Questions tagged [catboost]
CatBoost is an open-source gradient boosting on decision trees library with categorical features support out of the box for Python, R
catboost
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Can I get the categorical features which used in model development from catboost model directly?
Can I get the categorical features which used in model development from catboost model directly?
I try to get the categorical feature name in training data from a fitted catboost model directly, but I ...
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How to pass an array of categorical features to CatBoost
I have an array of ints as a feature.
It represents tags for item (so insides must be treated as categorical features).
Example: [11,2344,17]
How do I pass them to Catboost and tell it to work with it ...
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Catboost none features lead to unstable predictions
I wanted to ask how CatBoost handles missing categorical features. I am predicting clicks on websites, and I have a very strong bias (avg_target on the train is 0.0004, on unseen features it's 0.002, ...
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Issue with Installing CatBoost Version 0.24.4 in VSCode
I'm currently encountering an issue while attempting to install CatBoost version 0.24.4 using a requirements.txt file in VSCode. My Python version is 3.8.3. Here's the error message I'm receiving:
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Getting "CatBoostError: Attempt to call single feature writer on packed feature writer" when trying to fit CatBoostClassifier with embeddings on GPU
When I try to fit CatBoostClassifier on GPU with pandas dataframe with embeddings, I get this error:
CatBoostError: Attempt to call single feature writer on packed feature writer
The data type for ...
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15
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Categorical variables splits in CatBoost
Is there any way to obtain splits for categorical variables for CatBoost in Python?
I used get_borders method, but it only gives splits for numerical data. I have problems with drawing a tree, but ...
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Passing a set as an indexer is not supported. Use a list instead
Could anyone give me a support how to fix this issue?
X_train, X_test, y_train, y_test = train_test_split(df[set(df.columns) - set(['load_date','target'])],
...
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Understanding and using incremental regression with catboost
I saw the example (Catboost training model for huge data(~22GB) with multiple chunks) for classification with catboost and tried to adapt it to for incremental multiple regression but I keep spinning ...
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Federtaed Learning Flower platform: TypeError: None has type NoneType, but expected one of: bytes
I am trying to implement federated learning system using the Flower platform, I am using the CatBoost tree-based model as my FL model.
As shown in the Flower instruction, I am running the server and ...
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Does catboost have a maximum number of categories?
I am considering trying to model a very large number of categories. I read that catboost has an algorithm to convert categories to ordered floats to optimize decision tree splits. Does the algorithm ...
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Does Catboost JAVA library support prediction for models trained on GPU?
I have a few models trained on CPU and GPU (using python). I am using catboost-prediction (version 1.2.2) for generating predictions in java.
I am comparing the predictions generated from python and ...
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catboost java prediction slow at high scale
I am trying to use catboost java API but facing high latency issues at a large scale. I currently run a high-scale multi-threaded system with around 300+ worker threads that query the catboost model ...
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Polynomialize dataset for selected columns of pd.Dataframe
I am new to regression concepts. I have a dataset which has a text column
I am using CatboostRegressor to regress the transaction time based on the other 3 features
Ticket text
Created Hour (Between ...
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1
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Using weigths in model for unbalanced data
I'd like to know if you have any way to control catboost weights in the function of unbalanced sample size. In my case I have a dataset of 2 areas "a" and "b"(x_categorical_1), ...
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Find out if Catboost regression works well for Time estimation
I have a use case to predict the estimated time of resolution for my IT ticketing data that has the below features
Ticket title and description in text format
Created hour (ETR would be lesser for ...
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sample_weight parameter with select_features method of CatboostRegressor
I am trying to use select_features from CatboostRegressor but I am getting an error that it does not support the sample_weight parameter. I need this to input exposures/offset for a Poisson loss model....
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Error using catboost-spark recommended quickstart (CatBoostClassifier.fit() got an unexpected keyword argument 'eval_set')
I've been trying to set up Catboost to work with Pyspark in a Colab notebook (specifically a Kaggle integrated notebook).
As a starting point I've pip installed pyspark 3.1 and copied the "Binary ...
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AttributeError: cython_sources [duplicate]
I am using:
python: 3.12
OS: Windows 11 Home
I tried to install catboost==1.2.2
I am getting this error:
C:\Windows\System32>py -3 -m pip install catboost==1.2.2
Collecting catboost==1.2.2
...
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Non Symmetric XGBoost – Tennis Match Predictions
I'm working on developing an algorithm to predict the outcomes of tennis matches, focusing on player matchups. The core of my model is an XGBoost classifier. I've encountered a puzzling issue in the ...
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Catboost runs correctly on onnx but does not work on OpenVINO
I tried to convert to OpenVINO a Catboost model implemented by me, before I had to transform the Catboost to ONNX, I used the code found at the following link: https://catboost.ai/en/docs/concepts/...
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Catboost hyperparameter tuning with mlflow
Hi I'm triying to hyperparameter tune a catboost binary classification model and to store the logs metrics and experiments with mlflow but I keep getting the following error. This is the code
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Python catboost custom loss function
I know that there is built-in Poisson loss function in catboost. I want to try to reproduce it. I used the tutorial example https://github.com/catboost/catboost/blob/...
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How to create custom loss function in catboost?
I want to optimize SMAPE in my catboost model. When I pass the parameter loss_function = 'SMAPE' I get an error.
CatBoostError: Invalid loss_function='SMAPE': for regressor use RMSE, MultiRMSE, ...
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I downloaded Python 3.12, but I'm unable to install CatBoost and Jieba using pip [duplicate]
I've tried running the following commands:
pip install catboost
pip install jieba
However, both of these commands return an error. Can someone please assist me in resolving this installation issue ...
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SHAP is not working with CatBoost categorical features
I encountered a problem with categorical features while training the CatBoost model.
