TxT360-v2 / README.md
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metadata
license: other
task_categories:
  - text-generation
tags:
  - k2-horizon
  - training-data
  - parquet
  - web
  - question-answering
configs:
  - config_name: web-high-augmented
    data_files:
      - split: train
        path: web-high-augmented/*.parquet
  - config_name: web-high-medium
    data_files:
      - split: train
        path: web-high-medium/*.parquet
  - config_name: txt360-qa
    data_files:
      - split: train
        path: txt360-qa/*.parquet

TxT360-v2

Dataset Description

Web and question-answering text selected for the K2 Horizon training-data release. This repository is part of the K2 Horizon collection.

The release is organized as one Hugging Face configuration per subset. Every configuration has a train split backed by Parquet shards, which supports Dataset Viewer inspection and streaming access.

K2 Horizon Dataset Series

Dataset repository Focus Configurations
IFM/TxT360-v2 Web and question-answering text 3
IFM/Code-Reasoning Code reasoning and task synthesis 7
IFM/Math-Reasoning Mathematical reasoning and dialogue 5
IFM/SFT-Reasoning Instruction following and supervised fine-tuning 2
IFM/Pretrain-Behaviors Behavior-focused continued-pretraining data 7

Dataset Configurations

Configuration Catalog source Data files
web-high-augmented nltk-web-high-randomized web-high-augmented/*.parquet
web-high-medium web-high-medium web-high-medium/*.parquet
txt360-qa txt360-qa txt360-qa/*.parquet

Repository Structure

README.md
web-high-augmented/
  <source-file>-<stable-id>-00000.parquet
  <source-file>-<stable-id>-00001.parquet
web-high-medium/
  <source-file>-<stable-id>-00000.parquet
  <source-file>-<stable-id>-00001.parquet
txt360-qa/
  <source-file>-<stable-id>-00000.parquet
  <source-file>-<stable-id>-00001.parquet

The shard prefix is derived from the source JSONL filename and a stable identifier. Updating one source JSONL file replaces only that file's Parquet shards.

Data Fields

Records originate as JSON objects and are converted to Parquet for release. Field names and nested structures can differ by configuration. Inspect features before building a processing pipeline:

from datasets import load_dataset

dataset = load_dataset(
    "IFM/TxT360-v2",
    "web-high-augmented",
    split="train",
    streaming=True,
)
print(dataset.features)
print(next(iter(dataset)))

Data Provenance and Processing

The configurations in this repository are selected from the data inventory used to prepare the K2 Horizon training mixture. Only release-approved configurations are included. JSONL records are converted to Parquet without intentionally renaming application-level fields.

Individual configurations may have undergone source-specific filtering, cleaning, deduplication, quality scoring, or synthetic-data generation. Users should evaluate each configuration for their target use case and inspect the available provenance metadata.

Intended Use

This dataset is intended for language-model training and research. The configurations can be streamed independently, combined with user-defined sampling weights, or inspected through the Hugging Face Dataset Viewer.

Limitations and Responsible Use

Large-scale training data can contain factual errors, duplicated material, sensitive topics, stereotypes, unsafe content, and other artifacts. Dataset users are responsible for performing evaluations, risk assessment, and filtering appropriate to their application.

License and Terms of Use

This repository contains multiple configurations that may have different source terms. Users are responsible for reviewing the applicable provenance and license information for the configurations they use and for determining suitability for their intended purpose.