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  <front>
    <journal-meta><journal-id journal-id-type="publisher">ESSD</journal-id><journal-title-group>
    <journal-title>Earth System Science Data</journal-title>
    <abbrev-journal-title abbrev-type="publisher">ESSD</abbrev-journal-title><abbrev-journal-title abbrev-type="nlm-ta">Earth Syst. Sci. Data</abbrev-journal-title>
  </journal-title-group><issn pub-type="epub">1866-3516</issn><publisher>
    <publisher-name>Copernicus Publications</publisher-name>
    <publisher-loc>Göttingen, Germany</publisher-loc>
  </publisher></journal-meta>
    <article-meta>
      <article-id pub-id-type="doi">10.5194/essd-10-2033-2018</article-id><title-group><article-title>Mapping the vegetation of the Lake Tana basin,<?xmltex \hack{\break}?> Ethiopia,
using Google Earth images</article-title><alt-title>Vegetation map of the Lake Tana basin</alt-title>
      </title-group><?xmltex \runningtitle{Vegetation map of the Lake Tana basin}?><?xmltex \runningauthor{C.~Song et al.}?>
      <contrib-group>
        <contrib contrib-type="author" corresp="yes" rid="aff1">
          <name><surname>Song</surname><given-names>Chuangye</given-names></name>
          <email>songcy@ibcas.ac.cn</email>
        </contrib>
        <contrib contrib-type="author" corresp="no" rid="aff2">
          <name><surname>Nigatu</surname><given-names>Lisanework</given-names></name>
          
        </contrib>
        <contrib contrib-type="author" corresp="no" rid="aff3">
          <name><surname>Beneye</surname><given-names>Yibrah</given-names></name>
          
        </contrib>
        <contrib contrib-type="author" corresp="no" rid="aff2">
          <name><surname>Abdulahi</surname><given-names>Abdurezak</given-names></name>
          
        </contrib>
        <contrib contrib-type="author" corresp="no" rid="aff1">
          <name><surname>Zhang</surname><given-names>Lin</given-names></name>
          
        </contrib>
        <contrib contrib-type="author" corresp="no" rid="aff1">
          <name><surname>Wu</surname><given-names>Dongxiu</given-names></name>
          
        </contrib>
        <aff id="aff1"><label>1</label><institution>State Key Laboratory of
Vegetation and Environmental Change, Institute of Botany, <?xmltex \hack{\break}?>Chinese Academy of
Sciences, Beijing, China</institution>
        </aff>
        <aff id="aff2"><label>2</label><institution>School of Natural Resource and Environmental
Sciences, Haramaya University, Dire Dawa, Ethiopia</institution>
        </aff>
        <aff id="aff3"><label>3</label><institution>College of Plant
and Horticultural Sciences, Hawassa University, Awasa, Ethiopia</institution>
        </aff>
      </contrib-group>
      <author-notes><corresp id="corr1">Chuangye Song (songcy@ibcas.ac.cn) and Wu Dongxiu (wudx@ibcas.ac.cn)</corresp></author-notes><pub-date><day>15</day><month>November</month><year>2018</year></pub-date>
      
      <volume>10</volume>
      <issue>4</issue>
      <fpage>2033</fpage><lpage>2041</lpage>
      <history>
        <date date-type="received"><day>7</day><month>February</month><year>2018</year></date>
           <date date-type="rev-request"><day>9</day><month>April</month><year>2018</year></date>
           <date date-type="rev-recd"><day>13</day><month>September</month><year>2018</year></date>
           <date date-type="accepted"><day>30</day><month>October</month><year>2018</year></date>
      </history>
      <permissions>
        
        
      <license license-type="open-access"><license-p>This work is licensed under the Creative Commons Attribution 4.0 International License. To view a copy of this licence, visit <ext-link ext-link-type="uri" xlink:href="https://creativecommons.org/licenses/by/4.0/">https://creativecommons.org/licenses/by/4.0/</ext-link></license-p></license></permissions><self-uri xlink:href="https://essd.copernicus.org/articles/10/2033/2018/essd-10-2033-2018.html">This article is available from https://essd.copernicus.org/articles/10/2033/2018/essd-10-2033-2018.html</self-uri><self-uri xlink:href="https://essd.copernicus.org/articles/10/2033/2018/essd-10-2033-2018.pdf">The full text article is available as a PDF file from https://essd.copernicus.org/articles/10/2033/2018/essd-10-2033-2018.pdf</self-uri>
      <abstract>
    <p id="d1e144">The basin of Lake Tana is one of the most important watersheds
in the Nile Basin. It is of great significance to the economy and politics of
Ethiopia. In the past, the natural vegetation of the Lake Tana basin was
heavily damaged to facilitate the continued expansion of cropland. Vegetation
must be conserved and restored to protect the natural environment and
maintain the biodiversity of the Lake Tana basin. In this research, we mapped
the vegetation of the Lake Tana basin through visual interpretation using
high-spatial-resolution images provided by Google Earth and field survey data
to provide detailed information of the actual vegetation state for planning
conservation and restoration. A total of 33 171 polygons were generated to
represent the vegetation patches of the Lake Tana basin on the map, and the
validation using surveyed vegetation plots indicated that 90 % of the
patches were correctly identified. The DOI of the dataset used for map
production is <ext-link xlink:href="https://doi.org/10.4121/uuid:48d45053-36f6-411b-96b1-7ae0e22d56d0" ext-link-type="DOI">10.4121/uuid:48d45053-36f6-411b-96b1-7ae0e22d56d0</ext-link>. We
expect that this vegetation map could benefit vegetation conservation and
restoration in the Lake Tana basin.</p>
  </abstract>
    </article-meta>
  </front>
<body>
      

