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<section class="tex2jax_ignore mathjax_ignore" id="slepc-users-manual">
<h1>SLEPc Users Manual<a class="headerlink" href="#slepc-users-manual" title="Link to this heading">#</a></h1>
<p><strong>J. E. Roman</strong> <sup>1</sup>,
<strong>C. Campos</strong> <sup>1,2</sup>,
<strong>L. Dalcin</strong> <sup>3</sup>,
<strong>E. Romero</strong> <sup>1,4</sup>,
<strong>A. Tomas</strong> <sup>1</sup></p>
<p><sup>1</sup> Universitat Politècnica de València<br>
<sup>2</sup> Universitat de València<br>
<sup>3</sup> Extreme Computing Research Center, King Abdullah University of Science and Technology<br>
<sup>4</sup> Jefferson Lab</p>
<p id="abstract"><strong>Abstract</strong></p>
<p>This manual describes SLEPc, the <em>Scalable Library for Eigenvalue Problem Computations</em>, a software package for the solution of large sparse eigenproblems on parallel computers. It can be used to solve various types of eigenvalue problems, including linear and nonlinear, as well as other related problems such as the singular value decomposition (see a summary of supported problem classes in table <a class="reference internal" href="#tab-modules"><span class="std std-ref">SLEPc modules</span></a>). SLEPc is a general library in the sense that it covers both Hermitian and non-Hermitian problems, with either real or complex arithmetic.</p>
<p>The emphasis of the software is on methods and techniques appropriate for problems in which the associated matrices are large and sparse, for example, those arising after the discretization of partial differential equations. Thus, most of the methods offered by the library are projection methods, including different variants of Krylov and Davidson iterations. In addition to its own solvers, SLEPc provides transparent access to some external software packages such as ARPACK. Apart from the solvers, SLEPc also provides built-in support for some operations commonly used in the context of eigenvalue computations, such as preconditioning or the shift-and-invert spectral transformation.</p>
<p>SLEPc is built on top of PETSc, the Portable, Extensible Toolkit for Scientific Computation. SLEPc extends PETSc with all the functionality necessary for the solution of eigenvalue problems. This means that PETSc must be previously installed in order to use SLEPc. PETSc users will find SLEPc very easy to use, since it enforces the same programming paradigm. Those readers that are not acquainted with PETSc are highly recommended to familiarize with it before proceeding with SLEPc.</p>
<p class="unnumbered" id="additional-documentation"><strong>Additional Documentation</strong></p>
<p>This manual provides a general description of SLEPc. In addition, manual pages for individual routines are available through the top bar menu (both the <a class="reference internal" href="../../manualpages/index.html"><span class="doc std std-doc">C/Fortran API</span></a> and the <a class="reference internal" href="../../slepc4py/index.html"><span class="doc std std-doc">Python API</span></a>). These manual pages provide hyperlinked access to the source code and enable easy movement among related topics. Finally, there are also several <a class="reference internal" href="../hands-on/index.html"><span class="doc std std-doc">hands-on exercises available</span></a>, which are intended for learning the basic concepts easily.</p>
<p class="unnumbered" id="how-to-read-this-manual"><strong>How to Read this Manual</strong></p>
<p>Users that are already familiar with PETSc can read chapter <a class="reference internal" href="intro.html#ch-int"><span class="std std-ref">Getting Started</span></a> very fast. Section <a class="reference internal" href="eps.html#sec-eig"><span class="std std-ref">Eigenvalue Problems</span></a> provides a brief overview of eigenproblems and the general concepts used by eigensolvers, so it can be skipped by experienced users. Chapters <a class="reference internal" href="eps.html#ch-eps"><span class="std std-ref">EPS: Eigenvalue Problem Solver</span></a> to <a class="reference internal" href="aux.html#ch-aux"><span class="std std-ref">Auxiliary Classes</span></a> describe the main SLEPc functionality. Some of them include an advanced usage section that can be skipped at a first reading. Finally, chapter <a class="reference internal" href="extra.html#ch-add"><span class="std std-ref">Additional Information</span></a> contains less important, additional information.</p>
<p class="unnumbered" id="slepc-technical-reports"><strong>SLEPc Technical Reports</strong></p>
<p>The information contained in this manual is complemented by a set of <a class="reference internal" href="../index.html"><span class="doc std std-doc">Technical Reports</span></a>. They provide technical details that normal users typically do not need to know but may be useful for experts in order to identify the particular method implemented in SLEPc.</p>
