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Measuring the regional significance of
employment in the creative industries


         Simon Freebody – Research assistant (CCI)
          Peter Higgs – Senior research fellow (CCI)
Agglomeration and Creative industries

• Employment in the creative industries exhibits
  agglomeration – i.e. Employment attracted to larger,
  urbanised centres:
   – Creative “Buzz” and communities
   – Local stimuli
   – Locality “brand”
   – An absence of proclivity to do otherwise?
In light of this, how should we measure the significance of
            creative employment in a given region?
• The location quotient provides the traditional method.
The location quotient
Brief history of the location quotient

• Developed in the late 1930s by Philip Sargant Florence
• Used extensively in economic base analysis to establish
  regional employment multipliers
   – Found to be an inaccurate estimator
   – Continues to be used due to simplicity and availability of data
• Predominantly used in the past to measure manufacturing
  activity
• More recently used to measure the significance of creative
  industries and the “Creative Class”
Location quotient for manufacturing employment

                           30000                                                    Each point represents a region
                                                                                    (statistical sub-division). The
                           25000
                                                                                    solid line represents our LQ
                                                                                    reference line.
Manufacturing employment




                           20000
                                                                                    The manufacturing employment
                                                                                    at a point divided by the
                           15000                                                    corresponding point on the solid
                                                                                    line gives the location quotient
                           10000                                                    of the region that points
                                                                                    represents.
                            5000



                               0
                                   0   50000        100000        150000   200000

                                               Total employment
Location quotient for CI employment

                                 8000                                                      Each point represents a region
                                                                                           (statistical sub-division). The
                                 7000                                                      solid line represents our LQ
                                                                                           reference line.
Creative industries employment




                                 6000


                                 5000                                                      The creative industries
                                                                                           employment at a point divided
                                 4000                                                      by the corresponding point on
                                                                                           the solid line gives the location
                                 3000
                                                                                           quotient of the region that
                                 2000                                                      points represents.

                                 1000


                                    0
                                        0     50000        100000        150000   200000

                                                      Total employment
Location quotient for manufacturing employment

                           100000                                                      By logging the scale of the axes
                                                                                       we can see the relationship
                                                                                       between manufacturing
                                                                                       employment and total
                            10000
                                                                                       employment.
Manufacturing employment




                                                                                       This relationship is reasonably
                             1000                                                      well approximated by unitary
                                                                                       elasticity - although not
                                                                                       perfectly!
                              100




                               10
                                    100   1000        10000         100000   1000000

                                                 Total employment
Location quotient for CI employment

                                 100000                                                         Conducting the same analysis for
                                                                                                creative industries shows a clear
                                                                                                departure from unitary
                                  10000                                                         elasticity – here the elasticity is
Creative industries employment




                                                                                                greater than one.
                                   1000
                                                                                                What does this mean for our
                                                                                                location quotient?
                                    100                                                          - The location quotient
                                                                                                systematically over-estimates
                                                                                                the significance of creative
                                     10                                                         industries employment in larger
                                                                                                areas, i.e. larger areas will
                                                                                                always score better.
                                      1
                                          100      1000        10000         100000   1000000

                                                          Total employment
Do the obvious

                                 100000                                                      Performing simple regression
                                                                                             analysis using a double-log
                                                                                             functional form not only
                                  10000                                                      estimates the elasticity
Creative industries employment




                                                                                             mentioned in the slide above, but
                                                                                             the residuals provide us with a
                                   1000
                                                                                             measurement of the regional
                                                                                             significance of creative
                                    100                                                      industries employment.


