A dive computer typically writes its ringbuffer in the forward direction. Thus, when downloading the dives in reverse order (newest first), the ringbuffer needs to be read in the backward direction. However, some dive computers already re-arrange the data in the correct order, which means the data needs to be read in the opposite direction. To support this case without drastic changes in the logic, the rbstream implementation is extended to also support reading in the forward direction.
937 lines
27 KiB
C
937 lines
27 KiB
C
/*
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* libdivecomputer
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*
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* Copyright (C) 2010 Jef Driesen
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*
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* This library is free software; you can redistribute it and/or
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* modify it under the terms of the GNU Lesser General Public
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* License as published by the Free Software Foundation; either
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* version 2.1 of the License, or (at your option) any later version.
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*
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* This library 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 GNU
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* Lesser General Public License for more details.
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*
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* You should have received a copy of the GNU Lesser General Public
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* License along with this library; if not, write to the Free Software
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* Foundation, Inc., 51 Franklin Street, Fifth Floor, Boston,
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* MA 02110-1301 USA
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*/
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#include <string.h> // memcpy, memcmp
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#include <stdlib.h> // malloc, free
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#include "mares_iconhd.h"
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#include "context-private.h"
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#include "device-private.h"
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#include "array.h"
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#include "rbstream.h"
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#include "platform.h"
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#include "packet.h"
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#define ISINSTANCE(device) dc_device_isinstance((device), &mares_iconhd_device_vtable)
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#define NSTEPS 1000
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#define STEP(i,n) (NSTEPS * (i) / (n))
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#define MATRIX 0x0F
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#define SMART 0x000010
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#define SMARTAPNEA 0x010010
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#define ICONHD 0x14
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#define ICONHDNET 0x15
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#define PUCKPRO 0x18
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#define NEMOWIDE2 0x19
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#define GENIUS 0x1C
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#define PUCK2 0x1F
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#define QUADAIR 0x23
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#define SMARTAIR 0x24
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#define QUAD 0x29
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#define HORIZON 0x2C
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#define MAXRETRIES 4
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#define ACK 0xAA
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#define EOF 0xEA
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#define XOR 0xA5
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#define CMD_VERSION 0xC2
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#define CMD_FLASHSIZE 0xB3
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#define CMD_READ 0xE7
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#define CMD_OBJ_INIT 0xBF
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#define CMD_OBJ_EVEN 0xAC
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#define CMD_OBJ_ODD 0xFE
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#define OBJ_LOGBOOK 0x2008
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#define OBJ_LOGBOOK_COUNT 0x01
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#define OBJ_DIVE 0x3000
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#define OBJ_DIVE_HEADER 0x02
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#define OBJ_DIVE_DATA 0x03
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#define AIR 0
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#define GAUGE 1
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#define NITROX 2
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#define FREEDIVE 3
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typedef struct mares_iconhd_layout_t {
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unsigned int memsize;
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unsigned int rb_profile_begin;
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unsigned int rb_profile_end;
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} mares_iconhd_layout_t;
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typedef struct mares_iconhd_model_t {
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unsigned char name[16 + 1];
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unsigned int id;
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} mares_iconhd_model_t;
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typedef struct mares_iconhd_device_t {
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dc_device_t base;
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dc_iostream_t *iostream;
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const mares_iconhd_layout_t *layout;
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unsigned char fingerprint[10];
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unsigned int fingerprint_size;
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unsigned char version[140];
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unsigned int model;
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unsigned int packetsize;
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} mares_iconhd_device_t;
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static dc_status_t mares_iconhd_device_set_fingerprint (dc_device_t *abstract, const unsigned char data[], unsigned int size);
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static dc_status_t mares_iconhd_device_read (dc_device_t *abstract, unsigned int address, unsigned char data[], unsigned int size);
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static dc_status_t mares_iconhd_device_dump (dc_device_t *abstract, dc_buffer_t *buffer);
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static dc_status_t mares_iconhd_device_foreach (dc_device_t *abstract, dc_dive_callback_t callback, void *userdata);
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static dc_status_t mares_iconhd_device_close (dc_device_t *abstract);
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static const dc_device_vtable_t mares_iconhd_device_vtable = {
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sizeof(mares_iconhd_device_t),
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DC_FAMILY_MARES_ICONHD,
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mares_iconhd_device_set_fingerprint, /* set_fingerprint */
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mares_iconhd_device_read, /* read */
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NULL, /* write */
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mares_iconhd_device_dump, /* dump */
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mares_iconhd_device_foreach, /* foreach */
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NULL, /* timesync */
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mares_iconhd_device_close /* close */
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};
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static const mares_iconhd_layout_t mares_iconhd_layout = {
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0x100000, /* memsize */
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0x00A000, /* rb_profile_begin */
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0x100000, /* rb_profile_end */
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};
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static const mares_iconhd_layout_t mares_iconhdnet_layout = {
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0x100000, /* memsize */
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0x00E000, /* rb_profile_begin */
