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#include "dnn_filter_common.h" |
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#include "libavutil/avstring.h" |
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#define MAX_SUPPORTED_OUTPUTS_NB 4 |
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static char **separate_output_names(const char *expr, const char *val_sep, int *separated_nb) |
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{ |
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char *val, **parsed_vals = NULL; |
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int val_num = 0; |
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if (!expr || !val_sep || !separated_nb) { |
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return NULL; |
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} |
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parsed_vals = av_calloc(MAX_SUPPORTED_OUTPUTS_NB, sizeof(*parsed_vals)); |
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if (!parsed_vals) { |
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return NULL; |
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} |
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do { |
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val = av_get_token(&expr, val_sep); |
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if(val) { |
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parsed_vals[val_num] = val; |
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val_num++; |
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} |
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if (*expr) { |
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expr++; |
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} |
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} while(*expr); |
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parsed_vals[val_num] = NULL; |
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*separated_nb = val_num; |
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return parsed_vals; |
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} |
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int ff_dnn_init(DnnContext *ctx, DNNFunctionType func_type, AVFilterContext *filter_ctx) |
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{ |
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if (!ctx->model_filename) { |
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av_log(filter_ctx, AV_LOG_ERROR, "model file for network is not specified\n"); |
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return AVERROR(EINVAL); |
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} |
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if (!ctx->model_inputname) { |
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av_log(filter_ctx, AV_LOG_ERROR, "input name of the model network is not specified\n"); |
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return AVERROR(EINVAL); |
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} |
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ctx->model_outputnames = separate_output_names(ctx->model_outputnames_string, "&", &ctx->nb_outputs); |
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if (!ctx->model_outputnames) { |
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av_log(filter_ctx, AV_LOG_ERROR, "could not parse model output names\n"); |
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return AVERROR(EINVAL); |
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} |
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ctx->dnn_module = ff_get_dnn_module(ctx->backend_type, filter_ctx); |
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if (!ctx->dnn_module) { |
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av_log(filter_ctx, AV_LOG_ERROR, "could not create DNN module for requested backend\n"); |
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return AVERROR(ENOMEM); |
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} |
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if (!ctx->dnn_module->load_model) { |
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av_log(filter_ctx, AV_LOG_ERROR, "load_model for network is not specified\n"); |
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return AVERROR(EINVAL); |
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} |
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ctx->model = (ctx->dnn_module->load_model)(ctx->model_filename, func_type, ctx->backend_options, filter_ctx); |
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if (!ctx->model) { |
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av_log(filter_ctx, AV_LOG_ERROR, "could not load DNN model\n"); |
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return AVERROR(EINVAL); |
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} |
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return 0; |
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} |
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int ff_dnn_set_frame_proc(DnnContext *ctx, FramePrePostProc pre_proc, FramePrePostProc post_proc) |
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{ |
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ctx->model->frame_pre_proc = pre_proc; |
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ctx->model->frame_post_proc = post_proc; |
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return 0; |
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} |
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int ff_dnn_set_detect_post_proc(DnnContext *ctx, DetectPostProc post_proc) |
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{ |
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ctx->model->detect_post_proc = post_proc; |
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return 0; |
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} |
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int ff_dnn_set_classify_post_proc(DnnContext *ctx, ClassifyPostProc post_proc) |
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{ |
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ctx->model->classify_post_proc = post_proc; |
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return 0; |
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} |
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int ff_dnn_get_input(DnnContext *ctx, DNNData *input) |
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{ |
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return ctx->model->get_input(ctx->model->model, input, ctx->model_inputname); |
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} |
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int ff_dnn_get_output(DnnContext *ctx, int input_width, int input_height, int *output_width, int *output_height) |
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{ |
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return ctx->model->get_output(ctx->model->model, ctx->model_inputname, input_width, input_height, |
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(const char *)ctx->model_outputnames[0], output_width, output_height); |
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} |
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int ff_dnn_execute_model(DnnContext *ctx, AVFrame *in_frame, AVFrame *out_frame) |
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{ |
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DNNExecBaseParams exec_params = { |
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.input_name = ctx->model_inputname, |
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.output_names = (const char **)ctx->model_outputnames, |
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.nb_output = ctx->nb_outputs, |
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.in_frame = in_frame, |
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.out_frame = out_frame, |
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}; |
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return (ctx->dnn_module->execute_model)(ctx->model, &exec_params); |
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} |
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int ff_dnn_execute_model_classification(DnnContext *ctx, AVFrame *in_frame, AVFrame *out_frame, const char *target) |
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{ |
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DNNExecClassificationParams class_params = { |
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{ |
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.input_name = ctx->model_inputname, |
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.output_names = (const char **)ctx->model_outputnames, |
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.nb_output = ctx->nb_outputs, |
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.in_frame = in_frame, |
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.out_frame = out_frame, |
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}, |
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.target = target, |
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}; |
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return (ctx->dnn_module->execute_model)(ctx->model, &class_params.base); |
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} |
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DNNAsyncStatusType ff_dnn_get_result(DnnContext *ctx, AVFrame **in_frame, AVFrame **out_frame) |
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{ |
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return (ctx->dnn_module->get_result)(ctx->model, in_frame, out_frame); |
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} |
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int ff_dnn_flush(DnnContext *ctx) |
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{ |
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return (ctx->dnn_module->flush)(ctx->model); |
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} |
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void ff_dnn_uninit(DnnContext *ctx) |
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{ |
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if (ctx->dnn_module) { |
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(ctx->dnn_module->free_model)(&ctx->model); |
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} |
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} |
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