Creative Regional Strategies

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Creative Regional Strategies. January 30, 2012. Gridland. 100 400. 200 5,000. 400 3,000. 700 6,000. 2,000 10,000. 2,000 7,500. 200 2,000. 500 8,000. 1,250 4,000. Total Population: 45,900 Total Number of X: 7,350. - PowerPoint PPT Presentation

Transcript of Creative Regional Strategies

Creative Regional Strategies

January 30, 2012

Gridland

100

400

200

5,000

400

3,000

700

6,000

2,000

10,000

2,000

7,500

200

2,000

500

8,000

1,250

4,000

Total Population:45,900

Total Number of X:

7,350

Want to compare how distribution of X compares to distribution of population.

Gridland

100

400

200

5,000

400

3,000

700

6,000

2,000

10,000

2,000

7,500

200

2,000

500

8,000

1,250

4,000

Average across all of Gridland =

16.01% = 7,350 / 45,900

How does each location compare to the average?

Gridland

25%

= 100

/ 400

4%

= 200

/ 5,000

13.3%

= 400

/ 3,000

11.7%

= 700

/ 6,000

20%

= 2,000

/ 10,000

26.7%

= 2,000

/ 7,500

10%

= 200

/ 2,000

6.25%

= 500

/ 8,000

31.25%

= 1,250

/ 4,000

Average across all of Gridland =

16.01% = 7,350 / 45,900

How does each location compare to the average?

•Concentration within a region•Compared to•Average Concentration across all regions

•LQ =(X in region / total for region)÷ (total X all regions / total all regions)

Location Quotient (1)

Gridland – Location Quotients

1.56= 25%

÷ 16.01%

0.25= 4%

÷ 16.01%

0.83= 13.3%

÷ 16.01%

0.73= 11.7%

÷ 16.01%

1.25= 20%

÷ 16.01%

1.67= 26.7%

÷ 16.01%

0.62= 10%

÷ 16.01%

0.39= 6.25%

÷ 16.01%

1.95= 31.25%

÷ 16.01%

Average across all of Gridland =

16.01% = 7,350 / 45,900

How does each location compare to the average?

Gridland – Location Quotients

1.56 0.25 0.83

0.73 1.25 1.67

0.62 0.39 1.95

LQ shows high & low concentrations within individual regions – compared to entire geography

100

400

200

5,000

400

3,000

700

6,000

2,000

10,000

2,000

7,500

200

2,000

500

8,000

1,250

4,000

• Share of “item of interest” in a region• Compared to• Share of total population in the same region

• LQ =(X in region / total X all regions)÷ (total for region / total all regions)

• Exactly the same – depends on data available

Location Quotient (2)

•Porter – Clusters– Industry-level (SIC or NAICS)–Total employment, sales–Predefined “clusters”

–Suppliers, buyers, related industries

•Milken – Tech-Pole– “High tech” industries

• (Stolarick) Occupational Clusters

Using Location Quotients

• Includes software, electronics, biomedical products, and engineering services (appendix)•Combination of two measures–Region’s High Tech LQ

–Small, concentrated regions–Region’s total share of High Tech Output

–Larger, producing regions

Milken “Tech-Pole” Index

•Total “High Tech” employment•Base is US & Canada•Each region compared to base•As with Milken, NA Tech Pole =

High Tech LQ xShare of NA High Tech Employment

North American “Tech-Pole”

High-Tech Metros by LQ

High-Tech Metros by Output Share

Tech-Poles

• Patents–Current per capita–Average patent growth over time–The good, the bad and the ugly with patents• Industry Clusters–Specific industries–“Evolutionary” vs. “created” clusters• Occupational Clusters• Industry & Occupation Simultaneously

Other Measures

Other Technology Measures?

•Managerial, professional, tech jobs•Education (talent)•Exporting•Gazelles• Job churning•New publicly traded companies•Online population•Broadband telecom

Other Measures

•Computers in schools•Commercial internet domains• Internet backbone•High-tech jobs•Sci & Eng degrees•Patents•Academic R&D (also AUTM)•Venture Capital

Other Measures

Samples

Prince Edward County

Upstate New York Super-Region

Growth Benchmarks

Overall Growth

Technology Benchmarks

Upstate “High-Tech”

Syracuse Benchmarks

Toronto

Toronto: Overall

Toronto: Technology

•www.census.gov–American Fact Finder–Data Set Access

•http://censtats.census.gov/–County Business Patterns–USA County Data

Data Sources

•www.statcan.gc.ca–Community Profiles–Data Set Access

•http://dc1.chass.utoronto.ca/–Canada, OECD, International Data

•http://www.chass.utoronto.ca/datalib–Canada, US, International Data

Data Sources