<?xml version="1.0" encoding="UTF-8"?><!DOCTYPE article PUBLIC "-//NLM//DTD JATS (Z39.96) Journal Publishing DTD v1.2 20190208//EN" "http://jats.nlm.nih.gov/publishing/1.2/JATS-journalpublishing1.dtd"><article xmlns:mml="http://www.w3.org/1998/Math/MathML" xmlns:xlink="http://www.w3.org/1999/xlink" article-type="research-article" dtd-version="1.2" xml:lang="en">
    <front>
        <journal-meta>
            <journal-id journal-id-type="pmc">F1000Research</journal-id>
            <journal-title-group>
                <journal-title>F1000Research</journal-title>
            </journal-title-group>
            <issn pub-type="epub">2046-1402</issn>
            <publisher>
                <publisher-name>F1000 Research Limited</publisher-name>
                <publisher-loc>London, UK</publisher-loc>
            </publisher>
        </journal-meta>
        <article-meta>
            <article-id pub-id-type="doi">10.12688/f1000research.153475.1</article-id>
            <article-categories>
                <subj-group subj-group-type="heading">
                    <subject>Research Article</subject>
                </subj-group>
                <subj-group>
                    <subject>Articles</subject>
                </subj-group>
            </article-categories>
            <title-group>
                <article-title>Evaluation of the impact of the educational revolution in Peru and the gender wage gap, 2017-2021</article-title>
                <fn-group content-type="pub-status">
                    <fn>
                        <p>[version 1; peer review: 1 approved]</p>
                    </fn>
                </fn-group>
            </title-group>
            <contrib-group>
                <contrib contrib-type="author" corresp="no">
                    <name>
                        <surname>Castro Mej&#x00ed;a</surname>
                        <given-names>Percy Junior</given-names>
                    </name>
                    <role content-type="http://credit.niso.org/">Writing &#x2013; Original Draft Preparation</role>
                    <role content-type="http://credit.niso.org/">Writing &#x2013; Review &amp; Editing</role>
                    <uri content-type="orcid">https://orcid.org/0000-0002-5345-5098</uri>
                    <xref ref-type="aff" rid="a1">1</xref>
                </contrib>
                <contrib contrib-type="author" corresp="yes">
                    <name>
                        <surname>Mor&#x00e1;n-Santamar&#x00ed;a</surname>
                        <given-names>Rogger Orlando</given-names>
                    </name>
                    <role content-type="http://credit.niso.org/">Investigation</role>
                    <role content-type="http://credit.niso.org/">Writing &#x2013; Original Draft Preparation</role>
                    <role content-type="http://credit.niso.org/">Writing &#x2013; Review &amp; Editing</role>
                    <uri content-type="orcid">https://orcid.org/0000-0001-7037-097X</uri>
                    <xref ref-type="corresp" rid="c1">a</xref>
                    <xref ref-type="aff" rid="a1">1</xref>
                </contrib>
                <contrib contrib-type="author" corresp="no">
                    <name>
                        <surname>Llonto Caicedo</surname>
                        <given-names>Yefferson</given-names>
                    </name>
                    <role content-type="http://credit.niso.org/">Methodology</role>
                    <role content-type="http://credit.niso.org/">Software</role>
                    <uri content-type="orcid">https://orcid.org/0000-0003-0662-9064</uri>
                    <xref ref-type="aff" rid="a2">2</xref>
                </contrib>
                <contrib contrib-type="author" corresp="no">
                    <name>
                        <surname>C&#x00fa;neo Fern&#x00e1;ndez</surname>
                        <given-names>Francisco Eduardo</given-names>
                    </name>
                    <role content-type="http://credit.niso.org/">Formal Analysis</role>
                    <role content-type="http://credit.niso.org/">Writing &#x2013; Review &amp; Editing</role>
                    <uri content-type="orcid">https://orcid.org/0000-0002-7099-6793</uri>
                    <xref ref-type="aff" rid="a1">1</xref>
                </contrib>
                <contrib contrib-type="author" corresp="no">
                    <name>
                        <surname>Lizana Guevara</surname>
                        <given-names>Nikolays Pedro</given-names>
                    </name>
                    <role content-type="http://credit.niso.org/">Methodology</role>
                    <role content-type="http://credit.niso.org/">Resources</role>
                    <role content-type="http://credit.niso.org/">Software</role>
                    <uri content-type="orcid">https://orcid.org/0000-0002-2593-661X</uri>
                    <xref ref-type="aff" rid="a1">1</xref>
                </contrib>
                <contrib contrib-type="author" corresp="no">
                    <name>
                        <surname>Arias Gonzales</surname>
                        <given-names>Hilda Paola</given-names>
                    </name>
                    <role content-type="http://credit.niso.org/">Funding Acquisition</role>
                    <role content-type="http://credit.niso.org/">Supervision</role>
                    <uri content-type="orcid">https://orcid.org/0000-0002-0996-7782</uri>
                    <xref ref-type="aff" rid="a1">1</xref>
                </contrib>
                <contrib contrib-type="author" corresp="no">
                    <name>
                        <surname>Vela Mel&#x00e9;ndez</surname>
                        <given-names>Lindon</given-names>
                    </name>
                    <role content-type="http://credit.niso.org/">Validation</role>
                    <role content-type="http://credit.niso.org/">Visualization</role>
                    <uri content-type="orcid">https://orcid.org/0000-0002-9644-7151</uri>
                    <xref ref-type="aff" rid="a2">2</xref>
                </contrib>
                <aff id="a1">
                    <label>1</label>La Libertad, Cesar Vallejo University, Trujillo, La Libertad, Peru</aff>
                <aff id="a2">
                    <label>2</label>Lambayeque, Universidad Nacional Pedro Ruiz Gallo, Lambayeque, Lambayeque, Peru</aff>
            </contrib-group>
            <author-notes>
                <corresp id="c1">
                    <label>a</label>
                    <email xlink:href="mailto:rmoran@unprg.edu.pe">rmoran@unprg.edu.pe</email>
                </corresp>
                <fn fn-type="conflict">
                    <p>No competing interests were disclosed.</p>
                </fn>
            </author-notes>
            <pub-date pub-type="epub">
                <day>5</day>
                <month>8</month>
                <year>2024</year>
            </pub-date>
            <pub-date pub-type="collection">
                <year>2024</year>
            </pub-date>
            <volume>13</volume>
            <elocation-id>884</elocation-id>
            <history>
                <date date-type="accepted">
                    <day>25</day>
                    <month>7</month>
                    <year>2024</year>
                </date>
            </history>
            <permissions>
                <copyright-statement>Copyright: &#x00a9; 2024 Castro Mej&#x00ed;a PJ et al.</copyright-statement>
                <copyright-year>2024</copyright-year>
                <license xlink:href="https://creativecommons.org/licenses/by/4.0/">
                    <license-p>This is an open access article distributed under the terms of the Creative Commons Attribution Licence, which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.</license-p>
                </license>
            </permissions>
            <self-uri content-type="pdf" xlink:href="https://f1000research.com/articles/13-884/pdf"/>
            <abstract>
                <sec>
                    <title>Background</title>
                    <p>Women&#x2019;s educational attainment and their generation of value through education has increased the prospects for achieving economic equality between men and women. However, women continue to earn lower wages than men, reflecting growing inequality in several countries. Therefore, the objective of the study is to estimate the impact of education on the gender wage gap in Peru over the period 2017-2021.</p>
                </sec>
                <sec>
                    <title>Methods</title>
                    <p>Quantitative, explanatory study aimed at identifying the impact of education on the gender wage gap in Peru during the period 2017-2021. The research design is non-experimental and uses a time series that analyses the influence of the latent variable of education on the gender wage gap. This is a continuous variable to estimate the Tobit model.</p>
                </sec>
                <sec>
                    <title>Results</title>
                    <p>The results show that the gender gap in Peru exhibited a decreasing trend between men and women during the period 2017-2020, with an average reduction of 10% until 2020 due to the health crisis. The highest average salary was achieved by men in 2019, reaching S/2289.97 soles, while women reached an average salary of S/1368.85 soles. In the post-pandemic scenario for 2021, the gender gap increased by 3%, with men earning an average salary of S/1999.63 soles and women earning an average salary of S/1281.16 soles. The analysis from 2017-2021 shows that years of education had a positive impact on the gender wage gap in Peru based on the Tobit model estimation.</p>
                </sec>
                <sec>
                    <title>Conclusions</title>
                    <p>During the analysis period of 2017-2021, years of education had a positive impact on the gender wage gap in Peru, with the greatest impact occurring during the health crisis. The probability of women&#x2019;s incomes improving with an increase in years of education was 2.35%, while for men, the highest impact was in 2018, with a probability of income improvement of 2.16% in terms of marginal effect.</p>
                </sec>
            </abstract>
            <kwd-group kwd-group-type="author">
                <kwd>wage gap</kwd>
                <kwd>income</kwd>
                <kwd>education</kwd>
                <kwd>educational policy</kwd>
                <kwd>Tobit model</kwd>
            </kwd-group>
            <funding-group>
                <funding-statement>The author(s) declared that no grants were involved in supporting this work.</funding-statement>
            </funding-group>
        </article-meta>
    </front>
    <body>
        <sec id="sec5" sec-type="intro">
            <title>1. Introduction</title>
            <p>The health crisis highlighted the need for a new social contract that addresses the poor distribution of surplus involving wages, salaries, or dividends from the perspective of Social Economy. Following the health crisis, inequalities were exacerbated due to existing poor redistributive mechanisms (
                <xref ref-type="bibr" rid="ref13">Costas, 2020</xref>; 
