime import datetime, timedelta,date
import pandas as pd
%matplotlib inline
import matplotlib.pyplot as plt
import numpy as np
from __future__ import division
import warnings
warnings.filterwarnings("ignore")
import plotly.plotly as py
import plotly.offline as pyoff
import plotly.graph_objs as go
#import Keras
import keras
from keras.layers import Dense
from keras.models import Sequential
from keras.optimizers import Adam
from keras.callbacks import EarlyStopping
from keras.utils import np_utils
from keras.layers import LSTM
from sklearn.model_selection import KFold, cross_val_score, train_test_split
#initiate plotly
pyoff.init_notebook_mode()
#read the data in csv
df_sales = pd.read_csv('sales_data.csv')
#convert date field from string to datetime
df_sales['date'] = pd.to_datetime(df_sales['date'])
#show first 10 rows
df_sales.head(10)
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