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scpi-pps: Add infrastructure for controlling output frequency
[libsigrok.git] / src / hardware / scpi-pps / profiles.c
1 /*
2  * This file is part of the libsigrok project.
3  *
4  * Copyright (C) 2014 Bert Vermeulen <bert@biot.com>
5  * Copyright (C) 2015 Google, Inc.
6  * (Written by Alexandru Gagniuc <mrnuke@google.com> for Google, Inc.)
7  *
8  * This program is free software: you can redistribute it and/or modify
9  * it under the terms of the GNU General Public License as published by
10  * the Free Software Foundation, either version 3 of the License, or
11  * (at your option) any later version.
12  *
13  * This program is distributed in the hope that it will be useful,
14  * but WITHOUT ANY WARRANTY; without even the implied warranty of
15  * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE.  See the
16  * GNU General Public License for more details.
17  *
18  * You should have received a copy of the GNU General Public License
19  * along with this program.  If not, see <http://www.gnu.org/licenses/>.
20  */
21
22 #include <string.h>
23 #include <strings.h>
24 #include "protocol.h"
25
26 #define CH_IDX(x) (1 << x)
27 #define FREQ_DC_ONLY {0, 0, 0}
28
29 const char *pps_vendors[][2] = {
30         { "RIGOL TECHNOLOGIES", "Rigol" },
31         { "HEWLETT-PACKARD", "HP" },
32         { "PHILIPS", "Philips" },
33         { "Chroma ATE", "Chroma" },
34 };
35
36 const char *get_vendor(const char *raw_vendor)
37 {
38         unsigned int i;
39
40         for (i = 0; i < ARRAY_SIZE(pps_vendors); i++) {
41                 if (!strcasecmp(raw_vendor, pps_vendors[i][0]))
42                         return pps_vendors[i][1];
43         }
44
45         return raw_vendor;
46 }
47
48 static const uint32_t devopts_none[] = { };
49
50 /* Chroma 61600 series AC source */
51 static const uint32_t chroma_61604_devopts[] = {
52         SR_CONF_CONTINUOUS | SR_CONF_SET,
53 };
54
55 static const uint32_t chroma_61604_devopts_cg[] = {
56         SR_CONF_OVER_VOLTAGE_PROTECTION_THRESHOLD | SR_CONF_GET | SR_CONF_SET,
57         SR_CONF_OVER_CURRENT_PROTECTION_THRESHOLD | SR_CONF_GET | SR_CONF_SET,
58         SR_CONF_OUTPUT_VOLTAGE | SR_CONF_GET,
59         SR_CONF_OUTPUT_VOLTAGE_TARGET | SR_CONF_GET | SR_CONF_SET | SR_CONF_LIST,
60         SR_CONF_OUTPUT_CURRENT | SR_CONF_GET,
61         SR_CONF_OUTPUT_ENABLED | SR_CONF_GET | SR_CONF_SET,
62 };
63
64 const struct channel_spec chroma_61604_ch[] = {
65         { "1", { 0, 300, 0.1 }, { 0, 16, 0.1 }, FREQ_DC_ONLY },
66 };
67
68 const struct channel_group_spec chroma_61604_cg[] = {
69         { "1", CH_IDX(0), PPS_OVP | PPS_OCP },
70 };
71
72 const struct scpi_command chroma_61604_cmd[] = {
73         { SCPI_CMD_REMOTE, "SYST:REM" },