                <xref ref-type="bibr" rid="ref22">Gonz&#x00e1;les, 2021</xref>; 
                <xref ref-type="bibr" rid="ref42">Singh et al., 2022</xref>; 
                <xref ref-type="bibr" rid="ref32">Nguyen, 2022</xref>; 
                <xref ref-type="bibr" rid="ref2">Abdel et al., 2023</xref>). It can be observed that the pandemic context fosters situations where income disparities between men and women in developing and developed countries persist despite women&#x2019;s growing educational attainment (
                <xref ref-type="bibr" rid="ref26">Kireyeva &amp; Satybaldin, 2019</xref>; 
                <xref ref-type="bibr" rid="ref8">Brzezinski, 2021</xref>; 
                <xref ref-type="bibr" rid="ref14">Da Costa &amp; Shinkoda, 2021</xref>; 
                <xref ref-type="bibr" rid="ref4">Afrin &amp; Shammi, 2023</xref>).</p>
            <p>The educational achievement of women and their value generation through education has led to the prospect of achieving economic equality between men and women. However, women continue to receive lower wages compared to men, reflecting growing inequality in countries such as the United States and Latin American countries. Education is the main factor for women in achieving significant economic success in wage discrimination (
                <xref ref-type="bibr" rid="ref27">Kurek &amp; G&#x00f3;rowski, 2020</xref>; 
                <xref ref-type="bibr" rid="ref29">Litman et al., 2020</xref>; 
                <xref ref-type="bibr" rid="ref20">England et al., 2020</xref>; 
                <xref ref-type="bibr" rid="ref38">Reissov&#x00e1; &amp; &#x0160;imsov&#x00e1;, 2019</xref>).</p>
            <p>There is extensive literature on the persistent gender wage gap in various countries and economic sectors, expressed in working hours, experience, years of education, salary, and labor market. However, there are few studies on the expected return of education on the gender wage gap, which has a significant impact on wage disparity (
                <xref ref-type="bibr" rid="ref21">Fox et al., 2019</xref>; 
                <xref ref-type="bibr" rid="ref33">&#x00d1;iquen, 2019</xref>; 
                <xref ref-type="bibr" rid="ref43">Smith et al., 2021</xref>).</p>
            <p>According to 
                <xref ref-type="bibr" rid="ref46">Suharyono and Digdowiseiso (2021)</xref>, in theoretical evidence, salary is the main motivation for labor effort. Empirical evidence has shown a positive effect of education on wage equality in a complex globalization context, where the indecisiveness of public policy managers highlights a concern for the obstacle in hindering women&#x2019;s continuous development and other associated factors such as stereotypes and ideology restricting women&#x2019;s access to education (
                <xref ref-type="bibr" rid="ref37">Quadlin et al., 2023</xref>; 
                <xref ref-type="bibr" rid="ref28">Leibing et al., 2023</xref>).</p>
            <p>For the International Labour Organization (ILO) in Latin America and the Caribbean, women have had greater participation in the labor aspect in recent decades. However, there is still a 25% economic dependency gap of women on men (
                <xref ref-type="bibr" rid="ref15">Dancausa Mill&#x00e1;n et al., 2021</xref>; 
                <xref ref-type="bibr" rid="ref34">Organizaci&#x00f3;n Internacional de Trabajo, 2019</xref>).</p>
            <p>In Peru, simply being a woman evidences the conditioning of receiving different wages, further accentuating the differentiation after the restrictions imposed by the COVID-19 health crisis. Despite the monthly wage gap narrowing from over 20% to 14% since 2016, and the gender gap in hourly wages decreasing from 13.9% to 9.2% in 2010 and 2016, this wage gap is associated with gender disparities related to the labor market&#x2019;s own dynamics, where women have their own characterization related to variables such as sex, age, marital status, access to health services, among others. Education, along with women&#x2019;s socioeconomic conditions, influences the probability of having better human capital (
                <xref ref-type="bibr" rid="ref10">Carlosviza et al., 2021</xref>; 
                <xref ref-type="bibr" rid="ref16">Defensor&#x00ed;a del Pueblo, 2019</xref>; 
                <xref ref-type="bibr" rid="ref40">Rios, 2019</xref>; 
                <xref ref-type="bibr" rid="ref48">Valdez &amp; Sobrevilla, 2021</xref>).</p>
            <p>The role of women in economic development is often doubtful, as they are considered inferior, unworthy, and incapable of working. Gender discrimination reduces the economy&#x2019;s growth capacity and the ability to improve the standard of living (
                <xref ref-type="bibr" rid="ref41">Schober &amp; Winter-Ebmer, 2011</xref>; 
                <xref ref-type="bibr" rid="ref45">Sugiharti &amp; Kurnia, 2018</xref>; 
                <xref ref-type="bibr" rid="ref19">Didier, 2021</xref>; 
                <xref ref-type="bibr" rid="ref5">Alwago, 2023</xref>; 
                <xref ref-type="bibr" rid="ref7">Bataka, 2024</xref>).</p>
            <p>Salary is considered a broad topic in economic literature, as it involves both capabilities and skills that result in productivity indicators. It is necessary to point out that the return on education concerning wages is the compensation for education and experience, which starts from different points of the wage distribution. Therefore, the gender wage gap varies across different economic sectors (
                <xref ref-type="bibr" rid="ref11">Castagnetti &amp; Giorgetti, 2019</xref>; 
                <xref ref-type="bibr" rid="ref47">Tansel et al., 2020</xref>; 
                <xref ref-type="bibr" rid="ref30">Mandel &amp; Rotman, 2021</xref>).</p>
            <p>It is essential to indicate that education has generated higher returns on income, validating the theory of investment in education as an investment in human capital. In the case of women, this has led to wage gaps reducing as they gain greater access to education (
                <xref ref-type="bibr" rid="ref6">Barra, 2018</xref>; 
                <xref ref-type="bibr" rid="ref10">Carlosviza et al., 2021</xref>).</p>
            <p>Women and men have almost identical human capital; however, the gender wage gap and the trajectory it has created over time in various traditional labor markets have reflected the cumulative effects and gender roles that have emerged throughout life. The drivers of the mentioned gap are productivity factors such as education, skills, and work experience. These individual-level factors most representatively explain the gender wage gap (
                <xref ref-type="bibr" rid="ref12">Chowdhury et al., 2018</xref>; 
                <xref ref-type="bibr" rid="ref17">Designed &amp; Performed, 2010</xref>; 
                <xref ref-type="bibr" rid="ref18">D&#x00ed;az, 2021</xref>; 
                <xref ref-type="bibr" rid="ref29">Litman et al., 2020</xref>; 
                <xref ref-type="bibr" rid="ref44">Sterling et al., 2020</xref>).</p>
            <p>In this context, the present study aims to estimate the impact of education on the gender wage gap in Peru during the period 2017-2021, for which the Tobit estimation, known as the Censored Regression Model, is performed.</p>
            <p>In the review of scientific literature, the research by 
                <xref ref-type="bibr" rid="ref36">Picatoste et al. (2023)</xref> evidenced that the main concerns related to the gender gap are access, use, and outcomes, as well as the wage disparity existing in the European Union. Additionally, using mean comparison, it was shown that the variables significantly influencing the wage gap are related to educational level and social aspects. Meanwhile et al. (2023) in their findings, show that the gender wage gap significantly impacts women&#x2019;s empowerment due to limitations in women&#x2019;s economic independence and autonomy.</p>
            <p>On the other hand, 
                <xref ref-type="bibr" rid="ref35">Penner et al. (2022)</xref> in their various studies, indicate that the gender wage gap highlights that various countries can be identified where the wage gap is a crucial aspect of gender differences due to the different jobs that substantially represent wage differences. Using the ordinary least squares methodology, four models related to wage disparity processes between men and women are compared, leading to a gender wage inequality that presents various challenges for the relevance of the 15 countries where the models&#x2019; results are compared. However, education is relevant not only as a factor explaining wage inequality between men and women but also between whites and blacks, implying the racist effect on racial inequality disparity, which increases the gap in the labor market with educational interventions that close racial disparities (
                <xref ref-type="bibr" rid="ref49">Zhou &amp; Pan, 2023</xref>).</p>
            <p>Thus, growing economic inequality has highlighted a variety of literature where wage dispersion involves significant inequality using the VECM model. Considering the structural model reveals that it affects inequality with various impacts on the labor market and becomes relevant in wages with a biased technological shock and structural inequality that negatively impacts working hours and reduces productivity by facing negative inequality in the labor market characterized by high levels of inequality (
                <xref ref-type="bibr" rid="ref23">Hutter &amp; Weber, 2023</xref>).</p>
            <p>Additionally, in American companies, data shows that female executives represent 6% of the sample, and 26% of women earn less than men. This is given the relevant characteristics where the existence of gender wage gaps within companies is evident, considering the marked income inequality estimated with the entry and exit rate equation methodology, which examines wage gaps (
                <xref ref-type="bibr" rid="ref25">Keller et al., 2023</xref>).</p>
            <p>Finally, in Europe, it is still evident that women perceive higher levels of income inequality, revealing the persistence of gender wage disparities. In 15 of the 28 countries analyzed, women report the wage gap between incomes and expenditures, highlighting the driving force needed to reduce the gender wage gap and showing a persistence of these disparities (
                <xref ref-type="bibr" rid="ref3">Adriaans &amp; Targa, 2023</xref>).</p>
        </sec>
        <sec id="sec6" sec-type="methods">
            <title>2. Methods</title>
            <sec id="sec7">
                <title>2.1 Methodological design</title>
                <p>A quantitative approach is considered, with an explanatory type of research, confirmed by 
                    <xref ref-type="bibr" rid="ref31">Maxwell and Reybold (2015)</xref> aimed at identifying the impact of education on the gender wage gap in Peru during the period 2017-2021. The research design is non-experimental (
                    <xref ref-type="bibr" rid="ref1">Aarsman et al., 2024</xref>) and utilizes a time series analysis based on the influence of the latent variable of education on the gender wage gap, which is a continuous variable for estimating the Tobit model.
