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- 07 Sep, 2018 2 commits
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Dieterich Lawson authored
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Dieterich Lawson authored
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- 02 Sep, 2018 1 commit
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Mikael Souza authored
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- 30 Aug, 2018 2 commits
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Mark Daoust authored
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Mark Daoust authored
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- 27 Aug, 2018 1 commit
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Rutger Roffel authored
* Fixed TensorFlow version check in object_detection_tutorial_ipynb * Changed the minimum version to 1.9.0 for the object detection notebook
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- 23 Aug, 2018 2 commits
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Wentao Xu authored
The bash script to submit training job for pets detection has runtime-version of 1.8. This will trigger `TypeError: non_max_suppression() got an unexpected keyword argument 'score_threshold'` on the Google Cloud since 1.8 and older does not support this keyword argument. Therefore, update this runtime version to 1.9, which is the most recent runtime version that is published on June 27, 2018. See https://github.com/tensorflow/models/issues/5056 https://cloud.google.com/ml-engine/docs/tensorflow/runtime-version-list
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Cameron Rudnick authored
Updated model_lib to use min_score_threshold and max_num_boxes_to_visualize from the eval config.
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- 15 Aug, 2018 1 commit
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Malcolm Slaney authored
Added a pointer to a Colab that illustrates how to use the public AudioSet models to generate embeddings for user-specified sounds.
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- 14 Aug, 2018 1 commit
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MyungSung Kwak authored
change flag name to checkpoint_dir according to the variable name used by the checkpoint_utils within tensorflow python framework. The important point is that when run the run_eval script, an error occurs due to the different flag name. Signed-off-by:MyungSung Kwak <yesmung@gmail.com>
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- 13 Aug, 2018 5 commits
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Mark Daoust authored
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Mark Daoust authored
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Mark Daoust authored
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Mark Daoust authored
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Mark Daoust authored
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- 10 Aug, 2018 2 commits
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Taylor Robie authored
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Raymond Yuan authored
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- 09 Aug, 2018 1 commit
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Jiang,Zhoulong authored
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- 08 Aug, 2018 1 commit
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pkulzc authored
* Merged commit includes the following changes: 207771702 by Zhichao Lu: Refactoring evaluation utilities so that it is easier to introduce new DetectionEvaluators with eval_metric_ops. -- 207758641 by Zhichao Lu: Require tensorflow version 1.9+ for running object detection API. -- 207641470 by Zhichao Lu: Clip `num_groundtruth_boxes` in pad_input_data_to_static_shapes() to `max_num_boxes`. This prevents a scenario where tensors are sliced to an invalid range in model_lib.unstack_batch(). -- 207621728 by Zhichao Lu: This CL adds a FreezableBatchNorm that inherits from the Keras BatchNormalization layer, but supports freezing the `training` parameter at construction time instead of having to do it in the `call` method. It also adds a method to the `KerasLayerHyperparams` class that will build an appropriate FreezableBatchNorm layer according to the hyperparameter configuration. If batch_norm is disabled, this method returns and Identity layer. These will be used to simplify the conversion to Keras APIs. -- 207610524 by Zhichao Lu: Update anchor generators and box predictors for python3 compatibility. -- 207585122 by Zhichao Lu: Refactoring convolutional box predictor into separate prediction heads. -- 207549305 by Zhichao Lu: Pass all 1s for batch weights if nothing is specified in GT. -- 207336575 by Zhichao Lu: Move the new argument 'target_assigner_instance' to the end of the list of arguments to the ssd_meta_arch constructor for backwards compatibility. -- 207327862 by Zhichao Lu: Enable support for float output in quantized custom op for postprocessing in SSD Mobilenet model. -- 207323154 by Zhichao Lu: Bug fix: change dict.iteritems() to dict.items() -- 207301109 by Zhichao Lu: Integrating expected_classification_loss_under_sampling op as an option in the ssd_meta_arch -- 207286221 by Zhichao Lu: Adding an option to weight regression loss with foreground scores from the ground truth labels. -- 207231739 by Zhichao Lu: Explicitly mentioning the argument names when calling the batch target assigner. -- 207206356 by Zhichao Lu: Add include_trainable_variables field to train config to better handle trainable variables. -- 207135930 by Zhichao Lu: Internal change. -- 206862541 by Zhichao Lu: Do not unpad the outputs from batch_non_max_suppression before sampling. Since BalancedPositiveNegativeSampler takes an indicator for valid positions to sample from we can pass the output from NMS directly into Sampler. -- PiperOrigin-RevId: 207771702 * Remove unused doc.
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- 07 Aug, 2018 1 commit
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Shojib authored
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- 03 Aug, 2018 2 commits
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Trieu Trinh authored
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Suharsh Sivakumar authored
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- 02 Aug, 2018 1 commit
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Abdullah Alrasheed authored
`iteritems()` was removed from python3. `items()` does the same functionality so changing it will work in both python2 and python3. The only difference as far as I know is `iteritems()` returns a generator where `items` returns a list. But for this this code it will not make any difference where we are just changing the key of the dict to a string.
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- 01 Aug, 2018 2 commits
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pkulzc authored
* Merged commit includes the following changes: 206852642 by Zhichao Lu: Build the balanced_positive_negative_sampler in the model builder for FasterRCNN. Also adds an option to use the static implementation of the sampler. -- 206803260 by Zhichao Lu: Fixes a misplaced argument in resnet fpn feature extractor. -- 206682736 by Zhichao Lu: This CL modifies the SSD meta architecture to support both Slim-based and Keras-based box predictors, and begins preparation for Keras box predictor support in the other meta architectures. Concretely, this CL adds a new `KerasBoxPredictor` base class and makes the meta architectures appropriately call whichever box predictors they are using. We can switch the non-ssd meta architectures to fully support Keras box predictors once the Keras Convolutional Box Predictor CL is submitted. -- 206669634 by Zhichao Lu: Adds an alternate m... -
Raymond Yuan authored
* nst colab * downloaded py filed * Removed text. Use gdoc for reviewing text, py for code * update ipynb * Removed google3 imports and added images * nst update images * final updates * add github and colab links * removed py file again
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- 31 Jul, 2018 2 commits
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Raymond Yuan authored
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Raymond Yuan authored
* nst colab * downloaded py filed * Removed text. Use gdoc for reviewing text, py for code * update ipynb * Removed google3 imports and added images * nst update images * final updates
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- 30 Jul, 2018 1 commit
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Raymond Yuan authored
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- 26 Jul, 2018 3 commits
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Raymond Yuan authored
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Raymond Yuan authored
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Chenxi Liu authored
* PiperOrigin-RevId: 201234832 * PiperOrigin-RevId: 202507333 * PiperOrigin-RevId: 204320344 * Add PNASNet-5 mobile network model and cell structure. PiperOrigin-RevId: 204735410 * Add option to customize individual projection layer activation. PiperOrigin-RevId: 204776951
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- 24 Jul, 2018 6 commits
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Mohammad Norouzi authored
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Mohammad Norouzi authored
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SRIRAM VETURI authored
The following error doesn't occur with the above change in code. Error: Argument must be a dense tensor: range(0, 3) - got shape [3], but wanted [] The range function on the vairable 'num_boundaries' should be a list! Please merge this request!
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Raymond Yuan authored
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Hui Hui authored
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Liang-Chieh Chen authored
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- 23 Jul, 2018 3 commits
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Carlos Riquelme authored
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Carlos Riquelme authored
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Carlos Riquelme authored
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