mirror of
https://github.com/DreamSourceLab/DSView.git
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342 lines
10 KiB
C
342 lines
10 KiB
C
/*
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* This file is part of the libsigrok project.
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*
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* Copyright (C) 2011 Uwe Hermann <uwe@hermann-uwe.de>
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*
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* This program is free software; you can redistribute it and/or modify
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* it under the terms of the GNU General Public License as published by
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* the Free Software Foundation; either version 2 of the License, or
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* (at your option) any later version.
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*
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* This program is distributed in the hope that it will be useful,
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* but WITHOUT ANY WARRANTY; without even the implied warranty of
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* MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
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* GNU General Public License for more details.
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*
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* You should have received a copy of the GNU General Public License
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* along with this program; if not, write to the Free Software
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* Foundation, Inc., 51 Franklin St, Fifth Floor, Boston, MA 02110-1301 USA
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*/
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#include "../libsigrok-internal.h"
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#include <stdlib.h>
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#include <string.h>
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#include <glib.h>
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#include "../config.h" /* Needed for PACKAGE_STRING and others. */
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#include "../log.h"
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#include <stdio.h>
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#undef LOG_PREFIX
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#define LOG_PREFIX "csv: "
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struct context {
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unsigned int num_enabled_channels;
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uint64_t samplerate;
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uint64_t limit_samples;
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char separator;
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gboolean header_done;
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int *channel_index;
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int *channel_unit;
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float *channel_scale;
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uint16_t *channel_offset;
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double *channel_mmin;
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double *channel_mmax;
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uint32_t ref_min;
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uint32_t ref_max;
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uint64_t mask;
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uint64_t pre_data;
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uint64_t index;
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int type;
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};
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/*
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* TODO:
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* - Option to specify delimiter character and/or string.
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* - Option to (not) print metadata as comments.
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* - Option to specify the comment character(s), e.g. # or ; or C/C++-style.
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* - Option to (not) print samplenumber / time as extra column.
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* - Option to "compress" output (only print changed samples, VCD-like).
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* - Option to print comma-separated bits, or whole bytes/words (for 8/16
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* channel LAs) as ASCII/hex etc. etc.
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* - Trigger support.
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*/
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static int init(struct sr_output *o, GHashTable *options)
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{
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struct context *ctx = NULL;
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struct sr_channel *ch;
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GSList *l;
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int i;
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float range;
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if (!o || !o->sdi)
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return SR_ERR_ARG;
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ctx = malloc(sizeof(struct context));
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if (ctx == NULL){
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sr_err("%s,ERROR:failed to alloc memory.", __func__);
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return SR_ERR;
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}
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memset(ctx, 0, sizeof(struct context));
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o->priv = ctx;
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ctx->separator = ',';
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ctx->mask = 0;
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ctx->index = 0;
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ctx->type = g_variant_get_int16(g_hash_table_lookup(options, "type"));
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/* Get the number of channels, and the unitsize. */
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for (l = o->sdi->channels; l; l = l->next) {
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ch = l->data;
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if (ch->type != ctx->type)
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continue;
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if (!ch->enabled)
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continue;
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ctx->num_enabled_channels++;
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}
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ctx->channel_index = malloc(sizeof(int) * ctx->num_enabled_channels);
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ctx->channel_unit = malloc(sizeof(int) * ctx->num_enabled_channels);
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ctx->channel_scale = malloc(sizeof(float) * ctx->num_enabled_channels);
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ctx->channel_offset = malloc(sizeof(uint16_t) * ctx->num_enabled_channels);
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ctx->channel_mmax = malloc(sizeof(double) * ctx->num_enabled_channels);
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ctx->channel_mmin = malloc(sizeof(double) * ctx->num_enabled_channels);
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if (ctx->channel_index == NULL || ctx->channel_mmin == NULL){
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sr_err("%s,ERROR:failed to alloc memory.", __func__);
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return SR_ERR;