                    <disp-formula id="e1">
                        <mml:math display="block">
                            <mml:msup>
                                <mml:mi>Yi</mml:mi>
                                <mml:mo>&#x2217;</mml:mo>
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                            <mml:mo>=</mml:mo>
                            <mml:msub>
                                <mml:mi mathvariant="normal">X</mml:mi>
                                <mml:mi mathvariant="normal">i</mml:mi>
                            </mml:msub>
                            <mml:mi mathvariant="normal">&#x03b2;</mml:mi>
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                    <disp-formula id="e2">
                        <mml:math display="block">
                            <mml:mi>yi</mml:mi>
                            <mml:mo>=</mml:mo>
                            <mml:mo stretchy="true">{</mml:mo>
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                            <mml:mo>,</mml:mo>
                            <mml:mi>si</mml:mi>
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                            <mml:msup>
                                <mml:mi>yi</mml:mi>
                                <mml:mo>&#x2217;</mml:mo>
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                            <mml:mo>&#x2264;</mml:mo>
                            <mml:mn>0</mml:mn>
                            <mml:msup>
                                <mml:mi>yi</mml:mi>
                                <mml:mo>&#x2217;</mml:mo>
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                            <mml:mn>0</mml:mn>
                        </mml:math>
                    </disp-formula>
                </p>
                <p>Where:</p>
                <p>yi: wage income of men and women in Peru during the period 2017-2021</p>
                <p>Xi: explanatory variables such as age, number of children under 6 years old, years of education, and children aged between 6 and 18 years.</p>
                <p>The Tobit model considered takes a fixed value for yi &#x2264; 0y_i \leq 0yi &#x2264; 0, given that there are men and women who decide not to work in the labor market, and that there are men and women with a salary equal to 0. The decision not to work corresponds to the inherent structure of the Peruvian labor market.</p>
            </sec>
            <sec id="sec8">
                <title>2.2 Procedure</title>
                <p>The data were obtained from the data files of the National Household Survey from 2017 to 2021, specifically from Module 100: Housing and Household Characteristics, Module 200: Household Members&#x2019; Characteristics, Module 300: Education, and Module 500: Employment and Income. This data was published on the website of the Institute of the 
                    <ext-link ext-link-type="uri" xlink:href="https://proyectos.inei.gob.pe/microdatos/">National Institute of Statistics and Informatics</ext-link> (INEI), where the information is freely accessible in accordance with the policies of the Peruvian state as a public entity.</p>
                <p>Subsequently, the database was analyzed using the Stata 16 software. Explanatory variables such as age, number of children under 6 years old, years of education, and children aged between 6 and 18 years were used for estimating the Tobit model and identifying the impact of education on the gender wage gap in Peru during the period 2017-2021.</p>
            </sec>
            <sec id="sec9">
                <title>2.3 Sample</title>
                <p>The sample includes the number of observations comprising dependent and independent men and women who earn income and are part of the economically active employed population. The inclusion and exclusion criteria are detailed below in 
                    <xref ref-type="table" rid="T1">Table 1</xref>.</p>
                <fig fig-type="figure" id="f1" orientation="portrait" position="float">
                    <label>Figure 1. </label>
                    <caption>
                        <title>Dynamics of the Gender Wage Gap in the Period 2017-2021.</title>
                        <p>Note: Values from the Encuesta Nacional de Hogares database, 2017-2021, obtained from 
                            <xref ref-type="bibr" rid="ref24">INEI (2024)</xref>.</p>
                    </caption>
                    <graphic id="gr1" orientation="portrait" position="float" xlink:href="https://f1000research-files.f1000.com/manuscripts/168385/1b53a5f3-d67f-4a72-b18b-9b5259ff4c65_figure1.gif"/>
                </fig>
                <table-wrap id="T1" orientation="portrait" position="float">
                    <label>Table 1. </label>
                    <caption>
                        <title>Sample for the period 2017-2021.</title>
                    </caption>
                    <table content-type="article-table" frame="hsides">
                        <thead>
                            <tr>
                                <th align="left" colspan="1" rowspan="2" valign="top">Year</th>
                                <th align="left" colspan="2" rowspan="1" valign="top">Gender</th>
                            </tr>
                            <tr>
                                <th align="left" colspan="1" rowspan="1" valign="top">Men</th>
                                <th align="left" colspan="1" rowspan="1" valign="top">Women</th>
                            </tr>
                        </thead>
                        <tbody>
                            <tr>
                                <td align="left" colspan="1" rowspan="1" valign="middle">2017</td>
                                <td align="left" colspan="1" rowspan="1" valign="middle">15313</td>
                                <td align="left" colspan="1" rowspan="1" valign="middle">4429</td>
                            </tr>
                            <tr>
                                <td align="left" colspan="1" rowspan="1" valign="middle">2018</td>
                                <td align="left" colspan="1" rowspan="1" valign="middle">15953</td>
                                <td align="left" colspan="1" rowspan="1" valign="middle">4791</td>
                            </tr>
                            <tr>
                                <td align="left" colspan="1" rowspan="1" valign="middle">2019</td>
                                <td align="left" colspan="1" rowspan="1" valign="middle">14350</td>
                                <td align="left" colspan="1" rowspan="1" valign="middle">4613</td>
                            </tr>
                            <tr>
                                <td align="left" colspan="1" rowspan="1" valign="middle">2020</td>
                                <td align="left" colspan="1" rowspan="1" valign="middle">13127</td>
                                <td align="left" colspan="1" rowspan="1" valign="middle">4352</td>
                            </tr>
                            <tr>
                                <td align="left" colspan="1" rowspan="1" valign="middle">2021</td>
                                <td align="left" colspan="1" rowspan="1" valign="middle">12678</td>
                                <td align="left" colspan="1" rowspan="1" valign="middle">5251</td>
                            </tr>
                        </tbody>
                    </table>
                    <table-wrap-foot>
                        <p>Note: Using Stata portable 16, 2022, presents data from ENAHO 2017-2021, obtained from 
                            <xref ref-type="bibr" rid="ref24">INEI (2024)</xref>.</p>
                    </table-wrap-foot>
                </table-wrap>
                <table-wrap id="T2" orientation="portrait" position="float">
                    <label>Table 2. </label>
                    <caption>
                        <title>Data sources for the variables used in the methodology of this study.</title>
                    </caption>
                    <table content-type="article-table" frame="hsides">
                        <thead>
                            <tr>
                                <th align="left" colspan="1" rowspan="1" valign="top">Variables</th>
                                <th align="left" colspan="1" rowspan="1" valign="top">Type</th>
                                <th align="left" colspan="1" rowspan="1" valign="top">Description</th>
                                <th align="left" colspan="1" rowspan="1" valign="top">Unit</th>
                                <th align="left" colspan="1" rowspan="1" valign="top">Data sources</th>
                            </tr>
                        </thead>
                        <tbody>
                            <tr>
                                <td align="left" colspan="1" rowspan="1" valign="top">W_total</td>
                                <td align="left" colspan="1" rowspan="1" valign="top">Dependent</td>
                                <td align="left" colspan="1" rowspan="1" valign="top">Monthly income of men and women</td>
                                <td align="left" colspan="1" rowspan="1" valign="top">Nuevos soles</td>
                                <td align="left" colspan="1" rowspan="5" valign="middle">Household Survey conducted by the National Institute of Statistics and Informatics (INEI)</td>
                            </tr>
                            <tr>
                                <td align="left" colspan="1" rowspan="1" valign="top">Age</td>
                                <td align="left" colspan="1" rowspan="1" valign="top">Explanatory of interest</td>
                                <td align="left" colspan="1" rowspan="1" valign="top">Age</td>
                                <td align="left" colspan="1" rowspan="1" valign="top">Years</td>
                            </tr>
                            <tr>
                                <td align="left" colspan="1" rowspan="1" valign="top">Minor_6</td>
                                <td align="left" colspan="1" rowspan="1" valign="top">Explanatory of interest</td>
                                <td align="left" colspan="1" rowspan="1" valign="top">Number of children under 6 years old</td>
                                <td align="left" colspan="1" rowspan="1" valign="top">Unit</td>
                            </tr>
                            <tr>
                                <td align="left" colspan="1" rowspan="1" valign="top">Between_6_18</td>
                                <td align="left" colspan="1" rowspan="1" valign="top">Explanatory of interest</td>
                                <td align="left" colspan="1" rowspan="1" valign="top">Number of children aged between 6 and 18</td>
                                <td align="left" colspan="1" rowspan="1" valign="top">Unit</td>
                            </tr>
                            <tr>
                                <td align="left" colspan="1" rowspan="1" valign="top">Educ</td>
                                <td align="left" colspan="1" rowspan="1" valign="top">Explanatory of interest</td>
                                <td align="left" colspan="1" rowspan="1" valign="top">Years of education</td>
                                <td align="left" colspan="1" rowspan="1" valign="top">Years</td>
                            </tr>
                        </tbody>
                    </table>
                    <table-wrap-foot>
                        <p>Note: Own structured description of the data for each of the variables of the study according to the methodology, obtained from 
                            <xref ref-type="bibr" rid="ref24">INEI (2024)</xref>.</p>
                    </table-wrap-foot>
                </table-wrap>
                <p>
                    <bold>Inclusion criteria:</bold> Men and women aged 14 and older who are part of the economically active employed population, both dependent and independent, and who earn income during the period 2017-2021.</p>
                <p>
                    <bold>Exclusion criteria:</bold> Men and women aged 14 and older who are part of the economically inactive population and the unemployed during the period 2017-2021.</p>
            </sec>
            <sec id="sec10">
                <title>2.4 Data analysis</title>
                <p>The econometric estimation model Tobit was used to identify the impact of education on the gender wage gap in Peru during the period 2017-2021.</p>
                <p>In this way, Stata 16 was used to estimate the monthly income gap between women and men in Peru for the year 2021.</p>
                <p>The Tobit econometric model was used to identify the impact of education on the gender wage gap in Peru over the period 2017-2021. This model, implemented in Stata 16, allows us to address the censoring present in the monthly income data, correcting for possible biases and providing more precise and robust estimates. In this study, the dependent variable, monthly income, was bounded at zero for unemployed individuals. The use of Tobit allowed us to properly analyse this situation, ensuring the validity and reliability of the results obtained to better understand the relationship between education and the gender wage gap in Peru.</p>
                <p>There is an academic licence for the use of Stata 16 software, registered in the name of Lindon Vela Mel&#x00e9;ndez. The details of the licence are as follows Serial number: 501809389697. The software can be downloaded from the following link: 
                    <ext-link ext-link-type="uri" xlink:href="https://download.stata.com">https://download.stata.com</ext-link>.</p>
            </sec>
            <sec id="sec11">
                <title>2.5 Ethical considerations</title>
                <p>The data for this study come from the National Household Survey (ENAHO) of the National Institute of Statistics and Informatics (INEI), a public and anonymised dataset available for free access on the INEI website. INEI follows rigorous ethical standards as a public entity to protect the confidentiality of participants.</p>