                                     10




                                      1
                                          100   1000        10000         100000   1000000

                                                       Total employment
Note on the inclusion of land area

• If the intention is to partial the size of a region out of
  creative employment then land area needs to be considered.
• Reasonable to assume that land area may have some impact
  – population density as a measure of urbanisation
• Thus we include land area – which is also log-normally
  distributed – in the regression analysis producing a density
  sensitive index (DSI).
• Final regression model takes the form:
LQ vs. DSI
             Location quotient Rank Density sensitive index
        Lower Northern Sydney 1 Kimberley
                   Inner Sydney 2 Gold Coast Hinterland
               Inner Melbourne 3 Northern Territory excl. Darwin
                North Canberra 4 Tuggeranong, Canberra
                 Inner Brisbane 5 Lower Northern Sydney
   Boroondara City, Melbourne 6 Southern Tasmania
                South Canberra 7 East Barwon, Victoria
        Tuggeranong, Canberra 8 North Canberra
     Central Metropolitan Perth 9 Weston Creek-Stromlo, Canberra
                Eastern Suburbs 10 Sunshine Coast Hinterland
              Northern Beaches 11 East Central Highlands, Victoria
               Eastern Adelaide 12 South Canberra
Weston Creek-Stromlo, Canberra 13 ACT excl. Canberra
           Belconnen, Canberra 14 Boroondara City, Melbourne
      Gungahlin-Hall, Canberra 15 Gungahlin-Hall, Canberra
Lets experiment...

1. Rank regions by LQ and by density sensitive index.
2. Assign regions as “under-rated” or “over-rated” thus:
   – If LQ rank higher than DSI rank: “over-rated”
   – If LQ rank lower than DSI rank: “under-rated”
3. Compare the two groups with key demographics.

Example:
                                           LQ rank   DSI rank
     Over-rated    Inner Brisbane            5          48
     Under-rated   Gold Coast Hinterland     20         2
Age: % of population by age group

                 9%                                                                                                                                                                                                                                                                                                            Under-rated regions have
                 8%                                                                                                                                                                                                                                                                                                            significantly less young adults
                                                                                                                                                                                                                                                                Over-rated
                                                                                                                                                                                                                                                                                                                               than over-rated regions and
                 7%                                                                                                                                                                                                                                             Under-rated
                                                                                                                                                                                                                                                                                                                               significantly more
                 6%
                                                                                                                                                                                                                                                                                                                               children, middle and mature age
% of populaton




                 5%                                                                                                                                                                                                                                                                                                            people.
                 4%
                                                                                                                                                                                                                                                                                                                               Under-rated regions are older
                 3%

                 2%

                 1%

                 0%                                                                                                                                                                                                                                                                                       100 years and over
                      0-4 years
                                  5-9 years
                                              10-14 years
                                                            15-19 years
                                                                          20-24 years
                                                                                        25-29 years
                                                                                                      30-34 years
                                                                                                                    35-39 years
                                                                                                                                  40-44 years
                                                                                                                                                45-49 years
                                                                                                                                                              50-54 years
                                                                                                                                                                            55-59 years
                                                                                                                                                                                          60-64 years
                                                                                                                                                                                                        65-69 years
                                                                                                                                                                                                                      70-74 years
                                                                                                                                                                                                                                    75-79 years
                                                                                                                                                                                                                                                  80-84 years
                                                                                                                                                                                                                                                                85-89 years
                                                                                                                                                                                                                                                                              90-94 years
                                                                                                                                                                                                                                                                                            95-99 years




                                                                                                                                                                                                                                    ABS Census 2006
Income: % of population by income band

                  25%                                                                                                                                                                Under-rated regions have
                                                                                                                                                                                     significantly less workers
                  20%
                                                                                                                                                  Over-rated
                                                                                                                                                                                     earning more than $800 per
                                                                                                                                                  Under-rated
                                                                                                                                                                                     week than over-rated regions
                                                                                                                                                                                     and significantly more workers
% of population




                  15%
                                                                                                                                                                                     earning less than $600 per week.

