mirror of https://github.com/Jittor/Jittor
Merge pull request #156 from Jittor/lxl
add misc and bcelogits with pos_weight
This commit is contained in:
commit
d11c3ad40b
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@ -178,7 +178,7 @@ void CudnnConvBackwardXOp::jit_run() {
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CUDNN_CONVOLUTION_BWD_DATA_ALGO_WINOGRAD,
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CUDNN_CONVOLUTION_BWD_DATA_ALGO_WINOGRAD_NONFUSED
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};
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int num_algos = CUDNN_CONVOLUTION_BWD_FILTER_ALGO_COUNT;
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int num_algos = CUDNN_CONVOLUTION_BWD_DATA_ALGO_COUNT;
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int perf_count;
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cudnnConvolutionBwdDataAlgoPerf_t perf_results[num_algos];
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cudnnConvolutionBwdDataAlgo_t algo;
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@ -6,16 +6,12 @@
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#include "var.h"
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#include "cutt_transpose_op.h"
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#include "ops/op_register.h"
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#include <iostream>
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#ifdef JIT
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#include "cutt.h"
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#endif
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#include "cutt_warper.h"
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#include "misc/stack_vector.h"
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namespace jittor {
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#ifndef JIT
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static auto make_transpose = get_op_info("cutt_transpose")
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.get_constructor<VarPtr, Var*, NanoVector>();
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@ -58,52 +54,49 @@ VarPtr CuttTransposeOp::grad(Var* out, Var* dout, Var* v, int v_index) {
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return make_transpose(dout, reverse);
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}
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void CuttTransposeOp::jit_prepare(JK& jk) {
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jk << _CS("[Tx:") << x->dtype();
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jk << _CS("][DIM=") << JK::hex1(axes.size());
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for (uint i=0; i<axes.size(); i++)
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jk << _CS("][AXES") << JK::hex1(axes[i]) << '=' << JK::hex1(i);
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jk << ']';
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}
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unordered_map<string, unsigned int> cutt_plan_cache;
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#else // JIT
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#ifdef JIT_cuda
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extern unordered_map<string, unsigned int> cutt_plan_cache;
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void CuttTransposeOp::jit_run() {
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auto* __restrict__ xp = x->ptr<Tx>();
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auto* __restrict__ yp = y->ptr<Tx>();
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vector<int> permutation, permutation2;
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vector<int> y_shape;
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vector<int> x_shape;
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@for(i, 0, DIM, permutation.push_back(DIM-1-AXES@i);)
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@for(i, 0, DIM, permutation2.push_back(permutation[DIM-1-@i@@]);)
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std::vector<int> reverse;
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reverse.reserve(permutation2.size());
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for (uint i=0; i<permutation2.size(); i++)
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reverse[permutation2[i]] = i;
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@for(i, 0, DIM, x_shape.push_back(x->shape[DIM-1-@i@@]);)
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void CuttTransposeOp::run() {
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auto* __restrict__ xp = x->mem_ptr;
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auto* __restrict__ yp = y->mem_ptr;
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StackVector<int> x_shape;
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StackVector<int> new_shape, new_axes, trans, reverse;
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int dim = x->shape.size();
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for (int i=0; i<dim; i++) {
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trans[i] = new_shape.size();
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if (x->shape[i] != 1)
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new_shape.push_back(x->shape[i]);
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}
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for (int i = 0; i < dim; ++i) {
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if (x->shape[axes[i]] != 1) {
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new_axes.push_back(trans[axes[i]]);
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}
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}
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dim = new_shape.size();
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for (int i=0; i<dim; i++)
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reverse[i] = dim-1-new_axes[dim-1-i];
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for (int i=0; i<dim; i++)
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x_shape[i] = new_shape[dim-1-i];
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if (dim == 1) {
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checkCudaErrors(cudaMemcpyAsync(yp, xp, x->size, cudaMemcpyDefault, 0));
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return;
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}
