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IBM InfoSphere Streams for
    Scalable, Real-Time,
 Intelligent Transportation
          Services

         Matt Garren
Problem

● Congestion in urban areas
● Too expensive/not enough room to build
  more highways
● Large amount of traffic data from
  multiple sensors
● Processing needed in real-time
● Large number of users wanting different
  views
Infosphere Streams

● Structured and Unstructured Data
● Scalable
●  Data Flow Graph
   ○ Streaming Data Objects (SDO)
   ○ Processing Elements (PE)
   ○  SPADE processing engine
Stream Processing Application
Declarative Engine (SPADE)
● Provides a programming language
   ○ Intermediate
   ○ Flexible
   ○ Type-generic operators
   ○ Extensible using C++/JAVA
   ○ Broad range of adapters
SPADE: Built in operators

● Source
● Sink
● Functor
● Aggregate
● Join
● Sort
● Barrier
● Punctor
● Split
● Delay 
Intelligent Transportation Systems

● Stockholm, Sweden
●  Functionality
   ○  Monitor current traffic
   ○  Compare to historical data
   ○  Estimate travel times
   ○  Compute shortest paths
● Pilot system used only historical data
● Real-time data in the future
Input

● 2008 GPS data traces
   ○ 1500 Taxis (1 reading/60 secs)
   ○ 400 Trucks (1 reading/30 secs)
   ○ 170 Million probe points over the year
   ○  1000 GPS readings/sec peak rate
Application Logic

● Steps
   ○ Obtain, clean, de-noise, match to
     underlying roads/networks
   ○ Aggregate to obtain statistics per link
     and per time interval
   ○ Compute derived information (shortest
     times, etc)
Data Flow
GPS Data Issues

● Matching to underlying roads
● Match to regions instead of links
  ○ Parking lots
End User Interactions (ITS)

● Visualize entire city on Google Earth
● Submit specific queries
● Web-based visualizations
Performance

● Cluster
   ○  64-bit Intel Xeon quad core processors
   ○  3GHz clock speed
   ○ 16 Gb Ram per machine
Performance
Performance
Questions?

 

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Ibm infosphere mgarren

  • 1. IBM InfoSphere Streams for Scalable, Real-Time, Intelligent Transportation Services Matt Garren
  • 2. Problem ● Congestion in urban areas ● Too expensive/not enough room to build more highways ● Large amount of traffic data from multiple sensors ● Processing needed in real-time ● Large number of users wanting different views
  • 3. Infosphere Streams ● Structured and Unstructured Data ● Scalable ●  Data Flow Graph ○ Streaming Data Objects (SDO) ○ Processing Elements (PE) ○  SPADE processing engine
  • 4. Stream Processing Application Declarative Engine (SPADE) ● Provides a programming language ○ Intermediate ○ Flexible ○ Type-generic operators ○ Extensible using C++/JAVA ○ Broad range of adapters
  • 5. SPADE: Built in operators ● Source ● Sink ● Functor ● Aggregate ● Join ● Sort ● Barrier ● Punctor ● Split ● Delay 
  • 6. Intelligent Transportation Systems ● Stockholm, Sweden ●  Functionality ○  Monitor current traffic ○  Compare to historical data ○  Estimate travel times ○  Compute shortest paths ● Pilot system used only historical data ● Real-time data in the future
  • 7. Input ● 2008 GPS data traces ○ 1500 Taxis (1 reading/60 secs) ○ 400 Trucks (1 reading/30 secs) ○ 170 Million probe points over the year ○  1000 GPS readings/sec peak rate
  • 8. Application Logic ● Steps ○ Obtain, clean, de-noise, match to underlying roads/networks ○ Aggregate to obtain statistics per link and per time interval ○ Compute derived information (shortest times, etc)
  • 10. GPS Data Issues ● Matching to underlying roads ● Match to regions instead of links ○ Parking lots
  • 11. End User Interactions (ITS) ● Visualize entire city on Google Earth ● Submit specific queries ● Web-based visualizations
  • 12. Performance ● Cluster ○  64-bit Intel Xeon quad core processors ○  3GHz clock speed ○ 16 Gb Ram per machine