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c_src/spi_nif.c

// SPDX-FileCopyrightText: 2018 Frank Hunleth, Mark Sebald
//
// SPDX-License-Identifier: Apache-2.0
#include "spi_nif.h"
// SPI NIF Private data
struct SpiNifPriv {
ErlNifResourceType *spi_nif_res_type;
ERL_NIF_TERM atom_ok;
ERL_NIF_TERM atom_error;
};
// SPI NIF Resource.
struct SpiNifRes {
int fd;
struct SpiConfig config;
};
static void spi_dtor(ErlNifEnv *env, void *obj)
{
struct SpiNifRes *res = (struct SpiNifRes *) obj;
debug("spi_dtor");
if (res->fd >= 0) {
hal_spi_close(res->fd);
res->fd = -1;
}
}
static int spi_load(ErlNifEnv *env, void **priv_data, ERL_NIF_TERM info)
{
#ifdef DEBUG
#ifdef LOG_PATH
log_location = fopen(LOG_PATH, "w");
#endif
#endif
debug("spi_load");
struct SpiNifPriv *priv = enif_alloc(sizeof(struct SpiNifPriv));
if (!priv) {
error("Can't allocate spi priv");
return 1;
}
priv->spi_nif_res_type = enif_open_resource_type(env, NULL, "spi_nif_res_type", spi_dtor, ERL_NIF_RT_CREATE, NULL);
if (priv->spi_nif_res_type == NULL) {
error("open SPI NIF resource type failed");
return 1;
}
priv->atom_ok = enif_make_atom(env, "ok");
priv->atom_error = enif_make_atom(env, "error");
*priv_data = priv;
return 0;
}
static void spi_unload(ErlNifEnv *env, void *priv_data)
{
debug("spi_unload");
enif_free(priv_data);
}
static ERL_NIF_TERM spi_open(ErlNifEnv *env, int argc, const ERL_NIF_TERM argv[])
{
struct SpiNifPriv *priv = enif_priv_data(env);
char device[16];
char error_str[128];
struct SpiConfig config;
int fd;
debug("spi_open");
if (!enif_get_string(env, argv[0], device, sizeof(device), ERL_NIF_LATIN1))
return enif_make_badarg(env);
memset(&config, 0, sizeof(config));
if (!enif_get_uint(env, argv[1], &config.mode))
return enif_make_badarg(env);
if (!enif_get_uint(env, argv[2], &config.bits_per_word))
return enif_make_badarg(env);
if (!enif_get_uint(env, argv[3], &config.speed_hz))
return enif_make_badarg(env);
if (!enif_get_uint(env, argv[4], &config.delay_us))
return enif_make_badarg(env);
if (!enif_get_uint(env, argv[5], &config.lsb_first))
return enif_make_badarg(env);
fd = hal_spi_open(device, &config, error_str);
if (fd < 0) {
return enif_make_tuple2(env, priv->atom_error,
enif_make_atom(env, error_str));
}
struct SpiNifRes *spi_nif_res = enif_alloc_resource(priv->spi_nif_res_type, sizeof(struct SpiNifRes));
spi_nif_res->fd = fd;
spi_nif_res->config = config;
ERL_NIF_TERM res_term = enif_make_resource(env, spi_nif_res);
// Elixir side owns the resource. Safe for NIF side to release it.