CatBoostError: Bad value for num_feature[non_default_doc_idx=0,feature_idx=23]="100+ доступны после заявки на ...
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How to get PFound metric score with YetiRank loss in CatBoost Ranker for Optuna?
I train CatBoost Ranker in Optuna with YetiRank and want to optimize Pfound. If I write params such way (as on 1 screen) and then I want to pull out the metric after fitting - I try to use ranker....
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How does CatBoost perform multiclass classification?
I am trying to figure out how CatBoost performs multiclass classification with MultiClass loss function. As I understand it, for each prediction MultiClass requires M values for each of M classes. My ...
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Training Biased/Uneven Categorical Data with CatBoost, Unbalanced/Unseen Categories Handling
Summary:
I am training a discount eligibility model where the dataset represents historical data for products where people availed discounts based on simple features like product category, discount ...
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How to obtain a dataframe of trees from a CatBoost model similar to XGBoost's model.get_booster().trees_to_dataframe()
I'm working with CatBoost and I need to extract information about the trees generated by a trained CatBoost model in the form of a dataframe, similar to how it can be done with XGBoost using model....
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Transform a non callable function into a callable function
To explain: I use optuna on 5 classifier who are store in a dictionary.
To select one model, I use this:
models={"CatBoostClassifier":CatBoostClassifier,"DecisionTreeClassifier":...
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ERROR while using " pip install catboost " : Failed building wheel for catboost
I'm trying to install the catboost package through a requirements.txt file in my virtual environment, but while building the wheel for catboost (pyproject.toml), an error occurs.
Environment:
Python: ...
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What is the order in catboost's select_features mean?
I came across Catboost's select_features function that uses RFE. Is the order of eliminated features represent the order in which features were removed? Or, is it random?
https://catboost.ai/en/docs/...
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Save Catboost model in Python and load in Spark
I have a use-case where model training is a Python process.
The model is a Catboost Regressor with categorical features.
In general, language agnostic model binary formats like ONNX and PMML work well ...
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ML Classification for categorical data
I came across a problem that needed programming a ML model for classification between 2 classes. Now the problems we faced are mentioned below in points:
Data points for Class A were somewhere around ...
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CatBoost Grid Search usage with SMOTE and get_dummies
I try to use the grid_search method from catboost library to pick the best parameters and do a cross validation, but for some reason it doesn't work well - roc_auc_score is awful and confusion matrix ...
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Not able to install catboost version 1.0.4 using conda
I was using catboost v1.0.4 in a Conda environment. Recently, I had to recreate the environment, then it is showing the folllowing error.
Error with conda install
PackagesNotFoundError: The following ...
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Unable to draw in jupyter notebook
I am using the catboost model for training, using
model. fit (train_pool, eval_set=val_pool, early_stopping_rounds=150, plot=True)'
, but in jupyternotebook
Open Browser Console for more detailed log ...
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hyper parameter of loocv - performance reduce
I Try to hyper parameter tuning over my model , I have small dataset thus the basic model is evaluatred by LOOCV. for better performance I want to hyper parameter tune the model thus I did the next ...
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Catboost Missing Values Processing
According to catboost docs (python package), the algorithm handles numerical missing features in training by inputting the minimal value for the feature. But is does not mention if the same is true in ...
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Combine time series data as input for CatBoost/XGboost
I have time series data in a pandas dataframe. This is not only one time series data but different ones depending on the ID. I want to now train a CatBoost model with a rolling window approach. ...
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CatBoostRegressor with loss_function='Lq'
I am not sure how to specify the "q" variable in the "Lq" loss function. I receive the following error message:
CatBoostError: /src/catboost/catboost/private/libs/options/...
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Understanding the Substantial Performance Discrepancy between Stratified K-Fold Cross Validation and No Cross Validation in my Prediction
: I have developed two versions of my code where one incorporates stratified k-fold cross validation, while the other lacks any form of cross validation. To my surprise, the results achieved using ...
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Overcoming the 'not implemented yet' error when combining model shrinkage with learning continuation in CatBoost
First of all, thanks to the people that worked on the catboost library, it's amazing!
I am researching the combination of learning continuation, posterior sampling and model shrinkage in gradient ...
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How can to access the CTR values in Catboost?
When using Catboost on data with a categorical variable, CTR values are calculated during training for each value of this categorical feature. These values are then used to determine paths through ...
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My Telegram bot throws an error when working with my model
I was able to connect a model trained on Catboost with my bot, but when I enter data for analysis, an error pops up.
raise CatBoostError("Invalid {}[{}] = {} value: index must be < {}."....
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Implementing a non continuous loss function
I am trying to implement a custom loss function with the following reasoning:
If the predicted value is higher then the target then the loss ther difference
If the predicted value is lower than the ...
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352
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Interpreting SHAP summary plots
I am working on an attrition model. I have multiple categorical features with high cardinality. Hence I attempted Catboost and LightGBM for it.
I am also finding the SHAP plots for both. Following are ...
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How to get predictions using cross-validation with catboost?
I'm looking at documentation
https://catboost.ai/en/docs/concepts/python-reference_cv
the function returns scores (metrics) and can return models (using return_models), but how to get predictions for ...
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CatBoost and LightGBM: training a classifier with weights
I am training a (binary) classifier with sample weights. The distribution of the weights is skewed. While half of the training samples have weight 1, the other half has weights greater than 1 (300 - ...
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Catboost iteration results meaning
I am fitting CatBoostClassifier like this:
clf = CatBoostClassifier(cat_features=cols_cat, random_seed=11, verbose=50)
clf.fit(X_train, y_train)
Learning rate set to 0.132799
0: learn: 0.5495892 ...