                <p>In this study, we adhere to the ethical principles of research, including the principles of intellectual honesty, truthfulness, transparency, human integrity, respect for intellectual property, fairness and accountability, in accordance with the &#x201c;Code of Ethics in Research of the Universidad C&#x00e9;sar Vallejo, version 01; by University Council Resolution N&#x00b0; 0340-2021-UCV&#x201d;, using the data only for research purposes, as permitted by INEI&#x2019;s terms of use. We have not attempted to re-identify any individual and our analysis does not include personally identifiable information.</p>
            </sec>
        </sec>
        <sec id="sec12" sec-type="results">
            <title>3. Results</title>
            <p>This article is based on the Tobit econometric model, an econometric model used to identify the impact of education on the gender wage gap in Peru during the period 2017-2021. This model used the database of the National Household Survey (ENAHO) 2017-2021, using the total wage (w_total) of men and women and explanatory variables such as age, number of children under 6 years old (under 6), years of education (educ) and children between 6 and 18 years old (between-6-18).</p>
            <p>The gender gap in Peru showed a decreasing trend between men and women during the period 2017-2020, with an average reduction of 10% until the year 2020 due to the COVID-19 health crisis. The highest average salary achieved by men was in 2019, reaching S/. 2289.97 soles, while women reached an average salary of S/. 1368.85 soles. In the post-pandemic scenario for the year 2021, the gender gap increased by 3%, with men earning an average salary of S/. 1999.63 soles and women earning an average salary of S/. 1281.16 soles.</p>
            <p>While the gender gap has clearly reduced, during the health crisis, men&#x2019;s salaries showed a greater decline in 2020, with a negative variation of 16.5% compared to 2019. Meanwhile, women experienced a negative variation of only 11.5% during the health crisis compared to 2019. With the post-pandemic economic recovery, women&#x2019;s salaries showed a more accelerated growth, reaching a variation of 5.7%, while men&#x2019;s salaries grew by only 4.6%.</p>
            <p>In 
                <xref ref-type="table" rid="T3">Table 3</xref>, the Tobit model estimation shows that education has positively influenced the salaries of both men and women, with a clear wage gap of 137.56 soles. An increase of one year of education in men generates an increase in their salaries by 293.21 soles, while for women, an increase of one year of education generates an increase in their salaries by 155.65 soles.</p>
            <table-wrap id="T3" orientation="portrait" position="float">
                <label>Table 3. </label>
                <caption>
                    <title>Tobit estimation of the monthly income gap between women and men in Peru, 2017.</title>
                </caption>
                <table content-type="article-table" frame="hsides">
                    <thead>
                        <tr>
                            <th align="left" colspan="1" rowspan="1" valign="top"/>
                            <th align="left" colspan="1" rowspan="1" valign="top"/>
                            <th align="left" colspan="2" rowspan="1" valign="top">TOBIT</th>
                            <th align="left" colspan="1" rowspan="1" valign="top"/>
                        </tr>
                        <tr>
                            <th align="left" colspan="1" rowspan="2" valign="top">Variables</th>
                            <th align="left" colspan="1" rowspan="1" valign="top"/>
                            <th align="left" colspan="2" rowspan="1" valign="top">Women</th>
                            <th align="left" colspan="1" rowspan="1" valign="top">Men</th>
                        </tr>
                        <tr>
                            <th align="left" colspan="1" rowspan="1" valign="top"/>
                            <th align="left" colspan="1" rowspan="1" valign="top">Marginal effect (%)</th>
                            <th align="left" colspan="1" rowspan="1" valign="top"/>
                            <th align="left" colspan="1" rowspan="1" valign="top">Marginal effect (%)</th>
                        </tr>
                    </thead>
                    <tbody>
                        <tr>
                            <td align="left" colspan="1" rowspan="1" valign="top">age</td>
                            <td align="left" colspan="1" rowspan="1" valign="top">4.34</td>
                            <td align="left" colspan="1" rowspan="1" valign="top">0.06</td>
                            <td align="left" colspan="1" rowspan="1" valign="top">0.31</td>
                            <td align="left" colspan="1" rowspan="1" valign="top">0.002</td>
                        </tr>
                        <tr>
                            <td colspan="1" rowspan="1"/>
                            <td align="left" colspan="1" rowspan="1" valign="top">(4.12)</td>
                            <td colspan="1" rowspan="1"/>
                            <td align="left" colspan="1" rowspan="1" valign="top">(4.04)</td>
                            <td colspan="1" rowspan="1"/>
                        </tr>
                        <tr>
                            <td align="left" colspan="1" rowspan="1" valign="top">minor_6</td>
                            <td align="left" colspan="1" rowspan="1" valign="top">16.00
                                <xref ref-type="table-fn" rid="tfn2">**</xref>
                            </td>
                            <td align="left" colspan="1" rowspan="1" valign="top">0.22</td>
                            <td align="left" colspan="1" rowspan="1" valign="top">-133.17
                                <xref ref-type="table-fn" rid="tfn2">**</xref>
                            </td>
                            <td align="left" colspan="1" rowspan="1" valign="top">-0.96
                                <xref ref-type="table-fn" rid="tfn2">**</xref>
                            </td>
                        </tr>
                        <tr>
                            <td colspan="1" rowspan="1"/>
                            <td align="left" colspan="1" rowspan="1" valign="top">(84.48)</td>
                            <td colspan="1" rowspan="1"/>
                            <td align="left" colspan="1" rowspan="1" valign="top">(64.52)</td>
                            <td colspan="1" rowspan="1"/>
                        </tr>
                        <tr>
                            <td align="left" colspan="1" rowspan="1" valign="top">between_6_18</td>
                            <td align="left" colspan="1" rowspan="1" valign="top">4.49</td>
                            <td align="left" colspan="1" rowspan="1" valign="top">0.06</td>
                            <td align="left" colspan="1" rowspan="1" valign="top">8.12</td>
                            <td align="left" colspan="1" rowspan="1" valign="top">0.06</td>
                        </tr>
                        <tr>
                            <td colspan="1" rowspan="1"/>
                            <td align="left" colspan="1" rowspan="1" valign="top">(43.48)</td>
                            <td colspan="1" rowspan="1"/>
                            <td align="left" colspan="1" rowspan="1" valign="top">(37.37)</td>
                            <td colspan="1" rowspan="1"/>
                        </tr>
                        <tr>
                            <td align="left" colspan="1" rowspan="1" valign="top">
                                <bold>educ</bold>
                            </td>
                            <td align="left" colspan="1" rowspan="1" valign="top">
                                <bold>155.65</bold>
                                <xref ref-type="table-fn" rid="tfn1">
                                    <bold>***</bold>
                                </xref>
                            </td>
                            <td align="left" colspan="1" rowspan="1" valign="top">
                                <bold>2.14</bold>
                                <xref ref-type="table-fn" rid="tfn1">
                                    <bold>***</bold>
                                </xref>
                            </td>
                            <td align="left" colspan="1" rowspan="1" valign="top">
                                <bold>293.21</bold>
                                <xref ref-type="table-fn" rid="tfn1">
                                    <bold>***</bold>
                                </xref>
                            </td>
                            <td align="left" colspan="1" rowspan="1" valign="top">
                                <bold>2.11</bold>
                                <xref ref-type="table-fn" rid="tfn1">
                                    <bold>***</bold>
                                </xref>
                            </td>
                        </tr>
                        <tr>
                            <td colspan="1" rowspan="1"/>
                            <td align="left" colspan="1" rowspan="1" valign="top">(6.42)</td>
                            <td colspan="1" rowspan="1"/>
                            <td align="left" colspan="1" rowspan="1" valign="top">(7.43)</td>
                            <td colspan="1" rowspan="1"/>
                        </tr>
                        <tr>
                            <td align="left" colspan="1" rowspan="1" valign="top">Constant</td>
                            <td align="left" colspan="1" rowspan="1" valign="top">-372.86</td>
                            <td colspan="1" rowspan="1"/>
                            <td align="left" colspan="1" rowspan="1" valign="top">-635.22
                                <xref ref-type="table-fn" rid="tfn2">**</xref>
                            </td>
                            <td colspan="1" rowspan="1"/>
                        </tr>
                        <tr>
                            <td colspan="1" rowspan="1"/>
                            <td align="left" colspan="1" rowspan="1" valign="top">(249.07)</td>
                            <td colspan="1" rowspan="1"/>
                            <td align="left" colspan="1" rowspan="1" valign="top">(250.77)</td>
                            <td colspan="1" rowspan="1"/>
                        </tr>
                        <tr>
                            <td align="left" colspan="1" rowspan="1" valign="top">Observations</td>
                            <td align="left" colspan="1" rowspan="1" valign="top">4,429</td>
                            <td colspan="1" rowspan="1"/>
                            <td align="left" colspan="1" rowspan="1" valign="top">15,313</td>
                            <td colspan="1" rowspan="1"/>
                        </tr>
                        <tr>
                            <td align="left" colspan="1" rowspan="1" valign="top">R-squared</td>
                            <td colspan="1" rowspan="1"/>
                            <td colspan="1" rowspan="1"/>
                            <td colspan="1" rowspan="1"/>
                            <td colspan="1" rowspan="1"/>
                        </tr>
                    </tbody>
                </table>
                <table-wrap-foot>
                    <p>Note: Own elaboration with data from ENAHO INEI 2021, using Stata portable 16, 2022. Standard errors in parentheses.</p>
                    <fn-group content-type="footnotes">
                        <fn id="tfn1">
                            <label>***</label>
                            <p>p&lt;0.01.</p>
                        </fn>
                        <fn id="tfn2">
                            <label>**</label>
                            <p>p&lt;0.05.</p>
                        </fn>
                        <fn id="tfn3">
                            <label>*</label>
                            <p>p&lt;0.1.</p>
                        </fn>
                    </fn-group>
                </table-wrap-foot>
            </table-wrap>
            <p>The marginal effect of the model shows that the probability of women&#x2019;s incomes improving with an increase in years of education is 2.14%, while for men, the probability of their incomes improving with an increase in years of education is 2.11%, reflecting the greater impact of education on women. In the case of men, the probability of their incomes improving decreases by 0.96% with an increase in the number of children under 6 years old.</p>
            <p>The Tobit model shows that the highly significant variables are &#x201c;educ&#x201d; (years of education) at 99% and &#x201c;menor_6&#x201d; (number of children under 6 years old) at 95%, demonstrating the positive impact of education on the gender wage gap in Peru in 2017.</p>
            <p>In 
                <xref ref-type="table" rid="T4">Table 4</xref>, the Tobit model estimation shows that education has positively influenced the salaries of both men and women, with a clear wage gap of 126.51 soles. An increase of one year of education in men generates an increase in their salaries by 286.30 soles, while for women, an increase of one year of education generates an increase in their salaries by 159.79 soles.</p>
            <table-wrap id="T4" orientation="portrait" position="float">
                <label>Table 4. </label>
                <caption>
                    <title>Tobit estimation of the monthly income gap between women and men in Peru, 2018.</title>
                </caption>
                <table content-type="article-table" frame="hsides">
                    <thead>
                        <tr>
                            <th align="left" colspan="1" rowspan="1" valign="top"/>
                            <th align="left" colspan="1" rowspan="1" valign="top"/>
                            <th align="left" colspan="2" rowspan="1" valign="top">TOBIT</th>
                            <th align="left" colspan="1" rowspan="1" valign="top"/>
                        </tr>
                        <tr>