enif_release_resource(spi_nif_res);
return enif_make_tuple2(env, priv->atom_ok, res_term);
}
static ERL_NIF_TERM spi_config(ErlNifEnv *env, int argc, const ERL_NIF_TERM argv[])
{
struct SpiNifPriv *priv = enif_priv_data(env);
struct SpiNifRes *res;
debug("spi_get_config");
if (!enif_get_resource(env, argv[0], priv->spi_nif_res_type, (void **)&res))
return enif_make_badarg(env);
ERL_NIF_TERM config = enif_make_new_map(env);
enif_make_map_put(env, config, enif_make_atom(env, "mode"), enif_make_uint(env, res->config.mode), &config);
enif_make_map_put(env, config, enif_make_atom(env, "bits_per_word"), enif_make_uint(env, res->config.bits_per_word), &config);
enif_make_map_put(env, config, enif_make_atom(env, "speed_hz"), enif_make_uint(env, res->config.speed_hz), &config);
enif_make_map_put(env, config, enif_make_atom(env, "delay_us"), enif_make_uint(env, res->config.delay_us), &config);
enif_make_map_put(env, config, enif_make_atom(env, "lsb_first"), enif_make_uint(env, res->config.lsb_first), &config);
enif_make_map_put(env, config, enif_make_atom(env, "sw_lsb_first"), enif_make_uint(env, res->config.sw_lsb_first), &config);
return enif_make_tuple2(env, priv->atom_ok, config);
}
static void reverse_bits(uint8_t *dest, const uint8_t *src, size_t len)
{
static const uint8_t reverse[256] = {
0x00, 0x80, 0x40, 0xc0, 0x20, 0xa0, 0x60, 0xe0, 0x10, 0x90, 0x50, 0xd0, 0x30, 0xb0, 0x70, 0xf0,
0x08, 0x88, 0x48, 0xc8, 0x28, 0xa8, 0x68, 0xe8, 0x18, 0x98, 0x58, 0xd8, 0x38, 0xb8, 0x78, 0xf8,
0x04, 0x84, 0x44, 0xc4, 0x24, 0xa4, 0x64, 0xe4, 0x14, 0x94, 0x54, 0xd4, 0x34, 0xb4, 0x74, 0xf4,
0x0c, 0x8c, 0x4c, 0xcc, 0x2c, 0xac, 0x6c, 0xec, 0x1c, 0x9c, 0x5c, 0xdc, 0x3c, 0xbc, 0x7c, 0xfc,
0x02, 0x82, 0x42, 0xc2, 0x22, 0xa2, 0x62, 0xe2, 0x12, 0x92, 0x52, 0xd2, 0x32, 0xb2, 0x72, 0xf2,
0x0a, 0x8a, 0x4a, 0xca, 0x2a, 0xaa, 0x6a, 0xea, 0x1a, 0x9a, 0x5a, 0xda, 0x3a, 0xba, 0x7a, 0xfa,
0x06, 0x86, 0x46, 0xc6, 0x26, 0xa6, 0x66, 0xe6, 0x16, 0x96, 0x56, 0xd6, 0x36, 0xb6, 0x76, 0xf6,
0x0e, 0x8e, 0x4e, 0xce, 0x2e, 0xae, 0x6e, 0xee, 0x1e, 0x9e, 0x5e, 0xde, 0x3e, 0xbe, 0x7e, 0xfe,
0x01, 0x81, 0x41, 0xc1, 0x21, 0xa1, 0x61, 0xe1, 0x11, 0x91, 0x51, 0xd1, 0x31, 0xb1, 0x71, 0xf1,
0x09, 0x89, 0x49, 0xc9, 0x29, 0xa9, 0x69, 0xe9, 0x19, 0x99, 0x59, 0xd9, 0x39, 0xb9, 0x79, 0xf9,
0x05, 0x85, 0x45, 0xc5, 0x25, 0xa5, 0x65, 0xe5, 0x15, 0x95, 0x55, 0xd5, 0x35, 0xb5, 0x75, 0xf5,
0x0d, 0x8d, 0x4d, 0xcd, 0x2d, 0xad, 0x6d, 0xed, 0x1d, 0x9d, 0x5d, 0xdd, 0x3d, 0xbd, 0x7d, 0xfd,
0x03, 0x83, 0x43, 0xc3, 0x23, 0xa3, 0x63, 0xe3, 0x13, 0x93, 0x53, 0xd3, 0x33, 0xb3, 0x73, 0xf3,
0x0b, 0x8b, 0x4b, 0xcb, 0x2b, 0xab, 0x6b, 0xeb, 0x1b, 0x9b, 0x5b, 0xdb, 0x3b, 0xbb, 0x7b, 0xfb,