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0x100000, /* rb_profile_end */
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};
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static const mares_iconhd_layout_t mares_genius_layout = {
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0x1000000, /* memsize */
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0x0100000, /* rb_profile_begin */
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0x1000000, /* rb_profile_end */
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};
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static const mares_iconhd_layout_t mares_matrix_layout = {
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0x40000, /* memsize */
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0x0A000, /* rb_profile_begin */
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0x3E000, /* rb_profile_end */
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};
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static const mares_iconhd_layout_t mares_nemowide2_layout = {
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0x40000, /* memsize */
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0x0A000, /* rb_profile_begin */
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0x40000, /* rb_profile_end */
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};
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static unsigned int
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mares_iconhd_get_model (mares_iconhd_device_t *device)
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{
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const mares_iconhd_model_t models[] = {
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{"Matrix", MATRIX},
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{"Smart", SMART},
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{"Smart Apnea", SMARTAPNEA},
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{"Icon HD", ICONHD},
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{"Icon AIR", ICONHDNET},
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{"Puck Pro", PUCKPRO},
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{"Nemo Wide 2", NEMOWIDE2},
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{"Genius", GENIUS},
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{"Puck 2", PUCK2},
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{"Quad Air", QUADAIR},
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{"Smart Air", SMARTAIR},
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{"Quad", QUAD},
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{"Horizon", HORIZON},
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};
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// Check the product name in the version packet against the list
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// with valid names, and return the corresponding model number.
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unsigned int model = 0;
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for (unsigned int i = 0; i < C_ARRAY_SIZE(models); ++i) {
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if (memcmp (device->version + 0x46, models[i].name, sizeof (models[i].name) - 1) == 0) {
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model = models[i].id;
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break;
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}
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}
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return model;
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}
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static dc_status_t
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mares_iconhd_packet (mares_iconhd_device_t *device,
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unsigned char cmd,
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const unsigned char data[], unsigned int size,
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unsigned char answer[], unsigned int asize)
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{
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dc_status_t status = DC_STATUS_SUCCESS;
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dc_device_t *abstract = (dc_device_t *) device;
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if (device_is_cancelled (abstract))
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return DC_STATUS_CANCELLED;
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// Send the command header to the dive computer.
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const unsigned char command[2] = {
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cmd, cmd ^ XOR,
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};
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status = dc_iostream_write (device->iostream, command, sizeof(command), NULL);
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if (status != DC_STATUS_SUCCESS) {
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ERROR (abstract->context, "Failed to send the command.");
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return status;
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}
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// Send the command payload to the dive computer.
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if (size) {
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status = dc_iostream_write (device->iostream, data, size, NULL);
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if (status != DC_STATUS_SUCCESS) {
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ERROR (abstract->context, "Failed to send the command.");
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return status;
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}
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}
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// Receive the header byte.
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unsigned char header[1] = {0};
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status = dc_iostream_read (device->iostream, header, sizeof (header), NULL);
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if (status != DC_STATUS_SUCCESS) {
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ERROR (abstract->context, "Failed to receive the answer.");
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return status;
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}
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// Verify the header byte.
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if (header[0] != ACK) {
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ERROR (abstract->context, "Unexpected answer byte.");
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return DC_STATUS_PROTOCOL;
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}
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// Read the packet.
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status = dc_iostream_read (device->iostream, answer, asize, NULL);
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if (status != DC_STATUS_SUCCESS) {
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ERROR (abstract->context, "Failed to receive the answer.");
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return status;
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}
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// Receive the trailer byte.
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unsigned char trailer[1] = {0};
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status = dc_iostream_read (device->iostream, trailer, sizeof (trailer), NULL);
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if (status != DC_STATUS_SUCCESS) {
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ERROR (abstract->context, "Failed to receive the answer.");
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return status;
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}
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// Verify the trailer byte.
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if (trailer[0] != EOF) {
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ERROR (abstract->context, "Unexpected answer byte.");
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return DC_STATUS_PROTOCOL;
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}
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return DC_STATUS_SUCCESS;
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}
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static dc_status_t
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mares_iconhd_transfer (mares_iconhd_device_t *device, unsigned char cmd, const unsigned char data[], unsigned int size, unsigned char answer[], unsigned int asize)
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{
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unsigned int nretries = 0;
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dc_status_t rc = DC_STATUS_SUCCESS;
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while ((rc = mares_iconhd_packet (device, cmd, data, size, answer, asize)) != DC_STATUS_SUCCESS) {
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// Automatically discard a corrupted packet,
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// and request a new one.
