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- .gitattributes +15 -0
- README.md +120 -0
- fold_0/logs.models.fold_0.ENCSR670ZSA/logfile.modelling.fold_0.ENCSR670ZSA.args.json +45 -0
- fold_0/logs.models.fold_0.ENCSR670ZSA/logfile.modelling.fold_0.ENCSR670ZSA.batch_loss.tsv +0 -0
- fold_0/logs.models.fold_0.ENCSR670ZSA/logfile.modelling.fold_0.ENCSR670ZSA.chrombpnet_data_params.tsv +3 -0
- fold_0/logs.models.fold_0.ENCSR670ZSA/logfile.modelling.fold_0.ENCSR670ZSA.chrombpnet_model_params.tsv +9 -0
- fold_0/logs.models.fold_0.ENCSR670ZSA/logfile.modelling.fold_0.ENCSR670ZSA.epoch_loss.csv +12 -0
- fold_0/model.bias_scaled.fold_0.ENCSR670ZSA.h5 +3 -0
- fold_0/model.bias_scaled.fold_0.ENCSR670ZSA.tar/keras_metadata.pb +3 -0
- fold_0/model.bias_scaled.fold_0.ENCSR670ZSA.tar/saved_model.pb +3 -0
- fold_0/model.bias_scaled.fold_0.ENCSR670ZSA.tar/variables/variables.data-00000-of-00001 +3 -0
- fold_0/model.bias_scaled.fold_0.ENCSR670ZSA.tar/variables/variables.index +0 -0
- fold_0/model.chrombpnet.fold_0.ENCSR670ZSA.h5 +3 -0
- fold_0/model.chrombpnet.fold_0.ENCSR670ZSA.tar/keras_metadata.pb +3 -0
- fold_0/model.chrombpnet.fold_0.ENCSR670ZSA.tar/saved_model.pb +3 -0
- fold_0/model.chrombpnet.fold_0.ENCSR670ZSA.tar/variables/variables.data-00000-of-00001 +3 -0
- fold_0/model.chrombpnet.fold_0.ENCSR670ZSA.tar/variables/variables.index +0 -0
- fold_0/model.chrombpnet_nobias.fold_0.ENCSR670ZSA.h5 +3 -0
- fold_0/model.chrombpnet_nobias.fold_0.ENCSR670ZSA.tar/keras_metadata.pb +3 -0
- fold_0/model.chrombpnet_nobias.fold_0.ENCSR670ZSA.tar/saved_model.pb +3 -0
- fold_0/model.chrombpnet_nobias.fold_0.ENCSR670ZSA.tar/variables/variables.data-00000-of-00001 +3 -0
- fold_0/model.chrombpnet_nobias.fold_0.ENCSR670ZSA.tar/variables/variables.index +0 -0
- fold_1/logs.models.fold_1.ENCSR670ZSA/logfile.modelling.fold_1.ENCSR670ZSA.args.json +45 -0
- fold_1/logs.models.fold_1.ENCSR670ZSA/logfile.modelling.fold_1.ENCSR670ZSA.batch_loss.tsv +0 -0
- fold_1/logs.models.fold_1.ENCSR670ZSA/logfile.modelling.fold_1.ENCSR670ZSA.chrombpnet_data_params.tsv +3 -0
- fold_1/logs.models.fold_1.ENCSR670ZSA/logfile.modelling.fold_1.ENCSR670ZSA.chrombpnet_model_params.tsv +9 -0
- fold_1/logs.models.fold_1.ENCSR670ZSA/logfile.modelling.fold_1.ENCSR670ZSA.epoch_loss.csv +11 -0
- fold_1/model.bias_scaled.fold_1.ENCSR670ZSA.h5 +3 -0
- fold_1/model.bias_scaled.fold_1.ENCSR670ZSA.tar/keras_metadata.pb +3 -0
- fold_1/model.bias_scaled.fold_1.ENCSR670ZSA.tar/saved_model.pb +3 -0
- fold_1/model.bias_scaled.fold_1.ENCSR670ZSA.tar/variables/variables.data-00000-of-00001 +3 -0