<sec id="Ch1.S1" sec-type="intro">
  <title>Introduction</title>
      <p id="d1e157">Lake Tana, located in the highlands of northwestern Ethiopia, is the
country's largest freshwater lake and the third largest lake in the Nile
Basin. Lake Tana is the source of the Blue Nile, and its basin is one of the
most important catchments in the Nile Basin. It has rich natural resources
and great potential for the development of irrigation, hydroelectric power,
high-value crops, aquatic products, livestock products, and ecological
tourism (Bijan and Shimelis, 2011). The Lake Tana basin is of critical
significance to the economy and politics of Ethiopia. It also greatly
influences the livelihoods of tens of millions of people in the lower Nile
Basin.</p>
      <p id="d1e160">Historically, there was a large area of Afromontane forest and many
indigenous plant species in the Lake Tana basin; 172 woody species were
observed in the basin, many of which were indigenous species (IFAD, 2007a).
There are also large areas of wetlands and seasonally flooded plains, which
provide multiple services to the local community and serve as a home for
many endemic bird species (Ayalew, 2010; Bijan and Shimelis, 2011).</p>
      <p id="d1e163">The population density and growth rate of the Lake Tana basin are very high.
Over 2 million people reside in this basin, and the population density
exceeds 150 people per square kilometer (Yimenu, 2005). The large population
and high rate of population growth increase the demand for food. To meet
this demand, large areas of forest, grassland, and wetland were transformed
into cropland, and more livestock was raised on grassland. Deforestation
and overgrazing have resulted in the destruction of great amounts of natural
vegetation, a decline in biodiversity and forest stand density,
desertification, and soil erosion (Alelign et al., 2007). To protect the
natural environment and maintain biodiversity, it is vital that vegetation
is restored and conserved in the Lake Tana basin (Bishaw, 2001). Since the
1990s, efforts have been<?pagebreak page2034?> undertaken to conserve and restore the natural
vegetation of the Lake Tana basin (Bishaw, 2001; Teketay, 2001). However,
its degradation and decline is still a major problem (IFAD, 2007b).</p>
      <p id="d1e166">Detailed regional vegetation distribution data are the basis of vegetation
management and conservation. Rational and scientific planning of vegetation
conservation and restoration can only be conducted for the whole basin when
the vegetation of the whole basin is well surveyed and mapped. However,
vegetation maps that include the Lake Tana basin were made for Africa, East
Africa, and Ethiopia at small scales, such as the vegetation map of
Eritrea, Ethiopia, and Somalia at a scale of <inline-formula><mml:math id="M1" display="inline"><mml:mrow><mml:mn mathvariant="normal">1</mml:mn><mml:mo>:</mml:mo><mml:mn mathvariant="normal">5</mml:mn></mml:mrow></mml:math></inline-formula> 000 000 (Pichi
Sermolli, 1957), that of Ethiopia and Eritrea (von Breitenbach, 1963), that of
Africa at a scale of <inline-formula><mml:math id="M2" display="inline"><mml:mrow><mml:mn mathvariant="normal">1</mml:mn><mml:mo>:</mml:mo><mml:mn mathvariant="normal">5</mml:mn></mml:mrow></mml:math></inline-formula> 000 000 (White, 1983), that of the Horn of Africa
(Friis, 1992), that of Ethiopia (Sebsebe et al., 1996, 2004; Sebsebe and
Friis, 2009), and the potential vegetation map of Ethiopia at a scale of
<inline-formula><mml:math id="M3" display="inline"><mml:mrow><mml:mn mathvariant="normal">1</mml:mn><mml:mo>:</mml:mo><mml:mn mathvariant="normal">2</mml:mn></mml:mrow></mml:math></inline-formula> 000 000 (Friis et al., 2011). The vegetation maps compiled by Pichi
Sermolli (1957), von Breitenbach (1963), White (1983), and Friis (1992) were
published many years ago at small scales; therefore, they cannot provide
detailed information of the actual vegetation of the Lake Tana basin. The
potential vegetation map compiled by Friis et al. (2011) also cannot reflect
the actual status of the vegetation of Lake Tana basin. Another map that
could present the vegetation of the Lake Tana basin is the land cover/use map
developed by Shimelis et al. (2008), at a scale of approximately
<inline-formula><mml:math id="M4" display="inline"><mml:mrow><mml:mn mathvariant="normal">1</mml:mn><mml:mo>:</mml:mo><mml:mn mathvariant="normal">1</mml:mn></mml:mrow></mml:math></inline-formula> 700 000. However, only large patches of vegetation were mapped, and
many patches were merged or omitted. Therefore, there is a shortage of
detailed vegetation data in the Lake Tana basin, which limits the
effectiveness of planning vegetation management and biodiversity
conservation. Therefore, in this research, we produced a vegetation map of
the Lake Tana basin using high-spatial-resolution satellite images provided
by Google Earth and field survey data. We believe that this map will aid
vegetation and biodiversity conservation in the Lake Tana basin.</p>
</sec>
<sec id="Ch1.S2">
  <title>Study area</title>
      <p id="d1e223">Lake Tana is located in the highlands of northwestern Ethiopia (Fig. 1). The
average altitude of Lake Tana is approximately 1800 m, and the area of the
basin (including water surface area) is 15 096 km<inline-formula><mml:math id="M5" display="inline"><mml:msup><mml:mi/><mml:mn mathvariant="normal">2</mml:mn></mml:msup></mml:math></inline-formula>. The water surface
area is 3000–3600 km<inline-formula><mml:math id="M6" display="inline"><mml:msup><mml:mi/><mml:mn mathvariant="normal">2</mml:mn></mml:msup></mml:math></inline-formula> and the maximum water depth is 14 m. Gilgel
Abay, Ribb, Gumera, and Megech are the most important rivers feeding into
Lake Tana and contribute over 90 % of the total inflow.</p>
      <p id="d1e244">The zonal vegetation of the Lake Tana basin is dry evergreen Afromontane
forest. However, only small patches of remnant forest currently exist due to
heavy deforestation. The biodiversity of the Lake Tana basin is rich, and
many endemic plant species grow in this catchment. There are large areas of
wetlands in this basin, which are the home of many endemic birds.</p>

      <?xmltex \floatpos{t}?><fig id="Ch1.F1"><caption><p id="d1e249">Location of the Lake Tana basin, survey route, and plots.</p></caption>
        <?xmltex \igopts{width=241.848425pt}?><graphic xlink:href="https://essd.copernicus.org/articles/10/2033/2018/essd-10-2033-2018-f01.png"/>

      </fig>

</sec>
<sec id="Ch1.S3">
  <title>Data and method</title>
<sec id="Ch1.S3.SS1">
  <title>Data sources</title>
      <p id="d1e269">High-spatial-resolution satellite images provided by Google Earth and
vegetation survey data were used to map vegetation. Field vegetation surveys
were performed in 2015 and 2016, during which 156 vegetation plots were
investigated (Fig. 1).</p>
      <p id="d1e272">Prior to conducting the vegetation surveys in the Lake Tana basin, we
selected survey sites using Google Earth. These sites were located within the
large vegetation patch with a uniform appearance. When we reached a selected
site, we placed the plot in the central area of the vegetation patch, at
least 30 m away from the boundary. We recorded the name, coverage, and
height of each species in the vegetation plot (1 m <inline-formula><mml:math id="M7" display="inline"><mml:mo>×</mml:mo></mml:math></inline-formula> 1 m for
herbaceous, 5 m <inline-formula><mml:math id="M8" display="inline"><mml:mo>×</mml:mo></mml:math></inline-formula> 5 m for shrub, and 20 m <inline-formula><mml:math id="M9" display="inline"><mml:mo>×</mml:mo></mml:math></inline-formula> 20 m for arboreal
plants). Three Ethiopian geobotanists participated in these vegetation surveys,
who were responsible for species identification. They also helped us to
assess the reasonability of the sites selected for the vegetation survey.</p>
      <?pagebreak page2035?><p id="d1e296">In addition to the Google Earth images and surveyed vegetation plots, the
<italic>Atlas of the Potential Vegetation of Ethiopia</italic> compiled by Friis et
al. (2011) was an important reference in this research.
<?xmltex \hack{\newpage}?></p>
</sec>
<sec id="Ch1.S3.SS2">
  <title>Vegetation classification system</title>
      <p id="d1e309">Shimelis et al. (2008) classified the vegetation and land cover of the Lake
Tana basin into 13 types: forest-mixed, forest-evergreen, forest-deciduous,
range-bush, pasture, range-grasses, wetland-mixed, plantation, barley, teff,
maize, urban, and water areas. Based on this vegetation classification system
and suggestions from the Ethiopian geobotanists, the vegetation of the Lake
Tana basin was categorized into seven groups: natural forest, woodland,
plantation forest, bushland, grassland, wetland, and cultivated land. Three
types of non-vegetation cover, i.e., water body, village and urban, were also
mapped. Sub-types of these vegetation groups exist for variations in dominant
species; however, we did not differentiate these sub-types owing to the
limitations of the spatial resolution of the satellite images.</p>

      <?xmltex \floatpos{t}?><fig id="Ch1.F2" specific-use="star"><caption><p id="d1e314">Interpretation marks based on the Google Earth images.</p></caption>
          <?xmltex \igopts{width=341.433071pt}?><graphic xlink:href="https://essd.copernicus.org/articles/10/2033/2018/essd-10-2033-2018-f02.jpg"/>