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if (rc != DC_STATUS_PROTOCOL && rc != DC_STATUS_TIMEOUT)
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return rc;
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// Abort if the maximum number of retries is reached.
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if (nretries++ >= MAXRETRIES)
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return rc;
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// Discard any garbage bytes.
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dc_iostream_sleep (device->iostream, 100);
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dc_iostream_purge (device->iostream, DC_DIRECTION_INPUT);
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}
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return DC_STATUS_SUCCESS;
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}
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static dc_status_t
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mares_iconhd_read_object(mares_iconhd_device_t *device, dc_event_progress_t *progress, dc_buffer_t *buffer, unsigned int index, unsigned int subindex)
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{
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dc_status_t status = DC_STATUS_SUCCESS;
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dc_device_t *abstract = (dc_device_t *) device;
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dc_transport_t transport = dc_iostream_get_transport (device->iostream);
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const unsigned int maxpacket = (transport == DC_TRANSPORT_BLE) ? 124 : 504;
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// Update and emit a progress event.
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unsigned int initial = 0;
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if (progress) {
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initial = progress->current;
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device_event_emit (abstract, DC_EVENT_PROGRESS, progress);
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}
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// Transfer the init packet.
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unsigned char rsp_init[16];
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unsigned char cmd_init[16] = {
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0x40,
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(index >> 0) & 0xFF,
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(index >> 8) & 0xFF,
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subindex & 0xFF
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};
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memset (cmd_init + 6, 0x00, sizeof(cmd_init) - 6);
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status = mares_iconhd_transfer (device, CMD_OBJ_INIT, cmd_init, sizeof (cmd_init), rsp_init, sizeof (rsp_init));
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if (status != DC_STATUS_SUCCESS) {
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ERROR (abstract->context, "Failed to transfer the init packet.");
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return status;
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}
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// Verify the packet header.
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if (memcmp (cmd_init + 1, rsp_init + 1, 3) != 0) {
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ERROR (abstract->context, "Unexpected packet header.");
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return DC_STATUS_PROTOCOL;
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}
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unsigned int nbytes = 0, size = 0;
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if (rsp_init[0] == 0x41) {
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// A large (and variable size) payload is split into multiple
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// data packets. The first packet contains only the total size
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// of the payload.
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size = array_uint32_le (rsp_init + 4);
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} else if (rsp_init[0] == 0x42) {
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// A short (and fixed size) payload is embedded into the first
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// data packet.
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size = sizeof(rsp_init) - 4;
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// Append the payload to the output buffer.
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if (!dc_buffer_append (buffer, rsp_init + 4, sizeof(rsp_init) - 4)) {
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ERROR (abstract->context, "Insufficient buffer space available.");
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return DC_STATUS_NOMEMORY;
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}
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nbytes += sizeof(rsp_init) - 4;
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} else {
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ERROR (abstract->context, "Unexpected packet type (%02x).", rsp_init[0]);
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return DC_STATUS_PROTOCOL;
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}
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// Update and emit a progress event.
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if (progress) {
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progress->current = initial + STEP (nbytes, size);
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device_event_emit (abstract, DC_EVENT_PROGRESS, progress);
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}
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unsigned int npackets = 0;
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while (nbytes < size) {
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// Get the command byte.
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unsigned char toggle = npackets % 2;
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unsigned char cmd = toggle == 0 ? CMD_OBJ_EVEN : CMD_OBJ_ODD;
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// Get the packet size.
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unsigned int len = size - nbytes;
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if (len > maxpacket) {
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len = maxpacket;
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}
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// Transfer the segment packet.
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unsigned char rsp_segment[1 + 504];
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status = mares_iconhd_transfer (device, cmd, NULL, 0, rsp_segment, len + 1);
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if (status != DC_STATUS_SUCCESS) {
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ERROR (abstract->context, "Failed to transfer the segment packet.");
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return status;
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}
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// Verify the packet header.
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if ((rsp_segment[0] & 0xF0) >> 4 != toggle) {
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ERROR (abstract->context, "Unexpected packet header (%02x).", rsp_segment[0]);
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return DC_STATUS_PROTOCOL;
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}
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// Append the payload to the output buffer.
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if (!dc_buffer_append (buffer, rsp_segment + 1, len)) {
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ERROR (abstract->context, "Insufficient buffer space available.");
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return DC_STATUS_NOMEMORY;
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}
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nbytes += len;
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npackets++;
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// Update and emit the progress events.
