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<div class="subTitle">org.opencv.ml</div>
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<h2 title="Class KNearest" class="title">Class KNearest</h2>
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<ul class="inheritance">
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<li>java.lang.Object</li>
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<li>
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<ul class="inheritance">
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<li><a href="../../../org/opencv/core/Algorithm.html" title="class in org.opencv.core">org.opencv.core.Algorithm</a></li>
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<li>
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<ul class="inheritance">
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<li><a href="../../../org/opencv/ml/StatModel.html" title="class in org.opencv.ml">org.opencv.ml.StatModel</a></li>
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<ul class="inheritance">
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<li>org.opencv.ml.KNearest</li>
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<pre>public class <span class="typeNameLabel">KNearest</span>
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extends <a href="../../../org/opencv/ml/StatModel.html" title="class in org.opencv.ml">StatModel</a></pre>
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<div class="block">The class implements K-Nearest Neighbors model
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SEE: REF: ml_intro_knn</div>
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<caption><span>Fields</span><span class="tabEnd"> </span></caption>
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<th class="colFirst" scope="col">Modifier and Type</th>
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<th class="colLast" scope="col">Field and Description</th>
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<tr class="altColor">
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<td class="colFirst"><code>static int</code></td>
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<td class="colLast"><code><span class="memberNameLink"><a href="../../../org/opencv/ml/KNearest.html#BRUTE_FORCE">BRUTE_FORCE</a></span></code> </td>
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</tr>
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<tr class="rowColor">
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<td class="colFirst"><code>static int</code></td>
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<td class="colLast"><code><span class="memberNameLink"><a href="../../../org/opencv/ml/KNearest.html#KDTREE">KDTREE</a></span></code> </td>
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<h3>Fields inherited from class org.opencv.ml.<a href="../../../org/opencv/ml/StatModel.html" title="class in org.opencv.ml">StatModel</a></h3>
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<code><a href="../../../org/opencv/ml/StatModel.html#COMPRESSED_INPUT">COMPRESSED_INPUT</a>, <a href="../../../org/opencv/ml/StatModel.html#PREPROCESSED_INPUT">PREPROCESSED_INPUT</a>, <a href="../../../org/opencv/ml/StatModel.html#RAW_OUTPUT">RAW_OUTPUT</a>, <a href="../../../org/opencv/ml/StatModel.html#UPDATE_MODEL">UPDATE_MODEL</a></code></li>
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<caption><span id="t0" class="activeTableTab"><span>All Methods</span><span class="tabEnd"> </span></span><span id="t1" class="tableTab"><span><a href="javascript:show(1);">Static Methods</a></span><span class="tabEnd"> </span></span><span id="t2" class="tableTab"><span><a href="javascript:show(2);">Instance Methods</a></span><span class="tabEnd"> </span></span><span id="t4" class="tableTab"><span><a href="javascript:show(8);">Concrete Methods</a></span><span class="tabEnd"> </span></span></caption>
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<tr>
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<th class="colFirst" scope="col">Modifier and Type</th>
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<tr id="i0" class="altColor">
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<td class="colFirst"><code>static <a href="../../../org/opencv/ml/KNearest.html" title="class in org.opencv.ml">KNearest</a></code></td>
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<td class="colLast"><code><span class="memberNameLink"><a href="../../../org/opencv/ml/KNearest.html#Z:Z__fromPtr__-long-">__fromPtr__</a></span>(long addr)</code> </td>
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</tr>
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<tr id="i1" class="rowColor">
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<td class="colFirst"><code>static <a href="../../../org/opencv/ml/KNearest.html" title="class in org.opencv.ml">KNearest</a></code></td>
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<td class="colLast"><code><span class="memberNameLink"><a href="../../../org/opencv/ml/KNearest.html#create--">create</a></span>()</code>
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<div class="block">Creates the empty model
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The static method creates empty %KNearest classifier.</div>
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</td>
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</tr>
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<tr id="i2" class="altColor">
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<td class="colFirst"><code>float</code></td>
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<td class="colLast"><code><span class="memberNameLink"><a href="../../../org/opencv/ml/KNearest.html#findNearest-org.opencv.core.Mat-int-org.opencv.core.Mat-">findNearest</a></span>(<a href="../../../org/opencv/core/Mat.html" title="class in org.opencv.core">Mat</a> samples,
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int k,
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<a href="../../../org/opencv/core/Mat.html" title="class in org.opencv.core">Mat</a> results)</code>
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<div class="block">Finds the neighbors and predicts responses for input vectors.</div>
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</td>
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</tr>
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<tr id="i3" class="rowColor">
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<td class="colFirst"><code>float</code></td>