<p class="unnumbered" id="supported-problem-classes"><strong>Supported Problem Classes</strong></p>
<p>The following table provides an overview of the functionality offered by SLEPc, organized by problem classes.</p>
<div class="pst-scrollable-table-container"><table class="table" id="tab-modules">
<caption><span class="caption-text">SLEPc modules</span><a class="headerlink" href="#tab-modules" title="Link to this table">#</a></caption>
<thead>
<tr class="row-odd"><th class="head"><p>Problem class</p></th>
<th class="head"><p>Model equation</p></th>
<th class="head"><p>Module</p></th>
<th class="head"><p>Chapter</p></th>
</tr>
</thead>
<tbody>
<tr class="row-even"><td><p>Linear eigenvalue problem</p></td>
<td><p><span class="math notranslate nohighlight">\(Ax=\lambda x,\quad Ax=\lambda Bx\)</span></p></td>
<td><p><code class="docutils notranslate"><span class="pre"><a href="../../manualpages/EPS/EPS.html">EPS</a></span></code></p></td>
<td><p><a class="reference internal" href="eps.html#ch-eps"><span class="std std-ref">EPS: Eigenvalue Problem Solver</span></a></p></td>
</tr>
<tr class="row-odd"><td><p>Polynomial eigenvalue problem</p></td>
<td><p><span class="math notranslate nohighlight">\((A_0+\lambda A_1+\cdots+\lambda^dA_d)x=0\)</span></p></td>
<td><p><code class="docutils notranslate"><span class="pre"><a href="../../manualpages/PEP/PEP.html">PEP</a></span></code></p></td>
<td><p><a class="reference internal" href="pep.html#ch-pep"><span class="std std-ref">PEP: Polynomial Eigenvalue Problems</span></a></p></td>
</tr>
<tr class="row-even"><td><p>Nonlinear eigenvalue problem</p></td>
<td><p><span class="math notranslate nohighlight">\(T(\lambda)x=0\)</span></p></td>
<td><p><code class="docutils notranslate"><span class="pre"><a href="../../manualpages/NEP/NEP.html">NEP</a></span></code></p></td>
<td><p><a class="reference internal" href="nep.html#ch-nep"><span class="std std-ref">NEP: Nonlinear Eigenvalue Problems</span></a></p></td>
</tr>
<tr class="row-odd"><td><p>Singular value decomposition</p></td>
<td><p><span class="math notranslate nohighlight">\(Av=\sigma u\)</span></p></td>
<td><p><code class="docutils notranslate"><span class="pre"><a href="../../manualpages/SVD/SVD.html">SVD</a></span></code></p></td>
<td><p><a class="reference internal" href="svd.html#ch-svd"><span class="std std-ref">SVD: Singular Value Decomposition</span></a></p></td>
</tr>
<tr class="row-even"><td><p>Matrix function (action of)</p></td>
<td><p><span class="math notranslate nohighlight">\(y=f(A)v\)</span></p></td>
<td><p><code class="docutils notranslate"><span class="pre"><a href="../../manualpages/MFN/MFN.html">MFN</a></span></code></p></td>
<td><p><a class="reference internal" href="mfn.html#ch-mfn"><span class="std std-ref">MFN: Matrix Function</span></a></p></td>
</tr>
<tr class="row-odd"><td><p>Linear matrix equation</p></td>
<td><p><span class="math notranslate nohighlight">\(AXE+DXB=C\)</span></p></td>
<td><p><code class="docutils notranslate"><span class="pre"><a href="../../manualpages/LME/LME.html">LME</a></span></code></p></td>
<td><p><a class="reference internal" href="lme.html#ch-lme"><span class="std std-ref">LME: Linear Matrix Equation</span></a></p></td>
</tr>
</tbody>
</table>
</div>
<p>In order to solve a given problem, one should create a solver object corresponding to the solver class (module) that better fits the problem (the less general one; e.g., we do not recommend using <code class="docutils notranslate"><span class="pre"><a href="../../manualpages/NEP/NEP.html">NEP</a></span></code> to solve a linear eigenproblem).</p>
<div class="admonition-notes admonition" id="notes">
<p class="admonition-title">Notes</p>
<ul class="simple">
<li><p>Most users are typically interested in linear eigenproblems only.</p></li>
<li><p>In each problem class there may exist several subclasses (problem types in SLEPc terminology), for instance symmetric-definite generalized eigenproblem in <code class="docutils notranslate"><span class="pre"><a href="../../manualpages/EPS/EPS.html">EPS</a></span></code>.</p></li>
<li><p>The solver class (module) is named after the problem class. For historical reasons, the one for linear eigenvalue problems is called <code class="docutils notranslate"><span class="pre"><a href="../../manualpages/EPS/EPS.html">EPS</a></span></code> rather than <code class="docutils notranslate"><span class="pre">LEP</span></code>.</p></li>
<li><p>In addition to the SVD shown in the table, the <code class="docutils notranslate"><span class="pre"><a href="../../manualpages/SVD/SVD.html">SVD</a></span></code> module also supports other related problems such as the GSVD and the HSVD.</p></li>
<li><p>For the action of a matrix function (<code class="docutils notranslate"><span class="pre"><a href="../../manualpages/MFN/MFN.html">MFN</a></span></code>), in SLEPc we focus on methods that are closely related to methods for eigenvalue problems.</p></li>
</ul>
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