                  10%                                                                                                                                                                Under-rated regions are poorer


                  5%




                  0%
                                                                                                                                                                    $2,000 or more
                        Negative income

                                          $1-$149

                                                    $150-$249

                                                                $250-$399

                                                                            $400-$599

                                                                                        $600-$799

                                                                                                    $800-$999

                                                                                                                $1,000-$1,299

                                                                                                                                  $1,300-$1,599

                                                                                                                                                    $1,600-$1,999




                                                                                                                                ABS Census 2006
ABS Socio-economic index

                       1040                                    One average under-rated
                                                               regions score significantly lower
                                                               on the SES index than over-rated
                       1020                      Over-rated


                       1000
                                                 Under-rated
                                                               regions.

                        980                                    Under-rated regions have lower
Socio-economic index




                                                               SES
                        960


                        940


                        920


                        900


                        880

                               1006    927
                        860


                                             ABS Census 2006
Applications

• More accurate benchmarking of cities and suburbs
• Identifying diverse agglomeration patterns within creative
  segments
• Improve understanding of:
   – the determinants, economic and otherwise, of
     agglomeration in the creative industries
   – the causes and effects of significant employment in the
     creative industries
   – commuter patterns in satellite cities
In conclusion

• The location quotient has proved valuable for measuring
  traditional industries.
• When measuring creative industries the location quotient
  favours larger, urbanised regions.
• Regression analysis can provide a measure of the
  agglomeration in CI and measure the significance of creative
  industries employment in a given region without said bias.
• Regions that are under-rated by the location quotient tend
  to be less urban: they are older, poorer and lower SES

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Creative Suburban Geographies - Simon Freebody