74         { SCPI_CMD_LOCAL, "SYST:LOC" },
75         { SCPI_CMD_GET_MEAS_VOLTAGE, ":FETC:VOLT:ACDC?" },
76         { SCPI_CMD_GET_MEAS_CURRENT, ":FETC:CURR:AC?" },
77         { SCPI_CMD_GET_MEAS_POWER, ":FETC:POW:AC?" },
78         { SCPI_CMD_GET_VOLTAGE_TARGET, ":SOUR:VOLT:AC?" },
79         { SCPI_CMD_SET_VOLTAGE_TARGET, ":SOUR:VOLT:AC %.1f" },
80         { SCPI_CMD_GET_OUTPUT_ENABLED, ":OUTP?" },
81         { SCPI_CMD_SET_OUTPUT_ENABLE, ":OUTP ON" },
82         { SCPI_CMD_SET_OUTPUT_DISABLE, ":OUTP OFF" },
83         { SCPI_CMD_GET_OVER_VOLTAGE_PROTECTION_THRESHOLD, ":SOUR:VOLT:LIM:AC?" },
84         { SCPI_CMD_SET_OVER_VOLTAGE_PROTECTION_THRESHOLD, ":SOUR:VOLT:LIM:AC %.1f" },
85         /* This is not a current limit mode. It is overcurrent protection */
86         { SCPI_CMD_GET_OVER_CURRENT_PROTECTION_THRESHOLD, ":SOUR:CURR:LIM?" },
87         { SCPI_CMD_SET_OVER_CURRENT_PROTECTION_THRESHOLD, ":SOUR:CURR:LIM %.2f" },
88 };
89
90 /* Rigol DP800 series */
91 static const uint32_t rigol_dp800_devopts[] = {
92         SR_CONF_CONTINUOUS | SR_CONF_SET,
93         SR_CONF_OVER_TEMPERATURE_PROTECTION | SR_CONF_GET | SR_CONF_SET,
94 };
95
96 static const uint32_t rigol_dp800_devopts_cg[] = {
97         SR_CONF_OUTPUT_REGULATION | SR_CONF_GET,
98         SR_CONF_OVER_VOLTAGE_PROTECTION_ENABLED | SR_CONF_GET | SR_CONF_SET,
99         SR_CONF_OVER_VOLTAGE_PROTECTION_ACTIVE | SR_CONF_GET,
100         SR_CONF_OVER_VOLTAGE_PROTECTION_THRESHOLD | SR_CONF_GET | SR_CONF_SET,
101         SR_CONF_OVER_CURRENT_PROTECTION_ENABLED | SR_CONF_GET | SR_CONF_SET,
102         SR_CONF_OVER_CURRENT_PROTECTION_ACTIVE | SR_CONF_GET,
103         SR_CONF_OVER_CURRENT_PROTECTION_THRESHOLD | SR_CONF_GET | SR_CONF_SET,
104         SR_CONF_OUTPUT_VOLTAGE | SR_CONF_GET,
105         SR_CONF_OUTPUT_VOLTAGE_TARGET | SR_CONF_GET | SR_CONF_SET | SR_CONF_LIST,
106         SR_CONF_OUTPUT_CURRENT | SR_CONF_GET,
107         SR_CONF_OUTPUT_CURRENT_LIMIT | SR_CONF_GET | SR_CONF_SET | SR_CONF_LIST,
108         SR_CONF_OUTPUT_ENABLED | SR_CONF_GET | SR_CONF_SET,
109 };
110
111 const struct channel_spec rigol_dp821a_ch[] = {
112         { "1", { 0, 60, 0.001 }, { 0, 1, 0.0001 }, FREQ_DC_ONLY },
113         { "2", { 0, 8, 0.001 }, { 0, 10, 0.001 }, FREQ_DC_ONLY },
114 };
115
116 const struct channel_spec rigol_dp831_ch[] = {
117         { "1", { 0, 8, 0.001 }, { 0, 5, 0.0003 }, FREQ_DC_ONLY },
118         { "2", { 0, 30, 0.001 }, { 0, 2, 0.0001 }, FREQ_DC_ONLY },
119         { "3", { 0, -30, 0.001 }, { 0, 2, 0.0001 }, FREQ_DC_ONLY },
120 };
121
122 const struct channel_spec rigol_dp832_ch[] = {
123         { "1", { 0, 30, 0.001 }, { 0, 3, 0.001 }, FREQ_DC_ONLY },
124         { "2", { 0, 30, 0.001 }, { 0, 3, 0.001 }, FREQ_DC_ONLY },
