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Pregnancy history and current use of contraception among women of reproductive age in Burundi, Kenya, Rwanda, Tanzania and Uganda: analysis of demographic and health survey data

Identifieur interne : 000331 ( Pmc/Corpus ); précédent : 000330; suivant : 000332

Pregnancy history and current use of contraception among women of reproductive age in Burundi, Kenya, Rwanda, Tanzania and Uganda: analysis of demographic and health survey data

Auteurs : Pauline Bakibinga ; Dennis J. Matanda ; Rogers Ayiko ; Joseph Rujumba ; Charles Muiruri ; Djesika Amendah ; Martin Atela

Source :

RBID : PMC:4800125

Abstract

Objective

To examine the relationship between pregnancy history and the use of contraception among women of reproductive age (15–49 years) in East Africa.

Methods

Demographic and Health Surveys data from Burundi (2010), Kenya (2008–2009), Rwanda (2010), Tanzania (2010) and Uganda (2011) were used in the analysis. Logistic regression was used to determine the effects of women's pregnancy history on their use of contraception.

Setting

Burundi, Kenya, Rwanda, Tanzania and Uganda.

Participants

3226, 2377, 4396, 3250 and 2596 women of reproductive age (15–49 years) from Burundi, Kenya, Rwanda, Tanzania and Uganda, respectively, were included in the analysis.

Results

Women who had experienced a mistimed pregnancy were more likely to use a modern contraceptive method during their most recent sexual encounter in Kenya, Rwanda, Burundi and Uganda. Other significant correlates of women's contraceptive use were: desire for more children, parity, household wealth, maternal education and access information through radio. In-country regional differences on use of modern contraceptive methods were noted across five East African countries.

Conclusions

Women's birth histories were significantly associated with their decision to adopt a modern contraceptive method. This highlights the importance of considering women's birth histories, especially women with mistimed births, in the promotion of contraceptive use in East Africa. Variations as a result of place of residency, educational attainment, access to family planning information and products, and wealth ought to be addressed in efforts to increase use of modern contraceptive methods in the East African region.