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if (progress) {
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progress->current = initial + STEP (nbytes, size);
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device_event_emit (abstract, DC_EVENT_PROGRESS, progress);
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}
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}
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return status;
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}
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dc_status_t
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mares_iconhd_device_open (dc_device_t **out, dc_context_t *context, dc_iostream_t *iostream)
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{
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dc_status_t status = DC_STATUS_SUCCESS;
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mares_iconhd_device_t *device = NULL;
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dc_transport_t transport = dc_iostream_get_transport (iostream);
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if (out == NULL)
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return DC_STATUS_INVALIDARGS;
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// Allocate memory.
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device = (mares_iconhd_device_t *) dc_device_allocate (context, &mares_iconhd_device_vtable);
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if (device == NULL) {
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ERROR (context, "Failed to allocate memory.");
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return DC_STATUS_NOMEMORY;
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}
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// Set the default values.
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device->layout = NULL;
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memset (device->fingerprint, 0, sizeof (device->fingerprint));
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device->fingerprint_size = sizeof (device->fingerprint);
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memset (device->version, 0, sizeof (device->version));
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device->model = 0;
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device->packetsize = 0;
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// Create the packet stream.
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if (transport == DC_TRANSPORT_BLE) {
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status = dc_packet_open (&device->iostream, context, iostream, 20, 20);
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if (status != DC_STATUS_SUCCESS) {
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ERROR (context, "Failed to create the packet stream.");
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goto error_free;
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}
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} else {
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device->iostream = iostream;
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}
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// Set the serial communication protocol (115200 8E1).
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status = dc_iostream_configure (device->iostream, 115200, 8, DC_PARITY_EVEN, DC_STOPBITS_ONE, DC_FLOWCONTROL_NONE);
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if (status != DC_STATUS_SUCCESS) {
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ERROR (context, "Failed to set the terminal attributes.");
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goto error_free_iostream;
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}
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// Set the timeout for receiving data (3000 ms).
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status = dc_iostream_set_timeout (device->iostream, 3000);
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if (status != DC_STATUS_SUCCESS) {
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ERROR (context, "Failed to set the timeout.");
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goto error_free_iostream;
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}
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// Clear the DTR line.
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status = dc_iostream_set_dtr (device->iostream, 0);
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if (status != DC_STATUS_SUCCESS) {
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ERROR (context, "Failed to clear the DTR line.");
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goto error_free_iostream;
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}
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// Clear the RTS line.
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status = dc_iostream_set_rts (device->iostream, 0);
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if (status != DC_STATUS_SUCCESS) {
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ERROR (context, "Failed to clear the RTS line.");
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goto error_free_iostream;
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}
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// Make sure everything is in a sane state.
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dc_iostream_purge (device->iostream, DC_DIRECTION_ALL);
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// Send the version command.
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status = mares_iconhd_transfer (device, CMD_VERSION, NULL, 0,
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device->version, sizeof (device->version));
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if (status != DC_STATUS_SUCCESS) {
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goto error_free_iostream;
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}
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// Autodetect the model using the version packet.
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device->model = mares_iconhd_get_model (device);
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// Read the size of the flash memory.
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unsigned int memsize = 0;
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if (device->model == QUAD) {
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unsigned char rsp_flash[4] = {0};
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status = mares_iconhd_transfer (device, CMD_FLASHSIZE, NULL, 0, rsp_flash, sizeof (rsp_flash));
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if (status != DC_STATUS_SUCCESS) {
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WARNING (context, "Failed to read the flash memory size.");
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} else {
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memsize = array_uint32_le (rsp_flash);
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DEBUG (context, "Flash memory size is %u bytes.", memsize);
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}
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}
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// Load the correct memory layout.
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switch (device->model) {
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case MATRIX:
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device->layout = &mares_matrix_layout;
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device->packetsize = 256;
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break;
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case PUCKPRO:
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case PUCK2:
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case NEMOWIDE2:
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case SMART:
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case SMARTAPNEA:
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device->layout = &mares_nemowide2_layout;
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device->packetsize = 256;
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break;
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case QUAD:
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if (memsize > 0x40000) {
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device->layout = &mares_iconhd_layout;
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} else {
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device->layout = &mares_nemowide2_layout;
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}
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device->packetsize = 256;
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break;
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case QUADAIR:
|
|
case SMARTAIR:
|
|
device->layout = &mares_iconhdnet_layout;
|
|
device->packetsize = 256;
|
|
break;
|
|
case GENIUS:
|
|
case HORIZON:
|
|
device->layout = &mares_genius_layout;
|
|
device->packetsize = 4096;
|
|
device->fingerprint_size = 4;
|
|
break;
|
|
case ICONHDNET:
|
|
device->layout = &mares_iconhdnet_layout;
|
|
device->packetsize = 4096;
|
|
break;
|
|
case ICONHD:
|
|
default:
|
|
device->layout = &mares_iconhd_layout;
|
|
device->packetsize = 4096;
|
|
break;
|
|
}
|
|
|
|
*out = (dc_device_t *) device;
|
|
|
|
return DC_STATUS_SUCCESS;
|
|
|
|
|
|
error_free_iostream:
|
|
if (transport == DC_TRANSPORT_BLE) {
|
|
dc_iostream_close (device->iostream);
|
|
}
|
|
error_free:
|
|
dc_device_deallocate ((dc_device_t *) device);
|
|
return status;
|
|
}
|
|
|
|
|
|
static dc_status_t
|
|
mares_iconhd_device_close (dc_device_t *abstract)
|
|
{
|
|
mares_iconhd_device_t *device = (mares_iconhd_device_t *) abstract;
|
|
|
|
// Close the packet stream.
