Source code for easytransfer.losses.comprehension_loss

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import tensorflow as tf


[docs]def comprehension_loss(logits, labels): def compute_loss(logits, positions): one_hot_positions = tf.one_hot( positions, depth=seq_length, dtype=tf.float32) log_probs = tf.nn.log_softmax(logits, axis=-1) loss = -tf.reduce_mean( tf.reduce_sum(one_hot_positions * log_probs, axis=-1)) return loss start_logits, end_logits = logits seq_length = int(start_logits.shape[1]) start_positions, end_positions = labels start_loss = compute_loss(start_logits, start_positions) end_loss = compute_loss(end_logits, end_positions) total_loss = (start_loss + end_loss) / 2.0 return total_loss