Url:
DOI: 10.1136/bmjopen-2015-009991
PubMed: 26966059
PubMed Central: 4800125

Links to Exploration step

PMC:4800125

Le document en format XML

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<title>Methods</title>
<p>Demographic and Health Surveys data from Burundi (2010), Kenya (2008–2009), Rwanda (2010), Tanzania (2010) and Uganda (2011) were used in the analysis. Logistic regression was used to determine the effects of women's pregnancy history on their use of contraception.</p>
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<p>3226, 2377, 4396, 3250 and 2596 women of reproductive age (15–49 years) from Burundi, Kenya, Rwanda, Tanzania and Uganda, respectively, were included in the analysis.</p>
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<article-title>Pregnancy history and current use of contraception among women of reproductive age in Burundi, Kenya, Rwanda, Tanzania and Uganda: analysis of demographic and health survey data</article-title>
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<contrib contrib-type="author">
<name>
<surname>Bakibinga</surname>
<given-names>Pauline</given-names>
</name>
<xref ref-type="aff" rid="af1">1</xref>
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<contrib contrib-type="author">
<name>
<surname>Matanda</surname>
<given-names>Dennis J</given-names>
</name>
<xref ref-type="aff" rid="af2">2</xref>
</contrib>
<contrib contrib-type="author">
<name>
<surname>Ayiko</surname>
<given-names>Rogers</given-names>
</name>
<xref ref-type="aff" rid="af3">3</xref>
</contrib>
<contrib contrib-type="author">
<name>
<surname>Rujumba</surname>
<given-names>Joseph</given-names>
</name>
<xref ref-type="aff" rid="af4">4</xref>
</contrib>
<contrib contrib-type="author">
<name>
<surname>Muiruri</surname>
<given-names>Charles</given-names>
</name>
<xref ref-type="aff" rid="af5">5</xref>
</contrib>
<contrib contrib-type="author">
<name>
<surname>Amendah</surname>
<given-names>Djesika</given-names>
</name>
<xref ref-type="aff" rid="af1">1</xref>
</contrib>
<contrib contrib-type="author">
<name>
<surname>Atela</surname>
<given-names>Martin</given-names>
</name>
<xref ref-type="aff" rid="af6">6</xref>
</contrib>
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<institution>Health Challenges and Systems Research Program, African Population & Health Research Center</institution>
,
<addr-line>Nairobi</addr-line>
,
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<aff id="af2">
<label>2</label>
<institution>Population Council, General Accident Insurance House</institution>
,
<addr-line>Nairobi</addr-line>
,
<country>Kenya</country>
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<aff id="af3">
<label>3</label>
<institution>East African Community Secretariat, EAC Close</institution>
,
<addr-line>Arusha</addr-line>
,
<country>Tanzania</country>
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<aff id="af4">
<label>4</label>
<addr-line>Department of Paediatrics and Child Health</addr-line>
,
<institution>College of Health Sciences</institution>
,
<institution>Makerere University</institution>
,
<addr-line>Kampala</addr-line>
,
<country>Uganda</country>
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<label>5</label>
<institution>Duke Global Health Institute</institution>
,
<addr-line>Durham, North Carolina</addr-line>
,
<country>USA</country>
</aff>
<aff id="af6">
<label>6</label>
<institution>African Institute for Development Policy</institution>
,
<addr-line>Nairobi</addr-line>
,
<country>Kenya</country>
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<corresp>
<label>Correspondence to</label>
Dr Pauline Bakibinga;
<email>paulabak80@gmail.com</email>
</corresp>
</author-notes>
<pub-date pub-type="collection">
<year>2016</year>
</pub-date>
<pub-date pub-type="epub">
<day>10</day>
<month>3</month>
<year>2016</year>
</pub-date>
<volume>6</volume>
<issue>3</issue>
<elocation-id>e009991</elocation-id>
<history>
<date date-type="received">
<day>14</day>
<month>9</month>
<year>2015</year>
</date>
<date date-type="rev-recd">
<day>9</day>
<month>2</month>
<year>2016</year>
</date>
<date date-type="accepted">
<day>19</day>
<month>2</month>
<year>2016</year>
</date>
</history>
<permissions>
<copyright-statement>Published by the BMJ Publishing Group Limited. For permission to use (where not already granted under a licence) please go to http://www.bmj.com/company/products-services/rights-and-licensing/</copyright-statement>
<copyright-year>2016</copyright-year>
<license license-type="open-access">
<license-p>This is an Open Access article distributed in accordance with the Creative Commons Attribution Non Commercial (CC BY-NC 4.0) license, which permits others to distribute, remix, adapt, build upon this work non-commercially, and license their derivative works on different terms, provided the original work is properly cited and the use is non-commercial. See:
<ext-link ext-link-type="uri" xlink:href="http://creativecommons.org/licenses/by-nc/4.0/">http://creativecommons.org/licenses/by-nc/4.0/</ext-link>
</license-p>
</license>
</permissions>
<self-uri xlink:title="pdf" xlink:href="bmjopen-2015-009991.pdf"></self-uri>
<abstract>
<sec>
<title>Objective</title>
<p>To examine the relationship between pregnancy history and the use of contraception among women of reproductive age (15–49 years) in East Africa.</p>
</sec>
<sec>
<title>Methods</title>
<p>Demographic and Health Surveys data from Burundi (2010), Kenya (2008–2009), Rwanda (2010), Tanzania (2010) and Uganda (2011) were used in the analysis. Logistic regression was used to determine the effects of women's pregnancy history on their use of contraception.</p>
</sec>
<sec>
<title>Setting</title>
<p>Burundi, Kenya, Rwanda, Tanzania and Uganda.</p>
</sec>
<sec>
<title>Participants</title>
<p>3226, 2377, 4396, 3250 and 2596 women of reproductive age (15–49 years) from Burundi, Kenya, Rwanda, Tanzania and Uganda, respectively, were included in the analysis.</p>
</sec>
<sec>
<title>Results</title>
<p>Women who had experienced a mistimed pregnancy were more likely to use a modern contraceptive method during their most recent sexual encounter in Kenya, Rwanda, Burundi and Uganda. Other significant correlates of women's contraceptive use were: desire for more children, parity, household wealth, maternal education and access information through radio. In-country regional differences on use of modern contraceptive methods were noted across five East African countries.</p>
</sec>
<sec>
<title>Conclusions</title>
<p>Women's birth histories were significantly associated with their decision to adopt a modern contraceptive method. This highlights the importance of considering women's birth histories, especially women with mistimed births, in the promotion of contraceptive use in East Africa. Variations as a result of place of residency, educational attainment, access to family planning information and products, and wealth ought to be addressed in efforts to increase use of modern contraceptive methods in the East African region.</p>
</sec>
</abstract>
<kwd-group>
<kwd>Pregnancy history</kwd>
<kwd>Contraceptive use</kwd>
<kwd>Burundi</kwd>
<kwd>Kenya</kwd>
<kwd>Rwanda</kwd>
<kwd>Tanzania, Uganda</kwd>
</kwd-group>
</article-meta>
</front>
<body>
<boxed-text position="float" orientation="portrait">
<caption>
<title>Strengths and limitations of this study</title>
</caption>
<list list-type="bullet">
<list-item>
<p>A major strength of this study is the use of nationally representative samples in five East African countries to study the influence of women's birth history on their contraceptive use.</p>
</list-item>
<list-item>
<p>The study has affirmed the importance of considering women's birth histories in the promotion of contraceptive use in the East African region.</p>
</list-item>
<list-item>
<p>The study did not control for an important variable relating to decision-making on contraceptive use as there were many missing cases.</p>
</list-item>
<list-item>
<p>Like any cross-sectional study, interpretations are limited to associations rather than causal relationships of the determinants of contraceptive use.</p>
</list-item>
</list>
</boxed-text>
<sec sec-type="intro" id="s1">
<title>Introduction</title>
<p>In the past two decades, sub-Saharan Africa has experienced significant increases in contraceptive knowledge and prevalence. The five East African countries—Burundi, Kenya, Rwanda, United Republic of Tanzania and Uganda—witnessed unprecedented progress in reproductive, maternal, newborn and child health (RMNCH). For example, contraceptive prevalence rates have, over the years, increased significantly in Rwanda from 21.2% in 1992 to 51.6% in 2011,
<xref rid="R1" ref-type="bibr">1</xref>
and in Kenya from 32.7% in 1993 to 58% in 2014.
<xref rid="R2" ref-type="bibr">2</xref>
In Uganda, maternal mortality reduced from 604 to 310/100 000 live births in the period between 2000 and 2013 owing to the accelerated Millennium Development Goals framework.
<xref rid="R3" ref-type="bibr">3</xref>
Similarly, Burundi recorded notable declines in infant and under-five mortality from 110/1000 in 1990 to 86/1000 in 2011 and from 183/1000 in 1990 to 139/1000 in 2011, respectively.
<xref rid="R4" ref-type="bibr">4</xref>
In Tanzania, facility-based deliveries increased from 44% in 1999 to 51% in 2010.
<xref rid="R5" ref-type="bibr">5</xref>
<xref rid="R6" ref-type="bibr">6</xref>
</p>
<p>Despite this overall progress, evidence suggests that the East African Community (EAC) region is still grappling with major gaps in access and quality in RMNCH services.
<xref rid="R7" ref-type="bibr">7</xref>
Even though contraceptive knowledge is nearly universal in the region and contraceptive prevalence has increased in the past two decades, the unmet need for contraception remains high in all the countries (
<xref ref-type="table" rid="BMJOPEN2015009991TB1">table 1</xref>
). Whereas proven strategies to reduce unplanned pregnancy such as increasing access to and correct use of effective contraception and contraceptive counselling exist, on average, only 46% of all sexually active women who would want to use contraceptives in East Africa in 2012 could access them.
<xref rid="R8" ref-type="bibr">8</xref>
<xref rid="R9" ref-type="bibr">9</xref>
</p>
<table-wrap id="BMJOPEN2015009991TB1" orientation="portrait" position="float">
<label>Table 1</label>
<caption>
<p>Selected reproductive health indicators in Burundi, Kenya, Rwanda, Tanzania and Uganda
<xref rid="R1" ref-type="bibr">1–4</xref>
<xref rid="R6" ref-type="bibr">6</xref>
</p>
</caption>
<table frame="hsides" rules="groups">
<colgroup span="1">
<col align="left" span="1"></col>
<col align="char" char="." span="1"></col>
<col align="char" char="." span="1"></col>
<col align="char" char="." span="1"></col>
<col align="char" char="." span="1"></col>
</colgroup>
<thead valign="bottom">
<tr>
<th rowspan="1" colspan="1"></th>
<th align="left" rowspan="1" colspan="1">Contraceptive prevalence (any method, %)</th>
<th align="left" rowspan="1" colspan="1">Total fertility rate (%)</th>
<th align="left" rowspan="1" colspan="1">Unmet need for family planning (%)</th>
<th align="left" rowspan="1" colspan="1">Knowledge of contraceptive methods (any method, %)</th>
</tr>
</thead>
<tbody>
<tr>
<td rowspan="1" colspan="1">Burundi</td>
<td rowspan="1" colspan="1">21.9</td>
<td rowspan="1" colspan="1">6.4</td>
<td rowspan="1" colspan="1">31.0</td>
<td rowspan="1" colspan="1">99.2</td>
</tr>
<tr>
<td rowspan="1" colspan="1">Kenya</td>
<td rowspan="1" colspan="1">45.5</td>
<td rowspan="1" colspan="1">4.6</td>
<td rowspan="1" colspan="1">25.6</td>
<td rowspan="1" colspan="1">95</td>
</tr>
<tr>
<td rowspan="1" colspan="1">Rwanda</td>
<td rowspan="1" colspan="1">51.6</td>
<td rowspan="1" colspan="1">4.6</td>
<td rowspan="1" colspan="1">18.9</td>
<td rowspan="1" colspan="1">99.3</td>
</tr>
<tr>
<td rowspan="1" colspan="1">Tanzania</td>
<td rowspan="1" colspan="1">34.4</td>
<td rowspan="1" colspan="1">5.4</td>
<td rowspan="1" colspan="1">25.3</td>
<td rowspan="1" colspan="1">98</td>
</tr>
<tr>
<td rowspan="1" colspan="1">Uganda</td>
<td rowspan="1" colspan="1">30.0</td>
<td rowspan="1" colspan="1">6.2</td>
<td rowspan="1" colspan="1">34.3</td>
<td rowspan="1" colspan="1">98.2</td>
</tr>
</tbody>
</table>
</table-wrap>