        </fig>

</sec>
<sec id="Ch1.S3.SS3">
  <title>Interpretation marks</title>
      <p id="d1e329">Fifty-two vegetation plots were randomly selected to establish interpretation
marks. The coordinates of the vegetation plots were recorded and then
transformed into KML files, which could be read by the Google Earth software.
These KML files were opened in Google Earth and used to establish
interpretation marks according to the color and texture characteristics of
the vegetation in the satellite images (Fig. 2). The keys to image
interpretation are as follows:
<list list-type="bullet"><list-item>
      <p id="d1e334"><italic>Natural forest</italic>. Crowns are dense, usually tightly packed, and overlapping
in clusters. The texture is coarse and the color is green or dark green. This
type is mostly located around churches or near rivers.</p></list-item><list-item>
      <p id="d1e340"><italic>Woodland</italic>. This vegetation cover appeared as large crowned trees. The
color is green or yellow-green and the texture is coarse. The canopy may be
tightly packed or open with visible patches of understory.</p></list-item><list-item>
      <p id="d1e346"><italic>Plantation forest</italic>. Uniformly spaced dense trees are
almost the same height. The color is dark green and the texture is coarse.
The crowns are tightly packed with an almost uniform texture. The patch tends
to be rectangular with straight rows.</p></list-item><list-item>
      <p id="d1e352"><italic>Bushland</italic>. The signature feature of this type is a coarse texture with
mottled tones. Shrubs are unevenly spaced, and tend to clump, presenting a
mottled pattern in the area. There may be a mixture of scattered trees in the
bushland.</p></list-item><list-item>
      <p id="d1e358"><italic>Grassland</italic>. This type is almost smooth in appearance. The color
is light green, beige, or light brown. Cow trails may be visible.</p></list-item><list-item>
      <p id="d1e364"><italic>Wetland</italic>. Coarse texture, dense, and dark green with irregular edges near
pools, ponds, rivers, or lakes. Scattered shrubs and trees may exist.</p></list-item></list></p>
</sec>
<sec id="Ch1.S3.SS4">
  <title>Method of vectorization</title>
      <p id="d1e375">Visual interpretation was employed to identify vegetation in Google Earth
based on the established interpretation marks. The “Add polygon” tool was
used to vectorize the vegetation patches at a scale of approximately
<inline-formula><mml:math id="M10" display="inline"><mml:mrow><mml:mn mathvariant="normal">1</mml:mn><mml:mo>:</mml:mo><mml:mn mathvariant="normal">5000</mml:mn></mml:mrow></mml:math></inline-formula>. Three people participated in the vectorization of vegetation
patches. To ensure that the identification criteria were consistent,
vegetation/land identification was only conducted by one person.</p>
      <p id="d1e390">The vegetation identification process received beneficial guidance from
Ethiopian researchers who are familiar with the vegetation of the Lake Tana
basin. We worked with Ethiopian geobotanists in two ways. The first is face-to-face
co-working. From 27 October to 7 December 2015, during the vegetation survey
period in the Lake Tana basin, we worked with Ethiopian geobotanists to
identify vegetation. From 10 to 25 October 2016, we invited Ethiopian
geobotanists to China to make revisions to our vegetation map. From
16 December 2016 to 2 January 2017, we collected vegetation plots in the Lake
Tana basin to validate and revise the vegetation map with Ethiopian
geobotanists. Secondly, we also consulted with Ethiopian geobotanists via
e-mail when we were uncertain about the results of vegetation identification.</p>
      <p id="d1e393">Our collaborators from Ethiopia are geobotanists who are very familiar with
the Lake Tana basin. They greatly contributed to the identification of
vegetation, and their professional knowledge guaranteed the quality of this
vegetation map.</p>
      <p id="d1e396">The vectorization and identification process continued for over one and a
half years, and 33 171 polygons were generated to represent the vegetation
patches of the Lake Tana basin on the map. The other 104 surveyed plots were
used to assess the accuracy of vegetation identification. The result of this
assessment is presented in Table 1.</p>
      <p id="d1e400">The KML files of all vegetation types were imported into the Global Mapper
software (v16.0) and then transformed into SHP files, which could be read by
ArcGIS (v9.3, ESRI). In ArcGIS, the vegetation type of each polygon was
marked in an attributes table and all SHP files were merged into one.
Finally, a vegetation map was designed and exported for printing on A1-sized
paper (approximate scale of <inline-formula><mml:math id="M11" display="inline"><mml:mrow><mml:mn mathvariant="normal">1</mml:mn><mml:mo>:</mml:mo><mml:mn mathvariant="normal">310</mml:mn></mml:mrow></mml:math></inline-formula> 000) (Fig. 3).</p>
</sec>
<sec id="Ch1.S3.SS5">
  <title>Projected and geographic coordinate systems</title>
      <p id="d1e422">Projected Coordinate System: WGS_1984_UTM_ Zone_37N; Projection:
Transverse_Mercator; False_Easting: 500000.00000000; False_Northing:
0.00000000; Central_Meridian: 39.00000000; Scale_Factor: 0.99960000;
Latitude_Of_Origin: 0.00000000; Linear Unit: Meter.</p>
      <?pagebreak page2036?><p id="d1e425">Geographic Coordinate System: GCS_WGS_1984; Datum: D_ WGS_ 1984; Prime
Meridian: Greenwich; Angular Unit: Degree.
<?xmltex \hack{\newpage}?></p>
</sec>
</sec>
<sec id="Ch1.S4">
  <title>Results</title>
<sec id="Ch1.S4.SS1">
  <title>Accuracy of vegetation identification</title>
      <p id="d1e441">Table 1 presents the accuracy matrix of vegetation identification, which was
calculated based on the surveyed plots. Plantation forests were all correctly
identified. The identification accuracy of grassland was also very high, with
only a few plots identified as cultivated land. The identification accuracy
of bushland, forest, and wetland is lower than that of grassland and
plantation forest but higher than that of woodland.</p>
      <p id="d1e444">Other land cover types, such as water bodies, villages, and urban areas, are
easily identified; therefore, we did not perform accuracy assessment for
these three land cover types.</p>

<?xmltex \floatpos{t}?><table-wrap id="Ch1.T1" specific-use="star"><caption><p id="d1e450">Accuracy of vegetation identification (%).</p></caption><oasis:table frame="topbot"><oasis:tgroup cols="8">
     <oasis:colspec colnum="1" colname="col1" align="left"/>
     <oasis:colspec colnum="2" colname="col2" align="right"/>
     <oasis:colspec colnum="3" colname="col3" align="right"/>
     <oasis:colspec colnum="4" colname="col4" align="right"/>
     <oasis:colspec colnum="5" colname="col5" align="right"/>
     <oasis:colspec colnum="6" colname="col6" align="right"/>
     <oasis:colspec colnum="7" colname="col7" align="right"/>
     <oasis:colspec colnum="8" colname="col8" align="right"/>
     <oasis:thead>
       <oasis:row rowsep="1">
         <oasis:entry colname="col1"/>
         <oasis:entry colname="col2">Bushland</oasis:entry>
         <oasis:entry colname="col3">Cultivated land</oasis:entry>
         <oasis:entry colname="col4">Natural forest</oasis:entry>
         <oasis:entry colname="col5">Grassland</oasis:entry>
         <oasis:entry colname="col6">Plantation forest</oasis:entry>
         <oasis:entry colname="col7">Wetland</oasis:entry>
         <oasis:entry colname="col8">Woodland</oasis:entry>
       </oasis:row>
     </oasis:thead>
     <oasis:tbody>
       <oasis:row>
         <oasis:entry colname="col1">Bushland</oasis:entry>
         <oasis:entry colname="col2">85</oasis:entry>
         <oasis:entry colname="col3">0</oasis:entry>
         <oasis:entry colname="col4">6.3</oasis:entry>
         <oasis:entry colname="col5">0</oasis:entry>
         <oasis:entry colname="col6">0</oasis:entry>
         <oasis:entry colname="col7">0</oasis:entry>
         <oasis:entry colname="col8">12.5</oasis:entry>
       </oasis:row>
       <oasis:row>
         <oasis:entry colname="col1">Cultivated land</oasis:entry>
         <oasis:entry colname="col2">0</oasis:entry>
         <oasis:entry colname="col3">100</oasis:entry>
         <oasis:entry colname="col4">0</oasis:entry>
         <oasis:entry colname="col5">3.4</oasis:entry>
         <oasis:entry colname="col6">0</oasis:entry>
         <oasis:entry colname="col7">0</oasis:entry>
         <oasis:entry colname="col8">0</oasis:entry>
       </oasis:row>
       <oasis:row>
         <oasis:entry colname="col1">Natural forest</oasis:entry>
         <oasis:entry colname="col2">0</oasis:entry>
         <oasis:entry colname="col3">0</oasis:entry>
         <oasis:entry colname="col4">87.4</oasis:entry>
         <oasis:entry colname="col5">0</oasis:entry>
         <oasis:entry colname="col6">0</oasis:entry>
         <oasis:entry colname="col7">0</oasis:entry>
         <oasis:entry colname="col8">12.5</oasis:entry>
       </oasis:row>
       <oasis:row>
         <oasis:entry colname="col1">Grassland</oasis:entry>
         <oasis:entry colname="col2">0</oasis:entry>
         <oasis:entry colname="col3">0</oasis:entry>
         <oasis:entry colname="col4">0</oasis:entry>
         <oasis:entry colname="col5">96.6</oasis:entry>
         <oasis:entry colname="col6">0</oasis:entry>
         <oasis:entry colname="col7">15.4</oasis:entry>
         <oasis:entry colname="col8">0</oasis:entry>
       </oasis:row>
       <oasis:row>
         <oasis:entry colname="col1">Plantation forest</oasis:entry>
         <oasis:entry colname="col2">0</oasis:entry>
         <oasis:entry colname="col3">0</oasis:entry>
         <oasis:entry colname="col4">0</oasis:entry>
         <oasis:entry colname="col5">0</oasis:entry>
         <oasis:entry colname="col6">100</oasis:entry>
         <oasis:entry colname="col7">0</oasis:entry>
         <oasis:entry colname="col8">0</oasis:entry>
       </oasis:row>
       <oasis:row>
         <oasis:entry colname="col1">Wetland</oasis:entry>
         <oasis:entry colname="col2">0</oasis:entry>
         <oasis:entry colname="col3">0</oasis:entry>
         <oasis:entry colname="col4">0</oasis:entry>
         <oasis:entry colname="col5">0</oasis:entry>
         <oasis:entry colname="col6">0</oasis:entry>
         <oasis:entry colname="col7">84.6</oasis:entry>
         <oasis:entry colname="col8">0</oasis:entry>
       </oasis:row>
       <oasis:row>
         <oasis:entry colname="col1">Woodland</oasis:entry>
         <oasis:entry colname="col2">15</oasis:entry>
         <oasis:entry colname="col3">0</oasis:entry>
         <oasis:entry colname="col4">6.3</oasis:entry>
         <oasis:entry colname="col5">0</oasis:entry>
         <oasis:entry colname="col6">0</oasis:entry>
         <oasis:entry colname="col7">0</oasis:entry>
         <oasis:entry colname="col8">75</oasis:entry>
       </oasis:row>
     </oasis:tbody>
   </oasis:tgroup></oasis:table><table-wrap-foot><p id="d1e453">Numbers in the table represent the percent of one vegetation type classified
into another category. Taking bushland for instance, “85” means that 85 %
of bushland plots were correctly identified as bushland and “15” means that
15 % of bushland plots were identified as woodland.</p></table-wrap-foot></table-wrap>