- fold_1/model.bias_scaled.fold_1.ENCSR670ZSA.tar/variables/variables.index +0 -0
- fold_1/model.chrombpnet.fold_1.ENCSR670ZSA.h5 +3 -0
- fold_1/model.chrombpnet.fold_1.ENCSR670ZSA.tar/keras_metadata.pb +3 -0
- fold_1/model.chrombpnet.fold_1.ENCSR670ZSA.tar/saved_model.pb +3 -0
- fold_1/model.chrombpnet.fold_1.ENCSR670ZSA.tar/variables/variables.data-00000-of-00001 +3 -0
- fold_1/model.chrombpnet.fold_1.ENCSR670ZSA.tar/variables/variables.index +0 -0
- fold_1/model.chrombpnet_nobias.fold_1.ENCSR670ZSA.h5 +3 -0
- fold_1/model.chrombpnet_nobias.fold_1.ENCSR670ZSA.tar/keras_metadata.pb +3 -0
- fold_1/model.chrombpnet_nobias.fold_1.ENCSR670ZSA.tar/saved_model.pb +3 -0
- fold_1/model.chrombpnet_nobias.fold_1.ENCSR670ZSA.tar/variables/variables.data-00000-of-00001 +3 -0
- fold_1/model.chrombpnet_nobias.fold_1.ENCSR670ZSA.tar/variables/variables.index +0 -0
- fold_2/logs.models.fold_2.ENCSR670ZSA/logfile.modelling.fold_2.ENCSR670ZSA.args.json +45 -0
- fold_2/logs.models.fold_2.ENCSR670ZSA/logfile.modelling.fold_2.ENCSR670ZSA.batch_loss.tsv +0 -0
- fold_2/logs.models.fold_2.ENCSR670ZSA/logfile.modelling.fold_2.ENCSR670ZSA.chrombpnet_data_params.tsv +3 -0
- fold_2/logs.models.fold_2.ENCSR670ZSA/logfile.modelling.fold_2.ENCSR670ZSA.chrombpnet_model_params.tsv +9 -0
- fold_2/logs.models.fold_2.ENCSR670ZSA/logfile.modelling.fold_2.ENCSR670ZSA.epoch_loss.csv +13 -0
- fold_2/model.bias_scaled.fold_2.ENCSR670ZSA.h5 +3 -0
- fold_2/model.bias_scaled.fold_2.ENCSR670ZSA.tar/keras_metadata.pb +3 -0
- fold_2/model.bias_scaled.fold_2.ENCSR670ZSA.tar/saved_model.pb +3 -0
.gitattributes
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fold_0/model.chrombpnet_nobias.fold_0.ENCSR670ZSA.tar/variables/variables.data-00000-of-00001 filter=lfs diff=lfs merge=lfs -text
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README.md
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| 1 |
+
---
|
| 2 |
+
license: mit
|
| 3 |
+
library_name: chrombpnet
|
| 4 |
+
tags:
|
| 5 |
+
- encode
|
| 6 |
+
- chrombpnet
|
| 7 |
+
- chromatin-accessibility
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| 8 |
+
- DNASE
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| 9 |
+
- kidney
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| 10 |
+
- hg38
|
| 11 |
+
---
|
| 12 |
+
# ENCODE ChromBPNet Atlas
|
| 13 |
+
As part of the ENCODE 4 Project, we trained ChromBPNet models on 1,512 ENCODE DNAse-seq and ATAC-seq across 408 biosamples. Here, we provide all models for open-source use.