<p>Research has documented an association between contraceptive use and unplanned pregnancy in some settings.
<xref rid="R10" ref-type="bibr">10–13</xref>
Poor use of short-term hormonal contraceptive methods are known to be responsible for a high proportion of unintended pregnancies.
<xref rid="R11" ref-type="bibr">11</xref>
Other predictors of unplanned childbearing are residence, ethnicity, marital status, low maternal education and maternal age.
<xref rid="R12" ref-type="bibr">12</xref>
Moreover, a history of an unplanned pregnancy predicts the future occurrence of another unplanned pregnancy.
<xref rid="R14" ref-type="bibr">14</xref>
However, research on the links between the maternal history of an unplanned pregnancy and current use of contraception in East Africa is limited.
<xref rid="R15" ref-type="bibr">15–17</xref>
Most of the evidence is based on studies from Western contexts.
<xref rid="R15" ref-type="bibr">15</xref>
<xref rid="R16" ref-type="bibr">16</xref>
Matteson
<italic>et al</italic>
<xref rid="R15" ref-type="bibr">15</xref>
demonstrated that a past experience of an unplanned pregnancy did not predict overall contraceptive use among young women aged 14–25 years in the USA. In contrast, a recent study conducted in the urban slums of Kenya indicated that women whose last pregnancy was unintended were more likely to be using a modern method of contraception, compared to their counterparts whose last pregnancy was intended.
<xref rid="R17" ref-type="bibr">17</xref>
The study found marked variations among these groups of women driven by their socioeconomic status: unintended pregnancy was not associated with subsequent contraceptive use among poor women, unlike among wealthier women. However, the generalisation of this study's findings to other settings in Kenya or in the region is limited, given that the study was done among urban poor women. Additionally, the small sample size of the study limited the understanding of the issues to the urban setting. These limitations should be addressed if the linkages between unplanned pregnancy and current or future use of contraception among the general population in the East African region and other regions with similar context are to be better understood.</p>
<p>This paper attempts to address this gap by using nationally representative samples to examine the relationship between pregnancy history and subsequent use of contraception among women aged 15–49 years in the five East African partner states.</p>
<sec id="s1a">
<title>Context</title>
<p>In 2013, the EAC, consisting of Burundi, Kenya, Rwanda, Tanzania and Uganda, was home to approximately 143.5 million residents, with an annual population growth rate of 2.9%.
<xref rid="R18" ref-type="bibr">18</xref>
In the same period, the regional average maternal mortality rate stood at 469/100 000 live births, infant mortality was 62/1000 live births and child mortality at 98/1000 live births. These data, considered in the light of the high total fertility rate of 5.2%, and a generally high HIV prevalence among partner states (Kenya 6%, Rwanda 3%, Tanzania 5%, and Uganda 7%), point to gaps in the knowledge and use of reproductive health information, especially gaps in access to and proper use of contraception. This is particularly so given that evidence points to the benefits of contraception such as reduced infant, maternal and child mortality and prevention/reduction of unwanted pregnancies that often lead to unsafe abortion.
<xref rid="R19" ref-type="bibr">19–21</xref>
This context, together with the fact that the EAC partner states are increasingly cooperating in health through collaborative determination of health priorities and implementation of common policies, strategies, plans and investments, makes the region a unique context for investigating issues of unintended pregnancy and contraceptive use among women of reproductive age.</p>
</sec>
</sec>
<sec sec-type="methods" id="s2">
<title>Methods</title>
<sec id="s2a">
<title>Data sources</title>
<p>The study used data from the most recent Demographic and Health Surveys (DHS) in Burundi, Kenya, Tanzania, Rwanda and Uganda. DHS are a series of nationally representative data collected by the respective countries and cover the areas of demography, health and family planning (FP). The surveys are implemented by the respective countries’ governments in collaboration with development partners and with technical assistance from ICF International. The data sets are freely available to the public on application to MEASURE DHS and require no further ethical clearance. At the time of our analysis and write-up, Kenya had released preliminary DHS results for 2014, but the data had not been released.</p>
<p>DHS use a household questionnaire to enlist all members and visitors who spent the previous night in the selected households to capture basic demographic data such as age, sex, education and relationship to the head of the household. The household questionnaire also collects information on household characteristics such as source of drinking water, type of toilet facility and the type of material used for house construction. The rationale for data collection on all members and visitors in the household is to identify women and men eligible for the individual interview.</p>
<p>The woman's questionnaire captures the respondent's background characteristics (age, education and media exposure); birth history and childhood mortality; knowledge and use of FP methods; fertility preferences; antenatal, delivery and postnatal care; breastfeeding and infant feeding practices; vaccinations and childhood illnesses; marriage and sexual activity. It also gathers data on a woman's work and her husband's background characteristics; her awareness and behaviour regarding Acquired Immune Deficiency Syndrome (AIDS) and other sexually transmitted infections in addition to adult mortality, including maternal mortality, knowledge of tuberculosis; and gender-based violence. The man's questionnaire collects information similar to that in the woman's questionnaire except for questions on reproductive history and maternal and child health.</p>
<p>The surveys utilise a two-stage sampling strategy—clusters are first selected from the most recent population census sample frame and later, and households are systematically selected from the clusters. Participants eligible for interview include all women of ages 15–49 years and men of ages 15–54 years who are either permanent residents of the selected household or are visitors who spent a night in the household before the survey. To facilitate data collection at household and individual levels, the surveys use model questionnaires developed by the MEASURE DHS programme developed specifically for households, women and men. These questionnaires undergo slight modifications at country level to reflect demographic and health issues relevant to respective countries. Detailed information about sampling strategies and data collection can be found in the DHS reports for respective countries.
<xref rid="R1" ref-type="bibr">1–4</xref>
<xref rid="R6" ref-type="bibr">6</xref>
Samples used in this study are presented in
<xref ref-type="table" rid="BMJOPEN2015009991TB2">table 2</xref>
and refer to women of ages 15–49 years who were not pregnant during the survey, had sex intercourse at least once in the month preceding the survey and had at least one birth.</p>
<table-wrap id="BMJOPEN2015009991TB2" orientation="portrait" position="float">
<label>Table 2</label>
<caption>
<p>Sample characteristics</p>
</caption>
<table frame="hsides" rules="groups">
<colgroup span="1">
<col align="left" span="1"></col>
<col align="char" char="." span="1"></col>
<col align="char" char="." span="1"></col>
<col align="char" char="." span="1"></col>
<col align="char" char="." span="1"></col>
<col align="char" char="." span="1"></col>
<col align="char" char="." span="1"></col>
<col align="char" char="." span="1"></col>
<col align="char" char="." span="1"></col>
<col align="char" char="." span="1"></col>
<col align="char" char="." span="1"></col>
</colgroup>
<thead valign="bottom">
<tr>
<th rowspan="1" colspan="1"></th>
<th align="left" colspan="2" rowspan="1">Kenya (2008–2009)</th>
<th align="left" colspan="2" rowspan="1">Uganda (2011)</th>
<th align="left" colspan="2" rowspan="1">Tanzania (2010)</th>
<th align="left" colspan="2" rowspan="1">Rwanda (2010)</th>
<th align="left" colspan="2" rowspan="1">Burundi (2010)</th>
</tr>
<tr>
<th align="left" rowspan="1" colspan="1">Variables</th>
<th align="left" rowspan="1" colspan="1">Per cent</th>
<th align="left" rowspan="1" colspan="1">n</th>
<th align="left" rowspan="1" colspan="1">Per cent</th>
<th align="left" rowspan="1" colspan="1">n</th>
<th align="left" rowspan="1" colspan="1">Per cent</th>
<th align="left" rowspan="1" colspan="1">n</th>
<th align="left" rowspan="1" colspan="1">Per cent</th>
<th align="left" rowspan="1" colspan="1">n</th>
<th align="left" rowspan="1" colspan="1">Per cent</th>
<th align="left" rowspan="1" colspan="1">n</th>
</tr>
</thead>
<tbody>
<tr>
<td rowspan="1" colspan="1">Total sample</td>
<td rowspan="1" colspan="1">100.0</td>
<td rowspan="1" colspan="1">2377</td>
<td rowspan="1" colspan="1">100.0</td>
<td rowspan="1" colspan="1">2596</td>
<td rowspan="1" colspan="1">100.0</td>
<td rowspan="1" colspan="1">3250</td>
<td rowspan="1" colspan="1">100.0</td>
<td rowspan="1" colspan="1">4396</td>
<td rowspan="1" colspan="1">100.0</td>
<td rowspan="1" colspan="1">3226</td>
</tr>
<tr>
<td colspan="11" rowspan="1">Contraceptive use</td>
</tr>
<tr>
<td rowspan="1" colspan="1"> Modern</td>
<td rowspan="1" colspan="1">51.0</td>
<td rowspan="1" colspan="1">1113</td>
<td rowspan="1" colspan="1">37.0</td>
<td rowspan="1" colspan="1">941</td>
<td rowspan="1" colspan="1">42.5</td>
<td rowspan="1" colspan="1">1280</td>
<td rowspan="1" colspan="1">58.0</td>
<td rowspan="1" colspan="1">2578</td>
<td rowspan="1" colspan="1">25.5</td>
<td rowspan="1" colspan="1">856</td>
</tr>
<tr>
<td rowspan="1" colspan="1"> No/non-modern</td>
<td rowspan="1" colspan="1">49.0</td>
<td rowspan="1" colspan="1">1264</td>
<td rowspan="1" colspan="1">63.0</td>
<td rowspan="1" colspan="1">1655</td>
<td rowspan="1" colspan="1">57.5</td>
<td rowspan="1" colspan="1">1970</td>
<td rowspan="1" colspan="1">42.0</td>
<td rowspan="1" colspan="1">1818</td>
<td rowspan="1" colspan="1">74.5</td>
<td rowspan="1" colspan="1">2370</td>
</tr>
<tr>
<td colspan="11" rowspan="1">Pregnancy history</td>
</tr>
<tr>
<td rowspan="1" colspan="1"> Wanted</td>
<td rowspan="1" colspan="1">56.5</td>
<td rowspan="1" colspan="1">1467</td>
<td rowspan="1" colspan="1">52.2</td>
<td rowspan="1" colspan="1">1405</td>
<td rowspan="1" colspan="1">72.1</td>
<td rowspan="1" colspan="1">2354</td>
<td rowspan="1" colspan="1">58.9</td>
<td rowspan="1" colspan="1">2587</td>
<td rowspan="1" colspan="1">65.6</td>
<td rowspan="1" colspan="1">2130</td>
</tr>
<tr>
<td rowspan="1" colspan="1"> Mistimed</td>
<td rowspan="1" colspan="1">25.1</td>
<td rowspan="1" colspan="1">543</td>
<td rowspan="1" colspan="1">34.3</td>
<td rowspan="1" colspan="1">861</td>
<td rowspan="1" colspan="1">23.4</td>
<td rowspan="1" colspan="1">757</td>
<td rowspan="1" colspan="1">26.3</td>
<td rowspan="1" colspan="1">1153</td>
<td rowspan="1" colspan="1">28.1</td>
<td rowspan="1" colspan="1">888</td>
</tr>
<tr>
<td rowspan="1" colspan="1"> Unwanted</td>
<td rowspan="1" colspan="1">18.4</td>
<td rowspan="1" colspan="1">367</td>
<td rowspan="1" colspan="1">13.5</td>
<td rowspan="1" colspan="1">330</td>
<td rowspan="1" colspan="1">4.5</td>
<td rowspan="1" colspan="1">139</td>
<td rowspan="1" colspan="1">14.8</td>
<td rowspan="1" colspan="1">656</td>
<td rowspan="1" colspan="1">6.3</td>
<td rowspan="1" colspan="1">208</td>
</tr>
<tr>
<td colspan="11" rowspan="1">Maternal age</td>
</tr>
<tr>
<td rowspan="1" colspan="1"> 15–19</td>
<td rowspan="1" colspan="1">4.4</td>
<td rowspan="1" colspan="1">123</td>
<td rowspan="1" colspan="1">5.5</td>
<td rowspan="1" colspan="1">153</td>
<td rowspan="1" colspan="1">5.0</td>
<td rowspan="1" colspan="1">141</td>
<td rowspan="1" colspan="1">1.1</td>
<td rowspan="1" colspan="1">47</td>
<td rowspan="1" colspan="1">2.5</td>
<td rowspan="1" colspan="1">77</td>
</tr>
<tr>
<td rowspan="1" colspan="1"> 20–29</td>
<td rowspan="1" colspan="1">53.0</td>