</sec>
<sec id="Ch1.S4.SS2">
  <title>Description of vegetation/land cover types</title>
<sec id="Ch1.S4.SS2.SSS1">
  <title>Natural forest</title>
      <p id="d1e719">Two types of natural forest exist in this basin: dry evergreen Afromontane
and riverine forest (Friis et al., 2011). The altitude at which dry
evergreen Afromontane forests occur ranges from 1500 to 2700 m. The mean
annual temperature and rainfall are 14–25 <inline-formula><mml:math id="M12" display="inline"><mml:msup><mml:mi/><mml:mo>∘</mml:mo></mml:msup></mml:math></inline-formula>C and 700–1100 mm (Friis, 1992). The high amplitude of altitude and rainfall
result in complex habitats and species compositions. The characteristic
arborous layer species are <italic>Podocarpus falcatus</italic> and
<italic>Juniperus procera</italic>, and the dominant understory species are
<italic>Croton macrostachyus</italic>, <italic>Ficus</italic> spp.,
<italic>Olea europaea</italic> subsp. <italic>cuspidata</italic>, <italic>Trema orientalis</italic>,
and <italic>Maesa lanceolata</italic>.</p>
      <?pagebreak page2037?><p id="d1e756">Riverine forest is predominantly located near lakes and rivers, and the
dominant species are <italic>Diospyros mespiliformis</italic>,
<italic>Mimusops kummel</italic>, and <italic>Syzygium guineense</italic>.</p>
      <p id="d1e768">Owing to the continuous expansion of cropland in the past, the natural
forest was gradually destroyed. Small patches of remnant forests can be
found in two main forms in this region: protected state and church forests.</p>
</sec>
<sec id="Ch1.S4.SS2.SSS2">
  <title>Woodland</title>
      <p id="d1e777">There are two types of woodland in the Lake Tana basin:
<italic>Combretum–Terminalia</italic> and <italic>Acacia–Commiphora</italic> woodland (IBC,
2005; Friis et al., 2011).</p>
      <p id="d1e786"><italic>Combretum–Terminalia</italic> woodlands occupy areas with an altitude of
500–1900 m. They are usually located in humid lowland areas or in river
valleys. The characteristic species of <italic>Combretum–Terminalia</italic> woodland
are <italic>Combretum</italic> spp., <italic>Terminalia</italic> spp., <italic>Oxytenanthera abyssinica</italic>, <italic>Boswellia papyrifera</italic>, <italic>Anogeissus leiocarpa</italic>,
<italic>Stereospermum kunthianum</italic>, <italic>Pterocarpus lucens</italic>,
<italic>Lonchocarpus laxiflorus</italic>, <italic>Lannea</italic> spp., <italic>Albizia malacophylla</italic>, and <italic>Entada africana</italic>. Most of these species are small
trees with large deciduous leaves, and they often grow together with
<italic>Oxytenanthera abyssinica</italic>. The understory is a mixture of herbs and
grasses. Dominant herbaceous species include <italic>Justicia</italic> spp.,
<italic>Barleria</italic> spp., <italic>Eulophia</italic> spp., <italic>Chlorophytum</italic> spp.,
<italic>Hossolunda opposita</italic>,
and <italic>Ledeburia </italic>spp.</p>
      <p id="d1e851"><italic>Acacia–Commiphora</italic> woodlands usually occupy dry slopes with an
altitude of 1000–1900 m (ANRS, 2004). Such habitats are characterized by
large variations in soil and topography and diverse biotic and ecological
elements. Most of the plant species in <italic>Acacia–Commiphora</italic> woodland
have small deciduous or leathery evergreen leaves.</p>
      <p id="d1e859">There is a large variation in the stand density of <italic>Acacia–Commiphora</italic>
woodlands, and such woodlands were observed with three different formations:
dense forest with closed canopies, scattered individuals, and wooded
grassland. <italic>Acacia–Commiphora</italic> woodlands are also known for containing
some <italic>Acacia</italic>, <italic>Boswellia</italic>, and <italic>Commiphora</italic> species,
which can be used to produce gum and resin.
<?xmltex \hack{\newpage}?></p>
</sec>
<sec id="Ch1.S4.SS2.SSS3">
  <title>Plantation forest</title>
      <p id="d1e884"><italic>Eucalyptus</italic> species are the main species of plantation forests.
<italic>Cupressus lusitanica</italic> and pine species were also planted in some
areas. In addition, <italic>Acacia mearnsii</italic> was also found in the southern
area of the Lake Tana basin.</p>
      <p id="d1e895">There are approximately 600 <italic>Eucalyptus</italic> species worldwide, and over
120 of these are found in Ethiopia (Alemayehu, 2017). <italic>Eucalyptus globulus</italic> and <italic>Eucalyptus camaldulensis</italic> are the most common and
widely planted species in Ethiopia. <italic>E. globulus</italic> is usually planted
in areas above 2200 m in altitude, and <italic>E. camaldulensis</italic> is planted
in regions with an altitude of 1700–2400 m.</p>
      <p id="d1e913">The development of <italic>Eucalyptus</italic> plantations was widely criticized as
they suppress the growth of indigenous species and use large amounts of
underground water. However, the plantation area of <italic>Eucalyptus</italic> forest
has increased rapidly in the past 15 years (Birru et al., 2003).</p>
</sec>
<sec id="Ch1.S4.SS2.SSS4">
  <title>Bushland</title>
      <p id="d1e928">Bushland often occurs in areas with shallow soil and steep slopes, such as
hills, escarpments, mountains, and gorge slopes. There is usually grassland
on the bottom of bushland, which forms a bush–grass complex. The dominant
woody species of bushland are <italic>Maytenus senegalensis</italic>, <italic>Carissa spinarum</italic>, <italic>Clausena anisata</italic>, <italic>Clerodendrum myricoides</italic>,
<italic>Grewia ferruginea</italic>, <italic>Caesalpinia decapetala</italic>, <italic>Ficus verruculosa</italic>, <italic>Calpurnia aurea</italic>, <italic>Erica arborea</italic>,
<italic>Hypericum revolutum</italic>, <italic>Vernonia</italic> spp., <italic>Senna</italic> spp.,
<italic>Cordia</italic> spp., <italic>Acacia</italic> spp., <italic>Commiphora Africana</italic>, and
<italic>Indigofera </italic>spp.</p>
</sec>
<sec id="Ch1.S4.SS2.SSS5">
  <title>Grassland</title>
      <?pagebreak page2038?><p id="d1e988">Grasslands are mainly distributed along rivers, around villages, on mountains
and hilltops, on slopes, and on highlands with stony and shallow soils.
Common grassland species are <italic>Eragrostis</italic> spp., <italic>Pennisetum</italic>
spp., <italic>Panicum</italic> spp., <italic>Echinochloa</italic> spp., <italic>Setaria</italic>
spp., <italic>Hyparrhenia</italic> spp., <italic>Cymbopogon</italic> spp., and
<italic>Sorghum </italic>spp. Scattered shrubs are present on grassland, such as
<italic>Senna</italic> spp. and <italic>Maytenus senegalensis</italic>.
<?xmltex \hack{\newpage}?></p>
</sec>
<sec id="Ch1.S4.SS2.SSS6">
  <title>Wetland</title>
      <p id="d1e1029">Wetlands are distributed around Lake Tana and along its tributaries.
<italic>Hygrophila auriculata</italic>, <italic>Cyprus papyrus</italic>, <italic>Typha latifolia</italic>, <italic>Phragmites australis</italic>, <italic>Nymphaea caerulea</italic>,
<italic>Juncus dregeanus</italic>, <italic>Floscopa glomerata</italic>, <italic>Eriocaulon</italic>
spp., and <italic>Xyris capensis</italic> are the main species of wetlands.</p>
      <p id="d1e1060">Wetlands have rich biodiversity and provide diverse ecological functions.
The lake and its tributaries are the home of 28 fish species, 15 of which
are endemic to Ethiopia. Over 300 species of birds have been observed and
recorded in the Lake Tana basin, which has been defined as an international
bird site by BirdLife International (BLI) (Shimelis, 2013).</p>
</sec>
<sec id="Ch1.S4.SS2.SSS7">
  <title>Cultivated land</title>
      <p id="d1e1069">Teff, sorghum, chickpea, rice, maize, and sesame are widely planted in the
Lake Tana basin. These crops are often mixed with endemic or exotic arbor
species, such as <italic>Croton macrostachyus</italic>, several <italic>Acacia</italic>
species, <italic>Albizia gummifera</italic>, <italic>Cordia africana</italic>,
<italic>Juniperus procera</italic>, <italic>Grevillea robusta</italic>, and <italic>Sesbania sesban</italic>, which forms a complex agroforestry system.</p>
      <p id="d1e1094">Many fruits are planted in agroforestry, such as <italic>Mangifera indica</italic>,
<italic>Persea americana</italic>, <italic>Carica papaya</italic>, <italic>Citrus sinensis</italic>,
<italic>Citrus aurantifolia</italic>, <italic>Rhamnus prinoides</italic>, <italic>Mimusops kummel</italic>, and <italic>Syzygium guineense</italic>.</p>
</sec>
<sec id="Ch1.S4.SS2.SSS8">
  <title>Water body</title>
      <p id="d1e1128">Lake Tana is the largest water body in this watershed. The total area of Lake
Tana is 3080.8 km<inline-formula><mml:math id="M13" display="inline"><mml:msup><mml:mi/><mml:mn mathvariant="normal">2</mml:mn></mml:msup></mml:math></inline-formula>, which constitutes 98.98 % of the total water
surface area.</p>
</sec>
<sec id="Ch1.S4.SS2.SSS9">
  <title>Village</title>
      <p id="d1e1146">Many of the villages in the Lake Tana basin are very small. These small
villages are sparsely distributed throughout the landscape. It is difficult
to vectorize all village patches; therefore, only large villages were
identified and vectorized in this research.</p>
</sec>
<sec id="Ch1.S4.SS2.SSS10">
  <title>Urban</title>
      <p id="d1e1155">There are two large cities in the Lake Tana basin: Gonder and Bahir Dar. The
total urban area is 69.04 km<inline-formula><mml:math id="M14" display="inline"><mml:msup><mml:mi/><mml:mn mathvariant="normal">2</mml:mn></mml:msup></mml:math></inline-formula>, occupying 0.46 % of the Lake Tana
basin.</p>