                            <th align="left" colspan="1" rowspan="2" valign="top">Variables</th>
                            <th align="left" colspan="1" rowspan="1" valign="top"/>
                            <th align="left" colspan="2" rowspan="1" valign="top">Women</th>
                            <th align="left" colspan="1" rowspan="1" valign="top">Men</th>
                        </tr>
                        <tr>
                            <th align="left" colspan="1" rowspan="1" valign="top"/>
                            <th align="left" colspan="1" rowspan="1" valign="top">Marginal effect (%)</th>
                            <th align="left" colspan="1" rowspan="1" valign="top"/>
                            <th align="left" colspan="1" rowspan="1" valign="top">Marginal effect (%)</th>
                        </tr>
                    </thead>
                    <tbody>
                        <tr>
                            <td align="left" colspan="1" rowspan="1" valign="top">age</td>
                            <td align="left" colspan="1" rowspan="1" valign="top">9.87
                                <xref ref-type="table-fn" rid="tfn4">***</xref>
                            </td>
                            <td align="left" colspan="1" rowspan="1" valign="top">0.14
                                <xref ref-type="table-fn" rid="tfn4">***</xref>
                            </td>
                            <td align="left" colspan="1" rowspan="1" valign="top">-3.37</td>
                            <td align="left" colspan="1" rowspan="1" valign="top">-0.03</td>
                        </tr>
                        <tr>
                            <td colspan="1" rowspan="1"/>
                            <td align="left" colspan="1" rowspan="1" valign="top">(3.69)</td>
                            <td colspan="1" rowspan="1"/>
                            <td align="left" colspan="1" rowspan="1" valign="top">(3.78)</td>
                            <td colspan="1" rowspan="1"/>
                        </tr>
                        <tr>
                            <td align="left" colspan="1" rowspan="1" valign="top">minor_6</td>
                            <td align="left" colspan="1" rowspan="1" valign="top">-96.49</td>
                            <td align="left" colspan="1" rowspan="1" valign="top">-1.40</td>
                            <td align="left" colspan="1" rowspan="1" valign="top">-153.62
                                <xref ref-type="table-fn" rid="tfn5">**</xref>
                            </td>
                            <td align="left" colspan="1" rowspan="1" valign="top">-1.16
                                <xref ref-type="table-fn" rid="tfn5">**</xref>
                            </td>
                        </tr>
                        <tr>
                            <td colspan="1" rowspan="1"/>
                            <td align="left" colspan="1" rowspan="1" valign="top">(77.52)</td>
                            <td colspan="1" rowspan="1"/>
                            <td align="left" colspan="1" rowspan="1" valign="top">(61.49)</td>
                            <td colspan="1" rowspan="1"/>
                        </tr>
                        <tr>
                            <td align="left" colspan="1" rowspan="1" valign="top">between_6_18</td>
                            <td align="left" colspan="1" rowspan="1" valign="top">30.85</td>
                            <td align="left" colspan="1" rowspan="1" valign="top">0.45</td>
                            <td align="left" colspan="1" rowspan="1" valign="top">57.17</td>
                            <td align="left" colspan="1" rowspan="1" valign="top">0.43</td>
                        </tr>
                        <tr>
                            <td colspan="1" rowspan="1"/>
                            <td align="left" colspan="1" rowspan="1" valign="top">(39.68)</td>
                            <td colspan="1" rowspan="1"/>
                            <td align="left" colspan="1" rowspan="1" valign="top">(35.27)</td>
                            <td colspan="1" rowspan="1"/>
                        </tr>
                        <tr>
                            <td align="left" colspan="1" rowspan="1" valign="top">
                                <bold>educ</bold>
                            </td>
                            <td align="left" colspan="1" rowspan="1" valign="top">
                                <bold>159.79</bold>
                                <xref ref-type="table-fn" rid="tfn4">
                                    <bold>***</bold>
                                </xref>
                            </td>
                            <td align="left" colspan="1" rowspan="1" valign="top">
                                <bold>2.31</bold>
                                <xref ref-type="table-fn" rid="tfn4">
                                    <bold>***</bold>
                                </xref>
                            </td>
                            <td align="left" colspan="1" rowspan="1" valign="top">
                                <bold>286.30</bold>
                                <xref ref-type="table-fn" rid="tfn4">
                                    <bold>***</bold>
                                </xref>
                            </td>
                            <td align="left" colspan="1" rowspan="1" valign="top">
                                <bold>2.16</bold>
                                <xref ref-type="table-fn" rid="tfn4">
                                    <bold>***</bold>
                                </xref>
                            </td>
                        </tr>
                        <tr>
                            <td colspan="1" rowspan="1"/>
                            <td align="left" colspan="1" rowspan="1" valign="top">
                                <bold>(5.75)</bold>
                            </td>
                            <td colspan="1" rowspan="1"/>
                            <td align="left" colspan="1" rowspan="1" valign="top">
                                <bold>(6.91)</bold>
                            </td>
                            <td colspan="1" rowspan="1"/>
                        </tr>
                        <tr>
                            <td align="left" colspan="1" rowspan="1" valign="top">Constant</td>
                            <td align="left" colspan="1" rowspan="1" valign="top">-691.09
                                <xref ref-type="table-fn" rid="tfn4">***</xref>
                            </td>
                            <td colspan="1" rowspan="1"/>
                            <td align="left" colspan="1" rowspan="1" valign="top">-557.49
                                <xref ref-type="table-fn" rid="tfn5">**</xref>
                            </td>
                            <td colspan="1" rowspan="1"/>
                        </tr>
                        <tr>
                            <td colspan="1" rowspan="1"/>
                            <td align="left" colspan="1" rowspan="1" valign="top">(224.66)</td>
                            <td colspan="1" rowspan="1"/>
                            <td align="left" colspan="1" rowspan="1" valign="top">(235.35)</td>
                            <td colspan="1" rowspan="1"/>
                        </tr>
                        <tr>
                            <td align="left" colspan="1" rowspan="1" valign="top">Observations</td>
                            <td align="left" colspan="1" rowspan="1" valign="top">4,791</td>
                            <td colspan="1" rowspan="1"/>
                            <td align="left" colspan="1" rowspan="1" valign="top">15,953</td>
                            <td colspan="1" rowspan="1"/>
                        </tr>
                        <tr>
                            <td align="left" colspan="1" rowspan="1" valign="top">R-squared</td>
                            <td colspan="1" rowspan="1"/>
                            <td colspan="1" rowspan="1"/>
                            <td colspan="1" rowspan="1"/>
                            <td colspan="1" rowspan="1"/>
                        </tr>
                    </tbody>
                </table>
                <table-wrap-foot>
                    <p>Note: Own elaboration with data from ENAHO INEI 2021, using Stata portable 16, 2022. Standard errors in parentheses.</p>
                    <fn-group content-type="footnotes">
                        <fn id="tfn4">
                            <label>***</label>
                            <p>p&lt;0.01.</p>
                        </fn>
                        <fn id="tfn5">
                            <label>**</label>
                            <p>p&lt;0.05.</p>
                        </fn>
                        <fn id="tfn6">
                            <label>*</label>
                            <p>p&lt;0.1.</p>
                        </fn>
                    </fn-group>
                </table-wrap-foot>
            </table-wrap>
            <p>The marginal effect of the model shows that the probability of women&#x2019;s incomes improving with an increase in years of education is 2.31%, while for men, the probability of their incomes improving with an increase in years of education is 2.16%, reflecting the greater impact of education on women. In the case of men, the probability of their incomes improving decreases by 1.16% with an increase in the number of children under 6 years old, and for women, the probability of their incomes improving with greater age is 0.14%.</p>
            <p>Observing the Tobit model, the variables that are highly significant are &#x201c;educ&#x201d; (years of education) at 99%, &#x201c;menor_6&#x201d; (number of children under 6 years old) at 95%, and &#x201c;edad&#x201d; (age in years) at 99%, demonstrating the positive impact of education on the gender wage gap in Peru in 2018.</p>
            <p>In 
                <xref ref-type="table" rid="T5">Table 5</xref>, the Tobit model estimation shows that education has positively influenced the salaries of both men and women, with a clear wage gap of 128.83 soles. An increase of one year of education in men generates an increase in their salaries by 292.53 soles, while for women, an increase of one year of education generates an increase in their salaries by 163.70 soles.</p>
            <table-wrap id="T5" orientation="portrait" position="float">
                <label>Table 5. </label>
                <caption>
                    <title>Tobit estimation of the monthly income gap between women and men in Peru, 2019.</title>
                </caption>
                <table content-type="article-table" frame="hsides">
                    <thead>
                        <tr>
                            <th align="left" colspan="1" rowspan="1" valign="top"/>
                            <th align="left" colspan="1" rowspan="1" valign="top"/>
                            <th align="left" colspan="2" rowspan="1" valign="top">TOBIT</th>
                            <th align="left" colspan="1" rowspan="1" valign="top"/>
                        </tr>
                        <tr>
                            <th align="left" colspan="1" rowspan="2" valign="top">Variables</th>
                            <th align="left" colspan="1" rowspan="1" valign="top"/>
                            <th align="left" colspan="2" rowspan="1" valign="top">Women</th>
                            <th align="left" colspan="1" rowspan="1" valign="top">Men</th>
                        </tr>
                        <tr>
                            <th align="left" colspan="1" rowspan="1" valign="top">Coefficient of the variable (&#x03b3;k&#x02c6;)</th>
                            <th align="left" colspan="1" rowspan="1" valign="top">Marginal effect (%)</th>
                            <th align="left" colspan="1" rowspan="1" valign="top">Coefficient of the variable (&#x03b3;k&#x02c6;)</th>
                            <th align="left" colspan="1" rowspan="1" valign="top">Marginal effect (%)</th>
                        </tr>
                    </thead>
                    <tbody>
                        <tr>
                            <td align="left" colspan="1" rowspan="1" valign="top">age</td>
                            <td align="left" colspan="1" rowspan="1" valign="top">3.31</td>
                            <td align="left" colspan="1" rowspan="1" valign="top">0.04</td>
                            <td align="left" colspan="1" rowspan="1" valign="top">-5.01</td>
                            <td align="left" colspan="1" rowspan="1" valign="top">-0.03</td>
                        </tr>
                        <tr>
                            <td colspan="1" rowspan="1"/>
                            <td align="left" colspan="1" rowspan="1" valign="top">(4.27)</td>
                            <td colspan="1" rowspan="1"/>
                            <td align="left" colspan="1" rowspan="1" valign="top">(4.40)</td>
                            <td colspan="1" rowspan="1"/>
                        </tr>
                        <tr>
                            <td align="left" colspan="1" rowspan="1" valign="top">minor_6</td>
                            <td align="left" colspan="1" rowspan="1" valign="top">-102.36</td>
                            <td align="left" colspan="1" rowspan="1" valign="top">-1.33</td>
                            <td align="left" colspan="1" rowspan="1" valign="top">-157.38
                                <xref ref-type="table-fn" rid="tfn8">**</xref>
                            </td>
                            <td align="left" colspan="1" rowspan="1" valign="top">-1.08
                                <xref ref-type="table-fn" rid="tfn8">**</xref>
                            </td>
                        </tr>
                        <tr>
                            <td colspan="1" rowspan="1"/>
                            <td align="left" colspan="1" rowspan="1" valign="top">(90.05)</td>
                            <td colspan="1" rowspan="1"/>
                            <td align="left" colspan="1" rowspan="1" valign="top">(73.91)</td>
                            <td colspan="1" rowspan="1"/>