<td rowspan="1" colspan="1">1249</td>
<td rowspan="1" colspan="1">51.6</td>
<td rowspan="1" colspan="1">1348</td>
<td rowspan="1" colspan="1">48.7</td>
<td rowspan="1" colspan="1">1510</td>
<td rowspan="1" colspan="1">45.8</td>
<td rowspan="1" colspan="1">2008</td>
<td rowspan="1" colspan="1">47.5</td>
<td rowspan="1" colspan="1">1489</td>
</tr>
<tr>
<td rowspan="1" colspan="1"> 30–39</td>
<td rowspan="1" colspan="1">34.4</td>
<td rowspan="1" colspan="1">807</td>
<td rowspan="1" colspan="1">32.6</td>
<td rowspan="1" colspan="1">845</td>
<td rowspan="1" colspan="1">36.3</td>
<td rowspan="1" colspan="1">1179</td>
<td rowspan="1" colspan="1">39.2</td>
<td rowspan="1" colspan="1">1740</td>
<td rowspan="1" colspan="1">36.1</td>
<td rowspan="1" colspan="1">1205</td>
</tr>
<tr>
<td rowspan="1" colspan="1"> 40–49</td>
<td rowspan="1" colspan="1">8.1</td>
<td rowspan="1" colspan="1">198</td>
<td rowspan="1" colspan="1">10.3</td>
<td rowspan="1" colspan="1">250</td>
<td rowspan="1" colspan="1">10.0</td>
<td rowspan="1" colspan="1">420</td>
<td rowspan="1" colspan="1">13.9</td>
<td rowspan="1" colspan="1">601</td>
<td rowspan="1" colspan="1">14.0</td>
<td rowspan="1" colspan="1">455</td>
</tr>
<tr>
<td colspan="11" rowspan="1">Residence</td>
</tr>
<tr>
<td rowspan="1" colspan="1"> Urban</td>
<td rowspan="1" colspan="1">22.1</td>
<td rowspan="1" colspan="1">658</td>
<td rowspan="1" colspan="1">16.6</td>
<td rowspan="1" colspan="1">625</td>
<td rowspan="1" colspan="1">24.6</td>
<td rowspan="1" colspan="1">731</td>
<td rowspan="1" colspan="1">12.1</td>
<td rowspan="1" colspan="1">605</td>
<td rowspan="1" colspan="1">8.4</td>
<td rowspan="1" colspan="1">585</td>
</tr>
<tr>
<td rowspan="1" colspan="1"> Rural</td>
<td rowspan="1" colspan="1">77.9</td>
<td rowspan="1" colspan="1">1719</td>
<td rowspan="1" colspan="1">83.4</td>
<td rowspan="1" colspan="1">1951</td>
<td rowspan="1" colspan="1">75.4</td>
<td rowspan="1" colspan="1">2519</td>
<td rowspan="1" colspan="1">87.9</td>
<td rowspan="1" colspan="1">3791</td>
<td rowspan="1" colspan="1">91.6</td>
<td rowspan="1" colspan="1">2641</td>
</tr>
<tr>
<td colspan="11" rowspan="1">Maternal education</td>
</tr>
<tr>
<td rowspan="1" colspan="1"> Higher</td>
<td rowspan="1" colspan="1">5.7</td>
<td rowspan="1" colspan="1">167</td>
<td rowspan="1" colspan="1">4.3</td>
<td rowspan="1" colspan="1">141</td>
<td rowspan="1" colspan="1">0.4</td>
<td rowspan="1" colspan="1">13</td>
<td rowspan="1" colspan="1">1.2</td>
<td rowspan="1" colspan="1">65</td>
<td rowspan="1" colspan="1">0.7</td>
<td rowspan="1" colspan="1">46</td>
</tr>
<tr>
<td rowspan="1" colspan="1"> Secondary</td>
<td rowspan="1" colspan="1">22.1</td>
<td rowspan="1" colspan="1">461</td>
<td rowspan="1" colspan="1">19.6</td>
<td rowspan="1" colspan="1">516</td>
<td rowspan="1" colspan="1">7.2</td>
<td rowspan="1" colspan="1">409</td>
<td rowspan="1" colspan="1">8.4</td>
<td rowspan="1" colspan="1">391</td>
<td rowspan="1" colspan="1">6.2</td>
<td rowspan="1" colspan="1">305</td>
</tr>
<tr>
<td rowspan="1" colspan="1"> Primary</td>
<td rowspan="1" colspan="1">63.4</td>
<td rowspan="1" colspan="1">1344</td>
<td rowspan="1" colspan="1">62.5</td>
<td rowspan="1" colspan="1">1533</td>
<td rowspan="1" colspan="1">70.1</td>
<td rowspan="1" colspan="1">2089</td>
<td rowspan="1" colspan="1">72.2</td>
<td rowspan="1" colspan="1">3156</td>
<td rowspan="1" colspan="1">40.9</td>
<td rowspan="1" colspan="1">1304</td>
</tr>
<tr>
<td rowspan="1" colspan="1"> No education</td>
<td rowspan="1" colspan="1">8.8</td>
<td rowspan="1" colspan="1">405</td>
<td rowspan="1" colspan="1">13.6</td>
<td rowspan="1" colspan="1">406</td>
<td rowspan="1" colspan="1">22.3</td>
<td rowspan="1" colspan="1">739</td>
<td rowspan="1" colspan="1">28.2</td>
<td rowspan="1" colspan="1">784</td>
<td rowspan="1" colspan="1">52.2</td>
<td rowspan="1" colspan="1">1571</td>
</tr>
</tbody>
</table>
</table-wrap>
</sec>
<sec id="s2b">
<title>Variables</title>
<p>Contraceptive use, which was the dependent variable, was coded zero (0) if the woman used a modern contraceptive method (pill, intrauterine device, injections, condoms, female sterilisation and Norplant) and one (1) if she used a non-modern method (folkloric and traditional methods) or did not use any method during the most recent sexual encounter. The main independent variable was pregnancy history whereby the last pregnancy was categorised as wanted, mistimed or unwanted. In this analysis, wanted pregnancies refer to pregnancies that were planned at conception or reported to have happened at the ‘right time’ or later than desired (because of infertility or difficulties in conceiving). Mistimed pregnancies are those that occurred earlier than desired while unwanted pregnancies are pregnancies that were reported to have occurred when no children, or no more children, were desired.</p>
<p>Other independent variables were grouped into three categories: individual, household and community. Individual variables included maternal age (15–19, 20–29, 30–39 or 40–49 years), woman's desire for more children (want more or want no more), and maternal parity (treated as a continuous variable). Household variables included maternal educational attainment (no education, primary, secondary or higher education), household quintile of wealth (poorest, poor, middle, rich, richer or richest), religion (Christian, Muslim or other religion), media exposure at least once in a week through radio, television or newspaper/magazine (yes or no), and woman's decision-making on her healthcare (makes decisions alone or not alone). Finally, Community variables consisted of a woman's place of residence (urban or rural), region (geographical/administrative boundaries in the respective countries), and whether a woman had been visited by a FP worker in the past few months (yes or no).</p>
</sec>
<sec id="s2c">
<title>Analysis</title>
<p>All statistical analyses were conducted using IBM SPSS Statistics V.22. To account for the multistage sampling strategy adopted by DHS in the respective country surveys, the study used the SPSS Complex Samples Module to incorporate sample weights, primary sampling unit (clusters) and sample domain (strata) in all the analyses.
<xref rid="R22" ref-type="bibr">22</xref>
Logistic regression was used to first determine the raw effects of maternal pregnancy history in predicting contraceptive use among sexually active women (
<xref ref-type="table" rid="BMJOPEN2015009991TB3">table 3</xref>
). In the second stage, other individual level variables were included in the regression model to determine the gross effects of maternal pregnancy history in predicting contraceptive use (
<xref ref-type="table" rid="BMJOPEN2015009991TB4">table 4</xref>
).
<xref ref-type="table" rid="BMJOPEN2015009991TB5">Table 5</xref>
shows the gross effects of maternal pregnancy history in predicting contraceptive use, taking into account variables at the individual and household levels. The last stage of the analysis (
<xref ref-type="table" rid="BMJOPEN2015009991TB6">table 6</xref>
) shows the net effects of pregnancy history in predicting contraceptive use taking into account variables at a woman's individual, household and community level.</p>
<table-wrap id="BMJOPEN2015009991TB3" orientation="portrait" position="float">
<label>Table 3</label>
<caption>
<p>Logit models with maternal pregnancy history as the sole correlate of contraceptive use</p>
</caption>
<table frame="hsides" rules="groups">
<colgroup span="1">
<col align="left" span="1"></col>
<col align="char" char="." span="1"></col>
<col align="left" span="1"></col>
<col align="char" char="." span="1"></col>
<col align="left" span="1"></col>
<col align="char" char="." span="1"></col>
<col align="left" span="1"></col>
<col align="char" char="." span="1"></col>
<col align="left" span="1"></col>
<col align="char" char="." span="1"></col>
<col align="left" span="1"></col>
</colgroup>
<thead valign="bottom">
<tr>
<th rowspan="1" colspan="1"></th>
<th align="left" colspan="2" rowspan="1">Kenya (2008–2009)</th>
<th align="left" colspan="2" rowspan="1">Uganda (2011)</th>
<th align="left" colspan="2" rowspan="1">Tanzania (2010)</th>
<th align="left" colspan="2" rowspan="1">Rwanda (2010)</th>
<th align="left" colspan="2" rowspan="1">Burundi (2010)</th>
</tr>
<tr>
<th rowspan="1" colspan="1"></th>
<th align="left" rowspan="1" colspan="1">OR</th>
<th align="left" rowspan="1" colspan="1">95% CI</th>
<th align="left" rowspan="1" colspan="1">OR</th>
<th align="left" rowspan="1" colspan="1">95% CI</th>
<th align="left" rowspan="1" colspan="1">OR</th>
<th align="left" rowspan="1" colspan="1">95% CI</th>
<th align="left" rowspan="1" colspan="1">OR</th>
<th align="left" rowspan="1" colspan="1">95% CI</th>
<th align="left" rowspan="1" colspan="1">OR</th>
<th align="left" rowspan="1" colspan="1">95% CI</th>
</tr>
</thead>
<tbody>
<tr>
<td colspan="11" rowspan="1">Pregnancy history: wanted (ref)</td>
</tr>
<tr>
<td rowspan="1" colspan="1"> Mistimed</td>
<td rowspan="1" colspan="1">0.77</td>
<td rowspan="1" colspan="1">0.60 to 1.00</td>
<td rowspan="1" colspan="1">0.80*</td>
<td rowspan="1" colspan="1">0.66 to 0.97</td>
<td rowspan="1" colspan="1">0.95</td>
<td rowspan="1" colspan="1">0.77 to 1.16</td>
<td rowspan="1" colspan="1">0.84*</td>
<td rowspan="1" colspan="1">0.73 to 0.97</td>
<td rowspan="1" colspan="1">0.67***</td>
<td rowspan="1" colspan="1">0.55 to 0.83</td>
</tr>
<tr>
<td rowspan="1" colspan="1"> Unwanted</td>
<td rowspan="1" colspan="1">1.01</td>
<td rowspan="1" colspan="1">0.74 to 1.38</td>
<td rowspan="1" colspan="1">0.73</td>
<td rowspan="1" colspan="1">0.53 to 1.00</td>
<td rowspan="1" colspan="1">0.58**</td>
<td rowspan="1" colspan="1">0.38 to 0.88</td>
<td rowspan="1" colspan="1">1.12</td>
<td rowspan="1" colspan="1">0.94 to 1.33</td>
<td rowspan="1" colspan="1">0.87</td>
<td rowspan="1" colspan="1">0.61 to 1.25</td>
</tr>
</tbody>
</table>
<table-wrap-foot>
<fn>
<p>*p≤0.05; **p≤0.01; ***p≤0.001.</p>
</fn>
</table-wrap-foot>
</table-wrap>
<table-wrap id="BMJOPEN2015009991TB4" orientation="portrait" position="float">
<label>Table 4</label>
<caption>
<p>Logit models with maternal pregnancy history and other individual correlates of contraceptive use</p>
</caption>
<table frame="hsides" rules="groups">
<colgroup span="1">
<col align="left" span="1"></col>
<col align="char" char="." span="1"></col>
<col align="left" span="1"></col>
<col align="char" char="." span="1"></col>
<col align="left" span="1"></col>
<col align="char" char="." span="1"></col>
<col align="left" span="1"></col>
<col align="char" char="." span="1"></col>
<col align="left" span="1"></col>
<col align="char" char="." span="1"></col>
<col align="left" span="1"></col>
</colgroup>
<thead valign="bottom">
<tr>
<th rowspan="1" colspan="1"></th>
<th align="left" colspan="2" rowspan="1">Kenya (2008–2009)</th>
<th align="left" colspan="2" rowspan="1">Uganda (2011)</th>
<th align="left" colspan="2" rowspan="1">Tanzania (2010)</th>
<th align="left" colspan="2" rowspan="1">Rwanda (2010)</th>
<th align="left" colspan="2" rowspan="1">Burundi (2010)</th>
</tr>
<tr>
<th rowspan="1" colspan="1"></th>
<th align="left" rowspan="1" colspan="1">OR</th>
<th align="left" rowspan="1" colspan="1">95% CI</th>
<th align="left" rowspan="1" colspan="1">OR</th>
<th align="left" rowspan="1" colspan="1">95% CI</th>
<th align="left" rowspan="1" colspan="1">OR</th>
<th align="left" rowspan="1" colspan="1">95% CI</th>
<th align="left" rowspan="1" colspan="1">OR</th>
<th align="left" rowspan="1" colspan="1">95% CI</th>
<th align="left" rowspan="1" colspan="1">OR</th>
<th align="left" rowspan="1" colspan="1">95% CI</th>
</tr>
</thead>
<tbody>
<tr>
<td colspan="11" rowspan="1">Pregnancy history: wanted (ref)</td>
</tr>
<tr>
<td rowspan="1" colspan="1"> Mistimed</td>
<td rowspan="1" colspan="1">0.63***</td>
<td rowspan="1" colspan="1">0.48 to 0.83</td>
<td rowspan="1" colspan="1">0.76**</td>
<td rowspan="1" colspan="1">0.62 to 0.93</td>
<td rowspan="1" colspan="1">0.90</td>
<td rowspan="1" colspan="1">0.74 to 1.10</td>
<td rowspan="1" colspan="1">0.84*</td>
<td rowspan="1" colspan="1">0.73 to 0.96</td>
<td rowspan="1" colspan="1">0.70***</td>
<td rowspan="1" colspan="1">0.56 to 0.87</td>
</tr>
<tr>
<td rowspan="1" colspan="1"> Unwanted</td>
<td rowspan="1" colspan="1">0.82</td>
