Devinit-尼泊尔LNOB评估:Simta市的数据景观(英)-2023-WN6.pdf
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1、 LNOB assessment Nepal:Data landscaping in Simta municipality Report June 2023 LNOB assessment Nepal:Data landscaping in Simta municipality/devinit.org 1 Contents Introduction.2 Part 1:Simtas poverty and inequality data inventory.4 Inventories of data systems.4 Disaggregation.5 Frequency.6 Data coll
2、ectors.7 Metadata.7 Open data.8 Discrepancies in disaster data.8 Part 2:The use of poverty and inequality data in Simta.9 Part 3:The foundations of Simtas poverty and inequality data ecosystem.10 Governance and management.10 Municipal policy on local data.10 ICT infrastructure.10 Cross-departmental
3、coordination.11 Budget.11 Part 4:Recommendations.12 Data sources:.12 Data use:.12 Data governance and management:.12 Annex.13 Notes.18 LNOB assessment Nepal:Data landscaping in Simta municipality/devinit.org 2 Introduction Leave no one behind(LNOB)is the central transformative promise of the 2030 Ag
4、enda.It compels development actors to consider the furthest behind first and to tackle the discrimination and exclusion that drive the inequalities people experience.Within Development Initiatives(DIs)Poverty and Inequality(P&I)programme,we use our expertise in data and evidence to produce outputs t
5、hat support our partners and allies to better understand who has been left behind,in what ways,and why.DIs LNOB assessments have been developed to apply a systematic methodology that:1.Identifies and reviews relevant existing data.2.Analyses that data to answer a locally relevant and targeted policy
6、 question.During 2022 and 2023,four assessments were conducted in Kenya,Uganda,Benin and Nepal.Each assessment had a distinct focus that was identified and developed with local partners.The LNOB assessment in Nepal sought to understand data and data infrastructure at the municipal level,considering
7、how data can be used to inform local decision-making to tackle poverty and inequality.This approach was applied in two municipalities:Tulsipur and Simta.This report presents the first part of the LNOB assessment in Simta.It is based on DIs data landscaping approach and assesses the range,quality and
8、 utility of existing data that can potentially inform issues relating to poverty and inequality in the municipality.It also assesses and makes recommendations about the underlying factors that could strengthen Simtas data ecosystem and enable improved and accessible evidence to be available in the f
9、uture.In November 2022,DI and Backward Society Education(BASE)held a co-creation workshop in Simta,which was attended by representatives from Simtas municipal government.In the co-creation workshop,stakeholders identified priority research questions and discussed the methodological approach.Based on
10、 this,DI and BASE adapted DIs general analytical framework for data landscaping in line with the set parameters.The team then conducted desk-based reviews of grey literature and face-to-face key informant interviews(KIIs)between December 2022 and January 2023.KIIs were conducted with 18 representati
11、ves from nine different departments of the local government.A final dissemination workshop was held in Simta on 22 March 2023 with a total of 27 participants representing various organisations.Part 1 of this report describes the quantity and quality of data included in the data inventory.Part 2 desc
12、ribes how this data is used in the municipality,Part 3 reviews the LNOB assessment Nepal:Data landscaping in Simta municipality/devinit.org 3 strength of the poverty and inequality data ecosystem as a whole,beyond the properties of individual data sources,and Part 4 provides recommendations for stre
13、ngthening the local data ecosystem.LNOB assessment Nepal:Data landscaping in Simta municipality/devinit.org 4 Part 1:Simtas poverty and inequality data inventory In Simta the study team identified nine data systems that produce information of interest to a poverty and inequality analysis:five admini
14、strative data systems,two surveys and two mixed-methods sources(i.e.unique sources that collate data from administrative systems,official surveys and censuses).The identified systems produce data on demographics,social protection(e.g.child nutrition grants for Dalit children and senior citizens allo
15、wance for people over the age of 70),asset ownership,employment,education(e.g.enrolment rates and scholarships),health(e.g.vaccination and nutrition),disaster risk reduction(e.g.damage to housing by flooding),disability(e.g.prevalence),and water,hygiene and sanitation(WASH).The study team was unable
16、 to identify data on dimensions of poverty relating to voice and political participation.The study team tried to identify unofficial sources but could not.1 Inventories of data systems Table 1:Inventory of five administrative data systems Data system What data is collected?DRR Portal Type of inciden
17、t(e.g.fire,animal incident,storm),location of incident,number of people impacted by an incident and how(e.g.killed or injured),damage to infrastructure.Employment Management Information System(EMIS)Information about applicants(ethnicity and gender,etc.).Health Management Information System(HMIS)Info
18、rmation on maternal and neonatal health,nutrition,vaccination and immunisation,and more.Integrated Education Management Information System(IEMIS)Information on students,teachers and other staff.VERSP MIS Information on births,deaths,marriages,divorces and migration.LNOB assessment Nepal:Data landsca
19、ping in Simta municipality/devinit.org 5 Table 2:Inventory of two mixed-method sources Data system What data is collected?Disability identity Card Classifications of disabilities Smart Daughter Programme Information about family members:names,addresses and place of birth,etc.Table 3:Inventory of two
20、 official surveys Data system What data is collected?Disaster Risk Survey Type of hazards and impacts Municipal Profile Survey Overall household survey including demographic profile,socioeconomic profile,infrastructure,occupation,unemployment,etc.Disaggregation In order to inform a leave-no-one-behi
21、nd approach,it is necessary to identify individual and group-based characteristics that may influence poverty outcomes.To enable this,data must capture variables relating to multiple dimensions of poverty,such as health or access to electricity,but also include particular variables that can allow fo
22、r disaggregation by characteristics that may be associated with inequality and exclusion within a population,such as gender,age or geography.Six of the nine data systems produce data disaggregated by geography(i.e.wards),five of the nine data systems produce data disaggregated by age(this does not i
23、nclude the education data available to us,as this was disaggregated by grade or year group),and five of the data systems produce data disaggregated by gender.There remains room for improvement but arguably efforts to produce data disaggregated by these dimensions have been fairly successful,as they
24、feature in datasets produced by more than 50%of the identified data systems.In contrast,data disaggregated by ethnicity is only produced by two of the identified data systems,meaning it is absent from seven.2 However,this is not always because systems do not collect data on ethnicity;for example,dat
25、a on ethnicity is collected by the Employment Management Information System(EMIS)and the Smart Daughter Programme MIS on paper forms,but it is not uploaded to the digital system,and sits unused in storage facilities.LNOB assessment Nepal:Data landscaping in Simta municipality/devinit.org 6 The type
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