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<td class="colLast"><code><span class="memberNameLink"><a href="../../../org/opencv/ml/KNearest.html#findNearest-org.opencv.core.Mat-int-org.opencv.core.Mat-org.opencv.core.Mat-">findNearest</a></span>(<a href="../../../org/opencv/core/Mat.html" title="class in org.opencv.core">Mat</a> samples,
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int k,
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<a href="../../../org/opencv/core/Mat.html" title="class in org.opencv.core">Mat</a> results,
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<a href="../../../org/opencv/core/Mat.html" title="class in org.opencv.core">Mat</a> neighborResponses)</code>
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<div class="block">Finds the neighbors and predicts responses for input vectors.</div>
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</td>
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</tr>
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<tr id="i4" class="altColor">
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<td class="colFirst"><code>float</code></td>
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<td class="colLast"><code><span class="memberNameLink"><a href="../../../org/opencv/ml/KNearest.html#findNearest-org.opencv.core.Mat-int-org.opencv.core.Mat-org.opencv.core.Mat-org.opencv.core.Mat-">findNearest</a></span>(<a href="../../../org/opencv/core/Mat.html" title="class in org.opencv.core">Mat</a> samples,
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int k,
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<a href="../../../org/opencv/core/Mat.html" title="class in org.opencv.core">Mat</a> results,
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<a href="../../../org/opencv/core/Mat.html" title="class in org.opencv.core">Mat</a> neighborResponses,
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<a href="../../../org/opencv/core/Mat.html" title="class in org.opencv.core">Mat</a> dist)</code>
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<div class="block">Finds the neighbors and predicts responses for input vectors.</div>
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</td>
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</tr>
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<tr id="i5" class="rowColor">
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<td class="colFirst"><code>int</code></td>
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<td class="colLast"><code><span class="memberNameLink"><a href="../../../org/opencv/ml/KNearest.html#getAlgorithmType--">getAlgorithmType</a></span>()</code>
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<div class="block">SEE: setAlgorithmType</div>
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</td>
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</tr>
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<tr id="i6" class="altColor">
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<td class="colFirst"><code>int</code></td>
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<td class="colLast"><code><span class="memberNameLink"><a href="../../../org/opencv/ml/KNearest.html#getDefaultK--">getDefaultK</a></span>()</code>
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<div class="block">SEE: setDefaultK</div>
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</td>
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</tr>
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<tr id="i7" class="rowColor">
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<td class="colFirst"><code>int</code></td>
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<td class="colLast"><code><span class="memberNameLink"><a href="../../../org/opencv/ml/KNearest.html#getEmax--">getEmax</a></span>()</code>
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<div class="block">SEE: setEmax</div>
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</td>
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</tr>
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<tr id="i8" class="altColor">
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<td class="colFirst"><code>boolean</code></td>
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<td class="colLast"><code><span class="memberNameLink"><a href="../../../org/opencv/ml/KNearest.html#getIsClassifier--">getIsClassifier</a></span>()</code>
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<div class="block">SEE: setIsClassifier</div>
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</td>
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</tr>
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<tr id="i9" class="rowColor">
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<td class="colFirst"><code>static <a href="../../../org/opencv/ml/KNearest.html" title="class in org.opencv.ml">KNearest</a></code></td>
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<td class="colLast"><code><span class="memberNameLink"><a href="../../../org/opencv/ml/KNearest.html#load-java.lang.String-">load</a></span>(java.lang.String filepath)</code>
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<div class="block">Loads and creates a serialized knearest from a file
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Use KNearest::save to serialize and store an KNearest to disk.</div>
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</td>
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</tr>
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<tr id="i10" class="altColor">
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<td class="colFirst"><code>void</code></td>
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<td class="colLast"><code><span class="memberNameLink"><a href="../../../org/opencv/ml/KNearest.html#setAlgorithmType-int-">setAlgorithmType</a></span>(int val)</code>
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<div class="block">getAlgorithmType SEE: getAlgorithmType</div>
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</td>
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</tr>
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<tr id="i11" class="rowColor">
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<td class="colFirst"><code>void</code></td>
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<td class="colLast"><code><span class="memberNameLink"><a href="../../../org/opencv/ml/KNearest.html#setDefaultK-int-">setDefaultK</a></span>(int val)</code>
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<div class="block">getDefaultK SEE: getDefaultK</div>
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</td>
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</tr>
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<tr id="i12" class="altColor">