|
| 14 |
+
|
| 15 |
+
For more information about the models, see:
|
| 16 |
+
- Main ENCODE 4 Paper
|
| 17 |
+
- [A unified lexicon of predictive DNA sequence motifs from ENCODE transcription factor binding and chromatin accessibility assays](https://doi.org/10.5281/zenodo.17123347) (Deshpande et al., Zenodo 2025)
|
| 18 |
+
- [ChromBPNet: bias factorized, base-resolution deep learning models of chromatin accessibility reveal cis-regulatory sequence syntax, transcription factor footprints and regulatory variants](https://doi.org/10.1101/2024.12.25.630221) (Pampari et al., bioRxiv 2024)
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| 19 |
+
|
| 20 |
+
## ChromBPNet model: DNASE in right kidney (ENCSR670ZSA)
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| 21 |
+
- Model: ChromBPNet
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| 22 |
+
- Assay: DNASE-seq
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| 23 |
+
- Experiment: [ENCSR670ZSA](https://www.encodeproject.org/experiments/ENCSR670ZSA/)
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| 24 |
+
- Model annotation: [ENCSR152FUS](https://www.encodeproject.org/annotations/ENCSR152FUS/)
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| 25 |
+
- Biosample: right kidney (Full name: Homo sapiens right kidney tissue male embryo (96 days))
|
| 26 |
+
- Cell slim(s): None
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| 27 |
+
- Organ slim(s): kidney
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| 28 |
+
- Developmental slim(s): mesoderm
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| 29 |
+
- System slim(s): excretory-system
|
| 30 |
+
- Assembly: hg38
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| 31 |
+
|
| 32 |
+
## Directory structure
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| 33 |
+
- `fold_0`: Model of 5-fold cross-validation: Fold 0
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| 34 |
+
- `model.chrombpnet.fold_0.encid.h5`: full chrombpnet model that combines both bias and corrected model in .h5 format
|
| 35 |
+
- `model.chrombpnet_nobias.fold_0.encid.h5`: bias-corrected accessibility model in .h5 format (Use for all biological discovery)
|
| 36 |
+
- `model.bias_scaled.fold_0.encid.h5`: bias model in .h5 format
|
| 37 |
+
- `model.chrombpnet.fold_0.encid.tar`: full chrombpnet model that combines both bias and corrected model in SavedModel format. After being untarred, it results in a directory named "chrombpnet".
|
| 38 |
+
- `model.chrombpnet_nobias.fold_0.encid.tar`: bias-corrected accessibility model in SavedModel format (Use for all biological discovery). After being untarred, it results in a directory named "chrombpnet_wo_bias".
|
| 39 |
+
- `model.bias_scaled.fold_0.encid.tar`: bias model in SavedModel format. After being untarred, it results in a directory named "bias_model_scaled".
|
| 40 |
+
- `logs.models.fold_0.encid`: folder containing log files for training models
|
| 41 |
+
- `fold_1`: Model of 5-fold coss-validation: Fold 1
|
| 42 |
+
- `fold_2`: Model of 5-fold cross-validation: Fold 2
|
| 43 |
+
- `fold_3`: Model of 5-fold cross-validation: Fold 3
|
| 44 |
+
- `fold_4`: Model of 5-fold cross-validation: Fold 4
|
| 45 |
+
|
| 46 |
+
# Instructions
|
| 47 |
+
## 1. Pseudocode for loading models in .h5 format
|
| 48 |
+
|
| 49 |
+
(1) Use the code in python after appropriately defining `model_in_h5_format` and `inputs`. \
|
| 50 |
+
(2) `inputs` is a one hot encoded sequence of shape (N,2114,4). Here N corresponds to the
|
| 51 |
+
number of tested sequences, 2114 is the input sequence length and 4 corresponds to [A,C,G,T].
|
| 52 |
+
|
| 53 |
+
```python
|
| 54 |
+
import tensorflow as tf
|
| 55 |
+
from tensorflow.keras.utils import get_custom_objects
|
| 56 |
+
from tensorflow.keras.models import load_model
|
| 57 |
+
|
| 58 |
+
custom_objects={"tf": tf}
|
| 59 |
+
get_custom_objects().update(custom_objects)
|
| 60 |
+
|
| 61 |
+
model=load_model(model_in_h5_format,compile=False)
|
| 62 |
+
outputs = model(inputs)
|
| 63 |
+
```
|
| 64 |
+
|
| 65 |
+
The list `outputs` consists of two elements. The first element has a shape of (N, 1000) and
|
| 66 |
+
contains logit predictions for a 1000-base-pair output. The second element, with a shape of
|
| 67 |
+
(N, 1), contains logcount predictions. To transform these predictions into per-base signals,
|
| 68 |
+
follow the provided pseudo code lines below.