125         { "3", { 0, 5, 0.001 }, { 0, 3, 0.001 }, FREQ_DC_ONLY },
126 };
127
128 const struct channel_group_spec rigol_dp820_cg[] = {
129         { "1", CH_IDX(0), PPS_OVP | PPS_OCP },
130         { "2", CH_IDX(1), PPS_OVP | PPS_OCP },
131 };
132
133 const struct channel_group_spec rigol_dp830_cg[] = {
134         { "1", CH_IDX(0), PPS_OVP | PPS_OCP },
135         { "2", CH_IDX(1), PPS_OVP | PPS_OCP },
136         { "3", CH_IDX(2), PPS_OVP | PPS_OCP },
137 };
138
139 const struct scpi_command rigol_dp800_cmd[] = {
140         { SCPI_CMD_REMOTE, "SYST:REMOTE" },
141         { SCPI_CMD_LOCAL, "SYST:LOCAL" },
142         { SCPI_CMD_BEEPER, "SYST:BEEP:STAT?" },
143         { SCPI_CMD_BEEPER_ENABLE, "SYST:BEEP:STAT ON" },
144         { SCPI_CMD_BEEPER_DISABLE, "SYST:BEEP:STAT OFF" },
145         { SCPI_CMD_SELECT_CHANNEL, ":INST:NSEL %s" },
146         { SCPI_CMD_GET_MEAS_VOLTAGE, ":MEAS:VOLT?" },
147         { SCPI_CMD_GET_MEAS_CURRENT, ":MEAS:CURR?" },
148         { SCPI_CMD_GET_MEAS_POWER, ":MEAS:POWE?" },
149         { SCPI_CMD_GET_VOLTAGE_TARGET, ":SOUR:VOLT?" },
150         { SCPI_CMD_SET_VOLTAGE_TARGET, ":SOUR:VOLT %.6f" },
151         { SCPI_CMD_GET_CURRENT_LIMIT, ":SOUR:CURR?" },
152         { SCPI_CMD_SET_CURRENT_LIMIT, ":SOUR:CURR %.6f" },
153         { SCPI_CMD_GET_OUTPUT_ENABLED, ":OUTP?" },
154         { SCPI_CMD_SET_OUTPUT_ENABLE, ":OUTP ON" },
155         { SCPI_CMD_SET_OUTPUT_DISABLE, ":OUTP OFF" },
156         { SCPI_CMD_GET_OUTPUT_REGULATION, ":OUTP:MODE?" },
157         { SCPI_CMD_GET_OVER_TEMPERATURE_PROTECTION, ":SYST:OTP?" },
158         { SCPI_CMD_SET_OVER_TEMPERATURE_PROTECTION_ENABLE, ":SYST:OTP ON" },
159         { SCPI_CMD_SET_OVER_TEMPERATURE_PROTECTION_DISABLE, ":SYST:OTP OFF" },
160         { SCPI_CMD_GET_OVER_VOLTAGE_PROTECTION_ENABLED, ":OUTP:OVP?" },
161         { SCPI_CMD_SET_OVER_VOLTAGE_PROTECTION_ENABLE, ":OUTP:OVP ON" },
162         { SCPI_CMD_SET_OVER_VOLTAGE_PROTECTION_DISABLE, ":OUTP:OVP OFF" },
163         { SCPI_CMD_GET_OVER_VOLTAGE_PROTECTION_ACTIVE, ":OUTP:OVP:QUES?" },
164         { SCPI_CMD_GET_OVER_VOLTAGE_PROTECTION_THRESHOLD, ":OUTP:OVP:VAL?" },
165         { SCPI_CMD_SET_OVER_VOLTAGE_PROTECTION_THRESHOLD, ":OUTP:OVP:VAL %.6f" },
166         { SCPI_CMD_GET_OVER_CURRENT_PROTECTION_ENABLED, ":OUTP:OCP?" },
167         { SCPI_CMD_SET_OVER_CURRENT_PROTECTION_ENABLE, ":OUTP:OCP:STAT ON" },
168         { SCPI_CMD_SET_OVER_CURRENT_PROTECTION_DISABLE, ":OUTP:OCP:STAT OFF" },
169         { SCPI_CMD_GET_OVER_CURRENT_PROTECTION_ACTIVE, ":OUTP:OCP:QUES?" },
170         { SCPI_CMD_GET_OVER_CURRENT_PROTECTION_THRESHOLD, ":OUTP:OCP:VAL?" },
171         { SCPI_CMD_SET_OVER_CURRENT_PROTECTION_THRESHOLD, ":OUTP:OCP:VAL %.6f" },
172 };
173
174 /* HP 663xx series */
175 static const uint32_t hp_6632b_devopts[] = {
