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#include "llama-memory-hybrid.h" |
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#include "llama-impl.h" |
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#include "llama-model.h" |
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#include "llama-context.h" |
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llama_memory_hybrid::llama_memory_hybrid( |
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const llama_model & model, |
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ggml_type type_k, |
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ggml_type type_v, |
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bool v_trans, |
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uint32_t kv_size, |
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uint32_t n_pad, |
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uint32_t n_swa, |
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llama_swa_type swa_type, |
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ggml_type type_r, |
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ggml_type type_s, |
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uint32_t rs_size, |
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uint32_t n_seq_max, |
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bool offload, |
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layer_filter_cb && filter_attn, |
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layer_filter_cb && filter_recr) : |
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hparams(model.hparams), |
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mem_attn(new llama_kv_cache_unified( |
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model, |
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filter_attn == nullptr ? |
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[&](int32_t il) { return !hparams.is_recurrent(il); } |
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: filter_attn, |
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type_k, |
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type_v, |
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v_trans, |
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offload, |
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1, |
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kv_size, |
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n_seq_max, |
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n_pad, |
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n_swa, |
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swa_type |
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)), |
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mem_recr(new llama_memory_recurrent( |
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model, |
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filter_recr == nullptr ? |
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[&](int32_t il) { return hparams.is_recurrent(il); } |
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: filter_recr, |
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type_r, |
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type_s, |
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offload, |
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rs_size, |
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n_seq_max |
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)) {} |
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llama_memory_context_ptr llama_memory_hybrid::init_batch(llama_batch_allocr & balloc, uint32_t n_ubatch, bool embd_all) { |
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do { |
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balloc.split_reset(); |
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std::vector<llama_ubatch> ubatches; |
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while (true) { |
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llama_ubatch ubatch; |
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if (embd_all) { |
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ubatch = balloc.split_seq(n_ubatch); |
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} else { |
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ubatch = balloc.split_equal(n_ubatch, false); |
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} |
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if (ubatch.n_tokens == 0) { |
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break; |
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} |
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ubatches.push_back(std::move(ubatch)); |
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} |
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if (balloc.get_n_used() < balloc.get_n_tokens()) { |
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break; |
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} |
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if (!mem_recr->prepare(ubatches)) { |
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LLAMA_LOG_ERROR("%s: failed to prepare recurrent ubatches\n", __func__); |
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return std::make_unique<llama_memory_hybrid_context>(LLAMA_MEMORY_STATUS_FAILED_PREPARE); |
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} |
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auto heads_attn = mem_attn->prepare(ubatches); |
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if (heads_attn.empty()) { |
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LLAMA_LOG_ERROR("%s: failed to prepare attention ubatches\n", __func__); |
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return std::make_unique<llama_memory_hybrid_context>(LLAMA_MEMORY_STATUS_FAILED_PREPARE); |
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} |
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return std::make_unique<llama_memory_hybrid_context>( |
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this, std::move(heads_attn), std::move(ubatches)); |
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} while(false); |
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return std::make_unique<llama_memory_hybrid_context>(LLAMA_MEMORY_STATUS_FAILED_PREPARE); |
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} |
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llama_memory_context_ptr llama_memory_hybrid::init_full() { |
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return std::make_unique<llama_memory_hybrid_context>(this); |
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} |
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llama_memory_context_ptr llama_memory_hybrid::init_update(llama_context * lctx, bool optimize) { |
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return std::make_unique<llama_memory_hybrid_context>(this, lctx, optimize); |
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} |
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bool llama_memory_hybrid::get_can_shift() const { |
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return mem_attn->get_can_shift(); |
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} |
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void llama_memory_hybrid::clear(bool data) { |
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mem_attn->clear(data); |
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mem_recr->clear(data); |
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} |
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bool llama_memory_hybrid::seq_rm(llama_seq_id seq_id, llama_pos p0, llama_pos p1) { |
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if (!mem_recr->seq_rm(seq_id, p0, p1)) { |
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return false; |
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} |
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return mem_attn->seq_rm(seq_id, p0, p1); |
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} |
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void llama_memory_hybrid::seq_cp(llama_seq_id seq_id_src, llama_seq_id seq_id_dst, llama_pos p0, llama_pos p1) { |
