1 package org.djunits.value.vdouble.scalar;
2
3 import java.util.regex.Matcher;
4
5 import org.djunits.unit.DimensionlessUnit;
6 import org.djunits.unit.ElectricalPotentialUnit;
7 import org.djunits.unit.ElectricalResistanceUnit;
8 import org.djunits.unit.Unit;
9
10 /**
11 * Easy access methods for the ElectricalResistance DoubleScalar, which is relative by definition. Instead of:
12 *
13 * <pre>
14 * DoubleScalar.Rel<ElectricalResistanceUnit> value =
15 * new DoubleScalar.Rel<ElectricalResistanceUnit>(100.0, ElectricalResistanceUnit.SI);
16 * </pre>
17 *
18 * we can now write:
19 *
20 * <pre>
21 * ElectricalResistance value = new ElectricalResistance(100.0, ElectricalResistanceUnit.SI);
22 * </pre>
23 *
24 * The compiler will automatically recognize which units belong to which quantity, and whether the quantity type and the unit
25 * used are compatible.
26 * <p>
27 * Copyright (c) 2013-2019 Delft University of Technology, PO Box 5, 2600 AA, Delft, the Netherlands. All rights reserved. <br>
28 * BSD-style license. See <a href="http://djunits.org/docs/license.html">DJUNITS License</a>.
29 * <p>
30 * $LastChangedDate: 2019-03-03 00:53:50 +0100 (Sun, 03 Mar 2019) $, @version $Revision: 349 $, by $Author: averbraeck $,
31 * initial version Sep 5, 2015 <br>
32 * @author <a href="http://www.tbm.tudelft.nl/averbraeck">Alexander Verbraeck</a>
33 * @author <a href="http://www.tudelft.nl/pknoppers">Peter Knoppers</a>
34 */
35 public class ElectricalResistance extends AbstractDoubleScalarRel<ElectricalResistanceUnit, ElectricalResistance>
36 {
37 /** */
38 private static final long serialVersionUID = 20150905L;
39
40 /** constant with value zero. */
41 public static final ElectricalResistance ZERO = new ElectricalResistance(0.0, ElectricalResistanceUnit.SI);
42
43 /** constant with value NaN. */
44 @SuppressWarnings("checkstyle:constantname")
45 public static final ElectricalResistance NaN = new ElectricalResistance(Double.NaN, ElectricalResistanceUnit.SI);
46
47 /** constant with value POSITIVE_INFINITY. */
48 public static final ElectricalResistance POSITIVE_INFINITY =
49 new ElectricalResistance(Double.POSITIVE_INFINITY, ElectricalResistanceUnit.SI);
50
51 /** constant with value NEGATIVE_INFINITY. */
52 public static final ElectricalResistance NEGATIVE_INFINITY =
53 new ElectricalResistance(Double.NEGATIVE_INFINITY, ElectricalResistanceUnit.SI);
54
55 /** constant with value MAX_VALUE. */
56 public static final ElectricalResistance POS_MAXVALUE =
57 new ElectricalResistance(Double.MAX_VALUE, ElectricalResistanceUnit.SI);
58
59 /** constant with value -MAX_VALUE. */
60 public static final ElectricalResistance NEG_MAXVALUE =
61 new ElectricalResistance(-Double.MAX_VALUE, ElectricalResistanceUnit.SI);
62
63 /**
64 * Construct ElectricalResistance scalar.
65 * @param value double value
66 * @param unit unit for the double value
67 */
68 public ElectricalResistance(final double value, final ElectricalResistanceUnit unit)
69 {
70 super(value, unit);
71 }
72
73 /**
74 * Construct ElectricalResistance scalar.
75 * @param value Scalar from which to construct this instance
76 */
77 public ElectricalResistance(final ElectricalResistance value)
78 {
79 super(value);
80 }
81
82 /** {@inheritDoc} */
83 @Override
84 public final ElectricalResistance instantiateRel(final double value, final ElectricalResistanceUnit unit)
85 {
86 return new ElectricalResistance(value, unit);
87 }
88
89 /**
90 * Construct ElectricalResistance scalar.
91 * @param value double value in SI units
92 * @return the new scalar with the SI value
93 */
94 public static final ElectricalResistance createSI(final double value)
95 {
96 return new ElectricalResistance(value, ElectricalResistanceUnit.SI);
97 }
98
99 /**
100 * Interpolate between two values.
101 * @param zero the low value
102 * @param one the high value
103 * @param ratio the ratio between 0 and 1, inclusive
104 * @return a Scalar at the ratio between
105 */
106 public static ElectricalResistance interpolate(final ElectricalResistance zero, final ElectricalResistance one,
107 final double ratio)
108 {
109 return new ElectricalResistance(zero.getInUnit() * (1 - ratio) + one.getInUnit(zero.getUnit()) * ratio, zero.getUnit());
110 }
111
112 /**
113 * Return the maximum value of two relative scalars.