|
|
if (dc_iostream_get_transport (device->iostream) == DC_TRANSPORT_BLE) {
|
|
return dc_iostream_close (device->iostream);
|
|
}
|
|
|
|
return DC_STATUS_SUCCESS;
|
|
}
|
|
|
|
|
|
static dc_status_t
|
|
mares_iconhd_device_set_fingerprint (dc_device_t *abstract, const unsigned char data[], unsigned int size)
|
|
{
|
|
mares_iconhd_device_t *device = (mares_iconhd_device_t *) abstract;
|
|
|
|
if (size && size != device->fingerprint_size)
|
|
return DC_STATUS_INVALIDARGS;
|
|
|
|
if (size)
|
|
memcpy (device->fingerprint, data, device->fingerprint_size);
|
|
else
|
|
memset (device->fingerprint, 0, device->fingerprint_size);
|
|
|
|
return DC_STATUS_SUCCESS;
|
|
}
|
|
|
|
|
|
static dc_status_t
|
|
mares_iconhd_device_read (dc_device_t *abstract, unsigned int address, unsigned char data[], unsigned int size)
|
|
{
|
|
dc_status_t rc = DC_STATUS_SUCCESS;
|
|
mares_iconhd_device_t *device = (mares_iconhd_device_t *) abstract;
|
|
|
|
unsigned int nbytes = 0;
|
|
while (nbytes < size) {
|
|
// Calculate the packet size.
|
|
unsigned int len = size - nbytes;
|
|
if (len > device->packetsize)
|
|
len = device->packetsize;
|
|
|
|
// Read the packet.
|
|
unsigned char command[] = {
|
|
(address ) & 0xFF,
|
|
(address >> 8) & 0xFF,
|
|
(address >> 16) & 0xFF,
|
|
(address >> 24) & 0xFF,
|
|
(len ) & 0xFF,
|
|
(len >> 8) & 0xFF,
|
|
(len >> 16) & 0xFF,
|
|
(len >> 24) & 0xFF};
|
|
rc = mares_iconhd_transfer (device, CMD_READ, command, sizeof (command), data, len);
|
|
if (rc != DC_STATUS_SUCCESS)
|
|
return rc;
|
|
|
|
nbytes += len;
|
|
address += len;
|
|
data += len;
|
|
}
|
|
|
|
return rc;
|
|
}
|
|
|
|
|
|
static dc_status_t
|
|
mares_iconhd_device_dump (dc_device_t *abstract, dc_buffer_t *buffer)
|
|
{
|
|
dc_status_t status = DC_STATUS_SUCCESS;
|
|
mares_iconhd_device_t *device = (mares_iconhd_device_t *) abstract;
|
|
|
|
// Allocate the required amount of memory.
|
|
if (!dc_buffer_resize (buffer, device->layout->memsize)) {
|
|
ERROR (abstract->context, "Insufficient buffer space available.");
|
|
return DC_STATUS_NOMEMORY;
|
|
}
|
|
|
|
// Emit a vendor event.
|
|
dc_event_vendor_t vendor;
|
|
vendor.data = device->version;
|
|
vendor.size = sizeof (device->version);
|
|
device_event_emit (abstract, DC_EVENT_VENDOR, &vendor);
|
|
|
|
// Download the memory dump.
|
|
status = device_dump_read (abstract, 0, dc_buffer_get_data (buffer),
|
|
dc_buffer_get_size (buffer), device->packetsize);
|
|
if (status != DC_STATUS_SUCCESS) {
|
|
return status;
|
|
}
|
|
|
|
// Emit a device info event.
|
|
unsigned char *data = dc_buffer_get_data (buffer);
|
|
dc_event_devinfo_t devinfo;
|
|
devinfo.model = device->model;
|
|
devinfo.firmware = 0;
|
|
devinfo.serial = array_uint32_le (data + 0x0C);
|
|
device_event_emit (abstract, DC_EVENT_DEVINFO, &devinfo);
|
|
|
|
return status;
|
|
}
|
|
|
|
static dc_status_t
|
|
mares_iconhd_device_foreach_raw (dc_device_t *abstract, dc_dive_callback_t callback, void *userdata)
|
|
{
|
|
dc_status_t rc = DC_STATUS_SUCCESS;
|
|
mares_iconhd_device_t *device = (mares_iconhd_device_t *) abstract;
|
|
|
|
const mares_iconhd_layout_t *layout = device->layout;
|
|
|
|
// Enable progress notifications.
