libsigrok/hardware/demo/demo.c

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/*
* This file is part of the sigrok project.
*
* Copyright (C) 2010 Uwe Hermann <uwe@hermann-uwe.de>
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* Copyright (C) 2011 Olivier Fauchon <olivier@aixmarseille.com>
*
* This program is free software; you can redistribute it and/or modify
* it under the terms of the GNU General Public License as published by
* the Free Software Foundation; either version 2 of the License, or
* (at your option) any later version.
*
* This program is distributed in the hope that it will be useful,
* but WITHOUT ANY WARRANTY; without even the implied warranty of
* MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
* GNU General Public License for more details.
*
* You should have received a copy of the GNU General Public License
* along with this program; if not, write to the Free Software
* Foundation, Inc., 51 Franklin St, Fifth Floor, Boston, MA 02110-1301 USA
*/
#include <stdlib.h>
#include <unistd.h>
#include <string.h>
#ifdef _WIN32
#include <io.h>
#include <fcntl.h>
#define pipe(fds) _pipe(fds, 4096, _O_BINARY)
#endif
#include "sigrok.h"
#include "sigrok-internal.h"
/* TODO: Number of probes should be configurable. */
#define NUM_PROBES 8
#define DEMONAME "Demo device"
/* The size of chunks to send through the session bus. */
/* TODO: Should be configurable. */
#define BUFSIZE 4096
/* Supported patterns which we can generate */
enum {
/**
* Pattern which spells "sigrok" using '0's (with '1's as "background")
* when displayed using the 'bits' output format.
*/
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PATTERN_SIGROK,
/** Pattern which consists of (pseudo-)random values on all probes. */
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PATTERN_RANDOM,
/**
* Pattern which consists of incrementing numbers.
* TODO: Better description.
*/
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PATTERN_INC,
/** Pattern where all probes have a low logic state. */
PATTERN_ALL_LOW,
/** Pattern where all probes have a high logic state. */
PATTERN_ALL_HIGH,
};
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/* FIXME: Should not be global. */
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SR_PRIV GIOChannel *channels[2];
struct databag {
int pipe_fds[2];
uint8_t sample_generator;
uint8_t thread_running;
uint64_t samples_counter;
int device_index;
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gpointer session_data;
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GTimer *timer;
};
static int capabilities[] = {
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SR_HWCAP_LOGIC_ANALYZER,
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SR_HWCAP_DEMO_DEVICE,
SR_HWCAP_SAMPLERATE,
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SR_HWCAP_PATTERN_MODE,
SR_HWCAP_LIMIT_SAMPLES,
SR_HWCAP_LIMIT_MSEC,
SR_HWCAP_CONTINUOUS,
};
static struct sr_samplerates samplerates = {
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SR_HZ(1),
SR_GHZ(1),
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SR_HZ(1),
NULL,
};
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static const char *pattern_strings[] = {
"sigrok",
"random",
"incremental",
"all-low",
"all-high",
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NULL,
};
static const char *probe_names[NUM_PROBES + 1] = {
"0",
"1",
"2",
"3",
"4",
"5",
"6",
"7",
NULL,
};
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static uint8_t pattern_sigrok[] = {
0x4c, 0x92, 0x92, 0x92, 0x64, 0x00, 0x00, 0x00,
0x82, 0xfe, 0xfe, 0x82, 0x00, 0x00, 0x00, 0x00,
0x7c, 0x82, 0x82, 0x92, 0x74, 0x00, 0x00, 0x00,
0xfe, 0x12, 0x12, 0x32, 0xcc, 0x00, 0x00, 0x00,
0x7c, 0x82, 0x82, 0x82, 0x7c, 0x00, 0x00, 0x00,
0xfe, 0x10, 0x28, 0x44, 0x82, 0x00, 0x00, 0x00,
0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
0xbe, 0xbe, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
};
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/* List of struct sr_device_instance, maintained by opendev()/closedev(). */
static GSList *device_instances = NULL;
static uint64_t cur_samplerate = SR_KHZ(200);
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static uint64_t limit_samples = 0;
static uint64_t limit_msec = 0;
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static int default_pattern = PATTERN_SIGROK;
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static GThread *my_thread;
static int thread_running;
static int hw_stop_acquisition(int device_index, gpointer session_data);
static int hw_init(const char *deviceinfo)
{
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struct sr_device_instance *sdi;
/* Avoid compiler warnings. */
(void)deviceinfo;
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sdi = sr_device_instance_new(0, SR_ST_ACTIVE, DEMONAME, NULL, NULL);
if (!sdi) {
sr_err("demo: %s: sr_device_instance_new failed", __func__);
return 0;
}
device_instances = g_slist_append(device_instances, sdi);
return 1;
}
static int hw_opendev(int device_index)
{
/* Avoid compiler warnings. */
(void)device_index;
/* Nothing needed so far. */
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return SR_OK;
}
static int hw_closedev(int device_index)