                        </tr>
                        <tr>
                            <td align="left" colspan="1" rowspan="1" valign="top">between_6_18</td>
                            <td align="left" colspan="1" rowspan="1" valign="top">-34.37</td>
                            <td align="left" colspan="1" rowspan="1" valign="top">-0.45</td>
                            <td align="left" colspan="1" rowspan="1" valign="top">4.26</td>
                            <td align="left" colspan="1" rowspan="1" valign="top">0.03</td>
                        </tr>
                        <tr>
                            <td colspan="1" rowspan="1"/>
                            <td align="left" colspan="1" rowspan="1" valign="top">(46.67)</td>
                            <td colspan="1" rowspan="1"/>
                            <td align="left" colspan="1" rowspan="1" valign="top">(42.03)</td>
                            <td colspan="1" rowspan="1"/>
                        </tr>
                        <tr>
                            <td align="left" colspan="1" rowspan="1" valign="top">
                                <bold>educ</bold>
                            </td>
                            <td align="left" colspan="1" rowspan="1" valign="top">
                                <bold>163.70</bold>
                                <xref ref-type="table-fn" rid="tfn7">
                                    <bold>***</bold>
                                </xref>
                            </td>
                            <td align="left" colspan="1" rowspan="1" valign="top">
                                <bold>2.12</bold>
                                <xref ref-type="table-fn" rid="tfn7">
                                    <bold>***</bold>
                                </xref>
                            </td>
                            <td align="left" colspan="1" rowspan="1" valign="top">
                                <bold>292.53</bold>
                                <xref ref-type="table-fn" rid="tfn7">
                                    <bold>***</bold>
                                </xref>
                            </td>
                            <td align="left" colspan="1" rowspan="1" valign="top">
                                <bold>2.01</bold>
                                <xref ref-type="table-fn" rid="tfn7">
                                    <bold>***</bold>
                                </xref>
                            </td>
                        </tr>
                        <tr>
                            <td colspan="1" rowspan="1"/>
                            <td align="left" colspan="1" rowspan="1" valign="top">(6.74)</td>
                            <td colspan="1" rowspan="1"/>
                            <td align="left" colspan="1" rowspan="1" valign="top">(8.08)</td>
                            <td colspan="1" rowspan="1"/>
                        </tr>
                        <tr>
                            <td align="left" colspan="1" rowspan="1" valign="top">Constant</td>
                            <td align="left" colspan="1" rowspan="1" valign="top">-308.63</td>
                            <td colspan="1" rowspan="1"/>
                            <td align="left" colspan="1" rowspan="1" valign="top">-373.92</td>
                            <td colspan="1" rowspan="1"/>
                        </tr>
                        <tr>
                            <td colspan="1" rowspan="1"/>
                            <td align="left" colspan="1" rowspan="1" valign="top">(263.17)</td>
                            <td colspan="1" rowspan="1"/>
                            <td align="left" colspan="1" rowspan="1" valign="top">(275.98)</td>
                            <td colspan="1" rowspan="1"/>
                        </tr>
                        <tr>
                            <td align="left" colspan="1" rowspan="1" valign="top">Observations</td>
                            <td align="left" colspan="1" rowspan="1" valign="top">4,613</td>
                            <td colspan="1" rowspan="1"/>
                            <td align="left" colspan="1" rowspan="1" valign="top">14,350</td>
                            <td colspan="1" rowspan="1"/>
                        </tr>
                        <tr>
                            <td align="left" colspan="1" rowspan="1" valign="top">R-squared</td>
                            <td colspan="1" rowspan="1"/>
                            <td colspan="1" rowspan="1"/>
                            <td colspan="1" rowspan="1"/>
                            <td colspan="1" rowspan="1"/>
                        </tr>
                    </tbody>
                </table>
                <table-wrap-foot>
                    <p>Note: Own elaboration with data from ENAHO INEI 2021, using Stata portable 16, 2022. Standard errors in parentheses.</p>
                    <fn-group content-type="footnotes">
                        <fn id="tfn7">
                            <label>***</label>
                            <p>p&lt;0.01.</p>
                        </fn>
                        <fn id="tfn8">
                            <label>**</label>
                            <p>p&lt;0.05.</p>
                        </fn>
                        <fn id="tfn9">
                            <label>*</label>
                            <p>p&lt;0.1.</p>
                        </fn>
                    </fn-group>
                </table-wrap-foot>
            </table-wrap>
            <p>The marginal effect of the model shows that the probability of women&#x2019;s incomes improving with an increase in years of education is 2.12%, while for men, the probability of their incomes improving with an increase in years of education is 2.01%, reflecting the greater impact of education on women. In the case of men, the probability of their incomes improving decreases by 1.08% with an increase in the number of children under 6 years old.</p>
            <p>Observing the Tobit model, the variables that are highly significant are &#x201c;educ&#x201d; (years of education) at 99% and &#x201c;menor_6&#x201d; (number of children under 6 years old) at 95%, demonstrating the positive impact of education on the gender wage gap in Peru in 2019.</p>
            <p>In 
                <xref ref-type="table" rid="T6">Table 6</xref>, the Tobit model estimation shows that education has positively influenced the salaries of both men and women, with a clear wage gap of 106.18 soles. An increase of one year of education in men generates an increase in their salaries by 261.90 soles, while for women, an increase of one year of education generates an increase in their salaries by 155.72 soles.</p>
            <table-wrap id="T6" orientation="portrait" position="float">
                <label>Table 6. </label>
                <caption>
                    <title>Tobit estimation of the monthly income gap between women and men in Peru, 2020.</title>
                </caption>
                <table content-type="article-table" frame="hsides">
                    <thead>
                        <tr>
                            <th align="left" colspan="1" rowspan="1" valign="top"/>
                            <th align="left" colspan="1" rowspan="1" valign="top"/>
                            <th align="left" colspan="2" rowspan="1" valign="top">TOBIT</th>
                            <th align="left" colspan="1" rowspan="1" valign="top"/>
                        </tr>
                        <tr>
                            <th align="left" colspan="1" rowspan="2" valign="top">Variables</th>
                            <th align="left" colspan="1" rowspan="1" valign="top"/>
                            <th align="left" colspan="2" rowspan="1" valign="top">Women</th>
                            <th align="left" colspan="1" rowspan="1" valign="top">Men</th>
                        </tr>
                        <tr>
                            <th align="left" colspan="1" rowspan="1" valign="top">Coefficient of the variable (&#x03b3;k&#x02c6;)</th>
                            <th align="left" colspan="1" rowspan="1" valign="top">Marginal effect (%)</th>
                            <th align="left" colspan="1" rowspan="1" valign="top">Coefficient of the variable (&#x03b3;k&#x02c6;)</th>
                            <th align="left" colspan="1" rowspan="1" valign="top">Marginal effect (%)</th>
                        </tr>
                    </thead>
                    <tbody>
                        <tr>
                            <td align="left" colspan="1" rowspan="1" valign="top">age</td>
                            <td align="left" colspan="1" rowspan="1" valign="top">20.26
                                <xref ref-type="table-fn" rid="tfn10">***</xref>
                            </td>
                            <td align="left" colspan="1" rowspan="1" valign="top">0.31
                                <xref ref-type="table-fn" rid="tfn10">***</xref>
                            </td>
                            <td align="left" colspan="1" rowspan="1" valign="top">8.96
                                <xref ref-type="table-fn" rid="tfn11">**</xref>
                            </td>
                            <td align="left" colspan="1" rowspan="1" valign="top">0.07
                                <xref ref-type="table-fn" rid="tfn11">**</xref>
                            </td>
                        </tr>
                        <tr>
                            <td colspan="1" rowspan="1"/>
                            <td align="left" colspan="1" rowspan="1" valign="top">(3.81)</td>
                            <td colspan="1" rowspan="1"/>
                            <td align="left" colspan="1" rowspan="1" valign="top">(4.12)</td>
                            <td colspan="1" rowspan="1"/>
                        </tr>
                        <tr>
                            <td align="left" colspan="1" rowspan="1" valign="top">minor_6</td>
                            <td align="left" colspan="1" rowspan="1" valign="top">-78.75</td>
                            <td align="left" colspan="1" rowspan="1" valign="top">-1.19</td>
                            <td align="left" colspan="1" rowspan="1" valign="top">-93.17</td>
                            <td align="left" colspan="1" rowspan="1" valign="top">-0.74</td>
                        </tr>
                        <tr>
                            <td colspan="1" rowspan="1"/>
                            <td align="left" colspan="1" rowspan="1" valign="top">(76.54)</td>
                            <td colspan="1" rowspan="1"/>
                            <td align="left" colspan="1" rowspan="1" valign="top">(67.48)</td>
                            <td colspan="1" rowspan="1"/>
                        </tr>
                        <tr>
                            <td align="left" colspan="1" rowspan="1" valign="top">between_6_18</td>
                            <td align="left" colspan="1" rowspan="1" valign="top">76.68
                                <xref ref-type="table-fn" rid="tfn12">*</xref>
                            </td>
                            <td align="left" colspan="1" rowspan="1" valign="top">1.16</td>
                            <td align="left" colspan="1" rowspan="1" valign="top">-50.03</td>
                            <td align="left" colspan="1" rowspan="1" valign="top">-0.40</td>
                        </tr>
                        <tr>
                            <td colspan="1" rowspan="1"/>
                            <td align="left" colspan="1" rowspan="1" valign="top">(41.59)</td>
                            <td colspan="1" rowspan="1"/>
                            <td align="left" colspan="1" rowspan="1" valign="top">(38.35)</td>
                            <td colspan="1" rowspan="1"/>
                        </tr>
                        <tr>
                            <td align="left" colspan="1" rowspan="1" valign="top">
                                <bold>educ</bold>
                            </td>
                            <td align="left" colspan="1" rowspan="1" valign="top">
                                <bold>155.72</bold>
                                <xref ref-type="table-fn" rid="tfn10">
                                    <bold>***</bold>
                                </xref>
                            </td>
                            <td align="left" colspan="1" rowspan="1" valign="top">
                                <bold>2.35</bold>
                                <xref ref-type="table-fn" rid="tfn10">
                                    <bold>***</bold>
                                </xref>
                            </td>
                            <td align="left" colspan="1" rowspan="1" valign="top">
                                <bold>261.90</bold>
                                <xref ref-type="table-fn" rid="tfn10">
                                    <bold>***</bold>
                                </xref>
                            </td>
                            <td align="left" colspan="1" rowspan="1" valign="top">
                                <bold>2.09</bold>
                                <xref ref-type="table-fn" rid="tfn10">
                                    <bold>***</bold>
                                </xref>
                            </td>
                        </tr>
                        <tr>
                            <td colspan="1" rowspan="1"/>
                            <td align="left" colspan="1" rowspan="1" valign="top">(5.89)</td>
                            <td colspan="1" rowspan="1"/>
                            <td align="left" colspan="1" rowspan="1" valign="top">(7.21)</td>
                            <td colspan="1" rowspan="1"/>
                        </tr>
                        <tr>
                            <td align="left" colspan="1" rowspan="1" valign="top">Constant</td>
                            <td align="left" colspan="1" rowspan="1" valign="top">-1,325.34
                                <xref ref-type="table-fn" rid="tfn10">***</xref>
                            </td>