  • 1. Measuring the regional significance of employment in the creative industries Simon Freebody – Research assistant (CCI) Peter Higgs – Senior research fellow (CCI)
  • 2. Agglomeration and Creative industries • Employment in the creative industries exhibits agglomeration – i.e. Employment attracted to larger, urbanised centres: – Creative “Buzz” and communities – Local stimuli – Locality “brand” – An absence of proclivity to do otherwise? In light of this, how should we measure the significance of creative employment in a given region? • The location quotient provides the traditional method.
  • 4. Brief history of the location quotient • Developed in the late 1930s by Philip Sargant Florence • Used extensively in economic base analysis to establish regional employment multipliers – Found to be an inaccurate estimator – Continues to be used due to simplicity and availability of data • Predominantly used in the past to measure manufacturing activity • More recently used to measure the significance of creative industries and the “Creative Class”
  • 5. Location quotient for manufacturing employment 30000 Each point represents a region (statistical sub-division). The 25000 solid line represents our LQ reference line. Manufacturing employment 20000 The manufacturing employment at a point divided by the 15000 corresponding point on the solid line gives the location quotient 10000 of the region that points represents. 5000 0 0 50000 100000 150000 200000 Total employment
  • 6. Location quotient for CI employment 8000 Each point represents a region (statistical sub-division). The 7000 solid line represents our LQ reference line. Creative industries employment 6000 5000 The creative industries employment at a point divided 4000 by the corresponding point on the solid line gives the location 3000 quotient of the region that 2000 points represents. 1000 0 0 50000 100000 150000 200000 Total employment
  • 7. Location quotient for manufacturing employment 100000 By logging the scale of the axes we can see the relationship between manufacturing employment and total 10000 employment. Manufacturing employment This relationship is reasonably 1000 well approximated by unitary elasticity - although not perfectly! 100 10 100 1000 10000 100000 1000000 Total employment
  • 8. Location quotient for CI employment 100000 Conducting the same analysis for creative industries shows a clear departure from unitary 10000 elasticity – here the elasticity is Creative industries employment greater than one. 1000 What does this mean for our location quotient? 100 - The location quotient systematically over-estimates the significance of creative 10 industries employment in larger areas, i.e. larger areas will always score better. 1 100 1000 10000 100000 1000000 Total employment
  • 9. Do the obvious 100000 Performing simple regression analysis using a double-log functional form not only 10000 estimates the elasticity Creative industries employment mentioned in the slide above, but the residuals provide us with a 1000 measurement of the regional significance of creative 100 industries employment. 10 1 100 1000 10000 100000 1000000 Total employment
  • 10. Note on the inclusion of land area • If the intention is to partial the size of a region out of creative employment then land area needs to be considered. • Reasonable to assume that land area may have some impact – population density as a measure of urbanisation • Thus we include land area – which is also log-normally distributed – in the regression analysis producing a density sensitive index (DSI). • Final regression model takes the form:
  • 11. LQ vs. DSI Location quotient Rank Density sensitive index Lower Northern Sydney 1 Kimberley Inner Sydney 2 Gold Coast Hinterland Inner Melbourne 3 Northern Territory excl. Darwin North Canberra 4 Tuggeranong, Canberra Inner Brisbane 5 Lower Northern Sydney Boroondara City, Melbourne 6 Southern Tasmania South Canberra 7 East Barwon, Victoria Tuggeranong, Canberra 8 North Canberra Central Metropolitan Perth 9 Weston Creek-Stromlo, Canberra Eastern Suburbs 10 Sunshine Coast Hinterland Northern Beaches 11 East Central Highlands, Victoria Eastern Adelaide 12 South Canberra Weston Creek-Stromlo, Canberra 13 ACT excl. Canberra Belconnen, Canberra 14 Boroondara City, Melbourne Gungahlin-Hall, Canberra 15 Gungahlin-Hall, Canberra
  • 12. Lets experiment... 1. Rank regions by LQ and by density sensitive index. 2. Assign regions as “under-rated” or “over-rated” thus: – If LQ rank higher than DSI rank: “over-rated” – If LQ rank lower than DSI rank: “under-rated” 3. Compare the two groups with key demographics. Example: LQ rank DSI rank Over-rated Inner Brisbane 5 48 Under-rated Gold Coast Hinterland 20 2
  • 13. Age: % of population by age group 9% Under-rated regions have 8% significantly less young adults Over-rated than over-rated regions and 7% Under-rated significantly more 6% children, middle and mature age % of populaton 5% people. 4% Under-rated regions are older 3% 2% 1% 0% 100 years and over 0-4 years 5-9 years 10-14 years 15-19 years 20-24 years 25-29 years 30-34 years 35-39 years 40-44 years 45-49 years 50-54 years 55-59 years 60-64 years 65-69 years 70-74 years 75-79 years 80-84 years 85-89 years 90-94 years 95-99 years ABS Census 2006
  • 14. Income: % of population by income band 25% Under-rated regions have significantly less workers 20% Over-rated earning more than $800 per Under-rated week than over-rated regions and significantly more workers % of population 15% earning less than $600 per week. 10% Under-rated regions are poorer 5% 0% $2,000 or more Negative income $1-$149 $150-$249 $250-$399 $400-$599 $600-$799 $800-$999 $1,000-$1,299 $1,300-$1,599 $1,600-$1,999 ABS Census 2006
  • 15. ABS Socio-economic index 1040 One average under-rated regions score significantly lower on the SES index than over-rated 1020 Over-rated 1000 Under-rated regions. 980 Under-rated regions have lower Socio-economic index SES 960 940 920 900 880 1006 927 860 ABS Census 2006
  • 16. Applications • More accurate benchmarking of cities and suburbs • Identifying diverse agglomeration patterns within creative segments • Improve understanding of: – the determinants, economic and otherwise, of agglomeration in the creative industries – the causes and effects of significant employment in the creative industries – commuter patterns in satellite cities
  • 17. In conclusion • The location quotient has proved valuable for measuring traditional industries. • When measuring creative industries the location quotient favours larger, urbanised regions. • Regression analysis can provide a measure of the agglomeration in CI and measure the significance of creative industries employment in a given region without said bias. • Regions that are under-rated by the location quotient tend to be less urban: they are older, poorer and lower SES