|
|
dc_event_progress_t progress = EVENT_PROGRESS_INITIALIZER;
|
|
progress.maximum = layout->rb_profile_end - layout->rb_profile_begin;
|
|
device_event_emit (abstract, DC_EVENT_PROGRESS, &progress);
|
|
|
|
// Get the model code.
|
|
unsigned int model = device->model;
|
|
|
|
// Get the corresponding dive header size.
|
|
unsigned int header = 0x5C;
|
|
if (model == ICONHDNET)
|
|
header = 0x80;
|
|
else if (model == QUADAIR)
|
|
header = 0x84;
|
|
else if (model == SMART || model == SMARTAIR)
|
|
header = 4; // Type and number of samples only!
|
|
else if (model == SMARTAPNEA)
|
|
header = 6; // Type and number of samples only!
|
|
|
|
// Get the end of the profile ring buffer.
|
|
unsigned int eop = 0;
|
|
const unsigned int config[] = {0x2001, 0x3001};
|
|
for (unsigned int i = 0; i < sizeof (config) / sizeof (*config); ++i) {
|
|
// Read the pointer.
|
|
unsigned char pointer[4] = {0};
|
|
rc = mares_iconhd_device_read (abstract, config[i], pointer, sizeof (pointer));
|
|
if (rc != DC_STATUS_SUCCESS) {
|
|
ERROR (abstract->context, "Failed to read the memory.");
|
|
return rc;
|
|
}
|
|
|
|
// Update and emit a progress event.
|
|
progress.maximum += sizeof (pointer);
|
|
progress.current += sizeof (pointer);
|
|
device_event_emit (abstract, DC_EVENT_PROGRESS, &progress);
|
|
|
|
eop = array_uint32_le (pointer);
|
|
if (eop != 0xFFFFFFFF)
|
|
break;
|
|
}
|
|
if (eop < layout->rb_profile_begin || eop >= layout->rb_profile_end) {
|
|
if (eop == 0xFFFFFFFF)
|
|
return DC_STATUS_SUCCESS; // No dives available.
|
|
ERROR (abstract->context, "Ringbuffer pointer out of range (0x%08x).", eop);
|
|
return DC_STATUS_DATAFORMAT;
|
|
}
|
|
|
|
// Create the ringbuffer stream.
|
|
dc_rbstream_t *rbstream = NULL;
|
|
rc = dc_rbstream_new (&rbstream, abstract, 1, device->packetsize, layout->rb_profile_begin, layout->rb_profile_end, eop, DC_RBSTREAM_BACKWARD);
|
|
if (rc != DC_STATUS_SUCCESS) {
|
|
ERROR (abstract->context, "Failed to create the ringbuffer stream.");
|
|
return rc;
|
|
}
|
|
|
|
// Allocate memory for the dives.
|
|
unsigned char *buffer = (unsigned char *) malloc (layout->rb_profile_end - layout->rb_profile_begin);
|
|
if (buffer == NULL) {
|
|
ERROR (abstract->context, "Failed to allocate memory.");
|
|
dc_rbstream_free (rbstream);
|
|
return DC_STATUS_NOMEMORY;
|
|
}
|
|
|
|
unsigned int offset = layout->rb_profile_end - layout->rb_profile_begin;
|
|
while (offset >= header + 4) {
|
|
// Read the first part of the dive header.
|
|
rc = dc_rbstream_read (rbstream, &progress, buffer + offset - header, header);
|
|
if (rc != DC_STATUS_SUCCESS) {
|
|
ERROR (abstract->context, "Failed to read the dive.");
|
|
dc_rbstream_free (rbstream);
|
|
free (buffer);
|
|
return rc;
|
|
}
|
|
|
|
// Get the number of samples in the profile data.
|
|
unsigned int type = 0, nsamples = 0;
|
|
if (model == SMART || model == SMARTAPNEA || model == SMARTAIR) {
|
|
type = array_uint16_le (buffer + offset - header + 2);
|
|
nsamples = array_uint16_le (buffer + offset - header + 0);
|
|
} else {
|
|
type = array_uint16_le (buffer + offset - header + 0);
|
|
nsamples = array_uint16_le (buffer + offset - header + 2);
|
|
}
|
|
if (nsamples == 0xFFFF || type == 0xFFFF)
|
|
break;
|
|
|
|
// Get the dive mode.
