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PREDICTIVE ANALYTICS FOR RESTAURANT BUSINESS Cenacle Research India Private Limited

Restaurant Customer Order Prediction - By - Cenacle Research

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Cenacle Research is engaged in building Predictive Analytics Engines for Automotive, Healthcare, Retail, Energy and BFSI sector. This is our latest Big data Analytics offering for Restaurant Business. Our latest Resurant Order Prediction System helps you Predict your customer orders, and know how your restaurant orders are going to be affected by external influence such as weather and holidays. Features of our system: + Customer Churn Analysis: Know when and why your customer leave your services + Association Rules: Know which items your customers are buying together + Item-wise-Predictions: Know how many items are expected to be sold in near future? + What-if Analysis: Know how your future orders get affected by holidays, events and wether so on... To know more, write to us at: http://cenacle.co.in/

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Page 1: Restaurant Customer Order Prediction - By - Cenacle Research

PREDICTIVE ANALYTICS FOR

RESTAURANT BUSINESSCenacle Research India Private Limited

Page 2: Restaurant Customer Order Prediction - By - Cenacle Research

Business Challenges

• Customer Retention

• Cost Reduction

Page 3: Restaurant Customer Order Prediction - By - Cenacle Research

Business Challenges

• Customer Retention

• How do I make my customers come back?

• Cost Reduction

Page 4: Restaurant Customer Order Prediction - By - Cenacle Research

Business Challenges

• Customer Retention

• How do I make my customers come back?

• Cost Reduction

• How do I increase my profit margins (without increasing prices)?

Page 5: Restaurant Customer Order Prediction - By - Cenacle Research

Business Challenges

• Customer Retention

• How do I make my customers come back?

• Cost Reduction

• How do I increase my profit margins (without increasing prices)?

• These two are not necessarily independent

• Fixing one might often fix the other automatically

• There could be more apart from the above

• But all of them can be potentially expressed in terms of one of the

above

Page 6: Restaurant Customer Order Prediction - By - Cenacle Research

Customer Retention

• Understanding the customer behaviour

• Who are the customers most likely to stay / leave?

• What are the factors that affect a customer to stay / leave?

Page 7: Restaurant Customer Order Prediction - By - Cenacle Research

Customer Retention

• Understanding the customer behaviour

• Who are the customers most likely to stay / leave?

• What are the factors that affect a customer to stay / leave?

• Primary Driver: Customer Satisfaction

• Service / Product Quality

• Response Time

• Expectation (mis)match

Page 8: Restaurant Customer Order Prediction - By - Cenacle Research

Customer Retention

• Understanding the customer behaviour

• Who are the customers most likely to stay / leave?

• What are the factors that affect a customer to stay / leave?

• Primary Driver: Customer Satisfaction

• Service / Product Quality

• Response Time

• Expectation (mis)match

• Secondary Drivers: Price, External Factors (weather…)

Page 9: Restaurant Customer Order Prediction - By - Cenacle Research

Customer Retention

• Understanding the customer behaviour

• Who are the customers most likely to stay / leave?

• What are the factors that affect a customer to stay / leave?

• Primary Driver: Customer Satisfaction

• Service / Product Quality

• Response Time

• Expectation (mis)match

• Secondary Drivers: Price, External Factors (weather…)

• What if tomorrow rains? Would it affect my sales?

• Rather what if tomorrow is Sunny?

• What if the Christmas falls on Sunday? How would my sales be?

Page 10: Restaurant Customer Order Prediction - By - Cenacle Research

Cost Reduction

• Waste Elimination

• Optimal Work-labor Costs

Page 11: Restaurant Customer Order Prediction - By - Cenacle Research

Cost Reduction

• Waste Elimination

• Produce right levels to match the consumption

• Optimal Work-labor Costs

• Right labor schedules that match the demand

Page 12: Restaurant Customer Order Prediction - By - Cenacle Research

Cost Reduction

• Waste Elimination

• Produce right levels to match the consumption

• Optimal Work-labor Costs

• Right labor schedules that match the demand

• Observation: We can eliminate waste if we know the

consumption/demand before hand

Page 13: Restaurant Customer Order Prediction - By - Cenacle Research

Cost Reduction

• Waste Elimination

• Produce right levels to match the consumption

• Optimal Work-labor Costs

• Right labor schedules that match the demand

• Observation: We can eliminate waste if we know the

consumption/demand before hand

• Challenge: How can we know the consumption / demand

before hand?