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}
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/* Once more to map the enabled channels. */
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for (i = 0, l = o->sdi->channels; l; l = l->next) {
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ch = l->data;
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if (ch->type != ctx->type)
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continue;
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if (!ch->enabled)
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continue;
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ctx->channel_index[i] = ch->index;
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//ctx->mask |= (1 << ch->index);
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ctx->mask |= (1 << i);
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range = ch->vdiv * ch->vfactor * DS_CONF_DSO_VDIVS;
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ctx->channel_unit[i] = (range >= 5000000) ? 1000000 :
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(range >= 5000) ? 1000 : 1;
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ctx->channel_scale[i] = range / ctx->channel_unit[i];
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ctx->channel_offset[i] = ch->hw_offset;
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ctx->channel_mmax[i] = ch->map_max;
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ctx->channel_mmin[i] = ch->map_min;
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i++;
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}
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return SR_OK;
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}
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static GString *gen_header(const struct sr_output *o)
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{
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struct context *ctx;
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struct sr_channel *ch;
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GString *header;
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GSList *l;
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time_t t;
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int num_channels, i;
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ctx = o->priv;
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header = g_string_sized_new(512);
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/* Some metadata */
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t = time(NULL);
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g_string_append_printf(header, "; CSV, generated by %s on %s",
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PACKAGE_STRING, ctime(&t));
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/* Columns / channels */
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if (ctx->type == SR_CHANNEL_LOGIC)
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num_channels = g_slist_length(o->sdi->channels);
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else
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num_channels = ctx->num_enabled_channels;
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g_string_append_printf(header, "; Channels (%d/%d)\n",
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ctx->num_enabled_channels, num_channels);
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char *samplerate_s = sr_samplerate_string(ctx->samplerate);
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g_string_append_printf(header, "; Sample rate: %s\n", samplerate_s);
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g_free(samplerate_s);
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char *depth_s = sr_samplecount_string(ctx->limit_samples);
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g_string_append_printf(header, "; Sample count: %s\n", depth_s);
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g_free(depth_s);
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if (ctx->type == SR_CHANNEL_LOGIC)
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g_string_append_printf(header, "Time(s),");
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for (i = 0, l = o->sdi->channels; l; l = l->next, i++) {
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ch = l->data;
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if (ch->type != ctx->type)
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continue;
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if (!ch->enabled)
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continue;
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if (ctx->type == SR_CHANNEL_DSO) {
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char *unit_s = ctx->channel_unit[i] >= 1000000 ? "kV" :
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ctx->channel_unit[i] >= 1000 ? "V" : "mV";
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g_string_append_printf(header, " %s (Unit: %s),", ch->name, unit_s);
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} else if (ctx->type == SR_CHANNEL_ANALOG) {
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g_string_append_printf(header, " %s (Unit: %s),", ch->name, ch->map_unit);
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} else {
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g_string_append_printf(header, " %s,", ch->name);
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}
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}
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if (o->sdi->channels)
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/* Drop last separator. */
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g_string_truncate(header, header->len - 1);
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g_string_append_printf(header, "\n");
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return header;
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}
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static int receive(const struct sr_output *o, const struct sr_datafeed_packet *packet,
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GString **out)
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{
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const struct sr_datafeed_meta *meta;
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const struct sr_datafeed_logic *logic;
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const struct sr_datafeed_dso *dso;
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const struct sr_datafeed_analog *analog;
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const struct sr_config *src;
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GSList *l;
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struct context *ctx;
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int idx;
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uint64_t i, j;
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unsigned char *p, c;
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double tmpv;
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*out = NULL;
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if (!o || !o->sdi)
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return SR_ERR_ARG;
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if (!(ctx = o->priv))
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return SR_ERR_ARG;
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switch (packet->type) {
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case SR_DF_META:
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meta = packet->payload;
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for (l = meta->config; l; l = l->next) {
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src = l->data;
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if (src->key == SR_CONF_SAMPLERATE)
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ctx->samplerate = g_variant_get_uint64(src->data);
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else if (src->key == SR_CONF_LIMIT_SAMPLES)
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ctx->limit_samples = g_variant_get_uint64(src->data);