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jk.clear();
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jk << @DIM << ",";
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for (uint i=0; i<@DIM; i++) jk << x_shape[i] << ",";
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for (uint i=0; i<@DIM; i++) jk << reverse[i] << ",";
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jk << sizeof(Tx) << ".";
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jk << dim << ',';
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for (int i=0; i<dim; i++) jk << x_shape[i] << ',';
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for (int i=0; i<dim; i++) jk << reverse[i] << ',';
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jk << x->dtype().dsize() << '.';
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auto iter = cutt_plan_cache.find(jk.to_string());
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LOGvvv << "Run cutt_transpose with key:" << jk.to_string();
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if (iter!=cutt_plan_cache.end()){
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cuttExecute(iter->second, xp, yp);
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} else {
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cuttHandle plan;
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cuttPlan(&plan, @DIM, x_shape.data(), reverse.data(), sizeof(Tx), 0);
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cuttPlan(&plan, dim, x_shape.data(), reverse.data(), x->dtype().dsize(), 0);
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cutt_plan_cache[jk.to_string()] = plan;
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cuttExecute(plan, xp, yp);
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}
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}
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#endif // JIT_cuda
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#endif // JIT
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} // jittor
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@ -19,7 +19,7 @@ struct CuttTransposeOp : Op {
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const char* name() const override { return "cutt_transpose"; }
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VarPtr grad(Var* out, Var* dout, Var* v, int v_index) override;
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void infer_shape() override;
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DECLARE_jit_run;
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void run() override;
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};
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} // jittor
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@ -12,6 +12,35 @@ import numpy as np
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import math
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from collections.abc import Sequence,Iterable
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def __copy__(x):
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return x.copy().detach()
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jt.Var.__copy__ = __copy__
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def __deepcopy__(x,memo):
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result = x.copy().detach()
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memo[id(x)]=result
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return result
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jt.Var.__deepcopy__ = __deepcopy__
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def __len__(x):
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return x.shape[0]
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jt.Var.__len__ = __len__
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def __iter__(x):
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result = []
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for i in range(x.shape[0]):
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result.append(x[i])
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return result.__iter__()
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jt.Var.__iter__ = __iter__
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def all(x,dim):
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return x.all_(dim).bool()
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jt.Var.all = all
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def any(x,dim):
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return x.any_(dim).bool()
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jt.Var.any = any
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def repeat(x, *shape):
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r'''
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@ -47,10 +76,24 @@ def repeat(x, *shape):
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x = x.broadcast(x_shape)
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elif len_x_shape > len_shape:
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rep_shape = (len_x_shape - len_shape) * [1] + shape
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reshape_shape = []
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broadcast_shape = []
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for x_s,r_s in zip(x_shape,rep_shape):
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reshape_shape.append(1)
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reshape_shape.append(x_s)
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broadcast_shape.append(r_s)
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broadcast_shape.append(1)
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x = x.reshape(reshape_shape)
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x = x.broadcast(broadcast_shape)
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tar_shape = (np.array(x_shape) * np.array(rep_shape)).tolist()
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dims = []
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for i in range(len(tar_shape)): dims.append(f"i{i}%{x_shape[i]}")
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return x.reindex(tar_shape, dims)
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x = x.reshape(tar_shape)
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return x
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jt.Var.repeat = repeat