<td rowspan="1" colspan="1">0.57 to 1.17</td>
<td rowspan="1" colspan="1">0.71</td>
<td rowspan="1" colspan="1">0.50 to 1.01</td>
<td rowspan="1" colspan="1">0.62*</td>
<td rowspan="1" colspan="1">0.39 to 0.98</td>
<td rowspan="1" colspan="1">0.87</td>
<td rowspan="1" colspan="1">0.71 to 1.07</td>
<td rowspan="1" colspan="1">0.74</td>
<td rowspan="1" colspan="1">0.49 to 1.12</td>
</tr>
<tr>
<td colspan="11" rowspan="1">Maternal age: 15–19 (ref) (years)</td>
</tr>
<tr>
<td rowspan="1" colspan="1"> 20–29</td>
<td rowspan="1" colspan="1">0.41**</td>
<td rowspan="1" colspan="1">0.23 to 0.73</td>
<td rowspan="1" colspan="1">0.70</td>
<td rowspan="1" colspan="1">0.45 to 1.09</td>
<td rowspan="1" colspan="1">0.51**</td>
<td rowspan="1" colspan="1">0.32 to 0.83</td>
<td rowspan="1" colspan="1">0.98</td>
<td rowspan="1" colspan="1">0.54 to 1.78</td>
<td rowspan="1" colspan="1">0.62</td>
<td rowspan="1" colspan="1">0.29 to 1.31</td>
</tr>
<tr>
<td rowspan="1" colspan="1"> 30–39</td>
<td rowspan="1" colspan="1">0.20***</td>
<td rowspan="1" colspan="1">0.10 to 0.37</td>
<td rowspan="1" colspan="1">0.38***</td>
<td rowspan="1" colspan="1">0.23 to 0.64</td>
<td rowspan="1" colspan="1">0.37***</td>
<td rowspan="1" colspan="1">0.22 to 0.62</td>
<td rowspan="1" colspan="1">1.07</td>
<td rowspan="1" colspan="1">0.59 to 1.96</td>
<td rowspan="1" colspan="1">0.64</td>
<td rowspan="1" colspan="1">0.29 to 1.38</td>
</tr>
<tr>
<td rowspan="1" colspan="1"> 40–49</td>
<td rowspan="1" colspan="1">0.16***</td>
<td rowspan="1" colspan="1">0.07 to 0.37</td>
<td rowspan="1" colspan="1">0.45*</td>
<td rowspan="1" colspan="1">0.23 to 0.87</td>
<td rowspan="1" colspan="1">0.33***</td>
<td rowspan="1" colspan="1">0.18 to 0.63</td>
<td rowspan="1" colspan="1">1.46</td>
<td rowspan="1" colspan="1">0.76 to 2.79</td>
<td rowspan="1" colspan="1">0.94</td>
<td rowspan="1" colspan="1">0.41 to 2.16</td>
</tr>
<tr>
<td colspan="11" rowspan="1">Desire for more children: no more (ref)</td>
</tr>
<tr>
<td rowspan="1" colspan="1"> Want more</td>
<td rowspan="1" colspan="1">1.96***</td>
<td rowspan="1" colspan="1">1.44 to 2.66</td>
<td rowspan="1" colspan="1">1.64***</td>
<td rowspan="1" colspan="1">1.28 to 2.11</td>
<td rowspan="1" colspan="1">2.35***</td>
<td rowspan="1" colspan="1">1.83 to 3.03</td>
<td rowspan="1" colspan="1">1.53***</td>
<td rowspan="1" colspan="1">1.30 to 1.80</td>
<td rowspan="1" colspan="1">2.18***</td>
<td rowspan="1" colspan="1">1.68 to 2.82</td>
</tr>
<tr>
<td rowspan="1" colspan="1"> Parity</td>
<td rowspan="1" colspan="1">1.40***</td>
<td rowspan="1" colspan="1">1.31 to 1.51</td>
<td rowspan="1" colspan="1">1.18***</td>
<td rowspan="1" colspan="1">1.11 to 1.26</td>
<td rowspan="1" colspan="1">1.26***</td>
<td rowspan="1" colspan="1">1.18 to 1.33</td>
<td rowspan="1" colspan="1">1.11***</td>
<td rowspan="1" colspan="1">1.06 to 1.16</td>
<td rowspan="1" colspan="1">1.14***</td>
<td rowspan="1" colspan="1">1.07 to 1.21</td>
</tr>
</tbody>
</table>
<table-wrap-foot>
<fn>
<p>*p≤0.05; **p≤0.01; ***p≤0.001.</p>
</fn>
</table-wrap-foot>
</table-wrap>
<table-wrap id="BMJOPEN2015009991TB5" orientation="portrait" position="float">
<label>Table 5</label>
<caption>
<p>Logit models with maternal pregnancy history and other individual and household correlates of contraceptive use</p>
</caption>
<table frame="hsides" rules="groups">
<colgroup span="1">
<col align="left" span="1"></col>
<col align="char" char="." span="1"></col>
<col align="left" span="1"></col>
<col align="char" char="." span="1"></col>
<col align="left" span="1"></col>
<col align="char" char="." span="1"></col>
<col align="left" span="1"></col>
<col align="char" char="." span="1"></col>
<col align="left" span="1"></col>
<col align="char" char="." span="1"></col>
<col align="left" span="1"></col>
</colgroup>
<thead valign="bottom">
<tr>
<th rowspan="1" colspan="1"></th>
<th align="left" colspan="2" rowspan="1">Kenya (2008–2009)</th>
<th align="left" colspan="2" rowspan="1">Uganda (2011)</th>
<th align="left" colspan="2" rowspan="1">Tanzania (2010)</th>
<th align="left" colspan="2" rowspan="1">Rwanda (2010)</th>
<th align="left" colspan="2" rowspan="1">Burundi (2010)</th>
</tr>
<tr>
<th rowspan="1" colspan="1"></th>
<th align="left" rowspan="1" colspan="1">OR</th>
<th align="left" rowspan="1" colspan="1">95% CI</th>
<th align="left" rowspan="1" colspan="1">OR</th>
<th align="left" rowspan="1" colspan="1">95% CI</th>
<th align="left" rowspan="1" colspan="1">OR</th>
<th align="left" rowspan="1" colspan="1">95% CI</th>
<th align="left" rowspan="1" colspan="1">OR</th>
<th align="left" rowspan="1" colspan="1">95% CI</th>
<th align="left" rowspan="1" colspan="1">OR</th>
<th align="left" rowspan="1" colspan="1">95% CI</th>
</tr>
</thead>
<tbody>
<tr>
<td colspan="11" rowspan="1">Pregnancy history: wanted (ref)</td>
</tr>
<tr>
<td rowspan="1" colspan="1"> Mistimed</td>
<td rowspan="1" colspan="1">0.66**</td>
<td rowspan="1" colspan="1">0.49 to 0.87</td>
<td rowspan="1" colspan="1">0.72**</td>
<td rowspan="1" colspan="1">0.58 to 0.89</td>
<td rowspan="1" colspan="1">0.95</td>
<td rowspan="1" colspan="1">0.76 to 1.19</td>
<td rowspan="1" colspan="1">0.83*</td>
<td rowspan="1" colspan="1">0.72 to 0.96</td>
<td rowspan="1" colspan="1">0.72**</td>
<td rowspan="1" colspan="1">0.58 to 0.90</td>
</tr>
<tr>
<td rowspan="1" colspan="1"> Unwanted</td>
<td rowspan="1" colspan="1">0.90</td>
<td rowspan="1" colspan="1">0.59 to 1.36</td>
<td rowspan="1" colspan="1">0.68*</td>
<td rowspan="1" colspan="1">0.48 to 0.98</td>
<td rowspan="1" colspan="1">0.69</td>
<td rowspan="1" colspan="1">0.41 to 1.16</td>
<td rowspan="1" colspan="1">0.85</td>
<td rowspan="1" colspan="1">0.68 to 1.06</td>
<td rowspan="1" colspan="1">0.79</td>
<td rowspan="1" colspan="1">0.51 to 1.21</td>
</tr>
<tr>
<td colspan="11" rowspan="1">Maternal age: 15–19 (ref) (years)</td>
</tr>
<tr>
<td rowspan="1" colspan="1"> 20–29</td>
<td rowspan="1" colspan="1">0.58</td>
<td rowspan="1" colspan="1">0.33 to 1.03</td>
<td rowspan="1" colspan="1">0.85</td>
<td rowspan="1" colspan="1">0.52 to 1.40</td>
<td rowspan="1" colspan="1">0.53*</td>
<td rowspan="1" colspan="1">0.31 to 0.91</td>
<td rowspan="1" colspan="1">0.98</td>
<td rowspan="1" colspan="1">0.52 to 1.84</td>
<td rowspan="1" colspan="1">0.68</td>
<td rowspan="1" colspan="1">0.30 to 1.53</td>
</tr>
<tr>
<td rowspan="1" colspan="1"> 30–39</td>
<td rowspan="1" colspan="1">0.38**</td>
<td rowspan="1" colspan="1">0.19 to 0.75</td>
<td rowspan="1" colspan="1">0.62</td>
<td rowspan="1" colspan="1">0.35 to 1.12</td>
<td rowspan="1" colspan="1">0.40**</td>
<td rowspan="1" colspan="1">0.22 to 0.74</td>
<td rowspan="1" colspan="1">1.13</td>
<td rowspan="1" colspan="1">0.60 to 2.15</td>
<td rowspan="1" colspan="1">0.82</td>
<td rowspan="1" colspan="1">0.35 to 1.92</td>
</tr>
<tr>
<td rowspan="1" colspan="1"> 40–49</td>
<td rowspan="1" colspan="1">0.38*</td>
<td rowspan="1" colspan="1">0.16 to 0.91</td>
<td rowspan="1" colspan="1">0.76</td>
<td rowspan="1" colspan="1">0.37 to 1.53</td>
<td rowspan="1" colspan="1">0.39**</td>
<td rowspan="1" colspan="1">0.19 to 0.79</td>
<td rowspan="1" colspan="1">1.63</td>
<td rowspan="1" colspan="1">0.82 to 3.24</td>
<td rowspan="1" colspan="1">1.15</td>
<td rowspan="1" colspan="1">0.46 to 2.90</td>
</tr>
<tr>
<td colspan="11" rowspan="1">Desire for more children: no more (ref)</td>
</tr>
<tr>
<td rowspan="1" colspan="1"> Want more</td>
<td rowspan="1" colspan="1">1.70***</td>
<td rowspan="1" colspan="1">1.24 to 2.33</td>
<td rowspan="1" colspan="1">1.58***</td>
<td rowspan="1" colspan="1">1.22 to 2.06</td>
<td rowspan="1" colspan="1">2.12***</td>
<td rowspan="1" colspan="1">1.60 to 2.81</td>
<td rowspan="1" colspan="1">1.51***</td>
<td rowspan="1" colspan="1">1.28 to 1.79</td>
<td rowspan="1" colspan="1">1.99***</td>
<td rowspan="1" colspan="1">1.53 to 2.60</td>
</tr>
<tr>
<td rowspan="1" colspan="1"> Parity</td>
<td rowspan="1" colspan="1">1.23***</td>
<td rowspan="1" colspan="1">1.13 to 1.35</td>
<td rowspan="1" colspan="1">1.05</td>
<td rowspan="1" colspan="1">0.98 to 1.12</td>
<td rowspan="1" colspan="1">1.18***</td>
<td rowspan="1" colspan="1">1.11 to 1.26</td>
<td rowspan="1" colspan="1">1.10***</td>
<td rowspan="1" colspan="1">1.05 to 1.15</td>
<td rowspan="1" colspan="1">1.09*</td>
<td rowspan="1" colspan="1">1.02 to 1.17</td>
</tr>
<tr>
<td colspan="11" rowspan="1">Maternal education: higher (ref)</td>
</tr>
<tr>
<td rowspan="1" colspan="1"> Secondary</td>
<td rowspan="1" colspan="1">0.80</td>
<td rowspan="1" colspan="1">0.47 to 1.37</td>
<td rowspan="1" colspan="1">1.36</td>
<td rowspan="1" colspan="1">0.85 to 2.17</td>
<td rowspan="1" colspan="1">0.07**</td>
<td rowspan="1" colspan="1">0.01 to 0.43</td>
<td rowspan="1" colspan="1">1.85</td>
<td rowspan="1" colspan="1">0.94 to 3.65</td>
<td rowspan="1" colspan="1">0.80</td>
<td rowspan="1" colspan="1">0.36 to 1.79</td>
</tr>
<tr>
<td rowspan="1" colspan="1"> Primary</td>
<td rowspan="1" colspan="1">1.04</td>
<td rowspan="1" colspan="1">0.60 to 1.82</td>
<td rowspan="1" colspan="1">1.78*</td>
<td rowspan="1" colspan="1">1.09 to 2.89</td>
<td rowspan="1" colspan="1">0.06**</td>
<td rowspan="1" colspan="1">0.01 to 0.39</td>
<td rowspan="1" colspan="1">2.36*</td>
<td rowspan="1" colspan="1">1.19 to 4.68</td>
<td rowspan="1" colspan="1">1.10</td>
<td rowspan="1" colspan="1">0.47 to 2.58</td>
</tr>
<tr>
<td rowspan="1" colspan="1"> No education</td>
<td rowspan="1" colspan="1">1.28</td>
<td rowspan="1" colspan="1">0.56 to 2.91</td>
<td rowspan="1" colspan="1">2.99***</td>
<td rowspan="1" colspan="1">1.67 to 5.36</td>
<td rowspan="1" colspan="1">0.09**</td>
<td rowspan="1" colspan="1">0.01 to 0.51</td>
<td rowspan="1" colspan="1">2.82**</td>
<td rowspan="1" colspan="1">1.39 to 5.72</td>
<td rowspan="1" colspan="1">1.32</td>
<td rowspan="1" colspan="1">0.56 to 3.13</td>
</tr>
<tr>
<td colspan="11" rowspan="1">Wealth index: richest (ref)</td>
</tr>
<tr>
<td rowspan="1" colspan="1"> Rich</td>
<td rowspan="1" colspan="1">1.06</td>
<td rowspan="1" colspan="1">0.72 to 1.55</td>
<td rowspan="1" colspan="1">1.23</td>
<td rowspan="1" colspan="1">0.90 to 1.70</td>
<td rowspan="1" colspan="1">0.86</td>
<td rowspan="1" colspan="1">0.61 to 1.22</td>
<td rowspan="1" colspan="1">0.93</td>
<td rowspan="1" colspan="1">0.73 to 1.20</td>
<td rowspan="1" colspan="1">1.16</td>
<td rowspan="1" colspan="1">0.82 to 1.66</td>
</tr>
<tr>
<td rowspan="1" colspan="1"> Middle</td>
<td rowspan="1" colspan="1">1.09</td>
<td rowspan="1" colspan="1">0.75 to 1.55</td>
<td rowspan="1" colspan="1">1.58*</td>
<td rowspan="1" colspan="1">1.09 to 2.28</td>
<td rowspan="1" colspan="1">1.55*</td>
<td rowspan="1" colspan="1">1.10 to 2.17</td>
<td rowspan="1" colspan="1">0.95</td>
<td rowspan="1" colspan="1">0.74 to 1.24</td>
<td rowspan="1" colspan="1">1.17</td>
<td rowspan="1" colspan="1">0.84 to 1.62</td>
</tr>
<tr>
<td rowspan="1" colspan="1"> Poor</td>
<td rowspan="1" colspan="1">1.26</td>
<td rowspan="1" colspan="1">0.85 to 1.85</td>
<td rowspan="1" colspan="1">1.67**</td>
<td rowspan="1" colspan="1">1.16 to 2.41</td>
<td rowspan="1" colspan="1">1.34</td>
<td rowspan="1" colspan="1">0.92 to 1.97</td>
<td rowspan="1" colspan="1">1.34*</td>
<td rowspan="1" colspan="1">1.04 to 1.73</td>
<td rowspan="1" colspan="1">1.30</td>
<td rowspan="1" colspan="1">0.92 to 1.83</td>
</tr>
<tr>
<td rowspan="1" colspan="1"> Poorest</td>
<td rowspan="1" colspan="1">2.88***</td>
<td rowspan="1" colspan="1">1.86 to 4.44</td>
<td rowspan="1" colspan="1">2.83***</td>
<td rowspan="1" colspan="1">1.91 to 4.18</td>
<td rowspan="1" colspan="1">1.60*</td>
<td rowspan="1" colspan="1">1.08 to 2.38</td>
<td rowspan="1" colspan="1">1.47**</td>
<td rowspan="1" colspan="1">1.13 to 1.91</td>
<td rowspan="1" colspan="1">1.48*</td>
<td rowspan="1" colspan="1">1.05 to 2.09</td>
</tr>
<tr>
<td colspan="11" rowspan="1">Religion: Christian (ref)</td>
</tr>
<tr>
<td rowspan="1" colspan="1"> Muslim</td>
<td rowspan="1" colspan="1">1.62*</td>
<td rowspan="1" colspan="1">1.02 to 2.58</td>
<td rowspan="1" colspan="1">1.25</td>
<td rowspan="1" colspan="1">0.88 to 1.78</td>
<td rowspan="1" colspan="1">NA</td>
<td rowspan="1" colspan="1">NA</td>
<td rowspan="1" colspan="1">0.73</td>
<td rowspan="1" colspan="1">0.38 to 1.40</td>
<td rowspan="1" colspan="1">0.63</td>
<td rowspan="1" colspan="1">0.38 to 1.03</td>