Page 14: Restaurant Customer Order Prediction - By - Cenacle Research

Cost Reduction

• Waste Elimination• Produce right levels to match the consumption

• Optimal Work-labor Costs• Right labor schedules that match the demand

• Observation: We can eliminate waste if we know the consumption/demand before hand

• Challenge: How can we know the consumption / demand before hand?

• Solution: Predictive Analytics

Page 15: Restaurant Customer Order Prediction - By - Cenacle Research

CUSTOMER ORDER

PREDICTIONCenacle Research India Private Limited

Page 16: Restaurant Customer Order Prediction - By - Cenacle Research

Agenda

• Model Demonstration

• Order Prediction

• Association Rules

• Features:

• Single-line command interface

• CSV I/O – ready for any pipeline integration

• Robust forecasting algorithms

• Analysis on multiple levels

• Forecast results from multiple models

• Vast output of auxiliary data (useful for further analysis)

• Discussion for adjustments in I/O

• Future Model possibilities

Page 17: Restaurant Customer Order Prediction - By - Cenacle Research

Model

• Order Prediction• How many orders expected in the next 7 days?

• Results from multiple prediction algorithms

• Association Rules• Which items are being frequently ordered together?

• Can lead to better pricing strategy

• Note:• Input data format:

• Dates to be in ‘YYYY-MM-DD’ format

• CSV files to be clean

• Input Order data

• Reasonable order quantity to get accurate predictions

Page 18: Restaurant Customer Order Prediction - By - Cenacle Research

Features

• Item-wise sale predictions

• Cost-cutting

• Drop the low sale items from menu for specific days

• Inventory management

• Right levels of stock reduces waste, improves quality

• Labor schedules

• Improves customer satisfaction, increases work-life balance for

employees

• Customer churn analysis

• Who are the customers most likely to stay, who would deflect?

• Design custom loyalty programs to increase sales

• When is the next customer visit most likely?

• Price analytics: what would be the effect of price increase on each?

Page 19: Restaurant Customer Order Prediction - By - Cenacle Research

Features

• Exploratory Analysis

• What are the top-3 drivers for my sales during Holiday Season?

• Which section needs more labor and during which period?

• What are the effects of Weather on my business?

• If I drop an item from my product list, how would it affect other item

sales?

• Social Network Sentiment Analysis

• What are people talking about my brand?

• How many people are feeling positive about my products?

• How are my competitor’s products faring against my products?

• What is the most (dis)liked feature about my product/service?

• If I release new product, how many people are likely to buy it?

Page 20: Restaurant Customer Order Prediction - By - Cenacle Research

Big Data + Predictive Analytics

• At Cenacle Research we build Analytics Engines for

• Automotive

• E.g.: Predictive Maintenance (CBM) systems

• Healthcare

• E.g.: Personalized Medicine Regimes and Decision Support Systems

• Retail

• E.g.: Real-time Recommendation Engines

• Energy

• E.g.: Demand Planning using Smart Metering Systems

• BFSI

• E.g.: Usage-based Insurance Systems

Page 21: Restaurant Customer Order Prediction - By - Cenacle Research

Big Data + Predictive Analytics

• At Cenacle Research we build Analytics Engines for

• Automotive

• E.g.: Predictive Maintenance (CBM) systems

• Healthcare

• E.g.: Personalized Medicine Regimes and Decision Support Systems

• Retail

• E.g.: Real-time Recommendation Engines

• Energy

• E.g.: Demand Planning using Smart Metering Systems

• BFSI

• E.g.: Usage-based Insurance Systems

• These Engines crunch millions of data points in Real-time

Page 22: Restaurant Customer Order Prediction - By - Cenacle Research

Big Data + Predictive Analytics

• At Cenacle Research we build Analytics Engines for

• Automotive

• E.g.: Predictive Maintenance (CBM) systems

• Healthcare

• E.g.: Personalized Medicine Regimes and Decision Support Systems

• Retail

• E.g.: Real-time Recommendation Engines

• Energy

• E.g.: Demand Planning using Smart Metering Systems

• BFSI

• E.g.: Usage-based Insurance Systems

• These Engines crunch millions of data points in Real-time• Big-data is what powers these engines

Page 23: Restaurant Customer Order Prediction - By - Cenacle Research

It Lets you do More …

Big Data

Page 24: Restaurant Customer Order Prediction - By - Cenacle Research

It Lets you do More …

Big Data

Write to us at: http://cenacle.co.in/

Page 25: Restaurant Customer Order Prediction - By - Cenacle Research

DO MORE .Cenacle Research India Private Limited