Add pagebreaks after each section
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4 changed files with 8 additions and 7 deletions
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@ -115,7 +115,7 @@ df = df.rename(columns={'\ufeff"DONOR"': 'DONOR'})
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```{python}
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```{python}
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#| label: fig-ben-aid-financetype
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#| label: fig-ben-aid-financetype
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#| fig-cap: "Total ODA for Benin per year, by finance type"
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#| fig-cap: "Total ODA for Benin per year, by financing type"
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#| column: page
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#| column: page
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totals = df.loc[
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totals = df.loc[
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(df['RECIPIENT'] == 236) & # Benin
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(df['RECIPIENT'] == 236) & # Benin
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@ -139,10 +139,8 @@ fig = px.line(financetotals_grouped, x='Year', y='Value', color='Financetype', l
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fig.show()
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fig.show()
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```
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```
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::: {.caption}
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Note: Values shown are for all Official Development Assistance flows valid under the OECD CRS data, split into the type of financing flow, calculated as constant currency (2020 corrected) USD millions.
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Note: Values shown are for all Official Development Assistance flows valid under the OECD CRS data, split into the type of financing flow, calculated as constant currency (2020 corrected) USD millions.
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Source: Author's elaboration based on OECD ODA CRS (2022).
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Source: Author's elaboration based on OECD ODA CRS (2022).
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:::
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The total amount of development aid for Benin registered by the OECD Creditor Reporting System has been fluctuating, with an overall upward trend since 2011:
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The total amount of development aid for Benin registered by the OECD Creditor Reporting System has been fluctuating, with an overall upward trend since 2011:
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The aid broken down by financing type can be seen in @fig-ben-aid-financetype and shows that money has predominantly been given by way of ODA grants, with roughly double the absolute monetary amount of ODA loans per year.
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The aid broken down by financing type can be seen in @fig-ben-aid-financetype and shows that money has predominantly been given by way of ODA grants, with roughly double the absolute monetary amount of ODA loans per year.
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@ -166,7 +164,7 @@ totals = df.loc[
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]
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]
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donortotals = totals.copy()
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donortotals = totals.copy()
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donortotals["Donortype"] = donortotals["DONOR"].map(donortypes)
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donortotals["Donortype"] = donortotals["DONOR"].map(donortypes)
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donortotals = donortotals[(donortotals["Donortype"] == "dac") | (donortotals["Donortype"] == "multilateral")] = donortotals["DONOR"].map(donortypes)
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donortotals = donortotals[(donortotals["Donortype"] != "nondac")]
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donortotals_grouped = donortotals.groupby(['Donortype', 'Year']).agg({'Value': ['sum']})
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donortotals_grouped = donortotals.groupby(['Donortype', 'Year']).agg({'Value': ['sum']})
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donortotals_grouped = donortotals_grouped.reset_index(['Donortype', 'Year'])
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donortotals_grouped = donortotals_grouped.reset_index(['Donortype', 'Year'])
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@ -176,14 +174,12 @@ fig = px.line(donortotals_grouped, x='Year', y='Value', color='Donortype', label
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fig.show()
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fig.show()
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```
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```
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::: {.caption}
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Note: Values shown are for all Official Development Assistance flows valid under the OECD ODA data, split into bilateral development donor countries (dac), bilateral non-DAC countries (nondac) and multilateral donors (multilateral), as constant currency (2020 corrected) USD millions.
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Note: Values shown are for all Official Development Assistance flows valid under the OECD ODA data, split into bilateral development donor countries (dac), bilateral non-DAC countries (nondac) and multilateral donors (multilateral), as constant currency (2020 corrected) USD millions.
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Source: Author's elaboration based on OECD ODA CRS (2022).
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Source: Author's elaboration based on OECD ODA CRS (2022).
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:::
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The total amount of development aid for Benin registered by the OECD Creditor Reporting System,
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The total amount of development aid for Benin registered by the OECD Creditor Reporting System,
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broken down into individual donor types can be seen in @fig-ben-aid-donortype.
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broken down into individual donor types can be seen in @fig-ben-aid-donortype.
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It shows that bilateral development aid by individual member countries tended to be higher than that provided through multilateral donors until 2019.
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It shows that bilateral development aid by individual member countries tended to be higher than that provided through multilateral donors until 2019.
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Beginning in 2020 this split reversed to higher development aid amounts donated through multilateral donors than individual bilateral aid.
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Beginning in 2020 this split reversed to higher development aid amounts donated through multilateral donors than individual bilateral aid.
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{{< pagebreak >}}
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@ -110,3 +110,5 @@ Nomadic and pastoralist people in the country's rural regions were hit especiall
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with the nomadic population decreasing by nearly three quarters and many fleeing or becoming sedentary.
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with the nomadic population decreasing by nearly three quarters and many fleeing or becoming sedentary.
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Women face less opportunity in the country with worse upward educational mobility, less participation in the labor force, higher unemployment rates, and a continuing, if closing, gender literacy gap.
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Women face less opportunity in the country with worse upward educational mobility, less participation in the labor force, higher unemployment rates, and a continuing, if closing, gender literacy gap.
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Djibouti is set to miss most of its poverty target levels and move along a growth pathway that does not lend itself to inclusion unless active policy measures changing its economic investment and growth strategies are examined.
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Djibouti is set to miss most of its poverty target levels and move along a growth pathway that does not lend itself to inclusion unless active policy measures changing its economic investment and growth strategies are examined.
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{{< pagebreak >}}
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@ -142,3 +142,5 @@ which in turn worsens food securities, retrenches gender role inequalities and p
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In the district of Isingiro in West Uganda access to water is considerably below the national average,
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In the district of Isingiro in West Uganda access to water is considerably below the national average,
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with policy failures during implementation now leading to partly or non-functional water sources.
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with policy failures during implementation now leading to partly or non-functional water sources.
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The problem runs danger of deteriorating with an increased amount of climate shocks such as droughts threatening to exacerbate existing inequalities and drive further households into poverty.
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The problem runs danger of deteriorating with an increased amount of climate shocks such as droughts threatening to exacerbate existing inequalities and drive further households into poverty.
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{{< pagebreak >}}
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@ -166,3 +166,4 @@ both ethnic minorities and the rural female population are thus at risk of being
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* Wordings do not quite capture quintile poverty assessments for coming descriptive statistics
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* Wordings do not quite capture quintile poverty assessments for coming descriptive statistics
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-->
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-->
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{{< pagebreak >}}
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