      <?xmltex \floatpos{t}?><fig id="Ch1.F3" specific-use="star"><caption><p id="d1e1169">Vegetation map of the Lake Tana basin, Ethiopia.</p></caption>
            <?xmltex \igopts{width=355.659449pt}?><graphic xlink:href="https://essd.copernicus.org/articles/10/2033/2018/essd-10-2033-2018-f03.jpg"/>

          </fig>

</sec>
</sec>
</sec>
<sec id="Ch1.S5">
  <title>Discussions</title>
<sec id="Ch1.S5.SS1">
  <title>Vegetation/land classification system</title>
      <p id="d1e1192">IGBP DISCover (Belward, 1996) and the Land Cover Classification System (Di
Gregorio and Jansen, 2000) are more detailed than the system adopted in this
research. However, these two systems require more information to classify
different land cover types. For example, canopy cover and plant height are
required to differentiate closed from open shrublands. The differentiation
of woody savannas, savannas, and grasslands also depends on the canopy cover
and plant height of upper-layer vegetation. In addition, satellite images
generated during different seasons were required to differentiate
“evergreen forest” from “deciduous forest”. However, it is difficult to
collect such information, and it is not easy to identify these vegetation
covers based only on Google Earth images.</p>
      <p id="d1e1195">After over 50 years of deforestation and land reclamation, most needle
leaf forests in the Lake Tana basin have been destroyed for the timber
trade. Many researchers deemed that there is no typical “savanna” in the
Lake Tana basin based on the IGBP system, and they prefer to use
“grassland” in the land/vegetation classification (Shimelis et al., 2008;
Aster and Seleshi, 2009; Wubneh and Amare, 2017).</p>
      <p id="d1e1198">Therefore, in this research, we merged different forest types (evergreen
needle leaf, evergreen broadleaf, deciduous needle leaf, deciduous
broadleaf, and mixed forest) into natural forest. We also merged closed and
open shrublands into bushland, and woody savannas, savannas, and grasslands
were merged into grasslands.</p>
      <p id="d1e1201">Woodland was separated from the natural forest category. Owing to the
altitude at which woodland exists, the species composition and community
physiognomy are quite different from that of natural forest (dry evergreen
Afromontane and riverine forests) (Friis et al., 2011).</p>
      <p id="d1e1205">Plantation forest (<italic>Eucalyptus</italic>) is a very important forest type in the Lake
Tana basin as it plays a vital role in the development of forestry and
agriculture. The Ethiopian ecologists strongly suggested that we
differentiate <italic>Eucalyptus</italic> from other forest types.</p>
      <p id="d1e1214">Finally, the vegetation of the Lake Tana basin was categorized into seven
groups: natural forest, woodland, plantation forest, bushland, grassland,
wetland, and cultivated land. Three types of non-vegetation cover, i.e.,
water body, village, and urban, were also mapped in this research.</p>
</sec>
<sec id="Ch1.S5.SS2">
  <title>Accuracy of vegetation identification</title>
      <?pagebreak page2039?><p id="d1e1223">The validation using the surveyed plots indicated that the identification
accuracy exceeded 85 % for most vegetation/land cover types, except
woodland. Table 1 shows that misclassifications occurred more between
bushland, woodland, and natural forest. Bushlands are usually composed of low
and sparse shrubs. However, in some areas, shrubs can grow to be tall and
dense. It is difficult to differentiate bushlands from woodlands and natural
forests if this is the case. Woodlands mainly consist of arboreal species
and are usually regarded as sparse “forest”. However, it is not easy to
distinguish between natural forest and dense woodland using remote
sensing images.
<?xmltex \hack{\newpage}?>
Misclassification also occurred between grassland, wetland, and cultivated
land. The color and texture of grassland and wetland (especially seasonal
wetlands) are similar during the dry season. Therefore, wetlands can easily
be identified as grasslands. The color and texture of abandoned cultivated
land are very similar to those of grassland. Therefore, grasslands were
identified as cultivated lands.</p>
      <p id="d1e1228">The number and distribution of sampling sites significantly influence the
validation of remote sensing data products (Darvishzadeh et al., 2011). In
this research, the vegetation plots used to validate the result of
vegetation identification were collected along a cement road, which caused
biases and uncertainties in the validation.</p>
</sec>
<sec id="Ch1.S5.SS3">
  <title>Flaws existed in vectorization</title>
      <p id="d1e1237">The polygons of vegetation patches were generated through manual
delineation. The quality of the vector data was greatly influenced by the
technicians who conducted the vectorization. Although a training course was
held to unify the vectorization criteria, some flaws still occurred during
vectorization. We found that the boundaries of some polygons<?pagebreak page2040?> were not
delineated strictly along the border of vegetation patches, which negatively
affected the quality of this dataset.</p>
      <p id="d1e1240">Another issue is that there were gaps between polygons caused by the
vectorization approach adopted in this research. The polygons of vegetation
patches were delineated by the “Add polygon” tool of Google Earth. If two
patches with different vegetation covers are connected or they are very
close, then a gap will be created between the two vegetation polygons.</p>
      <p id="d1e1243">We did not interpret patches of cultivated land because it is difficult to
determine which crops are planted among them using Google Earth images.
Another reason is that our main objective in this research was to map the
natural vegetation of the Lake Tana basin.</p>
</sec>
<sec id="Ch1.S5.SS4">
  <title>Potential uses of this dataset</title>
      <p id="d1e1252">This vegetation map provides detailed data on the spatial distribution of
vegetation in Lake Tana basin. It could be used to aid local governments in
producing development plans for forestry, agriculture, and stockbreeding in
the Lake Tana basin. This vegetation map could also be used in the
conservation of natural resources as it can help managers to determine the
conservation targets for the Lake Tana basin. Moreover, this vegetation map
could be used as basic data for studying changes in land use, restoration
ecology, landscape ecology, ecological modeling, and hydrological modeling.</p>
</sec>
</sec>

