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llama : skip token bounds check when evaluating embeddings (#9437)
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@ -16076,19 +16076,21 @@ static int llama_decode_internal(
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return -1;
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}
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for (uint32_t i = 0; i < n_tokens_all; ++i) {
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if (batch_all.token[i] < 0 || (uint32_t)batch_all.token[i] >= lctx.model.vocab.n_vocab) {
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LLAMA_LOG_ERROR("%s: invalid token[%d] = %d", __func__, i, batch_all.token[i]);
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return -1;
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}
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}
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const auto & model = lctx.model;
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const auto & hparams = model.hparams;
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const auto & cparams = lctx.cparams;
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GGML_ASSERT((!batch_all.token && batch_all.embd) || (batch_all.token && !batch_all.embd)); // NOLINT
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if (batch_all.token) {
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for (uint32_t i = 0; i < n_tokens_all; ++i) {
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if (batch_all.token[i] < 0 || (uint32_t)batch_all.token[i] >= model.vocab.n_vocab) {
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LLAMA_LOG_ERROR("%s: invalid token[%d] = %d", __func__, i, batch_all.token[i]);
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return -1;
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}
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}
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}
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GGML_ASSERT(n_tokens_all <= cparams.n_batch);
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GGML_ASSERT((cparams.causal_attn || cparams.n_ubatch >= n_tokens_all) && "non-causal attention requires n_ubatch >= n_tokens");
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@ -16375,19 +16377,21 @@ static int llama_encode_internal(
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return -1;
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}
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for (uint32_t i = 0; i < n_tokens; ++i) {
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if (batch.token[i] < 0 || (uint32_t)batch.token[i] >= lctx.model.vocab.n_vocab) {
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LLAMA_LOG_ERROR("%s: invalid token[%d] = %d", __func__, i, batch.token[i]);
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return -1;
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}
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}
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const auto & model = lctx.model;
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const auto & hparams = model.hparams;
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const auto & cparams = lctx.cparams;
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GGML_ASSERT((!batch.token && batch.embd) || (batch.token && !batch.embd)); // NOLINT
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if (batch.token) {
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for (uint32_t i = 0; i < n_tokens; ++i) {
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if (batch.token[i] < 0 || (uint32_t)batch.token[i] >= model.vocab.n_vocab) {
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LLAMA_LOG_ERROR("%s: invalid token[%d] = %d", __func__, i, batch.token[i]);
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return -1;
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}
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}
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}
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// micro-batching is not possible for non-causal encoding, so we process the batch in a single shot
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GGML_ASSERT(cparams.n_ubatch >= n_tokens && "encoder requires n_ubatch >= n_tokens");
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