114 * @param r1 the first scalar
115 * @param r2 the second scalar
116 * @return the maximum value of two relative scalars
117 */
118 public static ElectricalResistance max(final ElectricalResistance r1, final ElectricalResistance r2)
119 {
120 return (r1.gt(r2)) ? r1 : r2;
121 }
122
123 /**
124 * Return the maximum value of more than two relative scalars.
125 * @param r1 the first scalar
126 * @param r2 the second scalar
127 * @param rn the other scalars
128 * @return the maximum value of more than two relative scalars
129 */
130 public static ElectricalResistance max(final ElectricalResistance r1, final ElectricalResistance r2,
131 final ElectricalResistance... rn)
132 {
133 ElectricalResistance maxr = (r1.gt(r2)) ? r1 : r2;
134 for (ElectricalResistance r : rn)
135 {
136 if (r.gt(maxr))
137 {
138 maxr = r;
139 }
140 }
141 return maxr;
142 }
143
144 /**
145 * Return the minimum value of two relative scalars.
146 * @param r1 the first scalar
147 * @param r2 the second scalar
148 * @return the minimum value of two relative scalars
149 */
150 public static ElectricalResistance min(final ElectricalResistance r1, final ElectricalResistance r2)
151 {
152 return (r1.lt(r2)) ? r1 : r2;
153 }
154
155 /**
156 * Return the minimum value of more than two relative scalars.
157 * @param r1 the first scalar
158 * @param r2 the second scalar
159 * @param rn the other scalars
160 * @return the minimum value of more than two relative scalars
161 */
162 public static ElectricalResistance min(final ElectricalResistance r1, final ElectricalResistance r2,
163 final ElectricalResistance... rn)
164 {
165 ElectricalResistance minr = (r1.lt(r2)) ? r1 : r2;
166 for (ElectricalResistance r : rn)
167 {
168 if (r.lt(minr))
169 {
170 minr = r;
171 }
172 }
173 return minr;
174 }
175
176 /**
177 * Returns a ElectricalResistance representation of a textual representation of a value with a unit. The String
178 * representation that can be parsed is the double value in the unit, followed by the official abbreviation of the unit.
179 * Spaces are allowed, but not necessary, between the value and the unit.
180 * @param text String; the textual representation to parse into a ElectricalResistance
181 * @return the String representation of the value in its unit, followed by the official abbreviation of the unit
182 * @throws IllegalArgumentException when the text cannot be parsed
183 */
184 public static ElectricalResistance valueOf(final String text) throws IllegalArgumentException
185 {
186 if (text == null || text.length() == 0)
187 {
188 throw new IllegalArgumentException("Error parsing ElectricalResistance -- null or empty argument");
189 }
190 Matcher matcher = NUMBER_PATTERN.matcher(text);
191 if (matcher.find())
192 {
193 int index = matcher.end();
194 try
195 {
196 String unitString = text.substring(index).trim();
197 String valueString = text.substring(0, index).trim();
198 for (ElectricalResistanceUnit unit : Unit.getUnits(ElectricalResistanceUnit.class))
199 {
200 if (unit.getDefaultLocaleTextualRepresentations().contains(unitString))
201 {
202 double d = Double.parseDouble(valueString);
203 return new ElectricalResistance(d, unit);
204 }
205 }
206 }
207 catch (Exception exception)
208 {
209 throw new IllegalArgumentException("Error parsing ElectricalResistance from " + text, exception);
210 }
211 }
212 throw new IllegalArgumentException("Error parsing ElectricalResistance from " + text);
213 }
214
215 /**
216 * Calculate the division of ElectricalResistance and ElectricalResistance, which results in a Dimensionless scalar.
217 * @param v ElectricalResistance scalar
218 * @return Dimensionless scalar as a division of ElectricalResistance and ElectricalResistance
219 */
220 public final Dimensionless divideBy(final ElectricalResistance v)
221 {
222 return new Dimensionless(this.si / v.si, DimensionlessUnit.SI);
223 }
224
225 /**
226 * Calculate the multiplication of ElectricalResistance and ElectricalCurrent, which results in a ElectricalPotential
227 * scalar.
228 * @param v ElectricalResistance scalar
229 * @return ElectricalPotential scalar as a multiplication of ElectricalResistance and ElectricalCurrent
230 */
231 public final ElectricalPotential multiplyBy(final ElectricalCurrent v)
232 {
233 return new ElectricalPotential(this.si * v.si, ElectricalPotentialUnit.SI);
234 }
235
236 }