176         SR_CONF_CONTINUOUS | SR_CONF_SET,
177         SR_CONF_OUTPUT_ENABLED | SR_CONF_GET | SR_CONF_SET,
178         SR_CONF_OUTPUT_VOLTAGE | SR_CONF_GET,
179         SR_CONF_OUTPUT_CURRENT | SR_CONF_GET,
180         SR_CONF_OUTPUT_VOLTAGE_TARGET | SR_CONF_GET | SR_CONF_SET | SR_CONF_LIST,
181         SR_CONF_OUTPUT_CURRENT_LIMIT | SR_CONF_GET | SR_CONF_SET | SR_CONF_LIST,
182 };
183
184 const struct channel_spec hp_6632b_ch[] = {
185         { "1", { 0, 20.475, 0.005 }, { 0, 5.1188, 0.00132 }, FREQ_DC_ONLY },
186 };
187
188 const struct channel_group_spec hp_6632b_cg[] = {
189         { "1", CH_IDX(0), 0 },
190 };
191
192 const struct scpi_command hp_6632b_cmd[] = {
193         { SCPI_CMD_GET_OUTPUT_ENABLED, "OUTP:STAT?" },
194         { SCPI_CMD_SET_OUTPUT_ENABLE, "OUTP:STAT ON" },
195         { SCPI_CMD_SET_OUTPUT_DISABLE, "OUTP:STAT OFF" },
196         { SCPI_CMD_GET_MEAS_VOLTAGE, ":MEAS:VOLT?" },
197         { SCPI_CMD_GET_MEAS_CURRENT, ":MEAS:CURR?" },
198         { SCPI_CMD_GET_VOLTAGE_TARGET, ":SOUR:VOLT?" },
199         { SCPI_CMD_SET_VOLTAGE_TARGET, ":SOUR:VOLT %.6f" },
200         { SCPI_CMD_GET_CURRENT_LIMIT, ":SOUR:CURR?" },
201         { SCPI_CMD_SET_CURRENT_LIMIT, ":SOUR:CURR %.6f" },
202 };
203
204 /* Philips/Fluke PM2800 series */
205 static const uint32_t philips_pm2800_devopts[] = {
206         SR_CONF_CONTINUOUS | SR_CONF_SET,
207 };
208
209 static const uint32_t philips_pm2800_devopts_cg[] = {
210         SR_CONF_OUTPUT_ENABLED | SR_CONF_GET | SR_CONF_SET,
211         SR_CONF_OUTPUT_VOLTAGE | SR_CONF_GET,
212         SR_CONF_OUTPUT_VOLTAGE_TARGET | SR_CONF_GET | SR_CONF_SET | SR_CONF_LIST,
213         SR_CONF_OUTPUT_CURRENT | SR_CONF_GET,
214         SR_CONF_OUTPUT_CURRENT_LIMIT | SR_CONF_GET | SR_CONF_SET | SR_CONF_LIST,
215         SR_CONF_OVER_VOLTAGE_PROTECTION_ACTIVE | SR_CONF_GET,
216         SR_CONF_OVER_VOLTAGE_PROTECTION_THRESHOLD | SR_CONF_GET | SR_CONF_SET,
217         SR_CONF_OVER_CURRENT_PROTECTION_ENABLED | SR_CONF_GET | SR_CONF_SET,
218         SR_CONF_OVER_CURRENT_PROTECTION_ACTIVE | SR_CONF_GET,
219         SR_CONF_OUTPUT_REGULATION | SR_CONF_GET,
220 };
221
222 enum philips_pm2800_modules {
223         PM2800_MOD_30V_10A = 1,
224         PM2800_MOD_60V_5A,
225         PM2800_MOD_60V_10A,
226         PM2800_MOD_8V_15A,
227         PM2800_MOD_60V_2A,
228         PM2800_MOD_120V_1A,
229 };
230
231 static const struct philips_pm2800_module_spec {
232         /* Min, max, programming resolution. */
233         float voltage[3];
234         float current[3];
235 } philips_pm2800_module_specs[] = {
236         /* Autoranging modules. */
237         [PM2800_MOD_30V_10A] = { { 0, 30, 0.0075 }, { 0, 10, 0.0025 } },
238         [PM2800_MOD_60V_5A] = { { 0, 60, 0.015 }, { 0, 5, 0.00125 } },