{
/* Avoid compiler warnings. */
(void)device_index;
/* Nothing needed so far. */
return SR_OK;
}
static void hw_cleanup(void)
{
/* Nothing needed so far. */
}
static void *hw_get_device_info(int device_index, int device_info_id)
{
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struct sr_device_instance *sdi;
void *info = NULL;
if (!(sdi = sr_get_device_instance(device_instances, device_index))) {
sr_err("demo: %s: sdi was NULL", __func__);
return NULL;
}
switch (device_info_id) {
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case SR_DI_INSTANCE:
info = sdi;
break;
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case SR_DI_NUM_PROBES:
info = GINT_TO_POINTER(NUM_PROBES);
break;
case SR_DI_PROBE_NAMES:
info = probe_names;
break;
case SR_DI_SAMPLERATES:
info = &samplerates;
break;
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case SR_DI_CUR_SAMPLERATE:
info = &cur_samplerate;
break;
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case SR_DI_PATTERNMODES:
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info = &pattern_strings;
break;
}
return info;
}
static int hw_get_status(int device_index)
{
/* Avoid compiler warnings. */
(void)device_index;
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return SR_ST_ACTIVE;
}
static int *hw_get_capabilities(void)
{
return capabilities;
}
static int hw_set_configuration(int device_index, int capability, void *value)
{
int ret;
char *stropt;
/* Avoid compiler warnings. */
(void)device_index;
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if (capability == SR_HWCAP_PROBECONFIG) {
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/* Nothing to do, but must be supported */
ret = SR_OK;
} else if (capability == SR_HWCAP_SAMPLERATE) {
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cur_samplerate = *(uint64_t *)value;
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sr_dbg("demo: %s: setting samplerate to %" PRIu64, __func__,
cur_samplerate);
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ret = SR_OK;
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} else if (capability == SR_HWCAP_LIMIT_SAMPLES) {
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limit_samples = *(uint64_t *)value;
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sr_dbg("demo: %s: setting limit_samples to %" PRIu64, __func__,
limit_samples);
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ret = SR_OK;
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} else if (capability == SR_HWCAP_LIMIT_MSEC) {
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limit_msec = *(uint64_t *)value;
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sr_dbg("demo: %s: setting limit_msec to %" PRIu64, __func__,
limit_msec);
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ret = SR_OK;
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} else if (capability == SR_HWCAP_PATTERN_MODE) {
stropt = value;
ret = SR_OK;
if (!strcmp(stropt, "sigrok")) {
default_pattern = PATTERN_SIGROK;
} else if (!strcmp(stropt, "random")) {
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default_pattern = PATTERN_RANDOM;
} else if (!strcmp(stropt, "incremental")) {
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default_pattern = PATTERN_INC;
} else if (!strcmp(stropt, "all-low")) {
default_pattern = PATTERN_ALL_LOW;
} else if (!strcmp(stropt, "all-high")) {
default_pattern = PATTERN_ALL_HIGH;
} else {
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ret = SR_ERR;
}
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sr_dbg("demo: %s: setting pattern to %d", __func__,
default_pattern);
} else {
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ret = SR_ERR;
}
return ret;
}
static void samples_generator(uint8_t *buf, uint64_t size, void *data)
{
static uint64_t p = 0;
struct databag *mydata = data;
uint64_t i;
/* TODO: Needed? */
memset(buf, 0, size);
switch (mydata->sample_generator) {
case PATTERN_SIGROK: /* sigrok pattern */
for (i = 0; i < size; i++) {
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*(buf + i) = ~(pattern_sigrok[p] >> 1);
if (++p == 64)
p = 0;
}
break;
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case PATTERN_RANDOM: /* Random */
for (i = 0; i < size; i++)
*(buf + i) = (uint8_t)(rand() & 0xff);
break;
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case PATTERN_INC: /* Simple increment */
for (i = 0; i < size; i++)
*(buf + i) = i;
break;
case PATTERN_ALL_LOW: /* All probes are low */
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memset(buf, 0x00, size);
break;
case PATTERN_ALL_HIGH: /* All probes are high */
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memset(buf, 0xff, size);
break;
default:
/* TODO: Error handling. */
break;
}
}
/* Thread function */
static void thread_func(void *data)
{
struct databag *mydata = data;
uint8_t buf[BUFSIZE];
uint64_t nb_to_send = 0;
int bytes_written;
double time_cur, time_last, time_diff;
time_last = g_timer_elapsed(mydata->timer, NULL);
while (thread_running) {
/* Rate control */
time_cur = g_timer_elapsed(mydata->timer, NULL);
time_diff = time_cur - time_last;
time_last = time_cur;
nb_to_send = cur_samplerate * time_diff;
if (limit_samples) {
nb_to_send = MIN(nb_to_send,
