<h1>compute pressure/cuda command<aclass="headerlink"href="#compute-pressure-cuda-command"title="Permalink to this headline">¶</a></h1>
<divclass="section"id="syntax">
<h2>Syntax<aclass="headerlink"href="#syntax"title="Permalink to this headline">¶</a></h2>
<divclass="highlight-python"><divclass="highlight"><pre>compute ID group-ID pressure temp-ID keyword ...
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<ulclass="simple">
<li>ID, group-ID are documented in <aclass="reference internal"href="compute.html"><em>compute</em></a> command</li>
<li>pressure = style name of this compute command</li>
<li>temp-ID = ID of compute that calculates temperature, can be NULL if not needed</li>
<li>zero or more keywords may be appended</li>
<li>keyword = <em>ke</em> or <em>pair</em> or <em>bond</em> or <em>angle</em> or <em>dihedral</em> or <em>improper</em> or <em>kspace</em> or <em>fix</em> or <em>virial</em></li>
</ul>
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<divclass="section"id="examples">
<h2>Examples<aclass="headerlink"href="#examples"title="Permalink to this headline">¶</a></h2>
<divclass="highlight-python"><divclass="highlight"><pre>compute 1 all pressure thermo_temp
compute 1 all pressure NULL pair bond
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<divclass="section"id="description">
<h2>Description<aclass="headerlink"href="#description"title="Permalink to this headline">¶</a></h2>
<p>Define a computation that calculates the pressure of the entire system
of atoms. The specified group must be “all”. See the <aclass="reference internal"href="compute_stress_atom.html"><em>compute stress/atom</em></a> command if you want per-atom
velocity. See the doc pages for individual <aclass="reference internal"href="compute.html"><em>compute commands</em></a> to determine which ones include a bias.</p>
<p>Also note that the N in the first formula above is really
is calcluated by the temperature compute. See the various <aclass="reference internal"href="compute.html"><em>compute temperature</em></a> styles for details.</p>
<p>A compute of this style with the ID of “thermo_press” is created when
LAMMPS starts up, as if this command were in the input script:</p>
<divclass="highlight-python"><divclass="highlight"><pre>compute thermo_press all pressure thermo_temp
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<p>where “thermo_temp” is the ID of a similarly defined compute of style
“temp”. See the “thermo_style” command for more details.</p>
<p>Styles with a <em>cuda</em>, <em>gpu</em>, <em>intel</em>, <em>kk</em>, <em>omp</em>, or <em>opt</em> suffix are
functionally the same as the corresponding style without the suffix.
They have been optimized to run faster, depending on your available
hardware, as discussed in <aclass="reference internal"href="Section_accelerate.html"><em>Section_accelerate</em></a>
of the manual. The accelerated styles take the same arguments and
should produce the same results, except for round-off and precision
issues.</p>
<p>These accelerated styles are part of the USER-CUDA, GPU, USER-INTEL,
KOKKOS, USER-OMP and OPT packages, respectively. They are only
enabled if LAMMPS was built with those packages. See the <aclass="reference internal"href="Section_start.html#start-3"><span>Making LAMMPS</span></a> section for more info.</p>
<p>You can specify the accelerated styles explicitly in your input script
by including their suffix, or you can use the <aclass="reference internal"href="Section_start.html#start-7"><span>-suffix command-line switch</span></a> when you invoke LAMMPS, or you can
use the <aclass="reference internal"href="suffix.html"><em>suffix</em></a> command in your input script.</p>
<p>See <aclass="reference internal"href="Section_accelerate.html"><em>Section_accelerate</em></a> of the manual for
more instructions on how to use the accelerated styles effectively.</p>
<hrclass="docutils"/>
<p><strong>Output info:</strong></p>
<p>This compute calculates a global scalar (the pressure) and a global
or vector values from a compute as input. See <aclass="reference internal"href="Section_howto.html#howto-15"><span>this section</span></a> for an overview of LAMMPS output
options.</p>
<p>The scalar and vector values calculated by this compute are
“intensive”. The scalar and vector values will be in pressure
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