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def chunk(x, chunks, dim=0):
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@ -326,9 +369,8 @@ def unique(x):
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'''
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x = x.reshape(-1)
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_,x = jt.argsort(x)
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index2 = [i for i in range(1,x.shape[0])]
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index1 = [i for i in range(x.shape[0]-1)]
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y = x[1:][x[index2] != x[index1]]
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index,= jt.index((x.shape[0],))
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y = x[1:][x[index[1:]] != x[index[:-1]]]
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x = jt.contrib.concat([x[:1],y],dim=0)
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return x
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@ -401,12 +443,6 @@ def log2(x):
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jt.Var.log2 = log2
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def item(x):
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assert x.ndim==1 and x.shape[0]==1
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return x.numpy().item()
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jt.Var.item = item
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def meshgrid(*tensors):
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r'''
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Take N tensors, each of which can be 1-dimensional vector, and create N n-dimensional grids,
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@ -264,17 +264,29 @@ class L1Loss(Module):
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def execute(self, output, target):
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return l1_loss(output, target)
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class BCEWithLogitsLoss(Module):
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def __init__(self, weight=None, size_average=True):
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self.sigmoid = Sigmoid()
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self.bce = BCELoss(weight, size_average)
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def execute(self, output, target):
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output = self.sigmoid(output)
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output = self.bce(output, target)
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return output
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def binary_cross_entropy_with_logits(output, target, weight=None, pos_weight=None, size_average=True):
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max_val = jt.clamp(-output,min_v=0)
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if pos_weight is not None:
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log_weight = (pos_weight-1)*target + 1
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loss = (1-target)*output+(log_weight*(((-max_val).exp()+(-output - max_val).exp()).log()+max_val))
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else:
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loss = (1-target)*output+max_val+((-max_val).exp()+(-output -max_val).exp()).log()
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if weight is not None:
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loss *=weight
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def binary_cross_entropy_with_logits(input, target, weight=None, size_average=True):
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return BCEWithLogitsLoss(weight, size_average)(input, target)
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if size_average:
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return loss.mean()
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else:
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return loss.sum()
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class BCEWithLogitsLoss(Module):
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def __init__(self, weight=None, pos_weight=None, size_average=True):
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self.pos_weight = pos_weight
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self.weight = weight
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self.size_average = size_average
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def execute(self, output, target):
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return binary_cross_entropy_with_logits(output,target,self.weight,self.pos_weight,self.size_average)
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def softmax(x, dim = None):
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if dim is None:
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@ -210,3 +210,64 @@ class Adam(Optimizer):
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v.update(b1 * v + (1-b1) * g * g)
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step_size = lr * jt.sqrt(1-b1**n) / (1-b0 ** n)
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p.update(p - m * step_size / (jt.sqrt(v) + eps))
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class LRScheduler:
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def __init__(self,optimizer, last_epoch=-1):
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assert isinstance(optimizer,Optimizer)
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self.optimizer = optimizer
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if last_epoch==-1:
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for gp in optimizer.param_groups:
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gp.setdefault('initial_lr',gp.get('lr',optimizer.lr))
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else:
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for gp in optimizer.param_groups:
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assert 'initial_lr' in gp
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self.base_lrs = list(map(lambda group: group['initial_lr'], optimizer.param_groups))
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self.last_epoch = last_epoch
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self.optimizer._step_count = 0
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self._step_count = 0