</tr>
<tr>
<td rowspan="1" colspan="1"> Other</td>
<td rowspan="1" colspan="1">2.49*</td>
<td rowspan="1" colspan="1">1.05 to 5.90</td>
<td rowspan="1" colspan="1">1.86</td>
<td rowspan="1" colspan="1">0.70 to 4.93</td>
<td rowspan="1" colspan="1">NA</td>
<td rowspan="1" colspan="1">NA</td>
<td rowspan="1" colspan="1">0.77</td>
<td rowspan="1" colspan="1">0.46 to 1.28</td>
<td rowspan="1" colspan="1">0.40***</td>
<td rowspan="1" colspan="1">0.24 to 0.68</td>
</tr>
<tr>
<td colspan="11" rowspan="1">Listened to radio: yes (ref)</td>
</tr>
<tr>
<td rowspan="1" colspan="1"> No</td>
<td rowspan="1" colspan="1">1.45**</td>
<td rowspan="1" colspan="1">1.11 to 1.90</td>
<td rowspan="1" colspan="1">1.12</td>
<td rowspan="1" colspan="1">0.87 to 1.45</td>
<td rowspan="1" colspan="1">1.22</td>
<td rowspan="1" colspan="1">0.98 to 1.53</td>
<td rowspan="1" colspan="1">1.31***</td>
<td rowspan="1" colspan="1">1.13 to 1.52</td>
<td rowspan="1" colspan="1">1.28**</td>
<td rowspan="1" colspan="1">1.04 to 1.58</td>
</tr>
<tr>
<td colspan="11" rowspan="1">Watched TV: yes (ref)</td>
</tr>
<tr>
<td rowspan="1" colspan="1"> No</td>
<td rowspan="1" colspan="1">1.64</td>
<td rowspan="1" colspan="1">0.98 to 2.76</td>
<td rowspan="1" colspan="1">1.26</td>
<td rowspan="1" colspan="1">0.90 to 1.76</td>
<td rowspan="1" colspan="1">1.22</td>
<td rowspan="1" colspan="1">0.85 to 1.75</td>
<td rowspan="1" colspan="1">0.78</td>
<td rowspan="1" colspan="1">0.55 to 1.11</td>
<td rowspan="1" colspan="1">2.20**</td>
<td rowspan="1" colspan="1">1.32 to 3.66</td>
</tr>
<tr>
<td colspan="11" rowspan="1">Read newspaper: yes (ref)</td>
</tr>
<tr>
<td rowspan="1" colspan="1"> No</td>
<td rowspan="1" colspan="1">0.97</td>
<td rowspan="1" colspan="1">0.68 to 1.37</td>
<td rowspan="1" colspan="1">1.38</td>
<td rowspan="1" colspan="1">0.98 to 1.94</td>
<td rowspan="1" colspan="1">1.19</td>
<td rowspan="1" colspan="1">0.88 to 1.62</td>
<td rowspan="1" colspan="1">1.07</td>
<td rowspan="1" colspan="1">0.72 to 1.58</td>
<td rowspan="1" colspan="1">1.18</td>
<td rowspan="1" colspan="1">0.70 to 1.99</td>
</tr>
<tr>
<td colspan="11" rowspan="1">Healthcare decision-making: alone (ref)</td>
</tr>
<tr>
<td rowspan="1" colspan="1"> Not alone</td>
<td rowspan="1" colspan="1">1.06</td>
<td rowspan="1" colspan="1">0.81 to 1.40</td>
<td rowspan="1" colspan="1">1.02</td>
<td rowspan="1" colspan="1">0.80 to 1.30</td>
<td rowspan="1" colspan="1">0.92</td>
<td rowspan="1" colspan="1">0.69 to 1.22</td>
<td rowspan="1" colspan="1">1.30**</td>
<td rowspan="1" colspan="1">1.09 to 1.55</td>
<td rowspan="1" colspan="1">0.81</td>
<td rowspan="1" colspan="1">0.57 to 1.15</td>
</tr>
</tbody>
</table>
<table-wrap-foot>
<fn>
<p>*p≤0.05; **p≤0.01; ***p≤0.001.</p>
</fn>
<fn>
<p>FP, family planning; NA, data not available; TV, television.</p>
</fn>
</table-wrap-foot>
</table-wrap>
<table-wrap id="BMJOPEN2015009991TB6" orientation="portrait" position="float">
<label>Table 6</label>
<caption>
<p>Logit models with maternal pregnancy history and other individual, household and community correlates of contraceptive use</p>
</caption>
<table frame="hsides" rules="groups">
<colgroup span="1">
<col align="left" span="1"></col>
<col align="left" span="1"></col>
<col align="left" span="1"></col>
<col align="left" span="1"></col>
<col align="left" span="1"></col>
<col align="left" span="1"></col>
<col align="left" span="1"></col>
<col align="left" span="1"></col>
<col align="left" span="1"></col>
<col align="left" span="1"></col>
<col align="left" span="1"></col>
</colgroup>
<thead valign="bottom">
<tr>
<th rowspan="1" colspan="1"></th>
<th align="left" colspan="2" rowspan="1">Kenya (2008–2009)</th>
<th align="left" colspan="2" rowspan="1">Uganda (2011)</th>
<th align="left" colspan="2" rowspan="1">Tanzania (2010)</th>
<th align="left" colspan="2" rowspan="1">Rwanda (2010)</th>
<th align="left" colspan="2" rowspan="1">Burundi (2010)</th>
</tr>
<tr>
<th rowspan="1" colspan="1"></th>
<th align="left" rowspan="1" colspan="1">OR</th>
<th align="left" rowspan="1" colspan="1">95% CI</th>
<th align="left" rowspan="1" colspan="1">OR</th>
<th align="left" rowspan="1" colspan="1">95% CI</th>
<th align="left" rowspan="1" colspan="1">OR</th>
<th align="left" rowspan="1" colspan="1">95% CI</th>
<th align="left" rowspan="1" colspan="1">OR</th>
<th align="left" rowspan="1" colspan="1">95% CI</th>
<th align="left" rowspan="1" colspan="1">OR</th>
<th align="left" rowspan="1" colspan="1">95% CI</th>
</tr>
</thead>
<tbody>
<tr>
<td colspan="11" rowspan="1">Pregnancy history: wanted (ref)</td>
</tr>
<tr>
<td rowspan="1" colspan="1"> Mistimed</td>
<td rowspan="1" colspan="1">0.67**</td>
<td rowspan="1" colspan="1">0.50 to 0.90</td>
<td rowspan="1" colspan="1">0.72**</td>
<td rowspan="1" colspan="1">0.58 to 0.90</td>
<td rowspan="1" colspan="1">1.03</td>
<td rowspan="1" colspan="1">0.81 to 1.31</td>
<td rowspan="1" colspan="1">0.84*</td>
<td rowspan="1" colspan="1">0.73 to 0.97</td>
<td rowspan="1" colspan="1">0.75*</td>
<td rowspan="1" colspan="1">0.60 to 0.94</td>
</tr>
<tr>
<td rowspan="1" colspan="1"> Unwanted</td>
<td rowspan="1" colspan="1">0.92</td>
<td rowspan="1" colspan="1">0.60 to 1.41</td>
<td rowspan="1" colspan="1">0.67*</td>
<td rowspan="1" colspan="1">0.47 to 0.97</td>
<td rowspan="1" colspan="1">0.72</td>
<td rowspan="1" colspan="1">0.40 to 1.32</td>
<td rowspan="1" colspan="1">0.89</td>
<td rowspan="1" colspan="1">0.71 to 1.11</td>
<td rowspan="1" colspan="1">0.84</td>
<td rowspan="1" colspan="1">0.53 to 1.32</td>
</tr>
<tr>
<td colspan="11" rowspan="1">Maternal age: 15–19 (ref) (years)</td>
</tr>
<tr>
<td rowspan="1" colspan="1"> 20–29</td>
<td rowspan="1" colspan="1">0.61</td>
<td rowspan="1" colspan="1">0.36 to 1.05</td>
<td rowspan="1" colspan="1">0.84</td>
<td rowspan="1" colspan="1">0.51 to 1.40</td>
<td rowspan="1" colspan="1">0.80</td>
<td rowspan="1" colspan="1">0.46 to 1.38</td>
<td rowspan="1" colspan="1">0.96</td>
<td rowspan="1" colspan="1">0.51 to 1.83</td>
<td rowspan="1" colspan="1">0.72</td>
<td rowspan="1" colspan="1">0.33 to 1.59</td>
</tr>
<tr>
<td rowspan="1" colspan="1"> 30–39</td>
<td rowspan="1" colspan="1">0.42*</td>
<td rowspan="1" colspan="1">0.21 to 0.83</td>
<td rowspan="1" colspan="1">0.61</td>
<td rowspan="1" colspan="1">0.34 to 1.11</td>
<td rowspan="1" colspan="1">0.88</td>
<td rowspan="1" colspan="1">0.46 to 1.66</td>
<td rowspan="1" colspan="1">1.17</td>
<td rowspan="1" colspan="1">0.61 to 2.25</td>
<td rowspan="1" colspan="1">0.92</td>
<td rowspan="1" colspan="1">0.40 to 2.10</td>
</tr>
<tr>
<td rowspan="1" colspan="1"> 40–49</td>
<td rowspan="1" colspan="1">0.47</td>
<td rowspan="1" colspan="1">0.19 to 1.14</td>
<td rowspan="1" colspan="1">0.74</td>
<td rowspan="1" colspan="1">0.36 to 1.52</td>
<td rowspan="1" colspan="1">1.16</td>
<td rowspan="1" colspan="1">0.56 to 2.43</td>
<td rowspan="1" colspan="1">1.76</td>
<td rowspan="1" colspan="1">0.87 to 3.55</td>
<td rowspan="1" colspan="1">1.35</td>
<td rowspan="1" colspan="1">0.55 to 3.34</td>
</tr>
<tr>
<td colspan="11" rowspan="1">Desire for more children: no more (ref)</td>
</tr>
<tr>
<td rowspan="1" colspan="1"> Want more</td>
<td rowspan="1" colspan="1">1.64**</td>
<td rowspan="1" colspan="1">1.18 to 2.27</td>
<td rowspan="1" colspan="1">1.59***</td>
<td rowspan="1" colspan="1">1.23 to 2.07</td>
<td rowspan="1" colspan="1">1.93***</td>
<td rowspan="1" colspan="1">1.45 to 2.57</td>
<td rowspan="1" colspan="1">1.44***</td>
<td rowspan="1" colspan="1">1.22 to 1.71</td>
<td rowspan="1" colspan="1">1.84***</td>
<td rowspan="1" colspan="1">1.40 to 2.42</td>
</tr>
<tr>
<td rowspan="1" colspan="1"> Parity</td>
<td rowspan="1" colspan="1">1.20***</td>
<td rowspan="1" colspan="1">1.20 to 1.32</td>
<td rowspan="1" colspan="1">1.05</td>
<td rowspan="1" colspan="1">0.98 to 1.12</td>
<td rowspan="1" colspan="1">1.04</td>
<td rowspan="1" colspan="1">0.97 to 1.12</td>
<td rowspan="1" colspan="1">1.09***</td>
<td rowspan="1" colspan="1">1.04 to 1.14</td>
<td rowspan="1" colspan="1">1.04</td>
<td rowspan="1" colspan="1">0.97 to 1.12</td>
</tr>
<tr>
<td colspan="11" rowspan="1">Maternal education: higher (ref)</td>
</tr>
<tr>
<td rowspan="1" colspan="1"> Secondary</td>
<td rowspan="1" colspan="1">0.85</td>
<td rowspan="1" colspan="1">0.50 to 1.44</td>
<td rowspan="1" colspan="1">1.33</td>
<td rowspan="1" colspan="1">0.82 to 2.16</td>
<td rowspan="1" colspan="1">0.07**</td>
<td rowspan="1" colspan="1">0.01 to 0.41</td>
<td rowspan="1" colspan="1">1.90</td>
<td rowspan="1" colspan="1">0.95 to 3.79</td>
<td rowspan="1" colspan="1">0.85</td>
<td rowspan="1" colspan="1">0.37 to 1.93</td>
</tr>
<tr>
<td rowspan="1" colspan="1"> Primary</td>
<td rowspan="1" colspan="1">1.09</td>
<td rowspan="1" colspan="1">0.63 to 1.87</td>
<td rowspan="1" colspan="1">1.70*</td>
<td rowspan="1" colspan="1">1.04 to 2.78</td>
<td rowspan="1" colspan="1">0.08**</td>
<td rowspan="1" colspan="1">0.01 to 0.47</td>
<td rowspan="1" colspan="1">2.41*</td>
<td rowspan="1" colspan="1">1.20 to 4.86</td>
<td rowspan="1" colspan="1">1.24</td>
<td rowspan="1" colspan="1">0.51 to 3.04</td>
</tr>
<tr>
<td rowspan="1" colspan="1"> No education</td>
<td rowspan="1" colspan="1">1.19</td>
<td rowspan="1" colspan="1">0.53 to 2.71</td>
<td rowspan="1" colspan="1">2.89***</td>
<td rowspan="1" colspan="1">1.60 to 5.22</td>
<td rowspan="1" colspan="1">0.10**</td>
<td rowspan="1" colspan="1">0.02 to 0.58</td>
<td rowspan="1" colspan="1">2.73**</td>
<td rowspan="1" colspan="1">1.33 to 5.60</td>
<td rowspan="1" colspan="1">1.54</td>
<td rowspan="1" colspan="1">0.62 to 3.78</td>
</tr>
<tr>
<td colspan="11" rowspan="1">Wealth index: richest (ref)</td>
</tr>
<tr>
<td rowspan="1" colspan="1"> Rich</td>
<td rowspan="1" colspan="1">0.96</td>
<td rowspan="1" colspan="1">0.62 to 1.47</td>
<td rowspan="1" colspan="1">1.16</td>
<td rowspan="1" colspan="1">0.82 to 1.64</td>
<td rowspan="1" colspan="1">1.04</td>
<td rowspan="1" colspan="1">0.68 to 1.58</td>
<td rowspan="1" colspan="1">0.93</td>
<td rowspan="1" colspan="1">0.70 to 1.22</td>
<td rowspan="1" colspan="1">1.06</td>
<td rowspan="1" colspan="1">0.72 to 1.56</td>
</tr>
<tr>
<td rowspan="1" colspan="1"> Middle</td>
<td rowspan="1" colspan="1">0.94</td>
<td rowspan="1" colspan="1">0.59 to 1.47</td>
<td rowspan="1" colspan="1">1.45</td>
<td rowspan="1" colspan="1">0.97 to 2.17</td>
<td rowspan="1" colspan="1">1.77*</td>
<td rowspan="1" colspan="1">1.14 to 2.74</td>
<td rowspan="1" colspan="1">0.95</td>
<td rowspan="1" colspan="1">0.71 to 1.27</td>
<td rowspan="1" colspan="1">1.09</td>
<td rowspan="1" colspan="1">0.76 to 1.57</td>
</tr>
<tr>
<td rowspan="1" colspan="1"> Poor</td>
<td rowspan="1" colspan="1">0.99</td>
<td rowspan="1" colspan="1">0.61 to 1.62</td>
<td rowspan="1" colspan="1">1.60*</td>
<td rowspan="1" colspan="1">1.04 to 2.46</td>
<td rowspan="1" colspan="1">1.42</td>
<td rowspan="1" colspan="1">0.86 to 2.34</td>
<td rowspan="1" colspan="1">1.32</td>
<td rowspan="1" colspan="1">0.99 to 1.76</td>
<td rowspan="1" colspan="1">1.24</td>
<td rowspan="1" colspan="1">0.85 to 1.80</td>
</tr>
<tr>
<td rowspan="1" colspan="1"> Poorest</td>
<td rowspan="1" colspan="1">2.16**</td>
<td rowspan="1" colspan="1">1.28 to 3.66</td>
<td rowspan="1" colspan="1">2.74***</td>
<td rowspan="1" colspan="1">1.73 to 4.33</td>
<td rowspan="1" colspan="1">2.05**</td>
<td rowspan="1" colspan="1">1.24 to 3.39</td>
<td rowspan="1" colspan="1">1.51**</td>
<td rowspan="1" colspan="1">1.14 to 2.01</td>
<td rowspan="1" colspan="1">1.56*</td>
<td rowspan="1" colspan="1">1.06 to 2.31</td>
</tr>
<tr>
<td colspan="11" rowspan="1">Religion: Christian (ref)</td>
</tr>
<tr>
<td rowspan="1" colspan="1"> Muslim</td>
<td rowspan="1" colspan="1">1.56</td>
<td rowspan="1" colspan="1">0.96 to 2.54</td>
<td rowspan="1" colspan="1">1.24</td>
<td rowspan="1" colspan="1">0.87 to 1.77</td>
<td rowspan="1" colspan="1">NA</td>
<td rowspan="1" colspan="1">NA</td>
<td rowspan="1" colspan="1">0.71</td>
<td rowspan="1" colspan="1">0.37 to 1.37</td>
<td rowspan="1" colspan="1">0.85</td>
<td rowspan="1" colspan="1">0.50 to 1.45</td>
</tr>
<tr>
<td rowspan="1" colspan="1"> Other</td>
<td rowspan="1" colspan="1">2.82*</td>
<td rowspan="1" colspan="1">1.18 to 6.74</td>
<td rowspan="1" colspan="1">2.10</td>
<td rowspan="1" colspan="1">0.80 to 5.53</td>
<td rowspan="1" colspan="1">NA</td>
<td rowspan="1" colspan="1">NA</td>