|
| 69 |
+
|
| 70 |
+
```python
|
| 71 |
+
import numpy as np
|
| 72 |
+
|
| 73 |
+
def softmax(x, temp=1):
|
| 74 |
+
norm_x = x - np.mean(x,axis=1, keepdims=True)
|
| 75 |
+
return np.exp(temp*norm_x)/np.sum(np.exp(temp*norm_x), axis=1, keepdims=True)
|
| 76 |
+
|
| 77 |
+
predictions = softmax(outputs[0]) * (np.exp(outputs[1])-1)
|
| 78 |
+
```
|
| 79 |
+
|
| 80 |
+
## 2. Pseudocode for loading models in .tar format
|
| 81 |
+
|
| 82 |
+
(1) First untar the directory as follows `tar -xvf model.tar`. \
|
| 83 |
+
(2) Use the code below in python after appropriately defining `model_dir_untared` and `inputs`. \
|
| 84 |
+
(3) `inputs` is a one hot encoded sequence of shape (N,2114,4). Here N corresponds to the number
|
| 85 |
+
of tested sequences, 2114 is the input sequence length and 4 corresponds to ACGT.
|
| 86 |
+
|
| 87 |
+
Reference: https://www.tensorflow.org/api_docs/python/tf/saved_model/load
|
| 88 |
+
|
| 89 |
+
```python
|
| 90 |
+
import tensorflow as tf
|
| 91 |
+
|
| 92 |
+
model = tf.saved_model.load('model_dir_untared')
|
| 93 |
+
outputs = model.signatures['serving_default'](**{'sequence':inputs.astype('float32')})
|
| 94 |
+
```
|
| 95 |
+
|
| 96 |
+
The variable `outputs` represents a dictionary containing two key-value pairs. The first key
|
| 97 |
+
is `logits_profile_predictions`, holding a value with a shape of (N, 1000). This value corresponds
|
| 98 |
+
to logit predictions for a 1000-base-pair output. The second key, named `logcount_predictions``,
|
| 99 |
+
is associated with a value of shape (N, 1), representing logcount predictions. To transform these
|
| 100 |
+
predictions into per-base signals, utilize the provided pseudo code lines mentioned below.
|
| 101 |
+
|
| 102 |
+
```python
|
| 103 |
+
import numpy as np
|
| 104 |
+
def softmax(x, temp=1):
|
| 105 |
+
norm_x = x - np.mean(x,axis=1, keepdims=True)
|
| 106 |
+
return np.exp(temp*norm_x)/np.sum(np.exp(temp*norm_x), axis=1, keepdims=True)
|
| 107 |
+
|
| 108 |
+
predictions = softmax(outputs["logits_profile_predictions"]) * (np.exp(outputs["logcount_predictions"])-1)
|
| 109 |
+
```
|
| 110 |
+
|
| 111 |
+
## Docker image to load and use the models
|
| 112 |
+
- https://hub.docker.com/r/kundajelab/chrombpnet-atlas/ (tag:v1)
|
| 113 |
+
|
| 114 |
+
## Code for ChromBPNet
|
| 115 |
+
- https://github.com/kundajelab/chrombpnet/
|
| 116 |
+
|
| 117 |
+
# License & citation
|
| 118 |
+
External data users may freely download, analyze and publish results based on any ENCODE data without restrictions.
|
| 119 |
+
|
| 120 |
+
Released under the [ENCODE data-use policy](https://www.encodeproject.org/about/data-use-policy/). Please cite the ENCODE Project Consortium and the model software: [ChromBPNet](https://github.com/kundajelab/chrombpnet) (Pampari et al., bioRxiv 2024).
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fold_0/logs.models.fold_0.ENCSR670ZSA/logfile.modelling.fold_0.ENCSR670ZSA.args.json
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{
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| 2 |
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"cmd": "pipeline",
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| 3 |
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"genome": "/scratch/groups/akundaje/anusri/chromatin_atlas/reference//hg38.genome.fa",
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| 4 |
+
"chrom_sizes": "/scratch/groups/akundaje/anusri/chromatin_atlas/reference//chrom.sizes",
|
| 5 |
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