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<td class="colFirst"><code>void</code></td>
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<td class="colLast"><code><span class="memberNameLink"><a href="../../../org/opencv/ml/KNearest.html#setEmax-int-">setEmax</a></span>(int val)</code>
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<div class="block">getEmax SEE: getEmax</div>
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</td>
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</tr>
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<tr id="i13" class="rowColor">
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<td class="colFirst"><code>void</code></td>
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<td class="colLast"><code><span class="memberNameLink"><a href="../../../org/opencv/ml/KNearest.html#setIsClassifier-boolean-">setIsClassifier</a></span>(boolean val)</code>
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<div class="block">getIsClassifier SEE: getIsClassifier</div>
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<h3>Methods inherited from class org.opencv.ml.<a href="../../../org/opencv/ml/StatModel.html" title="class in org.opencv.ml">StatModel</a></h3>
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<code><a href="../../../org/opencv/ml/StatModel.html#calcError-org.opencv.ml.TrainData-boolean-org.opencv.core.Mat-">calcError</a>, <a href="../../../org/opencv/ml/StatModel.html#empty--">empty</a>, <a href="../../../org/opencv/ml/StatModel.html#getVarCount--">getVarCount</a>, <a href="../../../org/opencv/ml/StatModel.html#isClassifier--">isClassifier</a>, <a href="../../../org/opencv/ml/StatModel.html#isTrained--">isTrained</a>, <a href="../../../org/opencv/ml/StatModel.html#predict-org.opencv.core.Mat-">predict</a>, <a href="../../../org/opencv/ml/StatModel.html#predict-org.opencv.core.Mat-org.opencv.core.Mat-">predict</a>, <a href="../../../org/opencv/ml/StatModel.html#predict-org.opencv.core.Mat-org.opencv.core.Mat-int-">predict</a>, <a href="../../../org/opencv/ml/StatModel.html#train-org.opencv.core.Mat-int-org.opencv.core.Mat-">train</a>, <a href="../../../org/opencv/ml/StatModel.html#train-org.opencv.ml.TrainData-">train</a>, <a href="../../../org/opencv/ml/StatModel.html#train-org.opencv.ml.TrainData-int-">train</a></code></li>
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<h3>Methods inherited from class org.opencv.core.<a href="../../../org/opencv/core/Algorithm.html" title="class in org.opencv.core">Algorithm</a></h3>
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<code><a href="../../../org/opencv/core/Algorithm.html#clear--">clear</a>, <a href="../../../org/opencv/core/Algorithm.html#getDefaultName--">getDefaultName</a>, <a href="../../../org/opencv/core/Algorithm.html#getNativeObjAddr--">getNativeObjAddr</a>, <a href="../../../org/opencv/core/Algorithm.html#save-java.lang.String-">save</a></code></li>
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<h3>Methods inherited from class java.lang.Object</h3>
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<code>equals, getClass, hashCode, notify, notifyAll, toString, wait, wait, wait</code></li>
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</ul>
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<h3>Field Detail</h3>
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<h4>BRUTE_FORCE</h4>
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<pre>public static final int BRUTE_FORCE</pre>
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<dl>
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<dt><span class="seeLabel">See Also:</span></dt>
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<dd><a href="../../../constant-values.html#org.opencv.ml.KNearest.BRUTE_FORCE">Constant Field Values</a></dd>
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</dl>
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<h4>KDTREE</h4>
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<pre>public static final int KDTREE</pre>
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<dl>
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<dt><span class="seeLabel">See Also:</span></dt>
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<dd><a href="../../../constant-values.html#org.opencv.ml.KNearest.KDTREE">Constant Field Values</a></dd>
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</dl>
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<pre>public static <a href="../../../org/opencv/ml/KNearest.html" title="class in org.opencv.ml">KNearest</a> __fromPtr__(long addr)</pre>
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<pre>public static <a href="../../../org/opencv/ml/KNearest.html" title="class in org.opencv.ml">KNearest</a> create()</pre>
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<div class="block">Creates the empty model
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The static method creates empty %KNearest classifier. It should be then trained using StatModel::train method.</div>
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<dl>
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<dt><span class="returnLabel">Returns:</span></dt>
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<dd>automatically generated</dd>
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<h4>findNearest</h4>
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<pre>public float findNearest(<a href="../../../org/opencv/core/Mat.html" title="class in org.opencv.core">Mat</a> samples,
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int k,
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<a href="../../../org/opencv/core/Mat.html" title="class in org.opencv.core">Mat</a> results)</pre>
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<div class="block">Finds the neighbors and predicts responses for input vectors.</div>
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<dl>
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<dt><span class="paramLabel">Parameters:</span></dt>
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<dd><code>samples</code> - Input samples stored by rows. It is a single-precision floating-point matrix of
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<code>&lt;number_of_samples&gt; * k</code> size.</dd>
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<dd><code>k</code> - Number of used nearest neighbors. Should be greater than 1.</dd>
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<dd><code>results</code> - Vector with results of prediction (regression or classification) for each input
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sample. It is a single-precision floating-point vector with <code>&lt;number_of_samples&gt;</code> elements.