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else if (src->key == SR_CONF_REF_MIN)
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ctx->ref_min = g_variant_get_uint32(src->data);
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else if (src->key == SR_CONF_REF_MAX)
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ctx->ref_max = g_variant_get_uint32(src->data);
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}
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break;
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case SR_DF_LOGIC:
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logic = packet->payload;
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if (!ctx->header_done) {
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*out = gen_header(o);
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ctx->header_done = TRUE;
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} else {
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*out = g_string_sized_new(512);
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}
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for (i = 0; i <= logic->length - logic->unitsize; i += logic->unitsize) {
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ctx->index++;
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if (packet->bExportOriginalData == 0){
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if (ctx->index > 1 && (*(uint64_t *)(logic->data + i) & ctx->mask) == ctx->pre_data)
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continue;
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}
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tmpv = (double)(ctx->index-1) / (double)ctx->samplerate;
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g_string_append_printf(*out, "%0.15g", tmpv);
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for (j = 0; j < ctx->num_enabled_channels; j++) {
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idx = j;
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p = logic->data + i + idx / 8;
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c = *p & (1 << (idx % 8));
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g_string_append_c(*out, ctx->separator);
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g_string_append_c(*out, c ? '1' : '0');
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}
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g_string_append_printf(*out, "\n");
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ctx->pre_data = (*(uint64_t *)(logic->data + i) & ctx->mask);
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}
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break;
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case SR_DF_DSO:
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dso = packet->payload;
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if (!ctx->header_done) {
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*out = gen_header(o);
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ctx->header_done = TRUE;
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} else {
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*out = g_string_sized_new(512);
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}
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for (i = 0; i < (uint64_t)dso->num_samples; i++) {
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for (j = 0; j < ctx->num_enabled_channels; j++) {
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idx = ctx->channel_index[j];
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p = dso->data + i * ctx->num_enabled_channels + idx * ((ctx->num_enabled_channels > 1) ? 1 : 0);
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g_string_append_printf(*out, "%0.5f", (ctx->channel_offset[j] - *p) *
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ctx->channel_scale[j] /
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(ctx->ref_max - ctx->ref_min));
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g_string_append_c(*out, ctx->separator);
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}
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/* Drop last separator. */
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g_string_truncate(*out, (*out)->len - 1);
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g_string_append_printf(*out, "\n");
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}
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break;
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case SR_DF_ANALOG:
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analog = packet->payload;
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if (!ctx->header_done) {
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*out = gen_header(o);
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ctx->header_done = TRUE;
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} else {
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*out = g_string_sized_new(512);
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}
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for (i = 0; i < (uint64_t)analog->num_samples; i++) {
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for (j = 0; j < ctx->num_enabled_channels; j++) {
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idx = ctx->channel_index[j];
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p = analog->data + i * ctx->num_enabled_channels + idx * ((ctx->num_enabled_channels > 1) ? 1 : 0);
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g_string_append_printf(*out, "%0.5f", (ctx->channel_offset[j] - *p) *
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(ctx->channel_mmax[j] - ctx->channel_mmin[j]) /
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(ctx->ref_max - ctx->ref_min));
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g_string_append_c(*out, ctx->separator);
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}
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/* Drop last separator. */
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g_string_truncate(*out, (*out)->len - 1);
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g_string_append_printf(*out, "\n");
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}
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break;
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}
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return SR_OK;
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}
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static int cleanup(struct sr_output *o)
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{
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struct context *ctx;
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if (!o || !o->sdi)
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return SR_ERR_ARG;
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if (o->priv) {
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ctx = o->priv;
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g_free(ctx->channel_index);
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g_free(o->priv);
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o->priv = NULL;
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}
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return SR_OK;
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}
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SR_PRIV struct sr_output_module output_csv = {
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.id = "csv",
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.name = "CSV",
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.desc = "Comma-separated values",
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.exts = (const char*[]){"csv", NULL},
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.options = NULL,
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.init = init,
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.receive = receive,
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.cleanup = cleanup,
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};
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