      
      </body>
    <back><notes notes-type="dataavailability">

      <p id="d1e1260">The dataset developed in this research includes five sub-datasets:
basin boundary, city, major road, river, and vegetation cover (Song et al., 2018). The DOI for the
dataset is  <ext-link xlink:href="https://doi.org/10.4121/uuid:48d45053-36f6-411b-96b1-7ae0e22d56d0" ext-link-type="DOI">10.4121/uuid:48d45053-36f6-411b-96b1-7ae0e22d56d0</ext-link>.</p>
  </notes><notes notes-type="authorcontribution">

      <p id="d1e1269">WD and SC
designed the research, SC, LN, YB, AA, ZL, and WD collected the data, and
SC wrote the manuscript. WD and LN revised the manuscript.</p>
  </notes><notes notes-type="competinginterests">

      <p id="d1e1275">The authors declare that they have no conflict of
interest.</p>
  </notes><ack><title>Acknowledgements</title><p id="d1e1281">This study was funded by the National Key Research
and Development Program of China (2017YFC0503801, 2016YFC0500103), the
CASEarth project (XDA91050402) of Chinese Academy of Sciences, the Ministry
of Sciences and Technology (International Science &amp; Technology
Cooperation Program of China – 2014DFG32090), and the State Key Laboratory of
Vegetation and Environmental Change, Institute of Botany, Chinese Academy of
Sciences.<?xmltex \hack{\newline}?><?xmltex \hack{\newline}?>Edited by: David Carlson
<?xmltex \hack{\newline}?>
Reviewed by: two anonymous referees</p></ack><ref-list>
    <title>References</title>

      <ref id="bib1.bib1"><label>1</label><mixed-citation>
Alelign, A., Teketay, D., Yemshaw, Y., and Edwards, S.: Diversity and status
of regeneration of woody plants on the Peninsula of Zegie, Northwestern
Ethiopia, Trop. Ecol., 48, 37–49, 2007.</mixed-citation></ref>
      <ref id="bib1.bib2"><label>2</label><mixed-citation>Alemayehu, W.: Forest Resources in Amhara: Brief Description, Distribution
and Status, in: Social and
Ecological System Dynamics-Characteristics, Trends, and Integration in the
Lake Tana Basin, edited by:   Krystyna, S.,  Goraw, G., and  Shimelis, A.,
Ethiopia,  Springer, 231–243, 2017.</mixed-citation></ref>
      <ref id="bib1.bib3"><label>3</label><mixed-citation>
Amhara National Regional State (ANRS): A strategic plan for the sustainable development,
conservation, and management of the woody biomass resources, Final Report, 2004.</mixed-citation></ref>
      <ref id="bib1.bib4"><label>4</label><mixed-citation>Aster, D. Y. and Seleshi, B. A.: Characterization and atlas of the Blue Nile
Basin and its subbasins, International Water Management Institute, available
at: <uri>http://publications.iwmi.org/pdf/H042502.pdf</uri> (last access:
12 November 2018),
2009.</mixed-citation></ref>
      <ref id="bib1.bib5"><label>5</label><mixed-citation>Ayalew, W.: Improving management of shoreline and riparian wetland
ecosystems: the case of Lake Tana catchment, Ecohydrology Hydrobiology,
10, 123–132, <ext-link xlink:href="https://doi.org/10.2478/v10104-011-0017-4" ext-link-type="DOI">10.2478/v10104-011-0017-4</ext-link>, 2010.</mixed-citation></ref>
      <ref id="bib1.bib6"><label>6</label><mixed-citation>Belward, A. S. (Ed.): The IGBP-DIS Global 1 km Land Cover Data Set
(DISCover): proposal and implementation plans, IGBP-DIS Working Paper 13,
International Geosphere–Biosphere Programme Data and Information Services,
Toulouse, France, 1996.</mixed-citation></ref>
      <ref id="bib1.bib7"><label>7</label><mixed-citation>Bijan, D. and Shimelis, G. S.: Combined 3D hydrodynamic and watershed
modelling of Lake Tana, Ethiopia, J. Hydrol., 398, 44–64, <ext-link xlink:href="https://doi.org/10.1016/j.jhydrol.2010.12.009" ext-link-type="DOI">10.1016/j.jhydrol.2010.12.009</ext-link>, 2011.</mixed-citation></ref>
      <ref id="bib1.bib8"><label>8</label><mixed-citation>Birru, Y., Anteneh, A., and Tadele, A.: Expansion of eucalyptus woodlots in
the fertile soils of the highlands of Ethiopia: could it be a treat on
future cropland use?, J. Agr. Sci., 5, 97–107, <ext-link xlink:href="https://doi.org/10.5539/jas.v5n8p97" ext-link-type="DOI">10.5539/jas.v5n8p97</ext-link>, 2003.</mixed-citation></ref>
      <ref id="bib1.bib9"><label>9</label><mixed-citation>Bishaw, B.: Deforestation and land degradation in the Ethiopian highlands: a
strategy for physical recovery, Northeast African Studies, 8, 7–26,
<ext-link xlink:href="https://doi.org/10.1353/nas.2005.0014" ext-link-type="DOI">10.1353/nas.2005.0014</ext-link>, 2001.</mixed-citation></ref>
      <ref id="bib1.bib10"><label>10</label><mixed-citation>Darvishzadeh, R., Atzberger, C., Skidmore, A.,
and Schlerf, M.:
Mapping
grassland leaf area index with airborne hyperspectral imagery: A comparison
study of statistical approaches and inversion of radiative transfer models,
ISPRS J. Photogramm., 66, 894–906, 2011.</mixed-citation></ref>
      <ref id="bib1.bib11"><label>11</label><mixed-citation>Di Gregorio, A. and Jansen, L.: Land cover classification system, concepts
and user manual, GCP/RAF/287/ITA Africover, Food and Agriculture
Organization of the United Nations Publishing Service, Rome, 2000.</mixed-citation></ref>
      <ref id="bib1.bib12"><label>12</label><mixed-citation>Friis, I.: Forest and forest trees of northeast tropical Africa-their nature
habitats and distribution patterns in Ethiopia, Djibouti and Somalia, Kew
Bull. Additional Series, No. 15,  i-iv, 1–396,  London,  HMSO, 1992.</mixed-citation></ref>
      <ref id="bib1.bib13"><label>13</label><mixed-citation>Friis, I., Sebsebe, D., and van Paulo,  B.: Atlas of the Potential
Vegetation of Ethiopia, Addis Ababa, Addis Ababa University Press &amp; Shama
Books, 2011.</mixed-citation></ref>
      <ref id="bib1.bib14"><label>14</label><mixed-citation>Institute of biodiversity conservation (IBC): Ethiopian Biodiversity
Strategy and Action Plan, available at: <uri>http://www.cbd.int/doc/world/et/et-nbsap-01-en.pdf</uri> (last access: 12 November 2018),
2005.</mixed-citation></ref>
      <ref id="bib1.bib15"><label>15</label><mixed-citation>International Fund for Agriculture Development (IFAD): Community-based
Integrated Natural Resources Management in the Lake Tana Watershed,
Ethiopia, on Forestry, Agroforestry, Soil Conservation, Bahir Dar, 2007a.</mixed-citation></ref>
      <ref id="bib1.bib16"><label>16</label><mixed-citation>International Fund for Agriculture Development (IFAD): Community-based
integrated natural resources management project in Lake Tana Watershed,
Ethiopia (3rd draft), Bahir Dar, 2007b.</mixed-citation></ref>
      <ref id="bib1.bib17"><label>17</label><mixed-citation>Pichi Sermolli, R.: Una carta geobotanica dell's Africa Orientale (Eritrea,
Ethiopia, Somalia), Webbia, 13, 15–132, 1 map, 1957.</mixed-citation></ref>
      <ref id="bib1.bib18"><label>18</label><mixed-citation>Sebsebe, D. and Friis, I.: The vegetation type in Ethiopia, in:
The Flora of Ethiopia and Eritrea, edited by: Hedberg, I.,
Friis, I., and  Persson, E.,  National Herbarium, Addis Abeba &amp; Uppsala University,
Uppsala, 8,
27–32,
2009.</mixed-citation></ref>
      <ref id="bib1.bib19"><label>19</label><mixed-citation>Sebsebe, D., Mengistu, W., and Yilma, D.: Ethiopia's natural resource
base,
in:  Important Bird Areas of Ethiopia. A First Inventory, edited by:  Edwards, S.,
Ethiopian Wildlife and Natural History Society, Addis Abeba, 36–53, 1996.</mixed-citation></ref>
      <ref id="bib1.bib20"><label>20</label><mixed-citation>Sebsebe, D., Cribb, P., and Rasmussen, F.: Field guide to Ethiopia
orchids, Royal Botanic Gardens, Kew Bulletin, 59, 653, 2004.</mixed-citation></ref>
      <ref id="bib1.bib21"><label>21</label><mixed-citation>Shimelis, A. Z.: Birds of Lake Tana area, Ethiopia, A photographic field
guide, View Graphics and Printers, Addis Ababa, 2013.</mixed-citation></ref>
      <ref id="bib1.bib22"><label>22</label><mixed-citation>Shimelis, G. S., Ragahavan, S., and Bijan, D.: Hydrological modelling in the
Lake Tana Basin, Ethiopia using SWAT model, The Open Hydrology Journal, 2,
49–62, <ext-link xlink:href="https://doi.org/10.2174/1874378100802010049" ext-link-type="DOI">10.2174/1874378100802010049</ext-link>, 2008.
</mixed-citation></ref><?xmltex \hack{\newpage}?>
      <ref id="bib1.bib23"><label>23</label><mixed-citation>Song, C. Y., Nigatu, L.,   Beneye, Y., Abdulahi, A., Zhang, L., and Wu,
D. X.:
Vegetation map of Lake Tana basin, IBCAS, Dataset,
<ext-link xlink:href="https://doi.org/10.4121/uuid:48d45053-36f6-411b-96b1-7ae0e22d56d0" ext-link-type="DOI">10.4121/uuid:48d45053-36f6-411b-96b1-7ae0e22d56d0</ext-link>, 2018.</mixed-citation></ref>
      <ref id="bib1.bib24"><label>24</label><mixed-citation>Teketay,
D.: Deforestation, wood famine and environmental degradation in Ethiopia's
highland ecosystems: urgent need for action, Northeast African Studies, 8,
53–76, <ext-link xlink:href="https://doi.org/10.1353/nas.1995.0010" ext-link-type="DOI">10.1353/nas.1995.0010</ext-link>, 2001.</mixed-citation></ref>
      <ref id="bib1.bib25"><label>25</label><mixed-citation> von Breitenbach, F.: The Indigenous Trees of Ethiopia, 2nd revised and
enlarged edition, Ethiopia Forestry Association, Addis Abeda, 1963.</mixed-citation></ref>
      <ref id="bib1.bib26"><label>26</label><mixed-citation>White, F.: The vegetation of Africa. A descriptive memoir to accompany the
UNESCO/AETFAT/UNSO vegetation map of Africa, with map in 3 parts <inline-formula><mml:math id="M15" display="inline"><mml:mo>+</mml:mo></mml:math></inline-formula> legend,
Paris, UNESCO, 356 pp., 1983.</mixed-citation></ref>
      <ref id="bib1.bib27"><label>27</label><mixed-citation>Wubneh, B. A. and Amare S. M.: Land Use and Watershed Management Practices in
Lake Tana Basin, in: Social and
Ecological System Dynamics-Characteristics, Trends, and Integration in the
Lake Tana Basin, edited by:   Krystyna, S.,  Goraw, G., and  Shimelis, A.,
Ethiopia,   Springer, 231–243, 2017.</mixed-citation></ref>
      <ref id="bib1.bib28"><label>28</label><mixed-citation>Yimenu, A.: Characterization of domestic wastewater disposal as point source
pollution in southern gulf of Lake Tana, Northwestern Ethiopia. MSc. Thesis,
Environmental Science Program, School of Graduate Studies, Addis Ababa
University, Addis Ababa, Ethiopia, 2005.</mixed-citation></ref>