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precision floating-point matrix of <code>&lt;number_of_samples&gt; * k</code> size.
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is a single-precision floating-point matrix of <code>&lt;number_of_samples&gt; * k</code> size.
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For each input vector (a row of the matrix samples), the method finds the k nearest neighbors.
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In case of regression, the predicted result is a mean value of the particular vector's neighbor
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responses. In case of classification, the class is determined by voting.
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For each input vector, the neighbors are sorted by their distances to the vector.
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In case of C++ interface you can use output pointers to empty matrices and the function will
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allocate memory itself.
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If only a single input vector is passed, all output matrices are optional and the predicted
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value is returned by the method.
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The function is parallelized with the TBB library.</dd>
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<dt><span class="returnLabel">Returns:</span></dt>
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<dd>automatically generated</dd>
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<h4>findNearest</h4>
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<pre>public float findNearest(<a href="../../../org/opencv/core/Mat.html" title="class in org.opencv.core">Mat</a> samples,
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int k,
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<a href="../../../org/opencv/core/Mat.html" title="class in org.opencv.core">Mat</a> results,
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<a href="../../../org/opencv/core/Mat.html" title="class in org.opencv.core">Mat</a> neighborResponses)</pre>
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<div class="block">Finds the neighbors and predicts responses for input vectors.</div>
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<dl>
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<dt><span class="paramLabel">Parameters:</span></dt>
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<dd><code>samples</code> - Input samples stored by rows. It is a single-precision floating-point matrix of
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<code>&lt;number_of_samples&gt; * k</code> size.</dd>
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<dd><code>k</code> - Number of used nearest neighbors. Should be greater than 1.</dd>
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<dd><code>results</code> - Vector with results of prediction (regression or classification) for each input
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sample. It is a single-precision floating-point vector with <code>&lt;number_of_samples&gt;</code> elements.</dd>
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<dd><code>neighborResponses</code> - Optional output values for corresponding neighbors. It is a single-
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precision floating-point matrix of <code>&lt;number_of_samples&gt; * k</code> size.
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is a single-precision floating-point matrix of <code>&lt;number_of_samples&gt; * k</code> size.
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For each input vector (a row of the matrix samples), the method finds the k nearest neighbors.
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In case of regression, the predicted result is a mean value of the particular vector's neighbor
|
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responses. In case of classification, the class is determined by voting.
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For each input vector, the neighbors are sorted by their distances to the vector.
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In case of C++ interface you can use output pointers to empty matrices and the function will
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allocate memory itself.
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If only a single input vector is passed, all output matrices are optional and the predicted
|
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value is returned by the method.