|
|
unsigned int mode = type & 0x03;
|
|
|
|
// Get the header/sample size and fingerprint offset.
|
|
unsigned int headersize = 0x5C;
|
|
unsigned int samplesize = 8;
|
|
unsigned int fingerprint = 6;
|
|
if (model == ICONHDNET) {
|
|
headersize = 0x80;
|
|
samplesize = 12;
|
|
} else if (model == QUADAIR) {
|
|
headersize = 0x84;
|
|
samplesize = 12;
|
|
} else if (model == SMART) {
|
|
if (mode == FREEDIVE) {
|
|
headersize = 0x2E;
|
|
samplesize = 6;
|
|
fingerprint = 0x20;
|
|
} else {
|
|
headersize = 0x5C;
|
|
samplesize = 8;
|
|
fingerprint = 2;
|
|
}
|
|
} else if (model == SMARTAPNEA) {
|
|
headersize = 0x50;
|
|
samplesize = 14;
|
|
fingerprint = 0x40;
|
|
} else if (model == SMARTAIR) {
|
|
if (mode == FREEDIVE) {
|
|
headersize = 0x30;
|
|
samplesize = 6;
|
|
fingerprint = 0x22;
|
|
} else {
|
|
headersize = 0x84;
|
|
samplesize = 12;
|
|
fingerprint = 2;
|
|
}
|
|
}
|
|
if (offset < headersize)
|
|
break;
|
|
|
|
// Read the second part of the dive header.
|
|
rc = dc_rbstream_read (rbstream, &progress, buffer + offset - headersize, headersize - header);
|
|
if (rc != DC_STATUS_SUCCESS) {
|
|
ERROR (abstract->context, "Failed to read the dive.");
|
|
dc_rbstream_free (rbstream);
|
|
free (buffer);
|
|
return rc;
|
|
}
|
|
|
|
// Calculate the total number of bytes for this dive.
|
|
// If the buffer does not contain that much bytes, we reached the
|
|
// end of the ringbuffer. The current dive is incomplete (partially
|
|
// overwritten with newer data), and processing should stop.
|
|
unsigned int nbytes = 4 + headersize + nsamples * samplesize;
|
|
if (model == ICONHDNET || model == QUADAIR || (model == SMARTAIR && mode != FREEDIVE)) {
|
|
nbytes += (nsamples / 4) * 8;
|
|
} else if (model == SMARTAPNEA) {
|
|
unsigned int settings = array_uint16_le (buffer + offset - headersize + 0x1C);
|
|
unsigned int divetime = array_uint32_le (buffer + offset - headersize + 0x24);
|
|
unsigned int samplerate = 1 << ((settings >> 9) & 0x03);
|
|
|
|
nbytes += divetime * samplerate * 2;
|
|
}
|
|
if (offset < nbytes)
|
|
break;
|
|
|
|
// Read the remainder of the dive.
|
|
rc = dc_rbstream_read (rbstream, &progress, buffer + offset - nbytes, nbytes - headersize);
|
|
if (rc != DC_STATUS_SUCCESS) {
|
|
ERROR (abstract->context, "Failed to read the dive.");
|
|
dc_rbstream_free (rbstream);
|
|
free (buffer);
|
|
return rc;
|
|
}
|
|
|
|
// Move to the start of the dive.
|
|
offset -= nbytes;
|
|
|
|
// Verify that the length that is stored in the profile data
|
|
// equals the calculated length. If both values are different,
|
|
// we assume we reached the last dive.
|
|
unsigned int length = array_uint32_le (buffer + offset);
|
|
if (length != nbytes)
|
|
break;
|
|
|
|
unsigned char *fp = buffer + offset + length - headersize + fingerprint;
|
|
if (memcmp (fp, device->fingerprint, sizeof (device->fingerprint)) == 0) {
|
|
break;
|
|
}
|
|
|
|
if (callback && !callback (buffer + offset, length, fp, sizeof (device->fingerprint), userdata)) {
|
|
break;
|
|
}
|
|
}
|
|
|
|
dc_rbstream_free (rbstream);
|
|
free (buffer);
|
|
|
|
return rc;
|
|
}
|
|
|
|
static dc_status_t
|
|
mares_iconhd_device_foreach_object (dc_device_t *abstract, dc_dive_callback_t callback, void *userdata)
|
|
{
|
|
dc_status_t rc = DC_STATUS_SUCCESS;
|
|
mares_iconhd_device_t *device = (mares_iconhd_device_t *) abstract;
|
|
|
|
// Enable progress notifications.
|
|
dc_event_progress_t progress = EVENT_PROGRESS_INITIALIZER;
|
|
device_event_emit (abstract, DC_EVENT_PROGRESS, &progress);
|
|
|
|
// Allocate memory for the dives.