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self.step()
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def get_lr(self):
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raise NotImplementedError
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def get_last_lr(self):
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return self._last_lr
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def step(self,epoch=None):
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self._step_count += 1
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if epoch is None:
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self.last_epoch += 1
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values = self.get_lr()
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else:
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self.last_epoch = epoch
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values = self.get_lr()
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for i, data in enumerate(zip(self.optimizer.param_groups, values)):
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param_group, lr = data
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param_group['lr'] = lr
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self._last_lr = [group['lr'] for group in self.optimizer.param_groups]
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class LambdaLR(LRScheduler):
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def __init__(self, optimizer, lr_lambda, last_epoch=-1):
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if not isinstance(lr_lambda, list) and not isinstance(lr_lambda, tuple):
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self.lr_lambdas = [lr_lambda] * len(optimizer.param_groups)
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else:
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if len(lr_lambda) != len(optimizer.param_groups):
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raise ValueError("Expected {} lr_lambdas, but got {}".format(len(optimizer.param_groups), len(lr_lambda)))
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self.lr_lambdas = list(lr_lambda)
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super(LambdaLR, self).__init__(optimizer, last_epoch)
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def get_lr(self):
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return [base_lr * lmbda(self.last_epoch)
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for lmbda, base_lr in zip(self.lr_lambdas, self.base_lrs)]
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@ -30,7 +30,7 @@ class TestCuttTransposeOp(unittest.TestCase):
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for perm in perms:
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with jt.log_capture_scope(
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log_silent=1,
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log_v=0, log_vprefix="op.cc=100"
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log_v=0, log_vprefix="cutt=100"
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) as raw_log:
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if perm:
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x = np.transpose(a, perm)
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@ -39,7 +39,7 @@ class TestCuttTransposeOp(unittest.TestCase):
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x = np.transpose(a)
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y = jt.transpose(a).data
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self.assertEqual(x.shape, y.shape)
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logs = find_log_with_re(raw_log, "(Jit op key (not )?found: " + "cutt_transpose" + ".*)")
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logs = find_log_with_re(raw_log, "(Run cutt_transpose with key.*)")
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if perm is None:
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continue
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last = -1
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@ -53,7 +53,7 @@ class TestCuttTransposeOp(unittest.TestCase):
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last = perm[i]
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if not in_order:
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assert len(logs)==1
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assert (x==y).all(), f"\n{x}\n{y}"
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assert (x==y).all(), f"\n{x}\n{y}\n{perm}\n{a.shape}"
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ia = [gen_data([5, 7]), gen_data([2,2,2]), gen_data([2,3,4,5]), gen_data([5,3]), gen_data([3,1,5,3,1])]
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for a in ia: check(a)
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|
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@ -177,7 +177,8 @@ vector<VarPtr> grad(Var* loss, vector<Var*> targets) {
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Var* dout = grads[id];
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trace_grad_op = op;
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VarPtr dvar = make_grad(op, out, dout, var, index);
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if (dvar && dvar->num>=0 && var->num)
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if (dvar && dvar->num>=0 && var->num>0)
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// var->num == 0 represents a any match var
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ASSERT(dvar->num==var->num && dvar->shape.size()==var->shape.size())
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<< "dvar" << dvar << "var" << var;
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if (!grad)
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|
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@ -17,6 +17,7 @@ struct StackVector {
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inline T& front() { return a[0]; }
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inline T& back() { return a[n-1]; }
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inline int size() { return n;}
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inline T* data() { return a;}
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inline StackVector(int n=0) : n(n) {}
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struct Iter {
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|