239         [PM2800_MOD_60V_10A] = { { 0, 60, 0.015 }, { 0, 10, 0.0025 } },
240         /* Linear modules. */
241         [PM2800_MOD_8V_15A] = { { 0, 8, 0.002 }, { -15, 15, 0.00375 } },
242         [PM2800_MOD_60V_2A] = { { 0, 60, 0.015 }, { -2, 2, 0.0005 } },
243         [PM2800_MOD_120V_1A] = { { 0, 120, 0.030 }, { -1, 1, 0.00025 } },
244 };
245
246 static const struct philips_pm2800_model {
247         unsigned int chassis;
248         unsigned int num_modules;
249         unsigned int set;
250         unsigned int modules[3];
251 } philips_pm2800_matrix[] = {
252         /* Autoranging chassis. */
253         { 1, 1, 0, { PM2800_MOD_30V_10A, 0, 0 } },
254         { 1, 1, 1, { PM2800_MOD_60V_5A, 0, 0 } },
255         { 1, 2, 0, { PM2800_MOD_30V_10A, PM2800_MOD_30V_10A, 0 } },
256         { 1, 2, 1, { PM2800_MOD_60V_5A, PM2800_MOD_60V_5A, 0 } },
257         { 1, 2, 2, { PM2800_MOD_30V_10A, PM2800_MOD_60V_5A, 0 } },
258         { 1, 2, 3, { PM2800_MOD_30V_10A, PM2800_MOD_60V_10A, 0 } },
259         { 1, 2, 4, { PM2800_MOD_60V_5A, PM2800_MOD_60V_10A, 0 } },
260         { 1, 3, 0, { PM2800_MOD_30V_10A, PM2800_MOD_30V_10A, PM2800_MOD_30V_10A } },
261         { 1, 3, 1, { PM2800_MOD_60V_5A, PM2800_MOD_60V_5A, PM2800_MOD_60V_5A } },
262         { 1, 3, 2, { PM2800_MOD_30V_10A, PM2800_MOD_30V_10A, PM2800_MOD_60V_5A } },
263         { 1, 3, 3, { PM2800_MOD_30V_10A, PM2800_MOD_60V_5A, PM2800_MOD_60V_5A } },
264         /* Linear chassis. */
265         { 3, 1, 0, { PM2800_MOD_60V_2A, 0, 0 } },
266         { 3, 1, 1, { PM2800_MOD_120V_1A, 0, 0 } },
267         { 3, 1, 2, { PM2800_MOD_8V_15A, 0, 0 } },
268         { 3, 2, 0, { PM2800_MOD_60V_2A, 0, 0 } },
269         { 3, 2, 1, { PM2800_MOD_120V_1A, 0, 0 } },
270         { 3, 2, 2, { PM2800_MOD_60V_2A, PM2800_MOD_120V_1A, 0 } },
271         { 3, 2, 3, { PM2800_MOD_8V_15A, PM2800_MOD_8V_15A, 0 } },
272 };
273
274 static const char *philips_pm2800_names[] = { "1", "2", "3" };
275
276 static int philips_pm2800_probe_channels(struct sr_dev_inst *sdi,
277                 struct sr_scpi_hw_info *hw_info,
278                 struct channel_spec **channels, unsigned int *num_channels,
279                 struct channel_group_spec **channel_groups, unsigned int *num_channel_groups)
280 {
281         const struct philips_pm2800_model *model;
282         const struct philips_pm2800_module_spec *spec;
283         unsigned int chassis, num_modules, set, module, m, i;
284
285         (void)sdi;
286
287         /*
288          * The model number as reported by *IDN? looks like e.g. PM2813/11,
289          * Where "PM28" is fixed, followed by the chassis code (1 = autoranging,
290          * 3 = linear series) and the number of modules: 1-3 for autoranging,
291          * 1-2 for linear.