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mem_attn->seq_cp(seq_id_src, seq_id_dst, p0, p1); |
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mem_recr->seq_cp(seq_id_src, seq_id_dst, p0, p1); |
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} |
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void llama_memory_hybrid::seq_keep(llama_seq_id seq_id) { |
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mem_attn->seq_keep(seq_id); |
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mem_recr->seq_keep(seq_id); |
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} |
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void llama_memory_hybrid::seq_add(llama_seq_id seq_id, llama_pos p0, llama_pos p1, llama_pos shift) { |
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mem_attn->seq_add(seq_id, p0, p1, shift); |
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mem_recr->seq_add(seq_id, p0, p1, shift); |
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} |
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void llama_memory_hybrid::seq_div(llama_seq_id seq_id, llama_pos p0, llama_pos p1, int d) { |
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mem_attn->seq_div(seq_id, p0, p1, d); |
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mem_recr->seq_div(seq_id, p0, p1, d); |
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} |
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llama_pos llama_memory_hybrid::seq_pos_min(llama_seq_id seq_id) const { |
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return std::max(mem_attn->seq_pos_min(seq_id), mem_recr->seq_pos_min(seq_id)); |
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} |
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llama_pos llama_memory_hybrid::seq_pos_max(llama_seq_id seq_id) const { |
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return std::min(mem_attn->seq_pos_max(seq_id), mem_recr->seq_pos_max(seq_id)); |
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} |
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void llama_memory_hybrid::state_write(llama_io_write_i & io, llama_seq_id seq_id) const { |
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mem_attn->state_write(io, seq_id); |
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mem_recr->state_write(io, seq_id); |
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} |
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void llama_memory_hybrid::state_read(llama_io_read_i & io, llama_seq_id seq_id) { |
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mem_attn->state_read(io, seq_id); |
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mem_recr->state_read(io, seq_id); |
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} |
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llama_kv_cache_unified * llama_memory_hybrid::get_mem_attn() const { |
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return mem_attn.get(); |
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} |
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llama_memory_recurrent * llama_memory_hybrid::get_mem_recr() const { |
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return mem_recr.get(); |
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} |
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llama_memory_hybrid_context::llama_memory_hybrid_context(llama_memory_status status) : status(status) {} |
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llama_memory_hybrid_context::llama_memory_hybrid_context(llama_memory_hybrid * mem) : |
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ctx_attn(mem->get_mem_attn()->init_full()), |
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ctx_recr(mem->get_mem_recr()->init_full()), |
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status(llama_memory_status_combine(ctx_attn->get_status(), ctx_recr->get_status())) { |
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} |
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llama_memory_hybrid_context::llama_memory_hybrid_context( |
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llama_memory_hybrid * mem, |
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llama_context * lctx, |
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bool optimize) : |
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ctx_attn(mem->get_mem_attn()->init_update(lctx, optimize)), |
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ctx_recr(mem->get_mem_recr()->init_update(lctx, optimize)), |
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status(llama_memory_status_combine(ctx_attn->get_status(), ctx_recr->get_status())) { |
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} |
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llama_memory_hybrid_context::llama_memory_hybrid_context( |
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llama_memory_hybrid * mem, |
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slot_info_vec_t sinfos_attn, |
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std::vector<llama_ubatch> ubatches) : |
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ubatches(std::move(ubatches)), |
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ctx_attn(new llama_kv_cache_unified_context(mem->get_mem_attn(), std::move(sinfos_attn), this->ubatches)), |
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ctx_recr(new llama_memory_recurrent_context(mem->get_mem_recr(), this->ubatches)), |
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status(llama_memory_status_combine(ctx_attn->get_status(), ctx_recr->get_status())) { |
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} |
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bool llama_memory_hybrid_context::next() { |
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assert(status == LLAMA_MEMORY_STATUS_SUCCESS); |
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ctx_attn->next(); |
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ctx_recr->next(); |
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if (++i_next >= ubatches.size()) { |
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return false; |
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} |
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return true; |
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} |
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bool llama_memory_hybrid_context::apply() { |
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assert(!llama_memory_status_is_fail(status)); |
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bool res = true; |
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res = res & ctx_attn->apply(); |
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res = res & ctx_recr->apply(); |
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return res; |
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} |
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llama_memory_status llama_memory_hybrid_context::get_status() const { |
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return status; |
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} |
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const llama_ubatch & llama_memory_hybrid_context::get_ubatch() const { |
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assert(status == LLAMA_MEMORY_STATUS_SUCCESS); |
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return ubatches[i_next]; |
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} |
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const llama_kv_cache_unified_context * llama_memory_hybrid_context::get_attn() const { |
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return static_cast<const llama_kv_cache_unified_context *>(ctx_attn.get()); |
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} |
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const llama_memory_recurrent_context * llama_memory_hybrid_context::get_recr() const { |
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return static_cast<const llama_memory_recurrent_context *>(ctx_recr.get()); |
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} |
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