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The function is parallelized with the TBB library.</dd>
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<dt><span class="returnLabel">Returns:</span></dt>
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<dd>automatically generated</dd>
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</dl>
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</li>
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</ul>
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<a name="findNearest-org.opencv.core.Mat-int-org.opencv.core.Mat-org.opencv.core.Mat-org.opencv.core.Mat-">
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<h4>findNearest</h4>
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<pre>public float findNearest(<a href="../../../org/opencv/core/Mat.html" title="class in org.opencv.core">Mat</a> samples,
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int k,
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<a href="../../../org/opencv/core/Mat.html" title="class in org.opencv.core">Mat</a> results,
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<a href="../../../org/opencv/core/Mat.html" title="class in org.opencv.core">Mat</a> neighborResponses,
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<a href="../../../org/opencv/core/Mat.html" title="class in org.opencv.core">Mat</a> dist)</pre>
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<div class="block">Finds the neighbors and predicts responses for input vectors.</div>
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<dl>
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<dt><span class="paramLabel">Parameters:</span></dt>
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<dd><code>samples</code> - Input samples stored by rows. It is a single-precision floating-point matrix of
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<code>&lt;number_of_samples&gt; * k</code> size.</dd>
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<dd><code>k</code> - Number of used nearest neighbors. Should be greater than 1.</dd>
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<dd><code>results</code> - Vector with results of prediction (regression or classification) for each input
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sample. It is a single-precision floating-point vector with <code>&lt;number_of_samples&gt;</code> elements.</dd>
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<dd><code>neighborResponses</code> - Optional output values for corresponding neighbors. It is a single-
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precision floating-point matrix of <code>&lt;number_of_samples&gt; * k</code> size.</dd>
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<dd><code>dist</code> - Optional output distances from the input vectors to the corresponding neighbors. It
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is a single-precision floating-point matrix of <code>&lt;number_of_samples&gt; * k</code> size.
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For each input vector (a row of the matrix samples), the method finds the k nearest neighbors.
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In case of regression, the predicted result is a mean value of the particular vector's neighbor
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responses. In case of classification, the class is determined by voting.
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For each input vector, the neighbors are sorted by their distances to the vector.
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In case of C++ interface you can use output pointers to empty matrices and the function will
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allocate memory itself.
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If only a single input vector is passed, all output matrices are optional and the predicted
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value is returned by the method.
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The function is parallelized with the TBB library.</dd>
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<dt><span class="returnLabel">Returns:</span></dt>
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<dd>automatically generated</dd>
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<pre>public int getAlgorithmType()</pre>
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<div class="block">SEE: setAlgorithmType</div>
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<dl>
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<dt><span class="returnLabel">Returns:</span></dt>
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<dd>automatically generated</dd>
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</dl>
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<pre>public int getDefaultK()</pre>
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<div class="block">SEE: setDefaultK</div>
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<dl>
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<dt><span class="returnLabel">Returns:</span></dt>
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<dd>automatically generated</dd>
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</dl>
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<h4>getEmax</h4>
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<pre>public int getEmax()</pre>
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<div class="block">SEE: setEmax</div>
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<dl>
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<dt><span class="returnLabel">Returns:</span></dt>
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<dd>automatically generated</dd>
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</dl>
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<pre>public boolean getIsClassifier()</pre>
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<div class="block">SEE: setIsClassifier</div>
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<dl>
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<dt><span class="returnLabel">Returns:</span></dt>
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<dd>automatically generated</dd>
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</dl>
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<h4>load</h4>
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<pre>public static <a href="../../../org/opencv/ml/KNearest.html" title="class in org.opencv.ml">KNearest</a> load(java.lang.String filepath)</pre>
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<div class="block">Loads and creates a serialized knearest from a file
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Use KNearest::save to serialize and store an KNearest to disk.
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Load the KNearest from this file again, by calling this function with the path to the file.</div>
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<dl>
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<dt><span class="paramLabel">Parameters:</span></dt>
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<dd><code>filepath</code> - path to serialized KNearest</dd>
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<dt><span class="returnLabel">Returns:</span></dt>
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<dd>automatically generated</dd>
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<pre>public void setAlgorithmType(int val)</pre>
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<div class="block">getAlgorithmType SEE: getAlgorithmType</div>
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<dl>
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<dt><span class="paramLabel">Parameters:</span></dt>
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<dd><code>val</code> - automatically generated</dd>
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<pre>public void setDefaultK(int val)</pre>
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<div class="block">getDefaultK SEE: getDefaultK</div>
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<dl>
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<dt><span class="paramLabel">Parameters:</span></dt>
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<dd><code>val</code> - automatically generated</dd>
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<h4>setEmax</h4>
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<pre>public void setEmax(int val)</pre>
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<div class="block">getEmax SEE: getEmax</div>
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<dl>
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<dt><span class="paramLabel">Parameters:</span></dt>
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<dd><code>val</code> - automatically generated</dd>
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<h4>setIsClassifier</h4>
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<pre>public void setIsClassifier(boolean val)</pre>
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<div class="block">getIsClassifier SEE: getIsClassifier</div>
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<dl>
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<dt><span class="paramLabel">Parameters:</span></dt>
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<dd><code>val</code> - automatically generated</dd>
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</dl>
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</ul>
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