0x07, 0x87, 0x47, 0xc7, 0x27, 0xa7, 0x67, 0xe7, 0x17, 0x97, 0x57, 0xd7, 0x37, 0xb7, 0x77, 0xf7,
0x0f, 0x8f, 0x4f, 0xcf, 0x2f, 0xaf, 0x6f, 0xef, 0x1f, 0x9f, 0x5f, 0xdf, 0x3f, 0xbf, 0x7f, 0xff
};
size_t i;
for (i = 0; i < len; i++) {
dest[i] = reverse[src[i]];
}
}
static ERL_NIF_TERM spi_transfer(ErlNifEnv *env, int argc, const ERL_NIF_TERM argv[])
{
struct SpiNifPriv *priv = enif_priv_data(env);
struct SpiNifRes *res;
ErlNifBinary bin_write;
ERL_NIF_TERM bin_read;
unsigned char *raw_bin_read;
unsigned char *to_write;
size_t transfer_size;
debug("spi_transfer");
if (!enif_get_resource(env, argv[0], priv->spi_nif_res_type, (void **)&res))
return enif_make_badarg(env);
if (!enif_inspect_binary(env, argv[1], &bin_write))
return enif_make_badarg(env);
transfer_size = bin_write.size;
raw_bin_read = enif_make_new_binary(env, transfer_size, &bin_read);
if (!raw_bin_read)
return enif_make_tuple2(env, priv->atom_error,
enif_make_atom(env, "alloc_failed"));
if (res->config.sw_lsb_first) {
to_write = enif_alloc(transfer_size);
if (!to_write)
return enif_make_tuple2(env, priv->atom_error,
enif_make_atom(env, "alloc_failed"));
reverse_bits(to_write, bin_write.data, transfer_size);
} else {
to_write = bin_write.data;
}
if (hal_spi_transfer(res->fd, &res->config, to_write, raw_bin_read, transfer_size) < 0)
return enif_make_tuple2(env, priv->atom_error,
enif_make_atom(env, "transfer_failed"));
if (res->config.sw_lsb_first) {
reverse_bits(raw_bin_read, raw_bin_read, transfer_size);
enif_free(to_write);
}
return enif_make_tuple2(env, priv->atom_ok, bin_read);
}
static ERL_NIF_TERM spi_close(ErlNifEnv *env, int argc, const ERL_NIF_TERM argv[])
{
struct SpiNifPriv *priv = enif_priv_data(env);
struct SpiNifRes *res;
debug("spi_close");
if (!enif_get_resource(env, argv[0], priv->spi_nif_res_type, (void **)&res))
return enif_make_badarg(env);
if (res->fd >= 0) {
hal_spi_close(res->fd);
res->fd = -1;
}
return priv->atom_ok;
}
static ERL_NIF_TERM spi_info(ErlNifEnv *env, int argc, const ERL_NIF_TERM argv[])
{
return hal_info(env);
}
static ERL_NIF_TERM spi_max_transfer_size(ErlNifEnv *env, int argc, const ERL_NIF_TERM argv[])
{
return hal_max_transfer_size(env);
}
static ErlNifFunc nif_funcs[] =
{
{"open", 6, spi_open, ERL_NIF_DIRTY_JOB_IO_BOUND},
{"config", 1, spi_config, 0},
{"transfer", 2, spi_transfer, ERL_NIF_DIRTY_JOB_IO_BOUND},
{"close", 1, spi_close, 0},
{"info", 0, spi_info, 0},
{"max_transfer_size", 0, spi_max_transfer_size, ERL_NIF_DIRTY_JOB_IO_BOUND}
};
ERL_NIF_INIT(Elixir.Circuits.SPI.Nif, nif_funcs, spi_load, NULL, NULL, spi_unload)