tensorflow :ckpt模型转换为pytorch : hdf5模型

参考链接:https://github.com/bermanmaxim/jaccardSegment/blob/master/ckpt_to_dd.py

import tensorflow as tf
import deepdish as dd
import argparse
import os
import numpy as np

def tr(v):
    # tensorflow weights to pytorch weights
    if v.ndim == 4:
        return np.ascontiguousarray(v.transpose(3,2,0,1))
    elif v.ndim == 2:
        return np.ascontiguousarray(v.transpose())
    return v

def read_ckpt(ckpt):
    # https://github.com/tensorflow/tensorflow/issues/1823
    reader = tf.train.NewCheckpointReader(ckpt)
    weights = {n: reader.get_tensor(n) for (n, _) in reader.get_variable_to_shape_map().iteritems()}
    pyweights = {k: tr(v) for (k, v) in weights.items()}
    return pyweights

if __name__ == '__main__':
    parser = argparse.ArgumentParser(description="Converts ckpt weights to deepdish hdf5")
    parser.add_argument("infile", type=str,
                        help="Path to the ckpt.")
    parser.add_argument("outfile", type=str, nargs='?', default='',
                        help="Output file (inferred if missing).")
    args = parser.parse_args()
    if args.outfile == '':
        args.outfile = os.path.splitext(args.infile)[0] + '.h5'
    outdir = os.path.dirname(args.outfile)
    if not os.path.exists(outdir):
        os.makedirs(outdir)
    weights = read_ckpt(args.infile)
    dd.io.save(args.outfile, weights)
    weights2 = dd.io.load(args.outfile)

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转载自www.cnblogs.com/wangyarui/p/9076401.html
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