The efficiency of health resource allocation and its influencing factors: evidence from the super efficiency slack based model-Tobit model

Author:

Gong Jing1,Shi Leiyu2,Wang Xiaohan3,Sun Gang3ORCID

Affiliation:

1. Department of Hospital Management, Tsing Hua University , Shenzhen Campus, Shenzhen 518000 , China

2. Department of Health Policy and Management, Bloomberg School of Public Health, Johns Hopkins University , Baltimore, MD 21205 , USA

3. Department of Health Management, School of Health Management, Southern Medical University , Guangzhou, Guangdong 510515 , China

Abstract

Abstract Background This study aims to analyze the health resource allocation efficiency in Sichuan Province from 2010 to 2018 and provide other countries with China's experience. Methods We used the super efficiency slack based model (SBM) model and Malmquist index to analyze the super efficiency and inter-period efficiency of health resource allocation in 19 cities in Sichuan Province from 2010 to 2018 and propose the input-output optimization scheme of health resource allocation in 2018. Finally, the Tobit model was used to estimate the influencing factors of health resource allocation efficiency. Results The total allocation of health resources in Sichuan Province was increasing in addition to the total number of visits from 2010 to 2018. The super efficiency SBM results identified that the sample's average score was between 0.651 and 3.244, with an average of 1.041, of which 15 cities had not reached data envelopment analysis effectiveness. According to the Malmquist index, the average total factor productivity index of Sichuan Province was 0.930, which showed an imbalance in resource input, and its fluctuation was mainly related to the technological progress index and scale efficiency. The efficiency score was affected by the average annual income of residents, population density and education level. Conclusions The amount of health resource allocation in Sichuan Province had shown an overall upward trend since 2010. However, resource allocation efficiency was not high, and there were problems such as significant regional differences, insufficient technological innovation capabilities and unscientific allocation of resource scale. To optimize the resource allocation structure, we suggest that the relevant departments pay attention to the impact of natural disasters, the average annual income of residents, population density and education level on efficiency to allocate health resources scientifically.

Funder

Natural Science Foundation of Guangdong Province

National Social Science Fund of China

Publisher

Oxford University Press (OUP)

Subject

Public Health, Environmental and Occupational Health,General Medicine,Health (social science)

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