Is there a function call or another way to count the total number of parameters in a tensorflow model?

By parameters I mean: an N dim vector of trainable variables has N parameters, a NxM matrix has N*M parameters, etc. So essentially I'd like to sum the product of the shape dimensions of all the trainable variables in a tensorflow session.

  • your question description and title do not match (unless I'm confusing the terminology of graph and model). In the question you ask about a graph and the title you ask about a model. What if you had two different models? I'd suggest to clarify that on the question. – Charlie Parker Nov 21 '16 at 23:39
up vote 63 down vote accepted

Loop over the shape of every variable in tf.trainable_variables().

total_parameters = 0
for variable in tf.trainable_variables():
    # shape is an array of tf.Dimension
    shape = variable.get_shape()
    print(shape)
    print(len(shape))
    variable_parameters = 1
    for dim in shape:
        print(dim)
        variable_parameters *= dim.value
    print(variable_parameters)
    total_parameters += variable_parameters
print(total_parameters)

Update: I wrote an article to clarify the dynamic/static shapes in Tensorflow because of this answer: https://pgaleone.eu/tensorflow/2018/07/28/understanding-tensorflow-tensors-shape-static-dynamic/

  • 2
    if you have more than one model, how does tf.trainable_variables() know which one to use? – Charlie Parker Nov 21 '16 at 23:33
  • 2
    tf.trainable_variables() returns all the variables marked as trainable that are present in the current graph. If in the current graph you have more than one model, you have to manually filter the variables using theyr names. Somethink like if variable.name.strartswith("model2"): ... – nessuno Nov 22 '16 at 6:54
  • this solution gives me the error "Exception occurred: Can't convert 'int' object to str implicitly". You need to cast 'dim' explicitly to 'int' as the suggested in the answer below (which I suggest to be the correct answer) – Fábio Ferreira Oct 7 '17 at 14:51
  • really helpful, – Sudip Das Apr 2 at 10:17

I have an even shorter version, one line solution using using numpy:

np.sum([np.prod(v.get_shape().as_list()) for v in tf.trainable_variables()])
  • in my version, v doesn't have a shape_as_list() function but only get_shape() function – mustafa May 6 '17 at 0:25
  • I think earlier versions don't have .shape but get_shape(). Updated my answer. Anyway, I wrote v.shape.as_list() and not v.shape_as_list(). – Michael Gygli May 6 '17 at 11:33
  • 10
    np.sum([np.prod(v.shape) for v in tf.trainable_variables()]) works as well in TensorFlow 1.2 – Julius Kunze Jul 2 '17 at 15:51

Not sure if the answer given actually runs (I found you need to convert the dim object to an int for it to work). Here is is one that works and you can just copy paste the functions and call them (added a few comments too):

def count_number_trainable_params():
    '''
    Counts the number of trainable variables.
    '''
    tot_nb_params = 0
    for trainable_variable in tf.trainable_variables():
        shape = trainable_variable.get_shape() # e.g [D,F] or [W,H,C]
        current_nb_params = get_nb_params_shape(shape)
        tot_nb_params = tot_nb_params + current_nb_params
    return tot_nb_params

def get_nb_params_shape(shape):
    '''
    Computes the total number of params for a given shap.
    Works for any number of shapes etc [D,F] or [W,H,C] computes D*F and W*H*C.
    '''
    nb_params = 1
    for dim in shape:
        nb_params = nb_params*int(dim)
    return nb_params 
  • the answer does work (r0.11.0). yours is more plug n play :) – f4. Nov 21 '16 at 23:34
  • @f4. there seems to be a bug with this because y doesn't seem to be used. – Charlie Parker Nov 21 '16 at 23:34
  • @CharlieParker I fixed it a few seconds ago ;) – f4. Nov 21 '16 at 23:35
  • @f4. it still doesn't truly solve the issue I was trying to do (or the original author intended since he gave y as an input) because I was looking for a function that depended on the model one gave as input (i.e. y). Right now as given, I have no idea what on earth it counts. My suspicion is that it counts just all models (I have two separate models). – Charlie Parker Nov 21 '16 at 23:36
  • @CharlieParker it counts all trainable variables, which by default is all variables I believe. You can work something out using the variables attributes like graph or name. – f4. Nov 21 '16 at 23:43

The two existing answers are good if you're looking into computing the number of parameters yourself. If your question was more along the lines of "is there an easy way to profile my TensorFlow models?", I would highly recommend looking into tfprof. It profiles your model, including calculating the number of parameters.

I'll throw in my equivalent but shorter implementation:

def count_params():
    "print number of trainable variables"
    size = lambda v: reduce(lambda x, y: x*y, v.get_shape().as_list())
    n = sum(size(v) for v in tf.trainable_variables())
    print "Model size: %dK" % (n/1000,)

If one prefers to avoid numpy (it can be left out for many projects), then:

all_trainable_vars = tf.reduce_sum([tf.reduce_prod(v.shape) for v in tf.trainable_variables()])

This is a TF translation of the previous answer by Julius Kunze.

As any TF operation, it requires a session run to evaluate:

print(sess.run(all_trainable_vars))

If your model happens to be a Keras model, specifically, a tensorflow.python.keras.engine.training.Model, then you can use model.count_params().

The docs are here: https://www.tensorflow.org/api_docs/python/tf/keras/backend/count_params

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