  </ref-list></back>
    <!--<article-title-html>Mapping the vegetation of the Lake Tana basin, Ethiopia, using Google Earth images</article-title-html>
<abstract-html><p>The basin of Lake Tana is one of the most important watersheds
in the Nile Basin. It is of great significance to the economy and politics of
Ethiopia. In the past, the natural vegetation of the Lake Tana basin was
heavily damaged to facilitate the continued expansion of cropland. Vegetation
must be conserved and restored to protect the natural environment and
maintain the biodiversity of the Lake Tana basin. In this research, we mapped
the vegetation of the Lake Tana basin through visual interpretation using
high-spatial-resolution images provided by Google Earth and field survey data
to provide detailed information of the actual vegetation state for planning
conservation and restoration. A total of 33&thinsp;171 polygons were generated to
represent the vegetation patches of the Lake Tana basin on the map, and the
validation using surveyed vegetation plots indicated that 90&thinsp;% of the
patches were correctly identified. The DOI of the dataset used for map
production is <a href="https://doi.org/10.4121/uuid:48d45053-36f6-411b-96b1-7ae0e22d56d0" target="_blank">https://doi.org/10.4121/uuid:48d45053-36f6-411b-96b1-7ae0e22d56d0</a>. We
expect that this vegetation map could benefit vegetation conservation and
restoration in the Lake Tana basin.</p></abstract-html>
<ref-html id="bib1.bib1"><label>1</label><mixed-citation>
Alelign, A., Teketay, D., Yemshaw, Y., and Edwards, S.: Diversity and status
of regeneration of woody plants on the Peninsula of Zegie, Northwestern
Ethiopia, Trop. Ecol., 48, 37–49, 2007.
</mixed-citation></ref-html>
<ref-html id="bib1.bib2"><label>2</label><mixed-citation>Alemayehu, W.: Forest Resources in Amhara: Brief Description, Distribution
and Status, in: Social and
Ecological System Dynamics-Characteristics, Trends, and Integration in the
Lake Tana Basin, edited by:   Krystyna, S.,  Goraw, G., and  Shimelis, A.,
Ethiopia,  Springer, 231–243, 2017.
</mixed-citation></ref-html>
<ref-html id="bib1.bib3"><label>3</label><mixed-citation>
Amhara National Regional State (ANRS): A strategic plan for the sustainable development,
conservation, and management of the woody biomass resources, Final Report, 2004.
</mixed-citation></ref-html>
<ref-html id="bib1.bib4"><label>4</label><mixed-citation>Aster, D. Y. and Seleshi, B. A.: Characterization and atlas of the Blue Nile
Basin and its subbasins, International Water Management Institute, available
at: <a href="http://publications.iwmi.org/pdf/H042502.pdf" target="_blank">http://publications.iwmi.org/pdf/H042502.pdf</a> (last access:
12 November 2018),
2009.
</mixed-citation></ref-html>
<ref-html id="bib1.bib5"><label>5</label><mixed-citation>Ayalew, W.: Improving management of shoreline and riparian wetland
ecosystems: the case of Lake Tana catchment, Ecohydrology Hydrobiology,
10, 123–132, <a href="https://doi.org/10.2478/v10104-011-0017-4" target="_blank">https://doi.org/10.2478/v10104-011-0017-4</a>, 2010.
</mixed-citation></ref-html>
<ref-html id="bib1.bib6"><label>6</label><mixed-citation>Belward, A. S. (Ed.): The IGBP-DIS Global 1&thinsp;km Land Cover Data Set
(DISCover): proposal and implementation plans, IGBP-DIS Working Paper 13,
International Geosphere–Biosphere Programme Data and Information Services,
Toulouse, France, 1996.
</mixed-citation></ref-html>
<ref-html id="bib1.bib7"><label>7</label><mixed-citation>Bijan, D. and Shimelis, G. S.: Combined 3D hydrodynamic and watershed
modelling of Lake Tana, Ethiopia, J. Hydrol., 398, 44–64, <a href="https://doi.org/10.1016/j.jhydrol.2010.12.009" target="_blank">https://doi.org/10.1016/j.jhydrol.2010.12.009</a>, 2011.
</mixed-citation></ref-html>
<ref-html id="bib1.bib8"><label>8</label><mixed-citation>Birru, Y., Anteneh, A., and Tadele, A.: Expansion of eucalyptus woodlots in
the fertile soils of the highlands of Ethiopia: could it be a treat on
future cropland use?, J. Agr. Sci., 5, 97–107, <a href="https://doi.org/10.5539/jas.v5n8p97" target="_blank">https://doi.org/10.5539/jas.v5n8p97</a>, 2003.
</mixed-citation></ref-html>
<ref-html id="bib1.bib9"><label>9</label><mixed-citation>Bishaw, B.: Deforestation and land degradation in the Ethiopian highlands: a
strategy for physical recovery, Northeast African Studies, 8, 7–26,
<a href="https://doi.org/10.1353/nas.2005.0014" target="_blank">https://doi.org/10.1353/nas.2005.0014</a>, 2001.
</mixed-citation></ref-html>
<ref-html id="bib1.bib10"><label>10</label><mixed-citation>Darvishzadeh, R., Atzberger, C., Skidmore, A.,
and Schlerf, M.:
Mapping
grassland leaf area index with airborne hyperspectral imagery: A comparison
study of statistical approaches and inversion of radiative transfer models,
ISPRS J. Photogramm., 66, 894–906, 2011.
</mixed-citation></ref-html>
<ref-html id="bib1.bib11"><label>11</label><mixed-citation>Di Gregorio, A. and Jansen, L.: Land cover classification system, concepts
and user manual, GCP/RAF/287/ITA Africover, Food and Agriculture
Organization of the United Nations Publishing Service, Rome, 2000.
</mixed-citation></ref-html>
<ref-html id="bib1.bib12"><label>12</label><mixed-citation>Friis, I.: Forest and forest trees of northeast tropical Africa-their nature
habitats and distribution patterns in Ethiopia, Djibouti and Somalia, Kew
Bull. Additional Series, No. 15,  i-iv, 1–396,  London,  HMSO, 1992.
</mixed-citation></ref-html>
<ref-html id="bib1.bib13"><label>13</label><mixed-citation>Friis, I., Sebsebe, D., and van Paulo,  B.: Atlas of the Potential
Vegetation of Ethiopia, Addis Ababa, Addis Ababa University Press &amp; Shama
Books, 2011.
</mixed-citation></ref-html>
<ref-html id="bib1.bib14"><label>14</label><mixed-citation>Institute of biodiversity conservation (IBC): Ethiopian Biodiversity
Strategy and Action Plan, available at: <a href="http://www.cbd.int/doc/world/et/et-nbsap-01-en.pdf" target="_blank">http://www.cbd.int/doc/world/et/et-nbsap-01-en.pdf</a> (last access: 12 November 2018),
2005.
</mixed-citation></ref-html>
<ref-html id="bib1.bib15"><label>15</label><mixed-citation>International Fund for Agriculture Development (IFAD): Community-based
Integrated Natural Resources Management in the Lake Tana Watershed,
Ethiopia, on Forestry, Agroforestry, Soil Conservation, Bahir Dar, 2007a.
</mixed-citation></ref-html>
<ref-html id="bib1.bib16"><label>16</label><mixed-citation>International Fund for Agriculture Development (IFAD): Community-based
integrated natural resources management project in Lake Tana Watershed,
Ethiopia (3rd draft), Bahir Dar, 2007b.
</mixed-citation></ref-html>
<ref-html id="bib1.bib17"><label>17</label><mixed-citation>Pichi Sermolli, R.: Una carta geobotanica dell's Africa Orientale (Eritrea,
Ethiopia, Somalia), Webbia, 13, 15–132, 1 map, 1957.
</mixed-citation></ref-html>
<ref-html id="bib1.bib18"><label>18</label><mixed-citation>Sebsebe, D. and Friis, I.: The vegetation type in Ethiopia, in:
The Flora of Ethiopia and Eritrea, edited by: Hedberg, I.,
Friis, I., and  Persson, E.,  National Herbarium, Addis Abeba &amp; Uppsala University,
Uppsala, 8,
27–32,
2009.
</mixed-citation></ref-html>
<ref-html id="bib1.bib19"><label>19</label><mixed-citation>Sebsebe, D., Mengistu, W., and Yilma, D.: Ethiopia's natural resource
base,
in:  Important Bird Areas of Ethiopia. A First Inventory, edited by:  Edwards, S.,
Ethiopian Wildlife and Natural History Society, Addis Abeba, 36–53, 1996.
</mixed-citation></ref-html>
<ref-html id="bib1.bib20"><label>20</label><mixed-citation>Sebsebe, D., Cribb, P., and Rasmussen, F.: Field guide to Ethiopia
orchids, Royal Botanic Gardens, Kew Bulletin, 59, 653, 2004.
</mixed-citation></ref-html>
<ref-html id="bib1.bib21"><label>21</label><mixed-citation>Shimelis, A. Z.: Birds of Lake Tana area, Ethiopia, A photographic field
guide, View Graphics and Printers, Addis Ababa, 2013.
</mixed-citation></ref-html>
<ref-html id="bib1.bib22"><label>22</label><mixed-citation>Shimelis, G. S., Ragahavan, S., and Bijan, D.: Hydrological modelling in the
Lake Tana Basin, Ethiopia using SWAT model, The Open Hydrology Journal, 2,
49–62, <a href="https://doi.org/10.2174/1874378100802010049" target="_blank">https://doi.org/10.2174/1874378100802010049</a>, 2008.

