Define a feed_dict in c++ for Tensorflow models

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陌清茗
陌清茗 2021-01-06 10:22

This question is related to this one: Export Tensorflow graphs from Python for use in C++

I\'m trying to export a Tensorflow model from Python to C++. The problem is

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  • 2021-01-06 10:37

    The tensorflow::Session::Run() method is the C++ equivalent of the Python tf.Session.run() method, and it supports feeding tensors using the inputs argument. Like so many things in C++ versus Python, it's just a little more tricky to use (and in this case it looks like the documentation is a bit poorer...).

    The inputs argument has type const std::vector<std::pair<string, Tensor>>&. Let's break this down:

    • Each element of inputs corresponds to a single tensor (such as a placeholder) that you want to feed in the Run() call. An element has type std::pair<string, Tensor>.

    • The first element of the std::pair<string, Tensor> is the name of the tensor in the graph that you want to feed. For example, let's say in Python you had:

      p = tf.placeholder(..., name="placeholder")
      # ...
      sess.run(..., feed_dict={p: ...})
      

      ...then in C++ the first element of the pair would be the value of p.name, which in this case would be "placeholder:0"

    • The second element of the std::pair<string, Tensor> is the value that you want to feed, as a tensorflow::Tensor object. You have to build this yourself in C++, and it's a bit more complicated that defining a Numpy array or a Python object, but here's an example of how to specify a 2 x 2 matrix:

      using tensorflow::Tensor;
      using tensorflow::TensorShape;
      
      Tensor t(DT_FLOAT, TensorShape({2, 2}));
      auto t_matrix = t.matrix<float>();
      t_matrix(0, 0) = 1.0;
      t_matrix(0, 1) = 0.0;
      t_matrix(1, 0) = 0.0;
      t_matrix(1, 1) = 1.0;
      

      ...and you can then pass t as the second element of the pair.

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