292          * After the slash, the first digit denotes the module set. The
293          * digit after that denotes front (5) or rear (1) binding posts.
294          */
295         chassis = hw_info->model[4] - 0x30;
296         num_modules = hw_info->model[5] - 0x30;
297         set = hw_info->model[7] - 0x30;
298         for (m = 0; m < ARRAY_SIZE(philips_pm2800_matrix); m++) {
299                 model = &philips_pm2800_matrix[m];
300                 if (model->chassis == chassis && model->num_modules == num_modules
301                                 && model->set == set)
302                         break;
303         }
304         if (m == ARRAY_SIZE(philips_pm2800_matrix)) {
305                 sr_dbg("Model %s not found in matrix.", hw_info->model);
306                 return SR_ERR;
307         }
308
309         sr_dbg("Found %d output channel%s:", num_modules, num_modules > 1 ? "s" : "");
310         *channels = g_malloc0(sizeof(struct channel_spec) * num_modules);
311         *channel_groups = g_malloc0(sizeof(struct channel_group_spec) * num_modules);
312         for (i = 0; i < num_modules; i++) {
313                 module = model->modules[i];
314                 spec = &philips_pm2800_module_specs[module];
315                 sr_dbg("output %d: %.0f - %.0fV, %.0f - %.0fA", i + 1,
316                                 spec->voltage[0], spec->voltage[1],
317                                 spec->current[0], spec->current[1]);
318                 (*channels)[i].name = (char *)philips_pm2800_names[i];
319                 memcpy(&((*channels)[i].voltage), spec, sizeof(float) * 6);
320                 (*channel_groups)[i].name = (char *)philips_pm2800_names[i];
321                 (*channel_groups)[i].channel_index_mask = 1 << i;
322                 (*channel_groups)[i].features = PPS_OTP | PPS_OVP | PPS_OCP;
323         }
324         *num_channels = *num_channel_groups = num_modules;
325
326         return SR_OK;
327 }
328
329 const struct scpi_command philips_pm2800_cmd[] = {
330         { SCPI_CMD_SELECT_CHANNEL, ":INST:NSEL %s" },
331         { SCPI_CMD_GET_MEAS_VOLTAGE, ":MEAS:VOLT?" },
332         { SCPI_CMD_GET_MEAS_CURRENT, ":MEAS:CURR?" },
333         { SCPI_CMD_GET_VOLTAGE_TARGET, ":SOUR:VOLT?" },
334         { SCPI_CMD_SET_VOLTAGE_TARGET, ":SOUR:VOLT %.6f" },
335         { SCPI_CMD_GET_CURRENT_LIMIT, ":SOUR:CURR?" },
336         { SCPI_CMD_SET_CURRENT_LIMIT, ":SOUR:CURR %.6f" },
337         { SCPI_CMD_GET_OUTPUT_ENABLED, ":OUTP?" },
338         { SCPI_CMD_SET_OUTPUT_ENABLE, ":OUTP ON" },
339         { SCPI_CMD_SET_OUTPUT_DISABLE, ":OUTP OFF" },
340         { SCPI_CMD_GET_OUTPUT_REGULATION, ":SOUR:FUNC:MODE?" },
341         { SCPI_CMD_GET_OVER_VOLTAGE_PROTECTION_ACTIVE, ":SOUR:VOLT:PROT:TRIP?" },
342         { SCPI_CMD_GET_OVER_VOLTAGE_PROTECTION_THRESHOLD, ":SOUR:VOLT:PROT:LEV?" },
343         { SCPI_CMD_SET_OVER_VOLTAGE_PROTECTION_THRESHOLD, ":SOUR:VOLT:PROT:LEV %.6f" },