|
|
dc_buffer_t *buffer = dc_buffer_new (4096);
|
|
if (buffer == NULL) {
|
|
ERROR (abstract->context, "Failed to allocate memory.");
|
|
return DC_STATUS_NOMEMORY;
|
|
}
|
|
|
|
// Read the number of dives.
|
|
rc = mares_iconhd_read_object (device, NULL, buffer, OBJ_LOGBOOK, OBJ_LOGBOOK_COUNT);
|
|
if (rc != DC_STATUS_SUCCESS) {
|
|
ERROR (abstract->context, "Failed to read the number of dives.");
|
|
dc_buffer_free (buffer);
|
|
return rc;
|
|
}
|
|
|
|
if (dc_buffer_get_size (buffer) < 2) {
|
|
ERROR (abstract->context, "Unexpected number of bytes received (" DC_PRINTF_SIZE ").",
|
|
dc_buffer_get_size (buffer));
|
|
dc_buffer_free (buffer);
|
|
return DC_STATUS_PROTOCOL;
|
|
}
|
|
|
|
// Get the number of dives.
|
|
unsigned int ndives = array_uint16_le (dc_buffer_get_data(buffer));
|
|
|
|
// Update and emit a progress event.
|
|
progress.current = 1 * NSTEPS;
|
|
progress.maximum = (1 + ndives * 2) * NSTEPS;
|
|
device_event_emit (abstract, DC_EVENT_PROGRESS, &progress);
|
|
|
|
// Download the dives.
|
|
for (unsigned int i = 0; i < ndives; ++i) {
|
|
// Erase the buffer.
|
|
dc_buffer_clear (buffer);
|
|
|
|
// Read the dive header.
|
|
rc = mares_iconhd_read_object (device, &progress, buffer, OBJ_DIVE + i, OBJ_DIVE_HEADER);
|
|
if (rc != DC_STATUS_SUCCESS) {
|
|
ERROR (abstract->context, "Failed to read the dive header.");
|
|
break;
|
|
}
|
|
|
|
// Check the fingerprint data.
|
|
if (memcmp (dc_buffer_get_data (buffer) + 0x08, device->fingerprint, device->fingerprint_size) == 0) {
|
|
INFO (abstract->context, "Stopping due to detecting a matching fingerprint");
|
|
break;
|
|
}
|
|
|
|
// Read the dive data.
|
|
rc = mares_iconhd_read_object (device, &progress, buffer, OBJ_DIVE + i, OBJ_DIVE_DATA);
|
|
if (rc != DC_STATUS_SUCCESS) {
|
|
ERROR (abstract->context, "Failed to read the dive data.");
|
|
break;
|
|
}
|
|
|
|
const unsigned char *data = dc_buffer_get_data (buffer);
|
|
if (callback && !callback (data, dc_buffer_get_size (buffer), data + 0x08, device->fingerprint_size, userdata)) {
|
|
break;
|
|
}
|
|
}
|
|
|
|
dc_buffer_free(buffer);
|
|
|
|
return rc;
|
|
}
|
|
|
|
static dc_status_t
|
|
mares_iconhd_device_foreach (dc_device_t *abstract, dc_dive_callback_t callback, void *userdata)
|
|
{
|
|
dc_status_t rc = DC_STATUS_SUCCESS;
|
|
mares_iconhd_device_t *device = (mares_iconhd_device_t *) abstract;
|
|
|
|
// Emit a vendor event.
|
|
dc_event_vendor_t vendor;
|
|
vendor.data = device->version;
|
|
vendor.size = sizeof (device->version);
|
|
device_event_emit (abstract, DC_EVENT_VENDOR, &vendor);
|
|
|
|
// Read the serial number.
|
|
unsigned char serial[4] = {0};
|
|
rc = mares_iconhd_device_read (abstract, 0x0C, serial, sizeof (serial));
|
|
if (rc != DC_STATUS_SUCCESS) {
|
|
ERROR (abstract->context, "Failed to read the memory.");
|
|
return rc;
|
|
}
|
|
|
|
// Emit a device info event.
|
|
dc_event_devinfo_t devinfo;
|
|
devinfo.model = device->model;
|
|
devinfo.firmware = 0;
|
|
devinfo.serial = array_uint32_le (serial);
|
|
device_event_emit (abstract, DC_EVENT_DEVINFO, &devinfo);
|
|
|
|
if (device->model == GENIUS || device->model == HORIZON) {
|
|
return mares_iconhd_device_foreach_object (abstract, callback, userdata);
|
|
} else {
|
|
return mares_iconhd_device_foreach_raw (abstract, callback, userdata);
|
|
}
|
|
}
|