</mixed-citation></ref-html>
<ref-html id="bib1.bib23"><label>23</label><mixed-citation>
Song, C. Y., Nigatu, L.,   Beneye, Y., Abdulahi, A., Zhang, L., and Wu,
D. X.:
Vegetation map of Lake Tana basin, IBCAS, Dataset,
<a href="https://doi.org/10.4121/uuid:48d45053-36f6-411b-96b1-7ae0e22d56d0" target="_blank">https://doi.org/10.4121/uuid:48d45053-36f6-411b-96b1-7ae0e22d56d0</a>, 2018.
</mixed-citation></ref-html>
<ref-html id="bib1.bib24"><label>24</label><mixed-citation> Teketay,
D.: Deforestation, wood famine and environmental degradation in Ethiopia's
highland ecosystems: urgent need for action, Northeast African Studies, 8,
53–76, <a href="https://doi.org/10.1353/nas.1995.0010" target="_blank">https://doi.org/10.1353/nas.1995.0010</a>, 2001.
</mixed-citation></ref-html>
<ref-html id="bib1.bib25"><label>25</label><mixed-citation> von Breitenbach, F.: The Indigenous Trees of Ethiopia, 2nd revised and
enlarged edition, Ethiopia Forestry Association, Addis Abeda, 1963.
</mixed-citation></ref-html>
<ref-html id="bib1.bib26"><label>26</label><mixed-citation>White, F.: The vegetation of Africa. A descriptive memoir to accompany the
UNESCO/AETFAT/UNSO vegetation map of Africa, with map in 3 parts + legend,
Paris, UNESCO, 356 pp., 1983.
</mixed-citation></ref-html>
<ref-html id="bib1.bib27"><label>27</label><mixed-citation>Wubneh, B. A. and Amare S. M.: Land Use and Watershed Management Practices in
Lake Tana Basin, in: Social and
Ecological System Dynamics-Characteristics, Trends, and Integration in the
Lake Tana Basin, edited by:   Krystyna, S.,  Goraw, G., and  Shimelis, A.,
Ethiopia,   Springer, 231–243, 2017.
</mixed-citation></ref-html>
<ref-html id="bib1.bib28"><label>28</label><mixed-citation>Yimenu, A.: Characterization of domestic wastewater disposal as point source
pollution in southern gulf of Lake Tana, Northwestern Ethiopia. MSc. Thesis,
Environmental Science Program, School of Graduate Studies, Addis Ababa
University, Addis Ababa, Ethiopia, 2005.
</mixed-citation></ref-html>--></article>