344         { SCPI_CMD_GET_OVER_CURRENT_PROTECTION_ENABLED, ":SOUR:CURR:PROT:STAT?" },
345         { SCPI_CMD_SET_OVER_CURRENT_PROTECTION_ENABLE, ":SOUR:CURR:PROT:STAT ON" },
346         { SCPI_CMD_SET_OVER_CURRENT_PROTECTION_DISABLE, ":SOUR:CURR:PROT:STAT OFF" },
347         { SCPI_CMD_GET_OVER_CURRENT_PROTECTION_ACTIVE, ":SOUR:CURR:PROT:TRIP?" },
348 };
349
350 SR_PRIV const struct scpi_pps pps_profiles[] = {
351         /* Chroma 61604 */
352         { "Chroma", "61604", 0,
353                 ARRAY_AND_SIZE(chroma_61604_devopts),
354                 ARRAY_AND_SIZE(chroma_61604_devopts_cg),
355                 ARRAY_AND_SIZE(chroma_61604_ch),
356                 ARRAY_AND_SIZE(chroma_61604_cg),
357                 ARRAY_AND_SIZE(chroma_61604_cmd),
358                 .probe_channels = NULL,
359         },
360         /* HP 6632B */
361         { "HP", "6632B", 0,
362                 ARRAY_AND_SIZE(hp_6632b_devopts),
363                 ARRAY_AND_SIZE(devopts_none),
364                 ARRAY_AND_SIZE(hp_6632b_ch),
365                 ARRAY_AND_SIZE(hp_6632b_cg),
366                 ARRAY_AND_SIZE(hp_6632b_cmd),
367                 .probe_channels = NULL,
368         },
369
370         /* Rigol DP800 series */
371         { "Rigol", "^DP821A$", PPS_OTP,
372                 ARRAY_AND_SIZE(rigol_dp800_devopts),
373                 ARRAY_AND_SIZE(rigol_dp800_devopts_cg),
374                 ARRAY_AND_SIZE(rigol_dp821a_ch),
375                 ARRAY_AND_SIZE(rigol_dp820_cg),
376                 ARRAY_AND_SIZE(rigol_dp800_cmd),
377                 .probe_channels = NULL,
378         },
379         { "Rigol", "^DP831A$", PPS_OTP,
380                 ARRAY_AND_SIZE(rigol_dp800_devopts),
381                 ARRAY_AND_SIZE(rigol_dp800_devopts_cg),
382                 ARRAY_AND_SIZE(rigol_dp831_ch),
383                 ARRAY_AND_SIZE(rigol_dp830_cg),
384                 ARRAY_AND_SIZE(rigol_dp800_cmd),
385                 .probe_channels = NULL,
386         },
387         { "Rigol", "^(DP832|DP832A)$", PPS_OTP,
388                 ARRAY_AND_SIZE(rigol_dp800_devopts),
389                 ARRAY_AND_SIZE(rigol_dp800_devopts_cg),
390                 ARRAY_AND_SIZE(rigol_dp832_ch),
391                 ARRAY_AND_SIZE(rigol_dp830_cg),
392                 ARRAY_AND_SIZE(rigol_dp800_cmd),
393                 .probe_channels = NULL,
394         },
395
396         /* Philips/Fluke PM2800 series */
397         { "Philips", "^PM28[13][123]/[01234]{1,2}$", 0,
398                 ARRAY_AND_SIZE(philips_pm2800_devopts),
399                 ARRAY_AND_SIZE(philips_pm2800_devopts_cg),
400                 NULL, 0,
401                 NULL, 0,
402                 ARRAY_AND_SIZE(philips_pm2800_cmd),
403                 philips_pm2800_probe_channels,
404         },
405 };
406
407 SR_PRIV unsigned int num_pps_profiles = ARRAY_SIZE(pps_profiles);