                            <td colspan="1" rowspan="1"/>
                            <td align="left" colspan="1" rowspan="1" valign="top">-1,062.85
                                <xref ref-type="table-fn" rid="tfn10">***</xref>
                            </td>
                            <td colspan="1" rowspan="1"/>
                        </tr>
                        <tr>
                            <td colspan="1" rowspan="1"/>
                            <td align="left" colspan="1" rowspan="1" valign="top">(230.85)</td>
                            <td colspan="1" rowspan="1"/>
                            <td align="left" colspan="1" rowspan="1" valign="top">(252.35)</td>
                            <td colspan="1" rowspan="1"/>
                        </tr>
                        <tr>
                            <td align="left" colspan="1" rowspan="1" valign="top">Observations</td>
                            <td align="left" colspan="1" rowspan="1" valign="top">4,352</td>
                            <td colspan="1" rowspan="1"/>
                            <td align="left" colspan="1" rowspan="1" valign="top">13,127</td>
                            <td colspan="1" rowspan="1"/>
                        </tr>
                        <tr>
                            <td align="left" colspan="1" rowspan="1" valign="top">R-squared</td>
                            <td colspan="1" rowspan="1"/>
                            <td colspan="1" rowspan="1"/>
                            <td colspan="1" rowspan="1"/>
                            <td colspan="1" rowspan="1"/>
                        </tr>
                    </tbody>
                </table>
                <table-wrap-foot>
                    <p>Note: Own elaboration with data from ENAHO INEI 2021, using Stata portable 16, 2022. Standard errors in parentheses.</p>
                    <fn-group content-type="footnotes">
                        <fn id="tfn10">
                            <label>***</label>
                            <p>p&lt;0.01.</p>
                        </fn>
                        <fn id="tfn11">
                            <label>**</label>
                            <p>p&lt;0.05.</p>
                        </fn>
                        <fn id="tfn12">
                            <label>*</label>
                            <p>p&lt;0.1.</p>
                        </fn>
                    </fn-group>
                </table-wrap-foot>
            </table-wrap>
            <p>The marginal effect of the model shows that the probability of women&#x2019;s incomes improving with an increase in years of education is 2.35%, while for men, the probability of their incomes improving with an increase in years of education is 2.09%, reflecting the greater impact of education on women. In the case of men, the probability of their incomes improving with an increase in age is 0.07%, and for women, the probability of their incomes improving with greater age is 0.31%.</p>
            <p>Observing the Tobit model, the variables that are highly significant are &#x201c;educ&#x201d; (years of education) at 99% and &#x201c;edad&#x201d; (age in years) at 99%, demonstrating the positive impact of education on the gender wage gap in Peru in 2020.</p>
            <p>In the 
                <xref ref-type="table" rid="T7">Table 7</xref>, the Tobit model estimation shows that education has positively influenced the salaries of both men and women, with a clear wage gap of 101.17 soles. An increase of one year of education in men generates an increase in their salaries by 256.93 soles, while for women, an increase of one year of education generates an increase in their salaries by 155.76 soles.</p>
            <table-wrap id="T7" orientation="portrait" position="float">
                <label>Table 7. </label>
                <caption>
                    <title>Tobit estimation of the monthly income gap between women and men in Peru, 2021.</title>
                </caption>
                <table content-type="article-table" frame="hsides">
                    <thead>
                        <tr>
                            <th align="left" colspan="1" rowspan="1" valign="top"/>
                            <th align="left" colspan="1" rowspan="1" valign="top"/>
                            <th align="left" colspan="2" rowspan="1" valign="top">TOBIT</th>
                            <th align="left" colspan="1" rowspan="1" valign="top"/>
                        </tr>
                        <tr>
                            <th align="left" colspan="1" rowspan="2" valign="top">Variables</th>
                            <th align="left" colspan="1" rowspan="1" valign="top"/>
                            <th align="left" colspan="2" rowspan="1" valign="top">Women</th>
                            <th align="left" colspan="1" rowspan="1" valign="top">Men</th>
                        </tr>
                        <tr>
                            <th align="left" colspan="1" rowspan="1" valign="top"/>
                            <th align="left" colspan="1" rowspan="1" valign="top">Marginal effect (%)</th>
                            <th align="left" colspan="1" rowspan="1" valign="top"/>
                            <th align="left" colspan="1" rowspan="1" valign="top">Marginal effect (%)</th>
                        </tr>
                    </thead>
                    <tbody>
                        <tr>
                            <td align="left" colspan="1" rowspan="1" valign="top">age</td>
                            <td align="left" colspan="1" rowspan="1" valign="top">15.12
                                <xref ref-type="table-fn" rid="tfn13">***</xref>
                            </td>
                            <td align="left" colspan="1" rowspan="1" valign="top">2.12
                                <xref ref-type="table-fn" rid="tfn13">***</xref>
                            </td>
                            <td align="left" colspan="1" rowspan="1" valign="top">9.32
                                <xref ref-type="table-fn" rid="tfn14">**</xref>
                            </td>
                            <td align="left" colspan="1" rowspan="1" valign="top">0.08</td>
                        </tr>
                        <tr>
                            <td colspan="1" rowspan="1"/>
                            <td align="left" colspan="1" rowspan="1" valign="top">(3.90)</td>
                            <td colspan="1" rowspan="1"/>
                            <td align="left" colspan="1" rowspan="1" valign="top">(3.86)</td>
                            <td colspan="1" rowspan="1"/>
                        </tr>
                        <tr>
                            <td align="left" colspan="1" rowspan="1" valign="top">minor_6</td>
                            <td align="left" colspan="1" rowspan="1" valign="top">-140.94
                                <xref ref-type="table-fn" rid="tfn15">*</xref>
                            </td>
                            <td align="left" colspan="1" rowspan="1" valign="top">-1.92
                                <xref ref-type="table-fn" rid="tfn14">**</xref>
                            </td>
                            <td align="left" colspan="1" rowspan="1" valign="top">-140.93
                                <xref ref-type="table-fn" rid="tfn14">**</xref>
                            </td>
                            <td align="left" colspan="1" rowspan="1" valign="top">-1.16
                                <xref ref-type="table-fn" rid="tfn14">**</xref>
                            </td>
                        </tr>
                        <tr>
                            <td colspan="1" rowspan="1"/>
                            <td align="left" colspan="1" rowspan="1" valign="top">(78.16)</td>
                            <td colspan="1" rowspan="1"/>
                            <td align="left" colspan="1" rowspan="1" valign="top">(64.84)</td>
                            <td colspan="1" rowspan="1"/>
                        </tr>
                        <tr>
                            <td align="left" colspan="1" rowspan="1" valign="top">between_6_18</td>
                            <td align="left" colspan="1" rowspan="1" valign="top">61.40</td>
                            <td align="left" colspan="1" rowspan="1" valign="top">0.84</td>
                            <td align="left" colspan="1" rowspan="1" valign="top">76.10
                                <xref ref-type="table-fn" rid="tfn14">**</xref>
                            </td>
                            <td align="left" colspan="1" rowspan="1" valign="top">0.63
                                <xref ref-type="table-fn" rid="tfn14">**</xref>
                            </td>
                        </tr>
                        <tr>
                            <td colspan="1" rowspan="1"/>
                            <td align="left" colspan="1" rowspan="1" valign="top">(42.23)</td>
                            <td colspan="1" rowspan="1"/>
                            <td align="left" colspan="1" rowspan="1" valign="top">(37.00)</td>
                            <td colspan="1" rowspan="1"/>
                        </tr>
                        <tr>
                            <td align="left" colspan="1" rowspan="1" valign="top">
                                <bold>educ</bold>
                            </td>
                            <td align="left" colspan="1" rowspan="1" valign="top">
                                <bold>155.76</bold>
                                <xref ref-type="table-fn" rid="tfn13">
                                    <bold>***</bold>
                                </xref>
                            </td>
                            <td align="left" colspan="1" rowspan="1" valign="top">
                                <bold>2.12</bold>
                                <xref ref-type="table-fn" rid="tfn13">
                                    <bold>***</bold>
                                </xref>
                            </td>
                            <td align="left" colspan="1" rowspan="1" valign="top">
                                <bold>256.93</bold>
                                <xref ref-type="table-fn" rid="tfn13">
                                    <bold>***</bold>
                                </xref>
                            </td>
                            <td align="left" colspan="1" rowspan="1" valign="top">
                                <bold>2.12</bold>
                                <xref ref-type="table-fn" rid="tfn13">
                                    <bold>***</bold>
                                </xref>
                            </td>
                        </tr>
                        <tr>
                            <td colspan="1" rowspan="1"/>
                            <td align="left" colspan="1" rowspan="1" valign="top">(6.07)</td>
                            <td colspan="1" rowspan="1"/>
                            <td align="left" colspan="1" rowspan="1" valign="top">(6.96)</td>
                            <td colspan="1" rowspan="1"/>
                        </tr>
                        <tr>
                            <td align="left" colspan="1" rowspan="1" valign="top">Constant</td>
                            <td align="left" colspan="1" rowspan="1" valign="top">-990.24
                                <xref ref-type="table-fn" rid="tfn13">***</xref>
                            </td>
                            <td colspan="1" rowspan="1"/>
                            <td align="left" colspan="1" rowspan="1" valign="top">-1,060.74
                                <xref ref-type="table-fn" rid="tfn13">***</xref>
                            </td>
                            <td colspan="1" rowspan="1"/>
                        </tr>
                        <tr>
                            <td colspan="1" rowspan="1"/>
                            <td align="left" colspan="1" rowspan="1" valign="top">(236.14)</td>
                            <td colspan="1" rowspan="1"/>
                            <td align="left" colspan="1" rowspan="1" valign="top">(237.57)</td>
                            <td colspan="1" rowspan="1"/>
                        </tr>
                        <tr>
                            <td align="left" colspan="1" rowspan="1" valign="top">Observations</td>
                            <td align="left" colspan="1" rowspan="1" valign="top">5,251</td>
                            <td colspan="1" rowspan="1"/>
                            <td align="left" colspan="1" rowspan="1" valign="top">12,678</td>
                            <td colspan="1" rowspan="1"/>
                        </tr>
                        <tr>
                            <td align="left" colspan="1" rowspan="1" valign="top">R-squared</td>
                            <td colspan="1" rowspan="1"/>
                            <td colspan="1" rowspan="1"/>
                            <td colspan="1" rowspan="1"/>
                            <td colspan="1" rowspan="1"/>
                        </tr>
                    </tbody>
                </table>
                <table-wrap-foot>
                    <p>Note: Own elaboration with data from ENAHO INEI 2021, using Stata portable 16, 2022. Standard errors in parentheses.</p>
                    <fn-group content-type="footnotes">
                        <fn id="tfn13">
                            <label>***</label>
                            <p>p&lt;0.01.</p>
                        </fn>
                        <fn id="tfn14">
                            <label>**</label>
                            <p>p&lt;0.05.</p>
                        </fn>
                        <fn id="tfn15">
                            <label>*</label>
                            <p>p&lt;0.1.</p>
                        </fn>
                    </fn-group>
                </table-wrap-foot>
            </table-wrap>
            <p>The marginal effect of the model shows that the probability of women&#x2019;s incomes improving with an increase in years of education is 2.12%, which is the same as the probability for men. For women, the probability of their incomes improving with an increase in age is 2.12%, while for men, the probability of their incomes improving decreases by 1.16% with an increase in the number of children under 6 years old, and for women, the probability decreases by 1.92%.</p>