<td rowspan="1" colspan="1">0.75</td>
<td rowspan="1" colspan="1">0.43 to 1.28</td>
<td rowspan="1" colspan="1">0.51*</td>
<td rowspan="1" colspan="1">0.31 to 0.86</td>
</tr>
<tr>
<td colspan="11" rowspan="1">Listened to radio: yes (ref)</td>
</tr>
<tr>
<td rowspan="1" colspan="1"> No</td>
<td rowspan="1" colspan="1">1.35*</td>
<td rowspan="1" colspan="1">1.03 to 1.77</td>
<td rowspan="1" colspan="1">1.12</td>
<td rowspan="1" colspan="1">0.87 to 1.45</td>
<td rowspan="1" colspan="1">1.38**</td>
<td rowspan="1" colspan="1">1.09 to 1.74</td>
<td rowspan="1" colspan="1">1.27***</td>
<td rowspan="1" colspan="1">1.10 to 1.48</td>
<td rowspan="1" colspan="1">1.22</td>
<td rowspan="1" colspan="1">0.99 to 1.50</td>
</tr>
<tr>
<td colspan="11" rowspan="1">Watched TV: yes (ref)</td>
</tr>
<tr>
<td rowspan="1" colspan="1"> No</td>
<td rowspan="1" colspan="1">1.66</td>
<td rowspan="1" colspan="1">0.97 to 2.84</td>
<td rowspan="1" colspan="1">1.12</td>
<td rowspan="1" colspan="1">0.79 to 1.58</td>
<td rowspan="1" colspan="1">1.08</td>
<td rowspan="1" colspan="1">0.74 to 1.58</td>
<td rowspan="1" colspan="1">0.75</td>
<td rowspan="1" colspan="1">0.52 to 1.08</td>
<td rowspan="1" colspan="1">1.88*</td>
<td rowspan="1" colspan="1">1.11 to 3.18</td>
</tr>
<tr>
<td colspan="11" rowspan="1">Read newspaper: yes (ref)</td>
</tr>
<tr>
<td rowspan="1" colspan="1"> No</td>
<td rowspan="1" colspan="1">1.02</td>
<td rowspan="1" colspan="1">0.72 to 1.46</td>
<td rowspan="1" colspan="1">1.41</td>
<td rowspan="1" colspan="1">0.99 to 2.00</td>
<td rowspan="1" colspan="1">1.10</td>
<td rowspan="1" colspan="1">0.78 to 1.54</td>
<td rowspan="1" colspan="1">1.13</td>
<td rowspan="1" colspan="1">0.75 to 1.70</td>
<td rowspan="1" colspan="1">0.88</td>
<td rowspan="1" colspan="1">0.51 to 1.51</td>
</tr>
<tr>
<td colspan="11" rowspan="1">Healthcare decision-making: alone (ref)</td>
</tr>
<tr>
<td rowspan="1" colspan="1"> Not alone</td>
<td rowspan="1" colspan="1">1.02</td>
<td rowspan="1" colspan="1">0.77 to 1.36</td>
<td rowspan="1" colspan="1">1.02</td>
<td rowspan="1" colspan="1">0.80 to 1.31</td>
<td rowspan="1" colspan="1">1.06</td>
<td rowspan="1" colspan="1">0.77 to 1.45</td>
<td rowspan="1" colspan="1">1.33**</td>
<td rowspan="1" colspan="1">1.11 to 1.58</td>
<td rowspan="1" colspan="1">0.84</td>
<td rowspan="1" colspan="1">0.59 to 1.20</td>
</tr>
<tr>
<td colspan="11" rowspan="1">Residence: urban (ref)</td>
</tr>
<tr>
<td rowspan="1" colspan="1"> Rural</td>
<td rowspan="1" colspan="1">1.35</td>
<td rowspan="1" colspan="1">0.89 to 2.06</td>
<td rowspan="1" colspan="1">1.07</td>
<td rowspan="1" colspan="1">0.77 to 1.51</td>
<td rowspan="1" colspan="1">0.86</td>
<td rowspan="1" colspan="1">0.63 to 1.18</td>
<td rowspan="1" colspan="1">0.94</td>
<td rowspan="1" colspan="1">0.68 to 1.31</td>
<td rowspan="1" colspan="1">1.53**</td>
<td rowspan="1" colspan="1">1.12 to 2.09</td>
</tr>
<tr>
<td colspan="11" rowspan="1">Visited by FP worker: yes (ref)</td>
</tr>
<tr>
<td rowspan="1" colspan="1"> No</td>
<td rowspan="1" colspan="1">0.95</td>
<td rowspan="1" colspan="1">0.63 to 1.43</td>
<td rowspan="1" colspan="1">1.17</td>
<td rowspan="1" colspan="1">0.86 to 1.59</td>
<td rowspan="1" colspan="1">1.16</td>
<td rowspan="1" colspan="1">0.74 to 1.85</td>
<td rowspan="1" colspan="1">1.13</td>
<td rowspan="1" colspan="1">0.98 to 1.31</td>
<td rowspan="1" colspan="1">1.26</td>
<td rowspan="1" colspan="1">0.85 to 1.87</td>
</tr>
<tr>
<td colspan="11" rowspan="1">Region (Kenya): Nairobi (ref)</td>
</tr>
<tr>
<td rowspan="1" colspan="1"> Western</td>
<td rowspan="1" colspan="1">0.69</td>
<td rowspan="1" colspan="1">0.40 to 1.17</td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
</tr>
<tr>
<td rowspan="1" colspan="1"> Rift Valley</td>
<td rowspan="1" colspan="1">1.20</td>
<td rowspan="1" colspan="1">0.73 to 1.98</td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
</tr>
<tr>
<td rowspan="1" colspan="1"> Nyanza</td>
<td rowspan="1" colspan="1">1.68</td>
<td rowspan="1" colspan="1">0.98 to 2.90</td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
</tr>
<tr>
<td rowspan="1" colspan="1"> Eastern</td>
<td rowspan="1" colspan="1">1.05</td>
<td rowspan="1" colspan="1">0.57 to 1.94</td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
</tr>
<tr>
<td rowspan="1" colspan="1"> Coast</td>
<td rowspan="1" colspan="1">1.02</td>
<td rowspan="1" colspan="1">0.62 to 1.69</td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
</tr>
<tr>
<td rowspan="1" colspan="1"> Central</td>
<td rowspan="1" colspan="1">0.58</td>
<td rowspan="1" colspan="1">0.32 to 1.05</td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
</tr>
<tr>
<td rowspan="1" colspan="1"> North Eastern</td>
<td rowspan="1" colspan="1">3.35*</td>
<td rowspan="1" colspan="1">1.15 to 9.74</td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
</tr>
<tr>
<td colspan="11" rowspan="1">Region: Kampala (ref)</td>
</tr>
<tr>
<td rowspan="1" colspan="1"> Western</td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1">1.13</td>
<td rowspan="1" colspan="1">0.64 to 2.02</td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
</tr>
<tr>
<td rowspan="1" colspan="1"> West-Nile</td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1">1.92</td>
<td rowspan="1" colspan="1">0.97 to 3.82</td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
</tr>
<tr>
<td rowspan="1" colspan="1"> Karamoja</td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1">1.43</td>
<td rowspan="1" colspan="1">0.55 to 3.76</td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
</tr>
<tr>
<td rowspan="1" colspan="1"> North</td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1">1.12</td>
<td rowspan="1" colspan="1">0.59 to 2.15</td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
</tr>
<tr>
<td rowspan="1" colspan="1"> Eastern</td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1">1.43</td>
<td rowspan="1" colspan="1">0.77 to 2.64</td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
</tr>
<tr>
<td rowspan="1" colspan="1"> East Central</td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1">1.27</td>
<td rowspan="1" colspan="1">0.71 to 2.27</td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
</tr>
<tr>
<td rowspan="1" colspan="1"> Central 2</td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1">1.66</td>
<td rowspan="1" colspan="1">0.94 to 2.96</td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
</tr>
<tr>
<td rowspan="1" colspan="1"> Central 1</td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1">1.61</td>
<td rowspan="1" colspan="1">0.91 to 2.85</td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
</tr>
<tr>
<td rowspan="1" colspan="1"> South West</td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1">1.74</td>
<td rowspan="1" colspan="1">0.96 to 3.15</td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
</tr>
<tr>
<td colspan="11" rowspan="1">Region (Tanzania): Southern (ref)</td>
</tr>
<tr>
<td rowspan="1" colspan="1"> Zanzibar</td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1">15.81***</td>
<td rowspan="1" colspan="1">9.25 to 27.01</td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
</tr>
<tr>
<td rowspan="1" colspan="1"> Eastern</td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1">3.05***</td>
<td rowspan="1" colspan="1">1.88 to 4.93</td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
</tr>
<tr>
<td rowspan="1" colspan="1"> Lake</td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1">13.00***</td>
<td rowspan="1" colspan="1">7.94 to 21.29</td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
</tr>
<tr>
<td rowspan="1" colspan="1"> Southern Highlands</td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1">2.99***</td>
<td rowspan="1" colspan="1">1.84 to 4.87</td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
</tr>
<tr>
<td rowspan="1" colspan="1"> Central</td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1">3.89***</td>
<td rowspan="1" colspan="1">2.33 to 6.48</td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
</tr>
<tr>
<td rowspan="1" colspan="1"> Northern</td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1">2.93***</td>
<td rowspan="1" colspan="1">1.89 to 4.54</td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
</tr>
<tr>
<td rowspan="1" colspan="1"> Western</td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1">9.79***</td>
<td rowspan="1" colspan="1">6.14 to 15.63</td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
</tr>
<tr>
<td colspan="11" rowspan="1">Region: Kigali City (ref)</td>
</tr>
<tr>
<td rowspan="1" colspan="1"> North</td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1">0.88</td>
<td rowspan="1" colspan="1">0.60 to 1.29</td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
</tr>
<tr>
<td rowspan="1" colspan="1"> West</td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1">1.85**</td>
<td rowspan="1" colspan="1">1.26 to 2.74</td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
</tr>
<tr>
<td rowspan="1" colspan="1"> South</td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1">0.86</td>
<td rowspan="1" colspan="1">0.59 to 1.26</td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
</tr>
<tr>
<td rowspan="1" colspan="1"> East</td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1">1.22</td>
<td rowspan="1" colspan="1">0.83 to 1.80</td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
</tr>
<tr>
<td colspan="11" rowspan="1">Region: Bujumbura (ref)</td>
</tr>
<tr>
<td rowspan="1" colspan="1"> West</td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1">1.48</td>
<td rowspan="1" colspan="1">0.96 to 2.28</td>
</tr>
<tr>
<td rowspan="1" colspan="1"> Centre-East</td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1">0.90</td>
<td rowspan="1" colspan="1">0.58 to 1.40</td>
</tr>
<tr>
<td rowspan="1" colspan="1"> North</td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1">0.49***</td>
<td rowspan="1" colspan="1">0.32 to 0.74</td>
</tr>
<tr>
<td rowspan="1" colspan="1"> South</td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1"></td>
<td rowspan="1" colspan="1">1.76*</td>
<td rowspan="1" colspan="1">1.09 to 2.83</td>
</tr>
</tbody>
</table>
<table-wrap-foot>
<fn>
<p>*p≤0.05; **p≤0.01; ***p≤0.001;</p>
</fn>
<fn>
<p>FP, family planning; NA, data not available; TV, television.</p>
</fn>
</table-wrap-foot>
</table-wrap>
</sec>
</sec>
<sec sec-type="results" id="s3">
<title>Results</title>
<sec id="s3a">
<title>Descriptive statistics</title>
<p>
<xref ref-type="table" rid="BMJOPEN2015009991TB2">Table 2</xref>
summarises sample characteristics of the five East African countries. Across the region, women in Burundi had the lowest prevalence in the use of modern contraceptive methods (25%) with the majority (75%) either using folkloric, traditional or no contraceptive method during their most recent sexual encounter. Rwanda had the highest prevalence of modern contraceptive use (58%). In relation to pregnancy history, unwanted pregnancies were highest in Kenya (18%) while mistimed pregnancies were highest in Uganda (34%). Of the sampled populations, the majority of women across the five countries were aged between 20 and 29 years, resided in rural areas and had attained primary education.</p>
</sec>
</sec>
<sec id="s4">
<title>Logistic regression results</title>
<p>
<xref ref-type="table" rid="BMJOPEN2015009991TB3">Table 3</xref>
shows unadjusted associations between contraceptive use and maternal pregnancy history of the five East African countries. Results indicate that maternal pregnancy history was a significant predictor of contraceptive use among sexually active women in Uganda (OR 0.80, p<0.05), Tanzania (OR 0.58, p<0.01), Rwanda (OR 0.84, p<0.05) and Burundi (OR 0.67, p<0.001), but not in Kenya.</p>
<p>Results of adjusted regression models are shown in
<xref ref-type="table" rid="BMJOPEN2015009991TB4">tables 4</xref>
<xref ref-type="table" rid="BMJOPEN2015009991TB6">6</xref>
. Adjusting for other individual, household and community variables, maternal pregnancy history persisted as a significant predictor of contraceptive use in Uganda, Rwanda and Burundi and becomes significant in Kenya. Women who had a mistimed pregnancy history were less likely to use a non-modern contraceptive method or none at all during their most recent sexual encounter as compared to those who had a wanted pregnancy history in Kenya (OR 0.67, 0.50 to 0.90), Rwanda (OR 0.84, 0.73 to 0.97) and Burundi (OR 0.75, 0.60 to 0.94). In Uganda, women who had experienced either a mistimed (OR 0.72, 0.58 to 0.90) or unwanted (OR 0.67, 0.47 to 0.97) pregnancy were less likely to use a non-modern contraceptive method or none at all during their most recent sexual encounter.</p>