limit_samples - mydata->samples_counter);
}
/* Make sure we don't overflow. */
nb_to_send = MIN(nb_to_send, BUFSIZE);
if (nb_to_send) {
samples_generator(buf, nb_to_send, data);
mydata->samples_counter += nb_to_send;
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g_io_channel_write_chars(channels[1], (gchar *)&buf,
nb_to_send, (gsize *)&bytes_written, NULL);
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}
/* Check if we're done. */
if ((limit_msec && time_cur * 1000 > limit_msec) ||
(limit_samples && mydata->samples_counter >= limit_samples))
{
close(mydata->pipe_fds[1]);
thread_running = 0;
}
g_usleep(10);
}
}
/* Callback handling data */
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static int receive_data(int fd, int revents, void *session_data)
{
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struct sr_datafeed_packet packet;
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struct sr_datafeed_logic logic;
static uint64_t samples_received = 0;
unsigned char c[BUFSIZE];
gsize z;
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/* Avoid compiler warnings. */
(void)fd;
(void)revents;
do {
g_io_channel_read_chars(channels[0],
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(gchar *)&c, BUFSIZE, &z, NULL);
if (z > 0) {
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packet.type = SR_DF_LOGIC;
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packet.payload = &logic;
logic.length = z;
logic.unitsize = 1;
logic.data = c;
sr_session_bus(session_data, &packet);
samples_received += z;
}
} while (z > 0);
if (!thread_running && z <= 0) {
/* Make sure we don't receive more packets. */
g_io_channel_close(channels[0]);
/* Send last packet. */
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packet.type = SR_DF_END;
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sr_session_bus(session_data, &packet);
return FALSE;
}
return TRUE;
}
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static int hw_start_acquisition(int device_index, gpointer session_data)
{
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struct sr_datafeed_packet *packet;
struct sr_datafeed_header *header;
struct databag *mydata;
/* TODO: 'mydata' is never g_free()'d? */
if (!(mydata = g_try_malloc(sizeof(struct databag)))) {
sr_err("demo: %s: mydata malloc failed", __func__);
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return SR_ERR_MALLOC;
}
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mydata->sample_generator = default_pattern;
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mydata->session_data = session_data;
mydata->device_index = device_index;
mydata->samples_counter = 0;
if (pipe(mydata->pipe_fds)) {
/* TODO: Better error message. */
sr_err("demo: %s: pipe() failed", __func__);
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return SR_ERR;
}
channels[0] = g_io_channel_unix_new(mydata->pipe_fds[0]);
channels[1] = g_io_channel_unix_new(mydata->pipe_fds[1]);
/* Set channel encoding to binary (default is UTF-8). */
g_io_channel_set_encoding(channels[0], NULL, NULL);
g_io_channel_set_encoding(channels[1], NULL, NULL);
/* Make channels to unbuffered. */
g_io_channel_set_buffered(channels[0], FALSE);
g_io_channel_set_buffered(channels[1], FALSE);
sr_source_add(mydata->pipe_fds[0], G_IO_IN | G_IO_ERR, 40,
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receive_data, session_data);
/* Run the demo thread. */
g_thread_init(NULL);
/* This must to be done between g_thread_init() & g_thread_create(). */
mydata->timer = g_timer_new();
thread_running = 1;
my_thread =
g_thread_create((GThreadFunc)thread_func, mydata, TRUE, NULL);
if (!my_thread) {
sr_err("demo: %s: g_thread_create failed", __func__);
return SR_ERR; /* TODO */
}
if (!(packet = g_try_malloc(sizeof(struct sr_datafeed_packet)))) {
sr_err("demo: %s: packet malloc failed", __func__);
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return SR_ERR_MALLOC;
}
if (!(header = g_try_malloc(sizeof(struct sr_datafeed_header)))) {
sr_err("demo: %s: header malloc failed", __func__);
return SR_ERR_MALLOC;
}
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packet->type = SR_DF_HEADER;
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packet->payload = header;
header->feed_version = 1;
gettimeofday(&header->starttime, NULL);
header->samplerate = cur_samplerate;
header->num_logic_probes = NUM_PROBES;
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sr_session_bus(session_data, packet);
g_free(header);
g_free(packet);
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return SR_OK;
}
static int hw_stop_acquisition(int device_index, gpointer session_data)
{
/* Avoid compiler warnings. */
(void)device_index;
(void)session_data;
/* Stop generate thread. */
thread_running = 0;
return SR_OK;
}
SR_PRIV struct sr_device_plugin demo_plugin_info = {
.name = "demo",
.longname = "Demo driver and pattern generator",
.api_version = 1,
.init = hw_init,
.cleanup = hw_cleanup,
.opendev = hw_opendev,
.closedev = hw_closedev,
.get_device_info = hw_get_device_info,
.get_status = hw_get_status,
.get_capabilities = hw_get_capabilities,
.set_configuration = hw_set_configuration,
.start_acquisition = hw_start_acquisition,
.stop_acquisition = hw_stop_acquisition,
};