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@ -11,6 +11,7 @@
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#ifdef HAS_CUDA
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#include <cuda_runtime.h>
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#include <helper_cuda.h>
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#include "misc/cuda_flags.h"
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#endif
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namespace jittor {
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@ -36,14 +37,14 @@ void CopyOp::run() {
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auto size = x->size;
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auto x_ptr = x->mem_ptr;
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auto y_ptr = outputs().front()->mem_ptr;
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if (flags.get(NodeFlags::_cpu)) {
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#ifdef HAS_CUDA
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if (flags.get(NodeFlags::_cuda)) {
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checkCudaErrors(cudaMemcpyAsync(y_ptr, x_ptr, size, cudaMemcpyDefault, 0));
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} else
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#endif
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{
|
||||
std::memcpy(y_ptr, x_ptr, size);
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}
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||||
#ifdef HAS_CUDA
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else {
|
||||
checkCudaErrors(cudaMemcpyAsync(y_ptr, x_ptr, size, cudaMemcpyDefault, 0));
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}
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||||
#endif
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}
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||||
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|
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|
@ -34,9 +34,9 @@ unordered_set<string> reduce_ops = {
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"add",
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// @pybind(prod, product, reduce_multiply)
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"multiply",
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// @pybind(reduce_logical_and, all)
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// @pybind(reduce_logical_and, all_)
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"logical_and",
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// @pybind(reduce_logical_or, any)
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// @pybind(reduce_logical_or, any_)
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"logical_or",
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"logical_xor",
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"bitwise_and",
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|
@ -65,7 +65,8 @@ ReduceOp::ReduceOp(Var* x, NanoString op, NanoVector dims, bool keepdims)
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reduce_mask |= 1<<dim;
|
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}
|
||||
}
|
||||
if (x->dtype() == ns_bool && ns == ns_add)
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// if (x->dtype() == ns_bool && ns == ns_add)
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if (x->dtype() == ns_bool)
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y = create_output(nullptr, ns_int32);
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else
|
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y = create_output(nullptr, binary_dtype_infer(ns, x, x));
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|
|
|
@ -69,7 +69,7 @@ void SetitemOp::infer_shape() {
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|||
for (int i=0; i<data_dim; i++) {
|
||||
int j = i - data_dim + out_shape.size();
|
||||
if (!(data_shape[i]==1 && out_shape[j]!=-1)) {
|
||||
CHECK(data_shape[i]<0 || data_shape[i]==out_shape[j])
|
||||
CHECK(data_shape[i]<0 || out_shape[j]<0 || data_shape[i]==out_shape[j])
|
||||
<< "Data shape not match" << data_shape << out_shape;
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||||
bmask |= 1<<j;
|
||||
}
|
||||
|
|
|
@ -40,38 +40,8 @@ TransposeOp::TransposeOp(Var* x, NanoVector axes_) : x(x), axes(axes_) {
|
|||
.get_constructor<VarPtr, Var*, NanoVector>();
|
||||
}
|
||||
if (cutt_transpose) {
|
||||
bool need_reshape = false;
|
||||
int dims = x->shape.size();
|
||||
vector<int64> in_axes;
|
||||
vector<int64> in_shape;
|
||||
vector<int64> out_shape;
|
||||
vector<int64> trans;
|
||||
int cnt = 0;
|
||||
for (int i = 0; i < dims; ++i) {
|
||||
if (x->shape[i] == 1) {
|
||||
need_reshape = true;
|
||||
trans.push_back(-1);
|
||||
} else {
|
||||
trans.push_back(cnt);
|
||||
cnt += 1;
|
||||
in_shape.push_back(x->shape[i]);
|
||||
}
|
||||
out_shape.push_back(x->shape[axes[i]]);
|
||||
}
|
||||
for (int i = 0; i < dims; ++i) {
|
||||
if (x->shape[axes[i]] != 1) {
|
||||
in_axes.push_back(trans[axes[i]]);
|
||||
}
|
||||
}
|
||||
if (need_reshape) {
|
||||
auto x1 = make_reshape(x, NanoVector(in_shape));
|
||||
auto x2 = cutt_transpose(x1, in_axes);
|
||||
auto x3 = make_reshape(x2, NanoVector(out_shape));
|
||||
forward(x3);
|
||||
} else {
|
||||
auto var = cutt_transpose(x, axes);
|
||||
forward(var);
|
||||
}
|
||||
auto var = cutt_transpose(x, axes);
|
||||
forward(var);
|
||||
return;
|
||||
}
|
||||
}
|
||||
|
|
|
@ -164,6 +164,19 @@ static vector<Stack> get_stack_info() {
|
|||
(int)PyFrame_GetLineNumber(prev_f)});
|
||||
}
|
||||
}
|
||||
if (stacks.size() == 0) {
|
||||
auto m = std::min(3,n);
|
||||
for (int i=0; i<m; i++) {
|
||||
auto f = frames[n-m+i];
|
||||
auto s = to_string(f->f_code->co_filename);
|
||||
auto num = (int)PyFrame_GetLineNumber(f);
|
||||
stacks.emplace_back(Stack{
|
||||
s+":"+S(num),
|
||||
"",
|
||||
s,
|
||||
num});
|
||||
}
|
||||
}
|
||||
return stacks;
|
||||
}
|
||||
|
||||
|
|
|
@ -23,7 +23,7 @@ static void push_py_object_pickle(RingBuffer* rb, PyObject* obj, uint64& __restr
|
|||
ASSERT(0 == PyBytes_AsStringAndSize(ret.obj, &s, &size));
|
||||
rb->push_t<int64>(size, offset);
|
||||
rb->push(size, offset);
|
||||
LOGir << string(rb->get_ptr(size, offset), size);
|
||||
// LOGir << string(rb->get_ptr(size, offset), size);
|
||||
std::memcpy(rb->get_ptr(size, offset), s, size);
|
||||
return;
|
||||
}
|
||||
|
|
Loading…
Reference in New Issue