<p>At the individual level, a woman's desire for more children persisted across all the five countries even after controlling for household and community variables. Women who desired more children had higher odds of using a non-modern contraceptive method or none at all as compared to those who did not want more children in all countries and the ORs were quite similar. Maternal parity persisted only in Kenya (OR 1.20, 1.20 to 1.32) and Rwanda (OR 1.09, 1.04 to 1.14) after introduction of community level variables; an increase in the number of births was associated with an increase in the probability of using no/non-modern contraceptive method. Maternal age was a significant predictor of contraceptive use at the individual level of the analysis but faded when household and community level variables were controlled for.</p>
<p>At a household level, wealth was a consistent predictor of contraceptive use across all the five member states of the East African region, taking into account other variables at the three levels of analysis. Compared to their counterparts in the richest wealth quartile, women belonging to the poorest wealth quintile were twice as likely to use a non-modern contraceptive method or none at all in Uganda (OR 2.74, 1.73 to 4.33), Kenya (OR 2.16, 1.28 to 3.66) and Tanzania (OR 2.05, 1.24 to 3.39). The ORs were lower in Burundi (OR 1.56, 1.06 to 2.31) and Rwanda (OR 1.51, 1.14 to 2.01). Maternal educational attainment persisted as a predictor of contraceptive use in Uganda, Tanzania and Rwanda after introduction of community level variables. In Uganda and Rwanda, women with no education were almost three times more likely (OR 2.89, 1.60 to 5.22 and OR 2.73, 1.33 to 5.60, respectively) to use a non-modern contraceptive method or none at all than those who had attained higher education. However, the case was different in Tanzania where women who had no education were less likely to use a non-modern contraceptive method or none at all during their most recent sexual encounter (OR 0.10, 0.02 to 0.58).</p>
<p>Other household variables that persisted as predictors of contraceptive use after adjusting for community variables were women's access to FP information through radio and religion. Having not heard about FP through radio was associated with higher odds of using a non-modern contraceptive method or none at all in Kenya (OR 1.35, 1.03 to 1.77), Tanzania (OR 1.38, 1.09 to 1.74) and Rwanda (OR 1.27, 1.10 to 1.48). Not being Christian or Muslim was associated with higher odds of using a non-modern contraceptive method or none at all in Kenya (OR 2.82, 1.18 to 6.74) while the contrast was true in Burundi (OR 0.51, 0.31 to 0.86) where it was associated with less likelihood of using no/non-modern contraceptive.</p>
<p>Turning to community level variables, significant in-country regional differences were observed in Kenya, Tanzania, Rwanda and Burundi after adjusting for other variables at the individual, household and community levels. In Kenya, women residing in the North Eastern region were three times more likely to engage in sex (OR 3.35, 1.15 to 9.74) using either no contraceptive or a non-modern contraceptive as compared to those residing in the Nairobi region. In Tanzania, women sampled in Zanzibar, Lake and Western regions were over 10 times more likely (OR 15.81, 9.25 to 27.01, OR 13.00, 7.94 to 21.29, OR 9.79, 6.14 to 15.63, respectively) to use a non-modern contraceptive method or none at all with the Southern region used as the reference. Women living in the Western region (OR 1.85, 1.26 to 2.74) of Rwanda were significantly different from those residing in Kigali city with the former having higher odds of engaging in sex using a non-modern contraceptive method or none. In Burundi, sexually active women in the Southern region (OR 1.76, 1.09 to 2.83) were two times more likely to report no/non-modern contraceptive use as compared to those sampled in the Bujumbura region.</p>
</sec>
<sec sec-type="discussion" id="s5">
<title>Discussion</title>
<p>This paper explored the relationship between women's pregnancy history and current use of contraceptives among women of reproductive age in the EAC region. Several control variables were included to examine the effect of pregnancy history on contraceptive use. The results indicate that women who had a mistimed pregnancy in their past were more likely to use a modern contraceptive method during their most recent sexual encounter in Kenya, Rwanda, Burundi and Uganda. This finding suggests that women's decision to adopt a modern contraceptive method was significantly influenced by their past birth histories and that those who had mistimed pregnancies were more keen to avoid future pregnancy. Similar relationships have been reported in the few studies that have investigated the relationship between a woman's pregnancy history and her contraceptive use patterns.
<xref rid="R16" ref-type="bibr">16</xref>
<xref rid="R17" ref-type="bibr">17</xref>
Of significance to this finding is the study conducted in the urban slums of Kenya whereby unintended pregnancy history served as a ‘wake-up call’ and led to increased use of modern contraceptive methods.
<xref rid="R17" ref-type="bibr">17</xref>
</p>
<p>Other individual factors significantly associated with modern contraceptive use in our analysis were a woman's desire for more children and maternal parity. As expected, a woman who desired more children was less likely to use a modern contraceptive method than other women in all the East African countries studied. An increase in parity was also associated with a lack of modern contraceptive use in Kenya and Rwanda. This is significant given the fact that women who have more children are likely to have unplanned pregnancies as a result of not using a modern contraceptive in these two countries. These two results speak to the core of the high fertility rates noted in several East African countries.
<xref rid="R18" ref-type="bibr">18</xref>
Importantly, it points to the major gaps in the use of contraception such as low access to FP services that could empower individuals to make informed choices with regard to use of contraception.
<xref rid="R1" ref-type="bibr">1–4</xref>
<xref rid="R6" ref-type="bibr">6</xref>
</p>
<p>The influence of household factors on contraceptive use is evidenced by the significance of household wealth, maternal education and media exposure through radio. Wealth, education and access to information inequalities were noted for women in the poorest household wealth quintile. Women with no education and those who could not access information through radio were more likely not to use modern contraceptive methods. This finding is in tandem with findings elsewhere that have documented the importance of socioeconomic status in influencing contraceptive use
<xref rid="R23" ref-type="bibr">23</xref>
<xref rid="R24" ref-type="bibr">24</xref>
and therefore cannot be underestimated. Poverty, lack of education and limited access to information are associated with higher fertility rates. It has been suggested that the effect of wealth, education and access to FP information on contraceptive use patterns could be through female autonomy and economic development.
<xref rid="R25" ref-type="bibr">25</xref>
<xref rid="R26" ref-type="bibr">26</xref>
Socioeconomically empowered women are likely to afford modern contraceptive methods, make independent decisions on matters affecting their health and, most importantly, take advantage of the existing health services as evidenced in several studies.
<xref rid="R27" ref-type="bibr">27–31</xref>
</p>
<p>Controlling for individual, household and other community factors, this study noted substantial within-country differences in relation to contraceptive use. Apart from Uganda, other countries showed greater heterogeneity in their regions. For example, in Tanzania, sexually active women in Zanzibar, Lake and Western regions were over 10 times more likely to use non-modern contraceptives compared to women sampled in the Southern region. These significant differences within countries in the use of contraceptives could be a reflection of existing regional disparities in economic development, cultural orientation and may in part mirror inherent inequalities in the provision of health-related services across regions.</p>
<sec id="s5a">
<title>Strengths and limitations</title>
<p>A significant strength of this study is the use of nationally representative samples to study the influence of women's birth history on their contraceptive use in five East African countries. We also grouped possible predictor variables into distinct levels of analysis to study individual, household and community factors capable of influencing women's decision in contraceptive use.</p>
<p>A major limitation of this study is the failure to control for an important variable relating to decision-making on contraceptive use. Despite the availability of this variable in DHS data, there were many missing cases (as many as 60% of cases). Nonetheless, we used women's decision-making ability about their own health as a proxy for their autonomy in using contraception. We also did not take into account cultural variables in our regression equations. Lack of variables that could measure cultural influences in DHS data sets is a limitation, especially when studying behavioural practices that are highly influenced by cultural norms of the study populations. It is important to bear in mind that this study used cross-sectional survey data, and therefore interpretations of findings in this study are limited to associations rather than causal relationships of the determinants of contraceptive use.</p>
</sec>
<sec id="s5b">
<title>Conclusions and recommendations</title>
<p>This study has demonstrated that women with a history of a previous mistimed pregnancy were more likely to be using a modern contraceptive in the East African region. Differences/variations in geographical residency, educational attainment, access to FP information and products, and wealth accumulation play a significant role in regard to FP access. These, among other differences and inequalities, should be addressed decisively as part of any upcoming strategic interventions to improve access to reproductive health services. Effective data collection, analysis and use for decision-making would be key in highlighting and addressing such differences and inequalities, thereby equitably expanding the health benefits of regional integration in the region as outlined in the 4th EAC Development Strategy.
<xref rid="R32" ref-type="bibr">32</xref>
</p>
</sec>
</sec>
</body>
<back>
<ack>
<p>The authors are grateful to the African Population and Health Research Center (APHRC): PAMANECH & AHA projects for supporting our work. Further, we are grateful to Macro International Inc. for availing us the data sets.</p>
</ack>
<fn-group>
<fn>
<p>
<bold>Contributors:</bold>
PB conceptualised the study, participated in the interpretation of the data, managed the literature searches and wrote part of the first draft of the manuscript. DJM partly conceptualised the study, ran the statistical analysis and wrote part of the first draft of the manuscript. MA contributed in the analysis and writing of the manuscript. RA, JR, CM and DA contributed to the drafting of the manuscript. All authors read, reviewed and approved of the final manuscript.</p>
</fn>
<fn>
<p>
<bold>Funding:</bold>
This study was made possible through the generous core funding to APHRC by the William & Flora Hewlett Foundation and the Swedish International Development Agency (SIDA).</p>
</fn>
<fn>
<p>
<bold>Competing interests:</bold>
None declared.</p>
</fn>
<fn>
<p>
<bold>Provenance and peer review:</bold>
Not commissioned; externally peer reviewed.</p>
</fn>
<fn>
<p>
<bold>Data sharing statement:</bold>
No additional data are available.</p>
</fn>
</fn-group>
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