            <p>Observing the Tobit model, the variables that are highly significant are &#x201c;educ&#x201d; (years of education) at 99%, &#x201c;menor_6&#x201d; (number of children under 6 years old) at 95%, &#x201c;entre_6_18&#x201d; (number of children aged between 6 and 18) at 95%, and &#x201c;edad&#x201d; (age in years) at 95%, demonstrating the positive impact of education on the gender wage gap in Peru in 2021.</p>
        </sec>
        <sec id="sec13" sec-type="discussion">
            <title>4. Discussion</title>
            <p>The previously found results show that during the analysis period of 2017-2021, years of education have had a positive impact on the gender wage gap in Peru based on the Tobit estimation. These findings are consistent with those of 
                <xref ref-type="bibr" rid="ref36">Picatoste et al. (2023)</xref> which revealed that the gender gap is a relevant aspect of the European Union, considering that education has significantly influenced the wage gap and is a relevant value in the social aspect.</p>
            <p>Similarly, they are related to 
                <xref ref-type="bibr" rid="ref39">Reshi and Sudha (2023)</xref> whose findings show that the gender wage gap has a significant impact on women&#x2019;s empowerment due to the limitations of women&#x2019;s economic independence and autonomy.</p>
            <p>On the other hand, 
                <xref ref-type="bibr" rid="ref35">Penner et al. (2022)</xref> in their various studies, indicate that the gender wage gap highlights that various countries can be identified where the wage gap has been a crucial aspect of gender differences due to different jobs that substantially represent wage differences between men and women, developing wage inequality that faces various challenges in comparing results.</p>
            <p>
                <xref ref-type="bibr" rid="ref3">Adriaans and Targa (2023)</xref> reveal that women with higher education levels tend to earn higher wages compared to those with lower education levels. However, the gender wage gap persists even among people with similar education levels.</p>
            <p>Differences in labor market participation between men and women, such as the proportion of women working full-time versus part-time, can contribute to the wage gap.</p>
            <p>The increase in women&#x2019;s participation in higher education and in academic and professional fields traditionally dominated by men can have a positive impact on reducing the wage gap.</p>
            <p>In this way, 
                <xref ref-type="bibr" rid="ref23">Hutter and Weber (2023)</xref> consider that growing economic inequality has highlighted a variety of literature where wage dispersion involves significant inequality using the VECM model. Considering the structural model reveals that it affects inequality with various impacts on the labor market and becomes relevant in wages with a biased technological shock and structural inequality that negatively impacts working hours and reduces productivity by facing negative inequality in the labor market characterized by high levels of inequality.</p>
            <p>Accessible and equitable education provides men and women with the same opportunities to acquire skills and knowledge. This establishes the foundation for fair labor competition and reduces initial disparities that could contribute to wage gaps.</p>
            <p>Education provides people with the necessary skills and competencies to perform different labor roles. Acquiring specific skills and advanced knowledge can increase an employee&#x2019;s perceived value, regardless of gender.</p>
            <p>Solid education allows people to make informed career decisions. Encouraging women to enter fields traditionally dominated by men and men to consider options in predominantly female fields can contribute to reducing wage gaps.</p>
            <p>Additionally, quality education can offer opportunities for social and economic mobility, allowing people to overcome socioeconomic barriers. This is especially important for groups that have historically faced discrimination, such as women, as education can be a vehicle for empowerment and financial autonomy.</p>
        </sec>
        <sec id="sec14" sec-type="conclusions">
            <title>5. Conclusions</title>
            <p>Gender wage gap in Peru has shown a decreasing trend between men and women from 2017 to 2020 during the health crisis scenario, only to be reversed in the post-pandemic period of 2021, where the gender gap grew by 3%, with men reaching an average salary of S/.1999.63 soles and women reaching an average salary of S/.1281.16 soles. Despite this, women exhibited a higher accelerated salary growth, with a variation of 5.7%, while men&#x2019;s salaries only grew by 4.6% in the economic reactivation of 2021 compared to 2020.</p>
            <p>The Tobit model estimation in 2017 considers the variables of education (years of education) significant at 99%, minor_6 (number of children under 6 years old) at 95%, and age (years) at 99%. In 2018, the highly significant variables are education (years of education) at 99% and minor_6 (number of children under 6 years old) at 95%. In contrast, in 2019, the highly significant variables are education (years of education) at 99% and age (years) at 99%, and for 2020, the highly significant variables are education (years of education) at 99%, minor_6 (number of children under 6 years old) at 95%, between_6_18 (number of children aged between 6 and 18 years) at 95%, and age (years) at 95%; with education years being highly significant for both men and women at 99% in influencing their salaries during the period 2017-2021.</p>
            <p>The Tobit model estimation shows that in 2019, women generated an increase in their salaries by S/.163.70 soles for every additional year of education, while in 2017, men generated an increase in their salaries by S/.293.21 soles for every additional year of education.</p>
            <p>During the analysis period of 2017-2021, years of education have had a positive impact on the gender wage gap in Peru, with the greatest impact during the health crisis, as the probability of women&#x2019;s incomes improving with an increase in years of education was 2.35%, and for men, their greatest impact was in 2018, with a probability of their incomes improving with an increase in years of education at 2.16% in terms of marginal effect.</p>
            <p>In conclusion, it is emphasized that the findings recommend promoting gender equality in both access to education and professional training for women. Additionally, states should implement appropriate policies to support salary equities and job opportunities for both men and women.</p>
        </sec>
    </body>
    <back>
        <sec id="sec17" sec-type="data-availability">
            <title>Data availability statement</title>
            <sec id="sec18">
                <title>Underlying data</title>
                <p>

                    <italic toggle="yes">Zenodo.</italic> Evaluation of the Impact of the Educational Revolution in Peru and the Gender Wage Gap, 2017-2021, 
                    <ext-link ext-link-type="uri" xlink:href="https://doi.org/10.5281/zenodo.12772670">https://doi.org/10.5281/zenodo.12772670</ext-link> (
                    <xref ref-type="bibr" rid="ref9">Castro et al., 2024</xref>).</p>
                <p>This project contains the following underlying data:
                    <list list-type="bullet">
                        <list-item>
                            <label>&#x2022;</label>
                            <p>Data_Dynamics of the Gender Wage Gap in the Period 2017-2021.</p>
                        </list-item>
                        <list-item>
                            <label>&#x2022;</label>
                            <p>
Figure 1_Dynamics of the Gender Wage Gap in the Period 2017-2021.</p>
                        </list-item>
                    </list>
                </p>
                <p>Data is available under Creative Commons Zero v1.0 Universal</p>
            </sec>
            <sec id="sec19">
                <title>Extended data</title>
                <p>

                    <italic toggle="yes">Zenodo.</italic> Evaluation of the Impact of the Educational Revolution in Peru and the Gender Wage Gap, 2017-2021. 
                    <ext-link ext-link-type="uri" xlink:href="https://doi.org/10.5281/zenodo.12772670">https://doi.org/10.5281/zenodo.12772670</ext-link> (
                    <xref ref-type="bibr" rid="ref9">Castro et al., 2024</xref>).</p>
                <p>This project contains the following extended data:
                    <list list-type="bullet">
                        <list-item>
                            <label>&#x2022;</label>
                            <p>ModelTOBIT 2021.</p>
                        </list-item>
                        <list-item>
                            <label>&#x2022;</label>
                            <p>License_Stata 16 software.</p>
                        </list-item>
                        <list-item>
                            <label>&#x2022;</label>
                            <p>
Strobe_checklist_v4_combined.</p>
                        </list-item>
                        <list-item>
                            <label>&#x2022;</label>
                            <p>Rectoral Resolution N&#x00b0; 760-2007_UCV_CODE OF ETHICS.</p>
                        </list-item>
                    </list>
                </p>
                <p>Data is available under Creative Commons Zero v1.0 Universal</p>
            </sec>
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    <sub-article article-type="reviewer-report" id="report320571">
        <front-stub>
            <article-id pub-id-type="doi">10.5256/f1000research.168385.r320571</article-id>
            <title-group>
                <article-title>Reviewer response for version 1</article-title>
            </title-group>
            <contrib-group>
                <contrib contrib-type="author">
                    <name>
                        <surname>Cosio Borda</surname>
                        <given-names>Ricardo Fernando</given-names>
                    </name>
                    <xref ref-type="aff" rid="r320571a1">1</xref>
                    <role>Referee</role>
                    <uri content-type="orcid">https://orcid.org/0009-0005-7259-608X</uri>
                </contrib>
                <aff id="r320571a1">
                    <label>1</label>Universidad EAN, Bogot&#x00e1;, Bogota, Colombia</aff>
            </contrib-group>
            <author-notes>
                <fn fn-type="conflict">
                    <p>
                        <bold>Competing interests: </bold>No competing interests were disclosed.</p>
                </fn>
            </author-notes>
            <pub-date pub-type="epub">
                <day>16</day>
                <month>9</month>
                <year>2025</year>
            </pub-date>
            <permissions>
                <copyright-statement>Copyright: &#x00a9; 2025 Cosio Borda RF</copyright-statement>
                <copyright-year>2025</copyright-year>
                <license xlink:href="https://creativecommons.org/licenses/by/4.0/">
                    <license-p>This is an open access peer review report distributed under the terms of the Creative Commons Attribution Licence, which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.</license-p>
                </license>
            </permissions>
            <related-article ext-link-type="doi" id="relatedArticleReport320571" related-article-type="peer-reviewed-article" xlink:href="10.12688/f1000research.153475.1"/>
            <custom-meta-group>
                <custom-meta>
                    <meta-name>recommendation</meta-name>
                    <meta-value>approve</meta-value>
                </custom-meta>
            </custom-meta-group>
        </front-stub>
        <body>
            <p>The introduction is acceptable, although it could have been strengthened with a more thorough review of the literature. However, it is sufficient to theoretically support the nature of the research.</p>
            <p> </p>
            <p> The paper shows methodological strengths, clearly describing the process for data collection and analysis. The study sample has been clearly described and specified.</p>
            <p> </p>
            <p> The results show an initial descriptive analysis followed by the application of the econometric model. This section is acceptable, although the information in the descriptive statistical analysis could have been exploited further.</p>
            <p> </p>
            <p> The discussion and conclusions are relevant.</p>
            <p> </p>
            <p> Overall, the paper makes an acceptable contribution and meets the necessary criteria for acceptance.</p>
            <p>Is the work clearly and accurately presented and does it cite the current literature?</p>
            <p>Yes</p>
            <p>If applicable, is the statistical analysis and its interpretation appropriate?</p>
            <p>Yes</p>
            <p>Are all the source data underlying the results available to ensure full reproducibility?</p>
            <p>Yes</p>
            <p>Is the study design appropriate and is the work technically sound?</p>
            <p>Yes</p>
            <p>Are the conclusions drawn adequately supported by the results?</p>
            <p>Yes</p>
            <p>Are sufficient details of methods and analysis provided to allow replication by others?</p>
            <p>Yes</p>
            <p>Reviewer Expertise:</p>
            <p>Social sciences and economic studies.</p>
            <p>I confirm that I have read this submission and believe that I have an appropriate level of expertise to confirm that it is of an acceptable scientific standard.</p>
        </body>
    </sub-article>
</article>
